951 resultados para dynamic user behavior


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This paper addresses an uplink power control dynamic game where we assume that each user battery represents the system state that changes with time following a discrete-time version of a differential game. To overcome the complexity of the analysis of a dynamic game approach we focus on the concept of Dynamic Potential Games showing that the game can be solved as an equivalent Multivariate Optimum Control Problem. The solution of this problem is quite interesting because different users split the activity in time, avoiding higher interferences and providing a long term fairness.

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El desarrollo da las nuevas tecnologías permite a los ingenieros llevar al límite el funcionamiento de los circuitos integrados (Integrated Circuits, IC). Las nuevas generaciones de procesadores, DSPs o FPGAs son capaces de procesar la información a una alta velocidad, con un alto consumo de energía, o esperar en modo de baja potencia con el mínimo consumo posible. Esta gran variación en el consumo de potencia y el corto tiempo necesario para cambiar de un nivel al otro, afecta a las especificaciones del Módulo de Regulador de Tensión (Voltage Regulated Module, VRM) que alimenta al IC. Además, las características adicionales obligatorias, tales como adaptación del nivel de tensión (Adaptive Voltage Positioning, AVP) y escalado dinámico de la tensión (Dynamic Voltage Scaling, DVS), imponen requisitos opuestas en el diseño de la etapa de potencia del VRM. Para poder soportar las altas variaciones de los escalones de carga, el condensador de filtro de salida del VRM se ha de sobredimensionar, penalizando la densidad de energía y el rendimiento durante la operación de DVS. Por tanto, las actuales tendencias de investigación se centran en mejorar la respuesta dinámica del VRM, mientras se reduce el tamaño del condensador de salida. La reducción del condensador de salida lleva a menor coste y una prolongación de la vida del sistema ya que se podría evitar el uso de condensadores voluminosos, normalmente implementados con condensadores OSCON. Una ventaja adicional es que reduciendo el condensador de salida, el DVS se puede realizar más rápido y con menor estrés de la etapa de potencia, ya que la cantidad de carga necesaria para cambiar la tensión de salida es menor. El comportamiento dinámico del sistema con un control lineal (Control Modo Tensión, VMC, o Control Corriente de Pico, Peak Current Mode Control, PCMC,…) está limitado por la frecuencia de conmutación del convertidor y por el tamaño del filtro de salida. La reducción del condensador de salida se puede lograr incrementando la frecuencia de conmutación, así como incrementando el ancho de banda del sistema, y/o aplicando controles avanzados no-lineales. Usando esos controles, las variables del estado se saturan para conseguir el nuevo régimen permanente en un tiempo mínimo, así como el filtro de salida, más específicamente la pendiente de la corriente de la bobina, define la respuesta de la tensión de salida. Por tanto, reduciendo la inductancia de la bobina de salida, la corriente de bobina llega más rápido al nuevo régimen permanente, por lo que una menor cantidad de carga es tomada del condensador de salida durante el tránsito. El inconveniente de esa propuesta es que el rendimiento del sistema es penalizado debido al incremento de pérdidas de conmutación y las corrientes RMS. Para conseguir tanto la reducción del condensador de salida como el alto rendimiento del sistema, mientras se satisfacen las estrictas especificaciones dinámicas, un convertidor multifase es adoptado como estándar para aplicaciones VRM. Para asegurar el reparto de las corrientes entre fases, el convertidor multifase se suele implementar con control de modo de corriente. Para superar la limitación impuesta por el filtro de salida, la segunda posibilidad para reducir el condensador de salida es aplicar alguna modificación topológica (Topologic modifications) de la etapa básica de potencia para incrementar la pendiente de la corriente de bobina y así reducir la duración de tránsito. Como el transitorio se ha reducido, una menor cantidad de carga es tomada del condensador de salida bajo el mismo escalón de la corriente de salida, con lo cual, el condensador de salida se puede reducir para lograr la misma desviación de la tensión de salida. La tercera posibilidad para reducir el condensador de salida del convertidor es introducir un camino auxiliar de energía (additional energy path, AEP) para compensar el desequilibrio de la carga del condensador de salida reduciendo consecuentemente la duración del transitorio y la desviación de la tensión de salida. De esta manera, durante el régimen permanente, el sistema tiene un alto rendimiento debido a que el convertidor principal con bajo ancho de banda es diseñado para trabajar con una frecuencia de conmutación moderada para conseguir requisitos estáticos. Por otro lado, el comportamiento dinámico durante los transitorios es determinado por el AEP con un alto ancho de banda. El AEP puede ser implementado como un camino resistivo, como regulador lineal (Linear regulator, LR) o como un convertidor conmutado. Las dos primeras implementaciones proveen un mayor ancho de banda, acosta del incremento de pérdidas durante el transitorio. Por otro lado, la implementación del convertidor computado presenta menor ancho de banda, limitado por la frecuencia de conmutación, aunque produce menores pérdidas comparado con las dos anteriores implementaciones. Dependiendo de la aplicación, la implementación y la estrategia de control del sistema, hay una variedad de soluciones propuestas en el Estado del Arte (State-of-the-Art, SoA), teniendo diferentes propiedades donde una solución ofrece más ventajas que las otras, pero también unas desventajas. En general, un sistema con AEP ideal debería tener las siguientes propiedades: 1. El impacto del AEP a las pérdidas del sistema debería ser mínimo. A lo largo de la operación, el AEP genera pérdidas adicionales, con lo cual, en el caso ideal, el AEP debería trabajar por un pequeño intervalo de tiempo, solo durante los tránsitos; la otra opción es tener el AEP constantemente activo pero, por la compensación del rizado de la corriente de bobina, se generan pérdidas innecesarias. 2. El AEP debería ser activado inmediatamente para minimizar la desviación de la tensión de salida. Para conseguir una activación casi instantánea, el sistema puede ser informado por la carga antes del escalón o el sistema puede observar la corriente del condensador de salida, debido a que es la primera variable del estado que actúa a la perturbación de la corriente de salida. De esa manera, el AEP es activado con casi cero error de la tensión de salida, logrando una menor desviación de la tensión de salida. 3. El AEP debería ser desactivado una vez que el nuevo régimen permanente es detectado para evitar los transitorios adicionales de establecimiento. La mayoría de las soluciones de SoA estiman la duración del transitorio, que puede provocar un transitorio adicional si la estimación no se ha hecho correctamente (por ejemplo, si la corriente de bobina del convertidor principal tiene un nivel superior o inferior al necesitado, el regulador lento del convertidor principal tiene que compensar esa diferencia una vez que el AEP es desactivado). Otras soluciones de SoA observan las variables de estado, asegurando que el sistema llegue al nuevo régimen permanente, o pueden ser informadas por la carga. 4. Durante el transitorio, como mínimo un subsistema, o bien el convertidor principal o el AEP, debería operar en el lazo cerrado. Implementando un sistema en el lazo cerrado, preferiblemente el subsistema AEP por su ancho de banda elevado, se incrementa la robustez del sistema a los parásitos. Además, el AEP puede operar con cualquier tipo de corriente de carga. Las soluciones que funcionan en el lazo abierto suelen preformar el control de balance de carga con mínimo tiempo, así reducen la duración del transitorio y tienen un impacto menor a las pérdidas del sistema. Por otro lado, esas soluciones demuestran una alta sensibilidad a las tolerancias y parásitos de los componentes. 5. El AEP debería inyectar la corriente a la salida en una manera controlada, así se reduce el riesgo de unas corrientes elevadas y potencialmente peligrosas y se incrementa la robustez del sistema bajo las perturbaciones de la tensión de entrada. Ese problema suele ser relacionado con los sistemas donde el AEP es implementado como un convertidor auxiliar. El convertidor auxiliar es diseñado para una potencia baja, con lo cual, los dispositivos elegidos son de baja corriente/potencia. Si la corriente no es controlada, bajo un pico de tensión de entrada provocada por otro parte del sistema (por ejemplo, otro convertidor conectado al mismo bus), se puede llegar a un pico en la corriente auxiliar que puede causar la perturbación de tensión de salida e incluso el fallo de los dispositivos del convertidor auxiliar. Sin embargo, cuando la corriente es controlada, usando control del pico de corriente o control con histéresis, la corriente auxiliar tiene el control con prealimentación (feed-forward) de tensión de entrada y la corriente es definida y limitada. Por otro lado, si la solución utiliza el control de balance de carga, el sistema puede actuar de forma deficiente si la tensión de entrada tiene un valor diferente del nominal, provocando que el AEP inyecta/toma más/menos carga que necesitada. 6. Escalabilidad del sistema a convertidores multifase. Como ya ha sido comentado anteriormente, para las aplicaciones VRM por la corriente de carga elevada, el convertidor principal suele ser implementado como multifase para distribuir las perdidas entre las fases y bajar el estrés térmico de los dispositivos. Para asegurar el reparto de las corrientes, normalmente un control de modo corriente es usado. Las soluciones de SoA que usan VMC son limitadas a la implementación con solo una fase. Esta tesis propone un nuevo método de control del flujo de energía por el AEP y el convertidor principal. El concepto propuesto se basa en la inyección controlada de la corriente auxiliar al nodo de salida donde la amplitud de la corriente es n-1 veces mayor que la corriente del condensador de salida con las direcciones apropiadas. De esta manera, el AEP genera un condensador virtual cuya capacidad es n veces mayor que el condensador físico y reduce la impedancia de salida. Como el concepto propuesto reduce la impedancia de salida usando el AEP, el concepto es llamado Output Impedance Correction Circuit (OICC) concept. El concepto se desarrolla para un convertidor tipo reductor síncrono multifase con control modo de corriente CMC (incluyendo e implementación con una fase) y puede operar con la tensión de salida constante o con AVP. Además, el concepto es extendido a un convertidor de una fase con control modo de tensión VMC. Durante la operación, el control de tensión de salida de convertidor principal y control de corriente del subsistema OICC están siempre cerrados, incrementando la robustez a las tolerancias de componentes y a los parásitos del cirquito y permitiendo que el sistema se pueda enfrentar a cualquier tipo de la corriente de carga. Según el método de control propuesto, el sistema se puede encontrar en dos estados: durante el régimen permanente, el sistema se encuentra en el estado Idle y el subsistema OICC esta desactivado. Por otro lado, durante el transitorio, el sistema se encuentra en estado Activo y el subsistema OICC está activado para reducir la impedancia de salida. El cambio entre los estados se hace de forma autónoma: el sistema entra en el estado Activo observando la corriente de condensador de salida y vuelve al estado Idle cunado el nuevo régimen permanente es detectado, observando las variables del estado. La validación del concepto OICC es hecha aplicándolo a un convertidor tipo reductor síncrono con dos fases y de 30W cuyo condensador de salida tiene capacidad de 140μF, mientras el factor de multiplicación n es 15, generando en el estado Activo el condensador virtual de 2.1mF. El subsistema OICC es implementado como un convertidor tipo reductor síncrono con PCMC. Comparando el funcionamiento del convertidor con y sin el OICC, los resultados demuestran que se ha logrado una reducción de la desviación de tensión de salida con factor 12, tanto con funcionamiento básico como con funcionamiento AVP. Además, los resultados son comparados con un prototipo de referencia que tiene la misma etapa de potencia y un condensador de salida físico de 2.1mF. Los resultados demuestran que los dos sistemas tienen el mismo comportamiento dinámico. Más aun, se ha cuantificado el impacto en las pérdidas del sistema operando bajo una corriente de carga pulsante y bajo DVS. Se demuestra que el sistema con OICC mejora el rendimiento del sistema, considerando las pérdidas cuando el sistema trabaja con la carga pulsante y con DVS. Por lo último, el condensador de salida de sistema con OICC es mucho más pequeño que el condensador de salida del convertidor de referencia, con lo cual, por usar el concepto OICC, la densidad de energía se incrementa. En resumen, las contribuciones principales de la tesis son: • El concepto propuesto de Output Impedance Correction Circuit (OICC), • El control a nivel de sistema basado en el método usado para cambiar los estados de operación, • La implementación del subsistema OICC en lazo cerrado conjunto con la implementación del convertidor principal, • La cuantificación de las perdidas dinámicas bajo la carga pulsante y bajo la operación DVS, y • La robustez del sistema bajo la variación del condensador de salida y bajo los escalones de carga consecutiva. ABSTRACT Development of new technologies allows engineers to push the performance of the integrated circuits to its limits. New generations of processors, DSPs or FPGAs are able to process information with high speed and high consumption or to wait in low power mode with minimum possible consumption. This huge variation in power consumption and the short time needed to change from one level to another, affect the specifications of the Voltage Regulated Module (VRM) that supplies the IC. Furthermore, additional mandatory features, such as Adaptive Voltage Positioning (AVP) and Dynamic Voltage Scaling (DVS), impose opposite trends on the design of the VRM power stage. In order to cope with high load-step amplitudes, the output capacitor of the VRM power stage output filter is drastically oversized, penalizing power density and the efficiency during the DVS operation. Therefore, the ongoing research trend is directed to improve the dynamic response of the VRM while reducing the size of the output capacitor. The output capacitor reduction leads to a smaller cost and longer life-time of the system since the big bulk capacitors, usually implemented with OSCON capacitors, may not be needed to achieve the desired dynamic behavior. An additional advantage is that, by reducing the output capacitance, dynamic voltage scaling (DVS) can be performed faster and with smaller stress on the power stage, since the needed amount of charge to change the output voltage is smaller. The dynamic behavior of the system with a linear control (Voltage mode control, VMC, Peak Current Mode Control, PCMC,…) is limited by the converter switching frequency and filter size. The reduction of the output capacitor can be achieved by increasing the switching frequency of the converter, thus increasing the bandwidth of the system, and/or by applying advanced non-linear controls. Applying nonlinear control, the system variables get saturated in order to reach the new steady-state in a minimum time, thus the output filter, more specifically the output inductor current slew-rate, determines the output voltage response. Therefore, by reducing the output inductor value, the inductor current reaches faster the new steady state, so a smaller amount of charge is taken from the output capacitor during the transient. The drawback of this approach is that the system efficiency is penalized due to increased switching losses and RMS currents. In order to achieve both the output capacitor reduction and high system efficiency, while satisfying strict dynamic specifications, a Multiphase converter system is adopted as a standard for VRM applications. In order to ensure the current sharing among the phases, the multiphase converter is usually implemented with current mode control. In order to overcome the limitation imposed by the output filter, the second possibility to reduce the output capacitor is to apply Topologic modifications of the basic power stage topology in order to increase the slew-rate of the inductor current and, therefore, reduce the transient duration. Since the transient is reduced, smaller amount of charge is taken from the output capacitor under the same load current, thus, the output capacitor can be reduced to achieve the same output voltage deviation. The third possibility to reduce the output capacitor of the converter is to introduce an additional energy path (AEP) to compensate the charge unbalance of the output capacitor, consequently reducing the transient time and output voltage deviation. Doing so, during the steady-state operation the system has high efficiency because the main low-bandwidth converter is designed to operate at moderate switching frequency, to meet the static requirements, whereas the dynamic behavior during the transients is determined by the high-bandwidth auxiliary energy path. The auxiliary energy path can be implemented as a resistive path, as a Linear regulator, LR, or as a switching converter. The first two implementations provide higher bandwidth, at the expense of increasing losses during the transient. On the other hand, the switching converter implementation presents lower bandwidth, limited by the auxiliary converter switching frequency, though it produces smaller losses compared to the two previous implementations. Depending on the application, the implementation and the control strategy of the system, there is a variety of proposed solutions in the State-of-the-Art (SoA), having different features where one solution offers some advantages over the others, but also some disadvantages. In general, an ideal additional energy path system should have the following features: 1. The impact on the system losses should be minimal. During its operation, the AEP generates additional losses, thus ideally, the AEP should operate for a short period of time, only when the transient is occurring; the other option is to have the AEP constantly on, but due to the inductor current ripple compensation at the output, unnecessary losses are generated. 2. The AEP should be activated nearly instantaneously to prevent bigger output voltage deviation. To achieve near instantaneous activation, the converter system can be informed by the load prior to the load-step or the system can observe the output capacitor current, which is the first system state variable that reacts on the load current perturbation. In this manner, the AEP is turned on with near zero output voltage error, providing smaller output voltage deviation. 3. The AEP should be deactivated once the new steady state is reached to avoid additional settling transients. Most of the SoA solutions estimate duration of the transient which may cause additional transient if the estimation is not performed correctly (e.g. if the main converter inductor current has higher or lower value than needed, the slow regulator of the main converter needs to compensate the difference after the AEP is deactivated). Other SoA solutions are observing state variables, ensuring that the system reaches the new steady state or they are informed by the load. 4. During the transient, at least one subsystem, either the main converter or the AEP, should be in closed-loop. Implementing a closed loop system, preferably the AEP subsystem, due its higher bandwidth, increases the robustness under system tolerances and circuit parasitic. In addition, the AEP can operate with any type of load. The solutions that operate in open loop usually perform minimum time charge balance control, thus reducing the transient length and minimizing the impact on the losses, however they are very sensitive to tolerances and parasitics. 5. The AEP should inject current at the output in a controlled manner, thus reducing the risk of high and potentially damaging currents and increasing robustness on the input voltage deviation. This issue is mainly related to the systems where AEP is implemented as auxiliary converter. The auxiliary converter is designed for small power and, as such, the MOSFETs are rated for small power/currents. If the current is not controlled, due to the some unpredicted spike in input voltage caused by some other part of the system (e.g. different converter), it may lead to a current spike in auxiliary current which will cause the perturbation of the output voltage and even failure of the switching components of auxiliary converter. In the case when the current is controlled, using peak CMC or Hysteretic Window CMC, the auxiliary converter has inherent feed-forwarding of the input voltage in current control and the current is defined and limited. Furthermore, if the solution employs charge balance control, the system may perform poorly if the input voltage has different value than the nominal, causing that AEP injects/extracts more/less charge than needed. 6. Scalability of the system to multiphase converters. As commented previously, in VRM applications, due to the high load currents, the main converters are implemented as multiphase to redistribute losses among the modules, lowering temperature stress of the components. To ensure the current sharing, usually a Current Mode Control (CMC) is employed. The SoA solutions that are implemented with VMC are limited to a single stage implementation. This thesis proposes a novel control method of the energy flow through the AEP and the main converter system. The proposed concept relays on a controlled injection of the auxiliary current at the output node where the instantaneous current value is n-1 times bigger than the output capacitor current with appropriate directions. Doing so, the AEP creates an equivalent n times bigger virtual capacitor at the output, thus reducing the output impedance. Due to the fact that the proposed concept reduces the output impedance using the AEP, it has been named the Output Impedance Correction Circuit (OICC) concept. The concept is developed for a multiphase CMC synchronous buck converter (including a single phase implementation), operating with a constant output voltage and with AVP feature. Further, it is extended to a single phase VMC synchronous buck converter. During the operation, the main converter voltage loop and the OICC subsystem capacitor current loop is constantly closed, increasing the robustness under system tolerances and circuit parasitic and allowing the system to operate with any load-current shape or pattern. According to the proposed control method, the system operates in two states: during the steady-state the system is in the Idle state and the OICC subsystem is deactivated, while during the load-step transient the system is in the Active state and the OICC subsystem is activated in order to reduce the output impedance. The state changes are performed autonomously: the system enters in the Active state by observing the output capacitor current and it returns back to the Idle state when the steady-state operation is detected by observing the state variables. The validation of the OICC concept has been done by applying it to a 30W two phase synchronous buck converter with 140μF output capacitor and with the multiplication factor n equal to 15, generating during the Active state equivalent output capacitor of 2.1mF. The OICC subsystem is implemented as single phase PCMC synchronous buck converter. Comparing the converter operation with and without the OICC the results demonstrate that the 12 times reduction of the output voltage deviation is achieved, for both basic operation and for the AVP operation. Furthermore, the results have been compared to a reference prototype which has the same power stage and a fiscal output capacitor of 2.1mF. The results show that the two systems have the same dynamic behavior. Moreover, an impact on the system losses under the pulsating load and DVS operation has been quantified and it has been demonstrated that the OICC system has improved the system efficiency, considering the losses when the system operates with the pulsating load and the DVS operation. Lastly, the output capacitor of the OICC system is much smaller than the reference design output capacitor, therefore, by applying the OICC concept the power density can be increased. In summary, the main contributions of the thesis are: • The proposed Output Impedance Correction Circuit (OICC) concept, • The system level control based on the used approach to change the states of operation, • The OICC subsystem closed-loop implementation, together with the main converter implementation, • The dynamic losses under the pulsating load and the DVS operation quantification, and • The system robustness on the capacitor impedance variation and consecutive load-steps.

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In recent decades, full electric and hybrid electric vehicles have emerged as an alternative to conventional cars due to a range of factors, including environmental and economic aspects. These vehicles are the result of considerable efforts to seek ways of reducing the use of fossil fuel for vehicle propulsion. Sophisticated technologies such as hybrid and electric powertrains require careful study and optimization. Mathematical models play a key role at this point. Currently, many advanced mathematical analysis tools, as well as computer applications have been built for vehicle simulation purposes. Given the great interest of hybrid and electric powertrains, along with the increasing importance of reliable computer-based models, the author decided to integrate both aspects in the research purpose of this work. Furthermore, this is one of the first final degree projects held at the ETSII (Higher Technical School of Industrial Engineers) that covers the study of hybrid and electric propulsion systems. The present project is based on MBS3D 2.0, a specialized software for the dynamic simulation of multibody systems developed at the UPM Institute of Automobile Research (INSIA). Automobiles are a clear example of complex multibody systems, which are present in nearly every field of engineering. The work presented here benefits from the availability of MBS3D software. This program has proven to be a very efficient tool, with a highly developed underlying mathematical formulation. On this basis, the focus of this project is the extension of MBS3D features in order to be able to perform dynamic simulations of hybrid and electric vehicle models. This requires the joint simulation of the mechanical model of the vehicle, together with the model of the hybrid or electric powertrain. These sub-models belong to completely different physical domains. In fact the powertrain consists of energy storage systems, electrical machines and power electronics, connected to purely mechanical components (wheels, suspension, transmission, clutch…). The challenge today is to create a global vehicle model that is valid for computer simulation. Therefore, the main goal of this project is to apply co-simulation methodologies to a comprehensive model of an electric vehicle, where sub-models from different areas of engineering are coupled. The created electric vehicle (EV) model consists of a separately excited DC electric motor, a Li-ion battery pack, a DC/DC chopper converter and a multibody vehicle model. Co-simulation techniques allow car designers to simulate complex vehicle architectures and behaviors, which are usually difficult to implement in a real environment due to safety and/or economic reasons. In addition, multi-domain computational models help to detect the effects of different driving patterns and parameters and improve the models in a fast and effective way. Automotive designers can greatly benefit from a multidisciplinary approach of new hybrid and electric vehicles. In this case, the global electric vehicle model includes an electrical subsystem and a mechanical subsystem. The electrical subsystem consists of three basic components: electric motor, battery pack and power converter. A modular representation is used for building the dynamic model of the vehicle drivetrain. This means that every component of the drivetrain (submodule) is modeled separately and has its own general dynamic model, with clearly defined inputs and outputs. Then, all the particular submodules are assembled according to the drivetrain configuration and, in this way, the power flow across the components is completely determined. Dynamic models of electrical components are often based on equivalent circuits, where Kirchhoff’s voltage and current laws are applied to draw the algebraic and differential equations. Here, Randles circuit is used for dynamic modeling of the battery and the electric motor is modeled through the analysis of the equivalent circuit of a separately excited DC motor, where the power converter is included. The mechanical subsystem is defined by MBS3D equations. These equations consider the position, velocity and acceleration of all the bodies comprising the vehicle multibody system. MBS3D 2.0 is entirely written in MATLAB and the structure of the program has been thoroughly studied and understood by the author. MBS3D software is adapted according to the requirements of the applied co-simulation method. Some of the core functions are modified, such as integrator and graphics, and several auxiliary functions are added in order to compute the mathematical model of the electrical components. By coupling and co-simulating both subsystems, it is possible to evaluate the dynamic interaction among all the components of the drivetrain. ‘Tight-coupling’ method is used to cosimulate the sub-models. This approach integrates all subsystems simultaneously and the results of the integration are exchanged by function-call. This means that the integration is done jointly for the mechanical and the electrical subsystem, under a single integrator and then, the speed of integration is determined by the slower subsystem. Simulations are then used to show the performance of the developed EV model. However, this project focuses more on the validation of the computational and mathematical tool for electric and hybrid vehicle simulation. For this purpose, a detailed study and comparison of different integrators within the MATLAB environment is done. Consequently, the main efforts are directed towards the implementation of co-simulation techniques in MBS3D software. In this regard, it is not intended to create an extremely precise EV model in terms of real vehicle performance, although an acceptable level of accuracy is achieved. The gap between the EV model and the real system is filled, in a way, by introducing the gas and brake pedals input, which reflects the actual driver behavior. This input is included directly in the differential equations of the model, and determines the amount of current provided to the electric motor. For a separately excited DC motor, the rotor current is proportional to the traction torque delivered to the car wheels. Therefore, as it occurs in the case of real vehicle models, the propulsion torque in the mathematical model is controlled through acceleration and brake pedal commands. The designed transmission system also includes a reduction gear that adapts the torque coming for the motor drive and transfers it. The main contribution of this project is, therefore, the implementation of a new calculation path for the wheel torques, based on performance characteristics and outputs of the electric powertrain model. Originally, the wheel traction and braking torques were input to MBS3D through a vector directly computed by the user in a MATLAB script. Now, they are calculated as a function of the motor current which, in turn, depends on the current provided by the battery pack across the DC/DC chopper converter. The motor and battery currents and voltages are the solutions of the electrical ODE (Ordinary Differential Equation) system coupled to the multibody system. Simultaneously, the outputs of MBS3D model are the position, velocity and acceleration of the vehicle at all times. The motor shaft speed is computed from the output vehicle speed considering the wheel radius, the gear reduction ratio and the transmission efficiency. This motor shaft speed, somehow available from MBS3D model, is then introduced in the differential equations corresponding to the electrical subsystem. In this way, MBS3D and the electrical powertrain model are interconnected and both subsystems exchange values resulting as expected with tight-coupling approach.When programming mathematical models of complex systems, code optimization is a key step in the process. A way to improve the overall performance of the integration, making use of C/C++ as an alternative programming language, is described and implemented. Although this entails a higher computational burden, it leads to important advantages regarding cosimulation speed and stability. In order to do this, it is necessary to integrate MATLAB with another integrated development environment (IDE), where C/C++ code can be generated and executed. In this project, C/C++ files are programmed in Microsoft Visual Studio and the interface between both IDEs is created by building C/C++ MEX file functions. These programs contain functions or subroutines that can be dynamically linked and executed from MATLAB. This process achieves reductions in simulation time up to two orders of magnitude. The tests performed with different integrators, also reveal the stiff character of the differential equations corresponding to the electrical subsystem, and allow the improvement of the cosimulation process. When varying the parameters of the integration and/or the initial conditions of the problem, the solutions of the system of equations show better dynamic response and stability, depending on the integrator used. Several integrators, with variable and non-variable step-size, and for stiff and non-stiff problems are applied to the coupled ODE system. Then, the results are analyzed, compared and discussed. From all the above, the project can be divided into four main parts: 1. Creation of the equation-based electric vehicle model; 2. Programming, simulation and adjustment of the electric vehicle model; 3. Application of co-simulation methodologies to MBS3D and the electric powertrain subsystem; and 4. Code optimization and study of different integrators. Additionally, in order to deeply understand the context of the project, the first chapters include an introduction to basic vehicle dynamics, current classification of hybrid and electric vehicles and an explanation of the involved technologies such as brake energy regeneration, electric and non-electric propulsion systems for EVs and HEVs (hybrid electric vehicles) and their control strategies. Later, the problem of dynamic modeling of hybrid and electric vehicles is discussed. The integrated development environment and the simulation tool are also briefly described. The core chapters include an explanation of the major co-simulation methodologies and how they have been programmed and applied to the electric powertrain model together with the multibody system dynamic model. Finally, the last chapters summarize the main results and conclusions of the project and propose further research topics. In conclusion, co-simulation methodologies are applicable within the integrated development environments MATLAB and Visual Studio, and the simulation tool MBS3D 2.0, where equation-based models of multidisciplinary subsystems, consisting of mechanical and electrical components, are coupled and integrated in a very efficient way.

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El propósito de esta tesis es presentar una metodología para realizar análisis de la dinámica en pequeña señal y el comportamiento de sistemas de alimentación distribuidos de corriente continua (CC), formados por módulos comerciales. Para ello se hace uso de un método sencillo que indica los márgenes de estabilidad menos conservadores posibles mediante un solo número. Este índice es calculado en cada una de las interfaces que componen el sistema y puede usarse para obtener un índice global que indica la estabilidad del sistema global. De esta manera se posibilita la comparación de sistemas de alimentación distribuidos en términos de robustez. La interconexión de convertidores CC-CC entre ellos y con los filtros EMI necesarios puede originar interacciones no deseadas que dan lugar a la degradación del comportamiento de los convertidores, haciendo el sistema más propenso a inestabilidades. Esta diferencia en el comportamiento se debe a interacciones entre las impedancias de los diversos elementos del sistema. En la mayoría de los casos, los sistemas de alimentación distribuida están formados por módulos comerciales cuya estructura interna es desconocida. Por ello los análisis presentados en esta tesis se basan en medidas de la respuesta en frecuencia del convertidor que pueden realizarse desde los terminales de entrada y salida del mismo. Utilizando las medidas de las impedancias de entrada y salida de los elementos del sistema, se puede construir una función de sensibilidad que proporciona los márgenes de estabilidad de las diferentes interfaces. En esta tesis se utiliza el concepto del valor máximo de la función de sensibilidad (MPC por sus siglas en inglés) para indicar los márgenes de estabilidad como un único número. Una vez que la estabilidad de todas las interfaces del sistema se han evaluado individualmente, los índices obtenidos pueden combinarse para obtener un único número con el que comparar la estabilidad de diferentes sistemas. Igualmente se han analizado las posibles interacciones en la entrada y la salida de los convertidores CC-CC, obteniéndose expresiones analíticas con las que describir en detalle los acoplamientos generados en el sistema. Los estudios analíticos realizados se han validado experimentalmente a lo largo de la tesis. El análisis presentado en esta tesis se culmina con la obtención de un índice que condensa los márgenes de estabilidad menos conservativos. También se demuestra que la robustez del sistema está asegurada si las impedancias utilizadas en la función de sensibilidad se obtienen justamente en la entrada o la salida del subsistema que está siendo analizado. Por otra parte, la tesis presenta un conjunto de parámetros internos asimilados a impedancias, junto con sus expresiones analíticas, que permiten una explicación detallada de las interacciones en el sistema. Dichas expresiones analíticas pueden obtenerse bien mediante las funciones de transferencia analíticas si se conoce la estructura interna, o utilizando medidas en frecuencia o identificación de las mismas a través de la respuesta temporal del convertidor. De acuerdo a las metodologías presentadas en esta tesis se puede predecir la estabilidad y el comportamiento de sistemas compuestos básicamente por convertidores CC-CC y filtros, cuya estructura interna es desconocida. La predicción se basa en un índice que condensa la información de los márgenes de estabilidad y que permite la obtención de un indicador de la estabilidad global de todo el sistema, permitiendo la comparación de la estabilidad de diferentes arquitecturas de sistemas de alimentación distribuidos. ABSTRACT The purpose of this thesis is to present dynamic small-signal stability and performance analysis methodology for dc-distributed systems consisting of commercial power modules. Furthermore, the objective is to introduce simple method to state the least conservative margins for robust stability as a single number. In addition, an index characterizing the overall system stability is obtained, based on which different dc-distributed systems can be compared in terms of robustness. The interconnected systems are prone to impedance-based interactions which might lead to transient-performance degradation or even instability. These systems typically are constructed using commercial converters with unknown internal structure. Therefore, the analysis presented throughout this thesis is based on frequency responses measurable from the input and output terminals. The stability margins are stated utilizing a concept of maximum peak criteria, derived from the behavior of impedance-based sensitivity function that provides a single number to state robust stability. Using this concept, the stability information at every system interface is combined to a meaningful number to state the average robustness of the system. In addition, theoretical formulas are extracted to assess source and load side interactions in order to describe detailed couplings within the system. The presented theoretical analysis methodologies are experimentally validated throughout the thesis. In this thesis, according to the presented analysis, the least conservative stability margins are provided as a single number guaranteeing robustness. It is also shown that within the interconnected system the robust stability is ensured only if the impedance-based minor-loop gain is determined at the very input or output of each subsystem. Moreover, a complete set of impedance-type internal parameters as well as the formulas according to which the interaction sensitivity can be fully explained and analyzed, is provided. The given formulation can be utilized equally either based on measured frequency responses, time-domain identified internal parameters or extracted analytic transfer functions. Based on the analysis methodologies presented in this thesis, the stability and performance of interconnected systems consisting of converters with unknown internal structure, can be predicted. Moreover, the provided concept to assess the least conservative stability margins enables to obtain an index to state the overall robust stability of distributed power architecture and thus to compare different systems in terms of stability.

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Existe en el panorama edificado un patrimonio construido que se reconoce como Centro Comercial. Un conjunto entendido, en sentido genérico, como familia arquitectónica que tiene características propias y específicas que la identifican. El objeto de la presente tesis doctoral consiste en argumentar que este conjunto constituye un nuevo tipo en el panorama de las tipologías arquitectónicas. Un tipo con entidad propia, que se conecta a una forma diferente de entender la idea de modelo. Un concepto que va más allá de la consideración tradicional del término. Modelo virtual. Este tipo, que surge de una estructura teórica que hemos denominado teoría tipológica, se constituye en una herramienta más para el estudio y el desarrollo proyectual de los espacios arquitectónicos, tanto del propio Centro Comercial como del conjunto de la disciplina arquitectónica, como referencia legítima. El presente trabajo de tesis se inicia con un bloque introductorio denominado Método. Definimos en él una metodología que hemos llamado emocional. Trata de la oportunidad de la tesis. Del porqué de un título que recoge la palabra ignorada. Del interés que suscita el asunto en el contexto del momento presente. Oportunidad e interés en base a una vida profesional dedicada al mundo del Centro Comercial y a la importancia del patrimonio elegido como objeto de estudio. También ha sido un aliciente detectar como las planificaciones del territorio y de los ámbitos de las relaciones colectivas no han sido capaces de integrar un resultado satisfactorio. Quizás por no considerar la complejidad de sus muchas facetas. En consecuencia, el texto busca la esencia del Centro Comercial como soporte para la crítica de su impacto en los nuevos escenarios de relación que la sociedad y el entorno físico imponen. Ámbitos donde los mecanismos históricos del asociacionismo tradicional han dado paso a otros, como el Centro Comercial, de exaltación del individualismo, pero demandados por una sociedad que se identifica con ellos. Espacios que, con Galbraith, existen por de la perversidad intrínseca del binomio consumo-producción que inducen la perplejidad. Ésta pasa a formar parte de la esencia del nuevo espacio comercial, como quedó de manifiesto en el Congreso de Minnesota de 1997, sobre el Centro Comercial. Una sociedad que ha girado hacia el logro material en términos de culto, ocasionando creciente valor significante del consumo. Razón última de la humanidad al decir de Rem Koolhaas. Culto que desemboca en la urgencia de alcanzar niveles de estatus y de identificación con el grupo. Dos parámetros que marcan la relación con el otro. Relación de comparación que excita la necesidad de posesión de objetos que llevaban a recrear en el consumidor la ilusión de ser especiales, de no pasar desapercibidos. El producto de consumo, el objeto, se eleva a la consideración de valor social. En el Centro Comercial se venden valores. Marketing de valores. El deseo del individuo, no la necesidad, queda involucrado en el proceso. La oportunidad y el interés de este estudio surgen además para aclarar el significado de un espacio que sirve al consumidor y a su entorno. Un significado que alcanza sentido, entre otros, por la aparición de un nuevo contexto tras la Segunda Guerra Mundial. Suburbanización, automóvil, nivel de vida, un nuevo papel de la mujer. La Era del Consumo. Una era que genera la paradoja de un individuo con autodeterminación y autosuficiencia crecientes, en un mundo cada vez más condicionado y controlado por dinámicas de ofertas mediatizadas e ilimitadas. La arquitectura en este contexto ha de juzgarse por su relación con un hombre contemporáneo que camina hacia una progresiva excepcionalidad. Cerramos la presentación justificando el término ignorada que aparece en el Título de la Tesis. Subrayamos la escasa existencia de estudios estructurados que relacionen Centro Comercial y arquitectura. Realidad que se constata partiendo del libro de Pevsner, Historia de las Tipologías Arquitectónicas, de 1976. Analizamos también la aceptación que el Centro Comercial, valorado en algunos ámbitos como arquitectura populista. Primer Capítulo, los antecedentes. Se propone un recorrido histórico por la arquitectura comercial de todos los tiempos. El Documento busca concretar las características de la arquitectura comercial a lo largo de la historia para determinar relaciones entre ella y el Centro Comercial. Estas correspondencias van a permitir contestar la pregunta retórica que nos hacemos al inicio del Capítulo: ¿Es la arquitectura del Centro Comercial una arquitectura subsidiaria, o tiene personalidad propia independiente de la del mundo comercial? Con Zevi40, queremos dejar constancia que la relación arquitectura-historia es imprescindible en la tarea proyectual. Un análisis novedoso solo es posible desde la búsqueda de unas raíces auténticas. Así mismo, con Guy de Maupassant, estamos convencidos que “La arquitectura, a través de los siglos, ha tenido el privilegio de dar un símbolo a cada una de las épocas, de resumir con un pequeñísimo número de monumentos típicos, el modo de pensar, de soñar de una raza y de una civilización”. Este recorrido se inicia interpretando la arquitectura comercial minoica. Llegaremos, paso a paso, hasta el siglo XX, los grandes itinerarios comerciales y el Centro Comercial. Se descubren una serie de invariantes que permiten comparar y extraer conclusiones. Resulta novedoso constatar que el Centro Comercial nace para dar respuesta al hombre contemporáneo en su afán consumista. También lo es la rápida implantación y evolución del Centro Comercial en un corto periodo de sesenta años frente al ritmo sosegado de otras soluciones comerciales. Novedad es ver como el comercio y sus arquitecturas nacen abiertos, bajo tenderetes y el Centro Comercial se presenta cerrado. Así mismo, las referencias sacras constituyen un elemento de novedad para la reflexión, en un contexto materialista. Y tantas otras. En Minos, la óptica comercial ofrece otra visión de su legendaria cultura. ¿Palacio o plataforma logística?, gestión centralizada del intercambio, ¿vida pública y vida privada? Así, hasta llegar al siglo XIX. Sus las galerías y sus pasajes acristalados concebidos en primera instancia como medida de recomposición urbana. Espacio entendido desde lo público-privado, desde lo interior-exterior, desde el dentro-afuera, desde lo cerrado-abierto. Con los nuevos mercados de abastos, representan una revolución en el ámbito de la funcionalidad, de la máquina, de la gestión moderna y de las relaciones del ciudadano con la ciudad apoyado en base al intercambio de bienes de consumo. El Centro Comercial es heredero de esta transformación. El Gran Almacén, por otra parte, es el reflejo de otra gran revolución. La que va ligada a la producción y comercialización en masa, las comunicaciones, el precio fijo y el aumento del nivel de vida. El Centro Comercial reinterpreta estas situaciones insertándolas en un nuevo modelo de gestión. En el siglo XX, maestro en técnicas de venta, aparece el hipermercado. El Híper, con su carga de pedagogía, se incorpora al esquema orgánico del Centro Comercial. La tienda en si misma constituye la pieza base de dicho puzle orgánico. Es en esta época cuando la tienda empieza su despegue autónomo como arquitectura, aportando su experiencia. Tras ello, llegamos a las grandes rutas comerciales, que proponemos como metáfora del shopping. Cerramos el capítulo concluyendo con Eugenio Ferrer que “si establecemos una relación entre el espacio y el capitalismo, entonces podemos inferir que los espacios del consumo de masas (ECM) son configuraciones nuevas respecto al pasado (...), pero el sistema que lo introduce no lo es del todo”. Segundo Capítulo. Búsqueda de claves que permitan el reconocimiento del Centro Comercial. Llegados a este punto y con la perspectiva del tiempo cabe preguntarnos, ¿qué entendemos pues por Centro Comercial? ¿Cómo lo percibimos? Abordamos ahora el problema de la percepción del Centro Comercial y su significado. Además de constituirse en símbolo, referencia siempre presente, la eficacia del Shopping es una de las principales causas de su poder de atracción. El Centro Comercial resulta de la síntesis de la revolución del consumo y de la revolución de la gestión. Espacio eficaz del entretenimiento como destino. El usuario resuelve su vida cotidiana dentro de un hábitat que considera propio y que se entiende como el lugar hiperbólico de la transacción comercial. Espacio de la abundancia para el disfrute. Una arquitectura involucrada en esta eficacia. Su sentido del lugar no es otro que el Shopping, que se desenvuelve de forma análoga en todas partes. El hogar del consumidor. Las nuevas catedrales. Las catedrales del consumo. Destino místico. Lugar de peregrinación para el consumidor fervoroso. Espacio sagrado que integra al usuario en la cultura dominante. Cultura del consumo. Templos, donde el tiempo ha perdido su sentido. Paraíso. Un espacio donde la altura, la luz natural, la dimensión general refuerzan el carácter sacro de un espacio para una nueva religión laica. Un espacio seguro, protegido que nos acerca a ideas como la de útero materno, con su carga de calidez y de significación erótica aplicado al encuentro compra-comprador y, ligado a ello, la literatura especializada habla del Centro Comercial como nave espacial hiperesterilizada o de agujero negro que absorbe la energía cultural. Más allá, la simulación, donde se percibe un simulacro de ciudad. Simulacro coherente con todo lo que el Shopping desencadena a su alrededor. El lugar de los sueños, de la fantasía. Aquí los productos se han metamorfoseado en fetiches, en significados. Televisión tridimensional, donde el usuario actúa guiado por una pulsión similar al zapping. Espacio lúdico de la fascinación por comprar o de imaginar que se compra. Espacio de simulaciones que llevan a la ensoñación. Un nuevo lugar que sustituye al espacio cotidiano, con el señuelo de la protección, en un contexto imaginariamente público. Espacio de la hiperrealidad donde no se distingue la realidad de la fantasía, donde tras episodios de confusión y desconcierto, se borran las fronteras con lo imaginario. Espacio mágico, escenario del gran espectáculo del consumo, controlado milimétricamente, al modo de la visita a un gran monumento, que ha de sobrevivir a los tiempos para dar testimonio de nuestro momento. Un icono, un símbolo que transmite un mensaje, que solo el consumidor es capaz de interpretar. Una agitada mezcla, sin precedentes, de percepciones que hablan de perplejidad y asombro ante el fenómeno del Centro Comercial, su espacio y las reacciones del hombre contemporáneo. ¿Cuáles serían las claves que nos permitirían reconocer la calidad esencial de un Centro Comercial, en esta concurrencia de perplejidades? Primero, la función de servicio. Un espacio donde ocurren muchas más cosas que lo obvio, que la compra. Un edificio que se involucra con el entorno de la mano de lo inesperado, la sorpresa y las expectativas. Esta vocación de servicio conecta Centro Comercial y naturaleza arquitectónica. Función que sugiere percepciones ligadas a la experiencia de compra. Organismo que vive y late al unísono con su visitante, colocándose al servicio de sus necesidades, de su afán de consumo, del que vive. Segundo, la comunidad servida. El Centro comercial sirve a una sociedad concreta. La sociedad consumista. Una nueva sociedad que se identifica con el edificio desarrollando un sentido de comunidad al nivel de sus deseos. Esta comunidad que se configura a su alrededor, constituye el activo más poderoso para el éxito de su realidad cotidiana y de su futuro. Tercero, un compromiso de carácter holístico. La economía de la experiencia aplicada al afán consumista de una sociedad identificada con su Centro, da lugar a una experiencia holística planificada. Diseño emocional. Colaboración para el éxito de un conjunto de establecimientos comerciales que participan en la aventura espacio-comercial del Centro Comercial. Ellos son los inductores primarios del consumo. Pero esta colaboración tiene su culminación en la amplificación del mensaje, como un inmenso altavoz, que proviene de la unidad configurada por todos ellos. El reflejo de esta amplificación de mensajes, desde la poderosa unidad constituida, es el aumento de la rentabilidad, fin último de la operación. Cuarto, la forma a través de una identificación de carácter gestáltico. Desde la lectura gestáltica que hacemos de la unidad holística, se advierte una poderosa capacidad de comunicación del sistema con su contexto. Centro y entorno se tornan entonces cómplices que complementan sus realidades. El Centro Comercial, arquitectura estructurada como sistema se percibe –ha de percibirse- como forma unitaria que procede de una mirada de raíz gestáltica que continuamente la recompone desde una óptica espacial y física, ligada a la experiencia individual. Esta unidad formal, más allá de la forma real, se constituye en esencia de de su arquitectura. Quinto, el Centro Comercial como sistema. Un sistema soportado por la Teoría General de Sistemas. La consideración del Centro Comercial como sistema es consecuencia de su estructura holística. El todo no se comporta como la suma de las partes y estas no lo hacen como lo harían en solitario. De aquí surge la necesidad de diálogo permanente entre la comercialización –proceso de incorporación de partes- y su traducción al mundo del diseño –proceso de articular arquitectónicamente las partes. Como sistema así configurado, el Centro Comercial se inserta en el paradigma contemporáneo, lo que genera realidades duales que no son excluyentes y reacciones de perplejidad e incertidumbre que el sistema corrige con su capacidad de autorregulación. Aparece también el espectador cuántico, el visitante, el consumidor, que interactúa con el sistema. Desde las herramientas que nos aporta la idea de sistema complejo, afrontamos el Mix Comercial -en definitiva la eficaz localización de las piezas en orden a sus relaciones y al organismo resultante- y su incidencia en la arquitectura que estamos concibiendo. Una arquitectura impredecible por lo mutable, que se erige en reto de la operación y del diseñador. Diseño que, de la mano del concepto de sistema se convierte en herramienta a mayor gloria de la operación global. El debate del estilismo no será más que el resultado del análisis en busca del éxito de esta operación. Sexto, una arquitectura de la negociación. Negociación como mecanismo proyectual y como resultado. La solución de proyecto nunca resulta evidente en el Centro Comercial como consecuencia de lo imprevisible del propio proceso de configuración. Su concreción solo puede ser fruto del compromiso de todos los agentes por conseguir el objetivo de la operación. Esto se consigue desde el equilibrio de intereses. Comerciales y de diseño. Un compromiso con la negociación y una negociación íntimamente ligada a la coordinación. Séptimo, el espacio y el tiempo. El debate espacio-tiempo condiciona y estructura la percepción del Centro Comercial. Introducimos conceptos como cronotopo –el instante y el lugar donde ocurre algo- y paradoja –incoherencia de la relación causa efecto- que sitúan el vínculo entre el tiempo y el espacio del Centro Comercial en un contexto de Shopping. En el discurrir paralelo del tiempo histórico –el tiempo de fuera- y del tiempo interior, el de dentro del Centro Comercial –tiempo presente o intemporalidad-, se produce el triunfo social del Centro Comercial que se traduce en haber sabido resolver en el espacio y en el tiempo las paradojas postmodernas del hombre contemporáneo. Octavo, de lo global. Globalidad que no es ajena a lo local. Una arquitectura que insertada en la dinámica de una economía de ámbito mundial, refleja las contradicciones que ella impone, fundamentalmente en los procesos de inclusión y exclusión, afectando de manera decisiva al debate de lo local, que el Centro Comercial debe incorporar como herramienta ineludible de reconocimiento. Terminamos el capítulo segundo manifestando como estas ocho claves, asumidas en su conjunto, confirman que el Centro Comercial puede aparecer como un todo conceptual cohesionado, pasando a formar parte de una familia arquitectónica coherente, cuya estructura funcional somos capaces de establecer. El Capítulo Tercero presenta con detalle la figura del arquitecto Víctor Gruen, creador reconocido del moderno Centro Comercial. Presentamos su trayectoria profesional observando como las diferentes claves analizadas en capítulos anteriores van apareciendo de manera natural a lo largo de ella "Victor Gruen may well have been the most influential architect of the twentieth century." Malcolm Gladwell. The Terrazo Jungle. Fifty Years Ago, The Mall Was Born. America Never Would Be The Same. 2004. In The New Yorker. Hombre complejo, conflictivo. Las paradojas a lo largo de su carrera fueron notables. Sin embargo siempre apareció como un hombre recto. Garret Eckbo, reconocido paisajista y colaborador de Gruen en el Centro Comercial peatonal del Centro urbano de Fresno, California, se asombraba de que alguien como Gruen hubiese sido capaz de combinar cortesía y humanidad en la carrera de ratas (sic) en la que se convirtió el universo de la comercialización americana y mantener la integridad542. Philip Johnson, en 1962, ponderando las muchas habilidades de Gruen manifestó que no estaba seguro si alguno de ellos, arquitectos artistas, hubiera sido capaz de hacer lo que Gruen hizo. A más, sobre Gruen, manifestó lo siguiente: "... El va más allá de la creación de un bello edificio. En jugar con la gente y sugerir lo que tienen que hacer, es un maestro. Y obtiene buenos resultados como hace la escultura. El suyo es un arte cívico, un sentido cívico.... Él es capaz de sentarse y poner cosas juntas. No es pomposo ni vano. Yo no me reuniría con él para hablar del diseño (de edificios). Víctor siente que cuando se habla de diseño se está ignorando todo el contexto... Su arquitectura es poderosamente limpia, no vuela la fantasía. Pero cuando te haces con su complejidad, ves que has descubierto algo más allá del diseño.... No puedes decir que haya alguien como él. La arquitectura tiene la suerte de tenerle como arquitecto..." Philip Johnson. Article in Fortune Review. 1962. El Documento de tesis cierra la visión de Gruen realizando un recorrido por los diferentes capítulos de su libro esencial, Shopping Towns Usa: The Planning of Shopping Centers. Solo su índice resulta un monumento al proceso de gestación del Centro Comercial. El libro, aquí simplemente mostrado en su estructura básica como un silencioso testigo, es la referencia canónica los Centros Comerciales contemporáneos, desde su aparición. . El Cuarto Capítulo del Documento de tesis es una recapitulación del trabajo anterior, en el que se sintetizan los conceptos de función y estilo relacionados con el Centro Comercial, se define en qué consiste cada uno de ellos y como, a partir de ahí, podemos afirmar que nos encontramos ante un tipo arquitectónico nuevo en el panorama de la disciplina arquitectónica. Terminamos el Capítulo integrando el Centro Comercial con un cuerpo teórico de referencias que se remiten a un tipo arquitectónico concreto y particular, acogiendo su singularidad como fenómeno arquitectónico autónomo. Como Conclusión de la tesis, resultado de todo lo anterior es decir, como consecuencia de la integración de un torrente de percepciones e intuiciones en un cuerpo teórico de referencias, deducidas de la existencia de unas claves que estructuran y penetran la esencia del singular modelo estudiado, haciéndolo detectable y seductor, resultan las características de un tipo arquitectónico con entidad propia que ordena, orienta y supedita la realidad y la existencia de esta nueva arquitectura. Una arquitectura nunca antes definida como tal, en el panorama tipológico de la disciplina. Teoría tipológica para una nueva arquitectura, que hemos ido proponiendo a lo largo del trabajo y que es coherente con los diferentes parámetros que se han analizado. Un conjunto edificado que, desde el estudio de sus claves esenciales y de sus invariantes perceptibles, aparece ahora más cercano, más familiar. Tanto que es posible destilar desde este conocimiento cercano e íntimo, una síntesis útil como referencia proyectual y como referencia para las grandes cuestiones que preocupan al discurrir del debate arquitectónico y sus ideas. El debate de la disciplina. El objeto de esta tesis, que consistía en establecer que el conjunto edificado que conocemos como Centro Comercial se constituye en un nuevo tipo en el panorama de las tipologías arquitectónicas, entendido el Centro Comercial en sentido genérico como familia arquitectónica con características propias y específicas que la hacen autónoma y reconocible, queda a nuestro juicio argumentado y justificado. ABSTRACT Within the frame of the built heritage there is a construction that is recognized as Shopping Center. An ensemble understood as an architectural family with its own specific recognizable characteristics. This thesis aims to explain that this building complex constitutes a new type in the panorama of architectural typology. This typology, with its singular identity, is connected to a way of understanding the idea of the model beyond an orthodox conception of the term understood as virtual model. This typology comes from a theoretical structure that we called typological theory, and it serves as yet another tool to reference the study and development design of the architectural spaces. In this first section, the Method, we emotionally explore the opportunities of this thesis. Why this typology has been ignored and the interest this work has in the present moment. An opportunity and an interest explained from an experience of a life dedicated to the world of Shopping Centers. The text then introduces the need for a rigorous knowledge of the Shopping Center’s essence in order to understand its impact in the frame of a new society and a new physical environment. A frame time where the historical mechanisms of association of civic community have given way to other gathering spaces like the Shopping Center, which encourages individualism, but is demanded by a society that relates to them. Spaces that, according to Galbraith, are a result of the intrinsic perversity of the unstoppable movement of the wheel of consumption-production. A society that has turned to worship of material achievement. Worship that provokes the appearance of an increasing value of consumption, according to Koolhaas, the only goal of humanity. Worship that ends in the need to reach certain status levels in the plane of a permanent comparison where the need of possession excites the consumer and gives them the illusion of being special. The product of consumption rises up to consideration of social values, entering a dynamic of marketing values, not only objects, but the desire of the individual remains. The study appears also to clarify the meaning of a space that serves the consumer and its context. A meaning that makes sense with the appearance of the suburbanization, the massive utilization of the car, the increase of living standards and the new role of women in the society after the Second World War, giving rise to the Age of Consumption. A world now determined and controlled by media and unlimited offers, where it’s necessary to place them in the context of the ordinary. An architecture that has to be judged precisely for its relation with this specific contemporary man. This section ends justifying the term ignored that appears in the Title of the Thesis, considering it in relation with the lack of studies structured about the Shopping Center and its architecture, drawing from Pevsner's work, A history of building types, 1976. Finally, the Shopping Center is analyzed with the most critical of thoughts, which considers it as populist architecture. The First Chapter, Precedents, proposes an historical tour of the commercial architecture throughout history. The Document looks to place on record the characteristics of the commercial architecture to set the connection between them and the Mall itself. These correspondences are going to allow us to answer the rhetorical question: is it the architecture of the Shopping Center a subsidiary architecture, or does it have its own personality independent from that of the commercial world? The reason of this historical search, citing Bruno Zevi, is that it is indispensable to establish the relationship between architecture and history, understating that an analysis is only possible when researching for their roots. Moreover, according to Guy de Maupassant, we are sure that architecture has had the privilege, across the centuries, of symbolizing as it were each age(…), through the harmony of lines and the charm of ornamentation all the grace and grandeur of an epoch. This historical reading, inseparable from a consistent design action, begins interpreting the commercial architecture of the Minoan to the 20th Century. Though this analysis of the big commercial itineraries and the study of the Shopping Center itself. A reading where we have found a series of constants that make it possible to draw conclusions from this comparison. The Mall appears to give response to the needs of a consumerist society. Comparing to the calm pace of the evolution of other commercial solutions, it is relevant its fast implantation and evolution in a short period of sixty years. Though via different solutions, the commercial spaces are considered taking into account the public-private relation, the interior-exterior, the inside-out, the closed-opened. Through that, the 19th century galleries and the food markets represent a revolution in functionality, in the machine, the modern management and the relations of the citizen within the city. All of this, the Mall inheritor feels. Likewise, the Department Store is the reflection of another great revolution. Production and commercialization en-mass, communications, the fixed price and increase of the living standard. The Mall reinterprets these situations inserting them in a new model of management. Already in the 20th century Mall and mass technologies of sale, the hypermarket is enthusiastically incorporated into the configuration of this organic scheme, constituting the base of one of the models, the French, that will be highly developed in the European continent. The shop itself constitutes, on the other hand, the key piece that completes the puzzle of the Mall and is in this epoch when it starts taking off as architecture, has an autonomous character. After all this, finally, we come to the big commercial routes, which we propose as metaphor of the shopping. Citing Eugenio Ferrer we can conclude that “If we establish a relation between the space and the capitalism, then we can infer that the spaces of the consumption of masses (ECM) are new configurations with regard to the past (...), but the system that introduces it it is not completely” Now we arrive at this point and with the perspective of time it is necessary to ask us, what do we understand about the Shopping Center? How do we perceive it? The second Chapter approaches the problem of the perception of the Mall and from this it is possible to detect and to identify key drivers that orientate the architectural comprehension of the space. The efficiency of the Shopping Center is its main power of attraction. A world that has ensued from the synthesis of the revolution of consumption and management. An effective cavern-like place of entertainment where the user, the consumer, the postmodern man solves his daily life inside a considered habitat. The hyperbolic place of commercial transaction. An abundance of space, that makes us perceive it as destination of entertainment. An architecture has evolved this efficiency, where the sense of place is at one with the sense of the Shopping. The home of the consumer. The new cathedrals. The cathedral of consumption. The place of peregrination for the fervent consumer. A sacred space that integrates the user in the dominant culture. A temple, where time itself has stopped existing. In this paroxysm, an expression of the Garden of Eden or Paradise itself. A space where the height, the natural daylight and the spatial dimension reinforce the sacred character of a new lay religion. Another common perception is that of a protected area, which leads to metaphors and considerations that suggest the idea of maternal womb, with its weight of erotic meaning, referring to the encounter of the shopper making a purchase. The literature also tells us about its perception as a sterile space capsule, a black hole that absorbs all cultural energy. Likewise, a world simulation where a mock city is perceived at first instance. Consistent with all that shopping triggers inside. A city, a space conceived as a place of dreams, fantasy, where the products have been metamorphosed into fetishes. Entertaining a television, three-dimensional television, where the user acts guided by a drive similar to zapping. A play area where the latest fascination is in the act of buying. Space simulations that unite and transcend creating atmospheres that lead to reverie. A new space replacing the daily space with the lure of safe space in a public context. A hyper-reality space with reality and fantasy, where borders are erased with imaginary episodes of confusion and bewilderment, without distinction. The charm and fascination of a space that reads like magic. The magic of a space which is defined as stage extravaganza, the large theatre, the consumer surveys in the fine control mode in which you visit a national monument. The shopping center has to survive the times to be a testimony of our time. An icon, a symbol that conveys a message, the message reads ‘consumer’. In short, a Shopping Center is a mix of unprecedented insights that speak of a widespread phenomenon of bewilderment. Its space and the reactions of contemporary man unfold in it like a fish in water. What are the key aspects which allow us to recognize the essential quality of a shopping center in this concurrence of perplexities? First, we want to record a service function of space much deeper than the immediately obvious, i.e. a purchase occurs. A building that appears to be involved with the environment and its people from the hand of the unexpected circumstances; surprise and attention. And that, in turn, also involves the visitor beyond the purchase. This dedication to service closely links the mall with its architectural nature. It is not the function of a lifeless machine. It is a feature that suggests unsuspected perceptions linked to the purchase, which speaks of an organism that lives and breathes in unison with the visitor. Second, in addition to the vocation of service-oriented desire for consumption, the Mall environment serves a particular society - The consumer society. A new society which relates to building a sense of community developed to the level of their desires. This community also constitutes the most powerful asset to the success of the daily life of the Shopping Center. Third, we emphasize that the so called economy of the experience is combined with the consumer zeal of a company that is identified by the Shopping Center. It connects to form a holistic and planned experience. This experience takes shape in the entity that ensues from the premeditated association and synergy, in the sense of a collaboration for success. A set of concrete commercial and independent establishments, take part in the spatial and commercial adventure that is the Mall and they are the instigators of the consumption. This holistic behavior finds culmination in the amplification of a claim that becomes unitary, like an immense force that leads to an increased profitability to all the levels. Consummation is a reference of one human being overturned in an architecture assimilated into a legitimate, emotional design with stability. A holistic quality is born of the essence of the building - and by virtue of the Conditions of Alexander, Christopher Alexander, determines the system condition of the Shopping Center. Fourth, we propose to establish what character the Mall will form when joined with the concept of its typology. This is going to allow the architectural work to be formed. As a result of the holistic structure that we see, the Mall is perceived as a system whose parts have their own function, justifying their existence in the ecosystem. Across a gestalt there is a powerful capacity of communication between the system and its context. We visualize on the one that stands out our building, turning both, Center and environment, in accomplices of a few special relations who complement each other in his realities. This relationship within a complex and diverse environment gives the Mall a range of unique spatial perceptions, the result of disparate experiences, which because of its root origin of gestalt, are integrated into a unified and coordinated manner fully intelligible and organized. This is the final formal essence of the Shopping Center. We can conclude here that the Mall as architecture is a structured system and should be perceived as a unit both from a physical and spatial perspective as this is the essence of its architecture. Fifth, the Mall as a system. A system which is being supported by a broad theoretical corpus, the General Systems Theory, which offers sufficient methodology to descend into consideration and give an enlightened conclusion on the overall understanding of the Mall. Consideration of the Mall as a system is a result of its holistic structure. The whole does not behave like any of the parties and they do not behave the way they used to before belonging to the whole, because they inhibit many of their qualities to their advantage. It arises the need for an ongoing dialogue between marketing processes and its translation into the physical world, the design. The system generates multiple perceptions to be integrated into a body which is to be understood as unitary. As a system, the Mall is inserted into the contemporary paradigm, creating dual realities that are not exclusive and are reactions of uncertainty that the system be properly designed at all levels, faced with their ability to self-regulate. Likewise, considering the visitor, the customer, like the quantum spectator who interacts with the system permanently. Moreover, a complex system confronts us with the Commercial mix, the effective location of parts in order to relate to the body and its importance in the architecture we are conceiving. Unpredictable architecture, which stands as the challenge of the operation and the designer. Design that becomes the tool of the system to create success for the overall operation. The discussion of the styling is merely the result of analysis that also seeks the success of the system, i.e. the styling should send the right message for the environment to ensure its survival. Sixth, the idea of negotiation as an architecture project, a mechanism inherent to the status of the proposed system. The project solution is never evident at the Shopping Center because of the unpredictability of the process itself. It can only be the fruit of the commitment of all stakeholders to achieve the objective of the operation. This is achieved from the balance of interests, of commercial and design. A commitment to negotiation and a negotiation linked to coordination. The pursuit of stability is key, as instability is always present and constantly requires strategies to build the object you are configuring. Seventh, proposes space-time itself as a circumstance that determines and structures the perception of the Mall in a singular way. We introduce concepts as chronotope and paradox to help us place the relationship between time and space within the Mall in the context of shopping. A consequence of the parallel flow of historical time - the time outside - and the time inside the Mall, the big shopping center formula is precisely that of having the feeling of timelessness in the space. The social triumph of the mall is the ability to resolve in space and in time all postmodern paradoxes and, beyond that, of contemporary man, condensing into a small space and time an enormous amount of cultural symbols, often contradictory, but they attract the practice of consumerism. Eighth, global level. Globalization which doesn’t ignore the local level. Architecture that is inserted into the dynamics of a global economy, reflects the contradictions that it imposes, mainly in the processes of inclusion and exclusion. Inclusion and exclusion affect the debate of the local level, which the Mall must incorporate as an unavoidable tool of recognition. The eight fundamental principles, when applied as a whole, confirm that the built heritage, which corresponds to the general Mall idea, can be presented as a cohesive conceptual whole. This becomes part of a coherent architectural family, whose functional structures are able to be established. The Third chapter presents in a detailed way the figure of the architect Victor Gruen, recognized as the creator of the modern Mall. Studying his professional experience, it is shown how the different keys analyzed in previous chapters are appearing in a natural way. "Victor Gruen may well have been the most influential architect of the twentieth century." Malcolm Gladwell. The Terrazo Jungle. Fifty Years Ago, The Mall Was Born. America Never Would Be The Same. 2004. In The New Yorker. He was a complex, troubled man and the paradoxes along his career were notable. Nevertheless, always he appeared as a straight man. Garret Eckbo, the recognized landscape painter and collaborator of Gruen was astonished how Gruen had been capable of combining comity and humanity in this career of rates, into that the American commercialization turned, Johnson, in 1962, weighting many Gruen's skills demonstrated that he was not sure if anyone of them, architects artists, had been capable of doing what Gruen did. He goes beyond just the creation of a beautiful building. In playing on people and suggesting what they ought to do, he is a master. (…) his architecture is clean - hardly architecture, no flights of fancy. But when you get hold of its complexity, you've got something beyond the design... You can't say there's someone like him. Architecture is lucky to have him as an architect." Philip Johnson. Article in Fortune Review. 1962. The Document of the thesis closes with Gruen's vision of realizing a tour through the different chapters of his essential book, Shopping towns USA: The Planning of Shopping Centers. It’s mere index turns out to be a monument to the process of the gestation of the Mall. The book, simply acted in its basic structure as a silent witness, as the canonical reference for the contemporary Malls. The Fourth Chapter of the Document of the thesis is a recapitulation of the previous work, which synthesizes the concepts of function and style related to the Shopping Center, and clearly defines how they are defined so we can conclude that we have found an architectural new type in the panorama of the architectural discipline. Therefore, the Conclusion of the thesis integrates this development in a theoretical body of references that relate to an architectural specific and particular type, which receives the singularity of the Shopping Center as an architectural independent phenomenon as it has tried to demonstrate from the beginning of the work. To conclude, as a result of the integrative process and the development of the theoretical body of references, the essential characteristics of the order and concept of the architectural typology form the existence of a new architecture; architecture never before defined as such, in the theoretical typology of the discipline. A theoretical typology for a new architecture is proposed throughout the discussed research and forms a conclusion of the different parameters that have been analysed. As a building complex, from the study of the essential characteristics and of the perceptible constants, the typology is more clearly defined and thus, becomes a useful tool and precedent for the consideration of the discipline. The thesis then justifies how the building complex known as Shopping Center constitutes a new type of architectural typology.

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Over the last few years, the Data Center market has increased exponentially and this tendency continues today. As a direct consequence of this trend, the industry is pushing the development and implementation of different new technologies that would improve the energy consumption efficiency of data centers. An adaptive dashboard would allow the user to monitor the most important parameters of a data center in real time. For that reason, monitoring companies work with IoT big data filtering tools and cloud computing systems to handle the amounts of data obtained from the sensors placed in a data center.Analyzing the market trends in this field we can affirm that the study of predictive algorithms has become an essential area for competitive IT companies. Complex algorithms are used to forecast risk situations based on historical data and warn the user in case of danger. Considering that several different users will interact with this dashboard from IT experts or maintenance staff to accounting managers, it is vital to personalize it automatically. Following that line of though, the dashboard should only show relevant metrics to the user in different formats like overlapped maps or representative graphs among others. These maps will show all the information needed in a visual and easy-to-evaluate way. To sum up, this dashboard will allow the user to visualize and control a wide range of variables. Monitoring essential factors such as average temperature, gradients or hotspots as well as energy and power consumption and savings by rack or building would allow the client to understand how his equipment is behaving, helping him to optimize the energy consumption and efficiency of the racks. It also would help him to prevent possible damages in the equipment with predictive high-tech algorithms.

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Los procesos de diseño y construcción en Arquitectura han mostrado un desarrollo de optimización históricamente muy deficiente cuando se compara con las restantes actividades típicamente industriales. La aspiración constante a una industrialización efectiva, tanto en aras de alcanzar mayores cotas de calidad así como de ahorro de recursos, recibe hoy una oportunidad inmejorable desde el ámbito informático: el Building Information Modelling o BIM. Lo que en un inicio puede parecer meramente un determinado tipo de programa informático, en realidad supone un concepto de “proceso” que subvierte muchas rutinas hoy habituales en el desarrollo de proyectos y construcciones arquitectónicas. La inclusión y desarrollo de datos ligados al proyecto, desde su inicio hasta el fin de su ciclo de vida, conlleva la oportunidad de crear una realidad virtual dinámica y actualizable, que por añadidura posibilita su ensayo y optimización en todos sus aspectos: antes y durante su ejecución, así como vida útil. A ello se suma la oportunidad de transmitir eficientemente los datos completos de proyecto, sin apenas pérdidas o reelaboración, a la cadena de fabricación, lo que facilita el paso a una industrialización verdaderamente significativa en edificación. Ante una llamada mundial a la optimización de recursos y el interés indudable de aumentar beneficios económicos por medio de la reducción del factor de incertidumbre de los procesos, BIM supone un opción de mejora indudable, y así ha sido reconocido a través de la inminente implantación obligatoria por parte de los gobiernos (p. ej. Gran Bretaña en 2016 y España en 2018). La modificación de procesos y roles profesionales que conlleva la incorporación de BIM resulta muy significativa y marcará el ejercicio profesional de los futuros graduados en las disciplinas de Arquitectura, Ingeniería y Construcción (AEC por sus siglas en inglés). La universidad debe responder ágilmente a estas nuevas necesidades incorporando esta metodología en la enseñanza reglada y aportando una visión sinérgica que permita extraer los beneficios formativos subyacentes en el propio marco BIM. En este sentido BIM, al aglutinar el conjunto de datos sobre un único modelo virtual, ofrece un potencial singularmente interesante. La realidad tridimensional del modelo, desarrollada y actualizada continuamente, ofrece al estudiante una gestión radicalmente distinta de la representación gráfica, en la que las vistas parciales de secciones y plantas, tan complejas de asimilar en los inicios de la formación universitaria, resultan en una mera petición a posteriori, para ser extraída según necesidad del modelo virtual. El diseño se realiza siempre sobre el propio modelo único, independientemente de la vista de trabajo elegida en cada momento, permaneciendo los datos y sus relaciones constructivas siempre actualizados y plenamente coherentes. Esta descripción condensada de características de BIM preconfiguran gran parte de las beneficios formativos que ofrecen los procesos BIM, en especial, en referencia al desarrollo del diseño integrado y la gestión de la información (incluyendo TIC). Destacan a su vez las facilidades en comprensión visual de elementos arquitectónicos, sistemas técnicos, sus relaciones intrínsecas así como procesos constructivos. A ello se une el desarrollo experimental que la plataforma BIM ofrece a través de sus software colaborativos: la simulación del comportamiento estructural, energético, económico, entre otros muchos, del modelo virtual en base a los datos inherentes del proyecto. En la presente tesis se describe un estudio de conjunto para explicitar tanto las cualidades como posibles reservas en el uso de procesos BIM, en el marco de una disciplina concreta: la docencia de la Arquitectura. Para ello se ha realizado una revisión bibliográfica general sobre BIM y específica sobre docencia en Arquitectura, así como analizado las experiencias de distintos grupos de interés en el marco concreto de la enseñanza de la en Arquitectura en la Universidad Europea de Madrid. El análisis de beneficios o reservas respecto al uso de BIM se ha enfocado a través de la encuesta a estudiantes y la entrevista a profesionales AEC relacionados o no con BIM. Las conclusiones del estudio permiten sintetizar una implantación de metodología BIM que para mayor claridad y facilidad de comunicación y manejo, se ha volcado en un Marco de Implantación eminentemente gráfico. En él se orienta sobre las acciones docentes para el desarrollo de competencias concretas, valiéndose de la flexibilidad conceptual de los Planes de Estudio en el contexto del Espacio Europeo de Educación Superior (Declaración de Bolonia) para incorporar con naturalidad la nueva herramienta docente al servicio de los objetivos formativo legalmente establecidos. El enfoque global del Marco de Implementación propuesto facilita la planificación de acciones formativas con perspectiva de conjunto: combinar los formatos puntuales o vehiculares BIM, establecer sinergias transversales y armonizar recursos, de modo que la metodología pueda beneficiar tanto la asimilación de conocimientos y habilidades establecidas para el título, como el propio flujo de aprendizaje o learn flow BIM. Del mismo modo reserva, incluso visualmente, aquellas áreas de conocimiento en las que, al menos en la planificación actual, la inclusión de procesos BIM no se considera ventajosa respecto a otras metodologías, o incluso inadecuadas para los objetivos docentes establecidos. Y es esta última categorización la que caracteriza el conjunto de conclusiones de esta investigación, centrada en: 1. la incuestionable necesidad de formar en conceptos y procesos BIM desde etapas muy iniciales de la formación universitaria en Arquitectura, 2. los beneficios formativos adicionales que aporta BIM en el desarrollo de competencias muy diversas contempladas en el currículum académico y 3. la especificidad del rol profesional del arquitecto que exigirá una implantación cuidadosa y ponderada de BIM que respete las metodologías de desarrollo creativo tradicionalmente efectivas, y aporte valor en una reorientación simbiótica con el diseño paramétrico y fabricación digital que permita un diseño finalmente generativo. ABSTRACT The traditional architectural design and construction procedures have proven to be deficient where process optimization is concerned, particularly when compared to other common industrial activities. The ever‐growing strife to achieve effective industrialization, both in favor of reaching greater quality levels as well as sustainable management of resources, has a better chance today than ever through a mean out of the realm of information technology, the Building Information Modelling o BIM. What may initially seem to be merely another computer program, in reality turns out to be a “process” concept that subverts many of today’s routines in architectural design and construction. Including and working with project data from the very beginning to the end of its full life cycle allows for creating a dynamic and updatable virtual reality, enabling data testing and optimizing throughout: before and during execution, all the way to the end of its lifespan. In addition, there is an opportunity to transmit complete project data efficiently, with hardly any loss or redeveloping of the manufacture chain required, which facilitates attaining a truly significant industrialization within the construction industry. In the presence of a world‐wide call for optimizing resources, along with an undeniable interest in increasing economic benefits through reducing uncertainty factors in its processes, BIM undoubtedly offers a chance for improvement as acknowledged by its imminent and mandatory implementation on the part of governments (for example United Kingdom in 2016 and Spain in 2018). The changes involved in professional roles and procedures upon incorporating BIM are highly significant and will set the course for future graduates of Architecture, Engineering and Construction disciplines (AEC) within their professions. Higher Education must respond to such needs with swiftness by incorporating this methodology into their educational standards and providing a synergetic vision that focuses on the underlying educational benefits inherent in the BIM framework. In this respect, BIM, in gathering data set under one single virtual model, offers a uniquely interesting potential. The three‐dimensional reality of the model, under continuous development and updating, provides students with a radically different graphic environment, in which partial views of elevation, section or plan that tend characteristically to be difficult to assimilate at the beginning of their studies, become mere post hoc requests to be ordered when needed directly out the virtual model. The design is always carried out on the sole model itself, independently of the working view chosen at any particular moment, with all data and data relations within construction permanently updated and fully coherent. This condensed description of the features of BIM begin to shape an important part of the educational benefits posed by BIM processes, particularly in reference to integrated design development and information management (including ITC). At the same time, it highlights the ease with which visual understanding is achieved regarding architectural elements, technology systems, their intrinsic relationships, and construction processes. In addition to this, there is the experimental development the BIM platform grants through its collaborative software: simulation of structural, energetic, and economic behavior, among others, of the virtual model according to the data inherent to the project. This doctoral dissertation presents a broad study including a wide array of research methods and issues in order to specify both the virtues and possible reservations in the use of BIM processes within the framework of a specific discipline: teaching Architecture. To do so, a literature review on BIM has been carried out, specifically concerning teaching in the discipline of Architecture, as well as an analysis of the experience of different groups of interest delimited to Universidad Europea de Madrid. The analysis of the benefits and/or limitations of using BIM has been approached through student surveys and interviews with professionals from the AEC sector, associated or not, with BIM. Various diverse educational experiences are described and academic management for experimental implementation has been analyzed. The conclusions of this study offer a synthesis for a Framework of Implementation of BIM methodology, which in order to reach greater clarity, communication ease and user‐friendliness, have been posed in an eminently graphic manner. The proposed framework proffers guidance on teaching methods conducive to the development of specific skills, taking advantage of the conceptual flexibility of the European Higher Education Area guidelines based on competencies, which naturally facilitate for the incorporation of this new teaching tool to achieve the educational objectives established by law. The global approach of the Implementation Framework put forth in this study facilitates the planning of educational actions within a common perspective: combining exceptional or vehicular BIM formats, establishing cross‐disciplinary synergies, and sharing resources, so as to purport a methodology that contributes to the assimilation of knowledge and pre‐defined competencies within the degree program, and to the flow of learning itself. At the same time, it reserves, even visually, those areas of knowledge in which the use of BIM processes is not considered necessarily an advantage over other methodologies, or even inadequate for the learning outcomes established, at least where current planning is concerned. It is this last category which characterizes the research conclusions as a whole, centering on: 1. The unquestionable need for teaching BIM concepts and processes in Architecture very early on, in the initial stages of higher education; 2. The additional educational benefits that BIM offers in a varied array of competency development within the academic curriculum; and 3. The specific nature of the professional role of the Architect, which demands a careful and balanced implementation of BIM that respects the traditional teaching methodologies that have proven effective and creative, and adds value by a symbiotic reorientation merged with parametric design and digital manufacturing so to enable for a finally generative design.

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We have investigated the dynamic properties of the switch I region of the GTP-binding protein Ras by using mutants of Thr-35, an invariant residue necessary for the switch function. Here we show that these mutants, previously used as partial loss-of-function mutations in cell-based assays, have a reduced affinity to Ras effector proteins without Thr-35 being involved in any interaction. The structure of Ras(T35S)⋅GppNHp was determined by x-ray crystallography. Whereas the overall structure is very similar to wildtype, residues from switch I are completely invisible, indicating that the effector loop region is highly mobile. 31P-NMR data had indicated an equilibrium between two rapidly interconverting conformations, one of which (state 2) corresponds to the structure found in the complex with the effectors. 31P-NMR spectra of Ras mutants (T35S) and (T35A) in the GppNHp form show that the equilibrium is shifted such that they occur predominantly in the nonbinding conformation (state 1). On addition of Ras effectors, Ras(T35S) but not Ras(T35A) shift to positions corresponding to the binding conformation. The structural data were correlated with kinetic experiments that show two-step binding reaction of wild-type and (T35S)Ras with effectors requires the existence of a rate-limiting isomerization step, which is not observed with T35A. The results indicate that minor changes in the switch region, such as removing the side chain methyl group of Thr-35, drastically affect dynamic behavior and, in turn, interaction with effectors. The dynamics of the switch I region appear to be responsible for the conservation of this threonine residue in GTP-binding proteins.

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Alternative models of cell mechanics depict the living cell as a simple mechanical continuum, porous filament gel, tensed cortical membrane, or tensegrity network that maintains a stabilizing prestress through incorporation of discrete structural elements that bear compression. Real-time microscopic analysis of cells containing GFP-labeled microtubules and associated mitochondria revealed that living cells behave like discrete structures composed of an interconnected network of actin microfilaments and microtubules when mechanical stresses are applied to cell surface integrin receptors. Quantitation of cell tractional forces and cellular prestress by using traction force microscopy confirmed that microtubules bear compression and are responsible for a significant portion of the cytoskeletal prestress that determines cell shape stability under conditions in which myosin light chain phosphorylation and intracellular calcium remained unchanged. Quantitative measurements of both static and dynamic mechanical behaviors in cells also were consistent with specific a priori predictions of the tensegrity model. These findings suggest that tensegrity represents a unified model of cell mechanics that may help to explain how mechanical behaviors emerge through collective interactions among different cytoskeletal filaments and extracellular adhesions in living cells.

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This paper shows the results of an experimental analysis on the bell tower of “Chiesa della Maddalena” (Mola di Bari, Italy), to better understand the structural behavior of slender masonry structures. The research aims to calibrate a numerical model by means of the Operational Modal Analysis (OMA) method. In this way realistic conclusions about the dynamic behavior of the structure are obtained. The choice of using an OMA derives from the necessity to know the modal parameters of a structure with a non-destructive testing, especially in case of cultural-historical value structures. Therefore by means of an easy and accurate process, it is possible to acquire in-situ environmental vibrations. The data collected are very important to estimate the mode shapes, the natural frequencies and the damping ratios of the structure. To analyze the data obtained from the monitoring, the Peak Picking method has been applied to the Fast Fourier Transforms (FFT) of the signals in order to identify the values of the effective natural frequencies and damping factors of the structure. The main frequencies and the damping ratios have been determined from measurements at some relevant locations. The responses have been then extrapolated and extended to the entire tower through a 3-D Finite Element Model. In this way, knowing the modes of vibration, it has been possible to understand the overall dynamic behavior of the structure.

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The purpose of this work is to study the dynamic behavior of a pedestrian bridge in Alicante, Spain. It is a very slender footbridge with vertical and horizontal vibration problems during the passage of pedestrians. Accelerations have been recorded by accelerometers installed at various locations of the bridge. Two scenarios, in free vibration (after the passage of a certain number of pedestrians on the bridge) and forced vibration produced by a fixed number of pedestrians walking on the bridge at a certain speed and frequency. In each test, the effect on the comfort of the pedestrians, the natural frequencies of vibration, the mode shapes and damping factors have been estimated. It has been found that the acceleration levels are much higher than the allowable by the Spanish standards and this should be considered in the restoration of the footbridge.

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A large part of the new generation of computer numerical control systems has adopted an architecture based on robotic systems. This architecture improves the implementation of many manufacturing processes in terms of flexibility, efficiency, accuracy and velocity. This paper presents a 4-axis robot tool based on a joint structure whose primary use is to perform complex machining shapes in some non-contact processes. A new dynamic visual controller is proposed in order to control the 4-axis joint structure, where image information is used in the control loop to guide the robot tool in the machining task. In addition, this controller eliminates the chaotic joint behavior which appears during tracking of the quasi-repetitive trajectories required in machining processes. Moreover, this robot tool can be coupled to a manipulator robot in order to form a multi-robot platform for complex manufacturing tasks. Therefore, the robot tool could perform a machining task using a piece grasped from the workspace by a manipulator robot. This manipulator robot could be guided by using visual information given by the robot tool, thereby obtaining an intelligent multi-robot platform controlled by only one camera.

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This paper presents a structural analysis of a masonry chimney built in the 1940s, which is currently being cataloged as local interest heritage. This structure has not served any industrial purpose for the last thirty years. The chimney is located in the town of Agost (Alicante - Spain) and directly exposed to the prevailing winds from the sea, as it is approximately 12 km away from the waterfront and there are not any significant barriers, which could protect the structure against the wind. There are longitudinal cracks and fissures all along the shaft because of the chimney’s geometrical characteristics, the effect of the masonry creep and especially the lack of maintenance. Moreover, there is also a permanent bending deformation in the upper 1/3 of the height due to the wind pressure. A numerical analysis for the static behavior against gravity and wind loads was performed using the structure’s current conditions after a detailed report of its geometry, its construction system and the cracking pattern. Afterwards, the dynamic behavior was studied, i.e. a seismic analysis using both response spectra and accelerograms in order to examine the structural stability. This work shows the pre-monitoring analysis before any experimental testing. Using the current results the future test conditions will be determined (e.g. number of sensors and monitoring point location, excitation systems, etc) prior to a possible structural reinforcement by applying composite material (fiber reinforced polymers).

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We present an extension of the logic outer-approximation algorithm for dealing with disjunctive discrete-continuous optimal control problems whose dynamic behavior is modeled in terms of differential-algebraic equations. Although the proposed algorithm can be applied to a wide variety of discrete-continuous optimal control problems, we are mainly interested in problems where disjunctions are also present. Disjunctions are included to take into account only certain parts of the underlying model which become relevant under some processing conditions. By doing so the numerical robustness of the optimization algorithm improves since those parts of the model that are not active are discarded leading to a reduced size problem and avoiding potential model singularities. We test the proposed algorithm using three examples of different complex dynamic behavior. In all the case studies the number of iterations and the computational effort required to obtain the optimal solutions is modest and the solutions are relatively easy to find.

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The conductance across an atomically narrow metallic contact can be measured by using scanning tunneling microscopy. In certain situations, a jump in the conductance is observed right at the point of contact between the tip and the surface, which is known as “jump to contact” (JC). Such behavior provides a way to explore, at a fundamental level, how bonding between metallic atoms occurs dynamically. This phenomenon depends not only on the type of metal but also on the geometry of the two electrodes. For example, while some authors always find JC when approaching two atomically sharp tips of Cu, others find that a smooth transition occurs when approaching a Cu tip to an adatom on a flat surface of Cu. In an attempt to show that all these results are consistent, we make use of atomistic simulations; in particular, classical molecular dynamics together with density functional theory transport calculations to explore a number of possible scenarios. Simulations are performed for two different materials: Cu and Au in a [100] crystal orientation and at a temperature of 4.2 K. These simulations allow us to study the contribution of short- and long-range interactions to the process of bonding between metallic atoms, as well as to compare directly with experimental measurements of conductance, giving a plausible explanation for the different experimental observations. Moreover, we show a correlation between the cohesive energy of the metal, its Young's modulus, and the frequency of occurrence of a jump to contact.