948 resultados para Casting simulation software


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La crescente espansione del traffico aereo degli ultimi anni obbliga i progettisti delle infrastrutture aeroportuali ad analizzare nel dettaglio i vari processi presenti negli aeroporti. Tali processi possono essere relativi al terminal, e quindi legati ai passeggeri, e relativi alle operazioni di volo, e pertanto legati agli aeromobili. Una delle aree più critiche dell’infrastruttura aeroportuale è il Terminal, in quanto è l’edificio che permette il trasferimento dei passeggeri dal sistema di trasporto terrestre a quello aeronautico e viceversa. All’interno del Terminal si hanno diversi processi, intesi come procedure, azioni o misure, che il passeggero è tenuto a sostenere prima, durante e dopo la partenza. L’aspetto più critico, per ciò che concerne i rischi di congestione dovuti alla molteplicità di processi, è il viaggio del passeggero in partenza. Il passaggio tra processi successivi deve essere visto con l’obiettivo di rendere il percorso del passeggero il più facile e semplice possibile. Nel presente elaborato si vuole focalizzare l’attenzione sui processi di gestione dei passeggeri presenti nei terminal aeroportuali valutandone le rispettive criticità. Per una buona analisi di questi processi bisognerebbe valutare il sistema reale. Per far fronte a questa necessità si fa uso della simulazione del sistema reale attraverso software specifici. La simulazione è il processo di progettazione e creazione di un modello computerizzato di un sistema reale. In questo lavoro di tesi, si vogliono, quindi, riportare le peculiarità dei processi che caratterizzano il viaggio dei passeggeri in partenza all’interno dei terminal aeroportuali, e valutarne le criticità attraverso l’applicazione ad un caso reale mediante l’utilizzo di uno dei maggiori software di simulazione in commercio, ovvero Arena Simulation Software della casa americana Rockwell. Pertanto nei primi capitoli vengono descritte le caratteristiche dei processi presenti in un terminal aeroportuale e le proprietà della simulazione. Mentre nei successivi capitoli si è riportato la simulazione di un caso reale effettuata con il software Arena.

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This thesis offers a practical and theoretical evaluations about gossip-epidemic algorithms, comparing those most common in the literature with new proposed algorithms and analyzing their behavior. Tests have been executed using one hundred graphs that has been randomly generated by Large Unstructured NEtwork Simulator (LUNES), a simulation software provided by Parallel and Distributed Simulation Research Group (PADS), of the Department of Computer Science, Università di Bologna and simulated using Advanced RTI System (ARTÌS), based on the High Level Architecture standard. Literatures algorithms have been analyzed and taken as base for new algorithms.

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The following research thesis is about a retrofit project made in Denmark, Copenhagen, and carried out on one of the buildings belonging to the Royal Danish Academy. The key assumption and base of the entire research process is that, up to now, the standard procedure in retrofit cases like this provides as comparative method between de facto and design, the use of Energy Simulation software. These programs generally divide the space into different thermal zones, assigning to each of them different levels of employment, activities, set-point temperatures set for cooling and heating analysis and so on, but always providing average and constant values, usually taken in the middle point of the single thermal zone. Therefore, the project and its research path stems from the attempt to investigate the potentialities of this kind of designing for retrofit process, as previously anticipated not antithetical but complementary to that classic energy-based retrofit, thus passing from the building scale, and all its thermal zones, to the users' scale, related to humans and microclimates. The main software used in this process is Autodesk Simulation CFD. The idea behind the project is that in certain situations, for example, it will not be necessary to add throughout insulation layers (previously parameterized and optimized with Design Builder), and that even in Winter conditions, due maybe to the users' activities, the increased level of clothing (clo) and the heat produced by equipments, thermal comfort could be achieved also in areas characterized by considerably lower MRT. After the analysis of the State of Art and its simulations, the project has still been supported by the tool itself, the CFD Software, in an iterative process aimed at achieving visible improvements in terms of MRT, on spaces with different needs and characteristics, both in Winter and Summer regimes.

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The dynamics of focusing weak bases using a transient pH boundary was examined via high-resolution computer simulation software. Emphasis was placed on the mechanism and impact that the presence of salt, namely, NaCl, has on the ability to focus weak bases. A series of weak bases with mobilities ranging from 5 x 10(-9) to 30 x 10(-9) m2/V x s and pKa values between 3.0 and 7.5 were examined using a combination of 65.6 mM formic acid, pH 2.85, for the separation electrolyte, and 65.6 mM formic acid, pH 8.60, for the sample matrix. Simulation data show that it is possible to focus weak bases with a pKa value similar to that of the separation electrolyte, but it is restricted to weak bases having an electrophoretic mobility of 20 x 10(-9) m2/V x s or quicker. This mobility range can be extended by the addition of NaCl, with 50 mM NaCl allowing stacking of weak bases down to a mobility of 15 x 10(-9) m2/V x s and 100 mM extending the range to 10 x 10(-9) m2/V x s. The addition of NaCl does not adversely influence focusing of more mobile bases, but does prolong the existence of the transient pH boundary. This allows analytes to migrate extensively through the capillary as a single focused band around the transient pH boundary until the boundary is dissipated. This reduces the length of capillary that is available for separation and, in extreme cases, causes multiple analytes to be detected as a single highly efficient peak.

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The goal of this research is to provide a framework for vibro-acoustical analysis and design of a multiple-layer constrained damping structure. The existing research on damping and viscoelastic damping mechanism is limited to the following four mainstream approaches: modeling techniques of damping treatments/materials; control through the electrical-mechanical effect using the piezoelectric layer; optimization by adjusting the parameters of the structure to meet the design requirements; and identification of the damping material’s properties through the response of the structure. This research proposes a systematic design methodology for the multiple-layer constrained damping beam giving consideration to vibro-acoustics. A modeling technique to study the vibro-acoustics of multiple-layered viscoelastic laminated beams using the Biot damping model is presented using a hybrid numerical model. The boundary element method (BEM) is used to model the acoustical cavity whereas the Finite Element Method (FEM) is the basis for vibration analysis of the multiple-layered beam structure. Through the proposed procedure, the analysis can easily be extended to other complex geometry with arbitrary boundary conditions. The nonlinear behavior of viscoelastic damping materials is represented by the Biot damping model taking into account the effects of frequency, temperature and different damping materials for individual layers. A curve-fitting procedure used to obtain the Biot constants for different damping materials for each temperature is explained. The results from structural vibration analysis for selected beams agree with published closed-form results and results for the radiated noise for a sample beam structure obtained using a commercial BEM software is compared with the acoustical results of the same beam with using the Biot damping model. The extension of the Biot damping model is demonstrated to study MDOF (Multiple Degrees of Freedom) dynamics equations of a discrete system in order to introduce different types of viscoelastic damping materials. The mechanical properties of viscoelastic damping materials such as shear modulus and loss factor change with respect to different ambient temperatures and frequencies. The application of multiple-layer treatment increases the damping characteristic of the structure significantly and thus helps to attenuate the vibration and noise for a broad range of frequency and temperature. The main contributions of this dissertation include the following three major tasks: 1) Study of the viscoelastic damping mechanism and the dynamics equation of a multilayer damped system incorporating the Biot damping model. 2) Building the Finite Element Method (FEM) model of the multiple-layer constrained viscoelastic damping beam and conducting the vibration analysis. 3) Extending the vibration problem to the Boundary Element Method (BEM) based acoustical problem and comparing the results with commercial simulation software.

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There is a need by engine manufactures for computationally efficient and accurate predictive combustion modeling tools for integration in engine simulation software for the assessment of combustion system hardware designs and early development of engine calibrations. This thesis discusses the process for the development and validation of a combustion modeling tool for Gasoline Direct Injected Spark Ignited Engine with variable valve timing, lift and duration valvetrain hardware from experimental data. Data was correlated and regressed from accepted methods for calculating the turbulent flow and flame propagation characteristics for an internal combustion engine. A non-linear regression modeling method was utilized to develop a combustion model to determine the fuel mass burn rate at multiple points during the combustion process. The computational fluid dynamic software Converge ©, was used to simulate and correlate the 3-D combustion system, port and piston geometry to the turbulent flow development within the cylinder to properly predict the experimental data turbulent flow parameters through the intake, compression and expansion processes. The engine simulation software GT-Power © is then used to determine the 1-D flow characteristics of the engine hardware being tested to correlate the regressed combustion modeling tool to experimental data to determine accuracy. The results of the combustion modeling tool show accurate trends capturing the combustion sensitivities to turbulent flow, thermodynamic and internal residual effects with changes in intake and exhaust valve timing, lift and duration.

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The electrophoresis simulation software, GENTRANS, has been modified to include the interaction of analytes with an electrolyte additive to allow the simulation of liquid-phase EKC separations. The modifications account for interaction of weak and strong acid and base analytes with a single weak or strong acid or base background electrolyte additive and can be used to simulate a range of EKC separations with both charged and neutral additives. Simulations of separations of alkylphenyl ketones under real experimental conditions were performed using mobility and interaction constant data obtained from the literature and agreed well with experimental separations. Migration times in fused-silica capillaries and linear polyacrylamide-coated capillaries were within 7% of the experimental values, while peak widths were always narrower than the experimental values, but were still within 50% of those obtained by experiment. Simulations of sweeping were also performed; although migration time agreement was not as good as for simple EKC separations, peak widths were in good agreement, being within 1-50% of the experimental values. All simulations for comparison with experimental data were performed under real experimental conditions using a 47 cm capillary and a voltage of 20 kV and represent the first quantitative attempt at simulating EKC separations with and without sweeping.

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Dynamic models for electrophoresis are based upon model equations derived from the transport concepts in solution together with user-inputted conditions. They are able to predict theoretically the movement of ions and are as such the most versatile tool to explore the fundamentals of electrokinetic separations. Since its inception three decades ago, the state of dynamic computer simulation software and its use has progressed significantly and Electrophoresis played a pivotal role in that endeavor as a large proportion of the fundamental and application papers were published in this periodical. Software is available that simulates all basic electrophoretic systems, including moving boundary electrophoresis, zone electrophoresis, ITP, IEF and EKC, and their combinations under almost exactly the same conditions used in the laboratory. This has been employed to show the detailed mechanisms of many of the fundamental phenomena that occur in electrophoretic separations. Dynamic electrophoretic simulations are relevant for separations on any scale and instrumental format, including free-fluid preparative, gel, capillary and chip electrophoresis. This review includes a historical overview, a survey of current simulators, simulation examples and a discussion of the applications and achievements of dynamic simulation.

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tkCybernetics is a simulation software that can be used to create and evaluate simple cybernetic circuits as a combination of lowpass and highpass filters and several nonlinear elements. tkCybernetics has been developed for and successfully applied to introductory courses on biological cybernetics at Bielefeld University. Therefore, it is recommended for students who start learning about cybernetics. Students can quickly grasp the concepts used in the graphical user interface and are able to create their own circuits after a short introduction to the program. Its usefulness for advanced students and researchers is limited to quickly testing circuits. This article provides detailed tutorial information on how to install and work with tkCybernetics for self-learning and for higher education.

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In this paper we report the set-up and results of the Multimodal Brain Tumor Image Segmentation Benchmark (BRATS) organized in conjunction with the MICCAI 2012 and 2013 conferences. Twenty state-of-the-art tumor segmentation algorithms were applied to a set of 65 multi-contrast MR scans of low- and high-grade glioma patients - manually annotated by up to four raters - and to 65 comparable scans generated using tumor image simulation software. Quantitative evaluations revealed considerable disagreement between the human raters in segmenting various tumor sub-regions (Dice scores in the range 74-85%), illustrating the difficulty of this task. We found that different algorithms worked best for different sub-regions (reaching performance comparable to human inter-rater variability), but that no single algorithm ranked in the top for all subregions simultaneously. Fusing several good algorithms using a hierarchical majority vote yielded segmentations that consistently ranked above all individual algorithms, indicating remaining opportunities for further methodological improvements. The BRATS image data and manual annotations continue to be publicly available through an online evaluation system as an ongoing benchmarking resource.

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El presente Proyecto de Fin de Carrera supone el propósito conjunto de los alumnos Álvaro Morillas y Fernando Sáez, y del profesor Vladimir Ulin, de desarrollar una unidad didáctica sobre el programa de simulación para ingeniería Virtual.Lab. La versión sobre la que se ha trabajado para realizar este texto es la 11, publicada en agosto de 2012. Virtual.Lab, del fabricante belga LMS International, es una plataforma software de ingeniería asistida por ordenador, que agrupa en una misma aplicación varias herramientas complementarias en el diseño de un producto, desde su definición geométrica a los análisis de durabilidad, ruido u optimización. No obstante, de entre todas las posibles simulaciones que nos permite el programa, en este proyecto sólo se tratan las que están relacionadas con la acústica. Cabe resaltar que gran parte de los conceptos manejados en Virtual.Lab son compatibles con el programa CATIA V5, ya que ambos programas vienen instalados y funcionan conjuntamente. Por eso, el lector de este proyecto podrá transportar sus conocimientos al que es uno de los programas estándar en las industrias aeronáutica, naval y automovilística, entre otras. Antes de este proyecto, otros alumnos de la escuela también realizaron proyectos de fin de carrera en el campo de la simulación computarizada en acústica. Una característica común a estos trabajos es que era necesario hacer uso de distintos programas para cada una de las etapas de simulación (como por ejemplo, ANSYS para el modelado y estudio de la vibración y SYSNOISE para las simulaciones acústicas, además de otros programas auxiliares para las traducciones de formato). Con Virtual.Lab desaparece esta necesidad y el tiempo empleado se reduce. Debido a que las soluciones por ordenador están ganando cada vez más importancia en la industria actual, los responsables de este proyecto consideran la necesidad de formación de profesionales en esta rama. Para responder a la demanda empresarial de trabajadores cualificados, se espera que en los próximos años los planes de estudio contengan más cursos en esta materia. Por tanto la intención de los autores es que este material sea de utilidad para el aprendizaje y docencia de estas asignaturas en cursos sucesivos. Por todo esto, se justifica la relevancia de este PFC como manual para introducir a los alumnos interesados en iniciarse en un sistema actual, de uso extendido en otras universidades tecnológicas europeas, y con buenas perspectivas de futuro. En este proyecto se incluyen varios ejemplos ejecutables desde el programa, así como vídeos explicativos que ayudan a mostrar gráficamente los procesos de simulación. Estos archivos se pueden encontrar en el CD adjunto. Abstract This final thesis is a joint project made by the students Álvaro Morillas and Fernando Sáez, and the professor Vladimir Ulin. The nature of the joint regards the writing of a didactic unit on Virtual.Lab, the simulation software. The software version used in this text is the number 11, released in August 2012. Virtual.Lab, from the Belgian developer LMS International, is a computer-aided engineering software which is used for several related tasks in this field: product design, durability simulation, optimization, etc. However, this project is focused on the acoustical capabilities. It is worthy to highlight that most procedures explained in this text can be used in the software CATIA V5 as well. Both tools come installed together and may be used at the same time. Therefore, the reader of this project will be able to use the acquired knowledge in one of the most relevant softwares for the aerospace, marine and automotive engineering. Previously to the development of this project, this School has conducted projects on this field. These projects regarded the use of ANSYS for modeling and meshing stages as well as the use of SYSNOISE for the final acoustic analysis. Since both systems use different file formats, a third-party translation software was required. This thesis fulfill this pending necessity with Virtual.Lab; the translation software procedure is not necessary anymore and simulations can be done in a more flexible, fast way. Since companies have an increasing usage of numerical methods in the development of their products and services, the authors think that it is important to develop the appropriate method to instruct new professionals in the field. Thus, the aim of this project is to help teachers and students in their process of learning the use of this leading software in acoustical simulations. For all the reasons mentioned above, we consider that this project is relevant for the School and the educational community. Aiming to achieve this objective the author offers example files and video demonstrations with guidance in the CD that accompanies this material. This facilitates the comprehension of the practical tasks and guides the prospect users of the software.

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In the field of Room Acoustics it is common using scale models to study a room. Through this method it is possible to predict its behavior, which may be very useful to detect and correct any problem prior to build it, saving many resources. Nowadays this method has been relegated to a secondary position due to the peak of simulation software, which makes possible studying rooms in a cheap, flexible and simple way, as well as it is potentially less time consuming. Nevertheless, the scale model method is still under study, as it may give some additional information. This project intends to focus in pedagogic possibilities of the scale model method. This method offers the student the opportunity of study and grasp some of the most important phenomena in Room Acoustics, in a more intuitive way than just a software simulation. Furthermore most of the existing software in this field is aimed to the technician working in the lab, as efficiently as possible, not to the student trying to understand and learn something. Here, the facilities and resources of Syddansk Universitet regarding this matter will be studied and evaluated, as well as the procedure for the experiments, paying special attention not only to its reliability and accuracy, but also to its didactic possibilities. Besides, if possible, any improvement that could help to enhance any of the listed aspects will be suggested. En el ámbito de la Acústica Arquitectónica es común el uso de modelos a escala para estudiar un recinto determinado. Mediante esta técnica es posible por ejemplo predecir el comportamiento del recinto y detectar problemas antes de su construcción, con el consecuente ahorro de recursos. Actualmente el uso de modelos a escala está desplazado a un segundo plano por el uso de software simulación, debido a la sencillez y flexibilidad que puede aportar la simulación por ordenador, así como a la economía de tiempo y recursos que supone. Sin embargo sigue siendo objeto de estudio, dado que puede aportar información muy valiosa para el ingeniero. Este proyecto se centra en las posibilidades pedagógicas de dicho método. El uso de modelos a escala brinda la oportunidad a los estudiantes de estudiar y comprender algunos de los fenómenos más importantes en la Acústica Arquitectónica de una forma más directa e intuitiva que una simulación por ordenador. Se pretende estudiar y evaluar los medios al alcance de los estudiantes en la Syddansk Universitet, así como los métodos usados, atendiendo no sólo a su precisión y fiabilidad, si no a su potencial pedagógico. Así mismo, si es posible, se propondrán cambios que puedan suponer una mejora en cualquiera de estos aspectos. Así el proyecto se divide en varias secciones claramente diferenciadas. En el apartado Background and Theoretical Basis se introduce el tema del estudio y simulación de recintos acústicos. Se explica su importancia y utilidad, y se comenta la situación actual de estas técnicas, abordando diferentes métodos usados así como sus bases teóricas y principales ventajas e inconvenientes. Bajo el apartado de Project se analizan diferentes factores relacionados con el problema. Se estudian los recursos a disposición del alumno, desde el software y hardware implicados hasta el equipo de medida y otros recursos necesarios para la realización de las prácticas. Es en esta parte donde se centra la parte más importante del trabajo, consistente en la medición y comprobación de las características más relevantes del equipo implicado. Haciendo posible así confirmar su validez y precisión, tanto desde el punto de vista técnico como pedagógico, así como estableciendo los límites dentro de los que se puede considerar fiable el modelo. Al final de este apartado se aborda la influencia de la absorción del aire en altas frecuencias, y la variación en los coeficientes de absorción y dispersión de los materiales respecto de la frecuencia. Por último se realiza una verificación subjetiva del sistema completo, debido a que por limitaciones técnicas no ha sido posible evaluar el montaje en el rango equivalente a toda la banda audible, y que los métodos estudiados tienen como meta última asegurar una buena percepción por parte del oyente en el recinto dado. Dentro del apartado Conclusions se hace un breve resumen de las conclusiones extraídas anteriormente, y se valora el rendimiento y utilidad general del modelo, que a pesar de algunos problemas de precisión y repetibilidad lógicos debido a los medios usados, es válido para ilustrar los fenómenos físicos que se quieren enseñar al alumno. En la sección de Future Work se proponen diferentes vías de trabajo para futuros proyectos en la Syddansk Universitet que podrían ser útiles confirmar el trabajo realizado en este proyecto, mejorar la precisión y fiabilidad del montaje o enriquecer las posibilidades pedagógicas de las prácticas relacionadas. Por último se encuentra, tras el apartado de referencias, los anexos con tablas y gráficas relativas a las medidas realizadas en diferentes partes del trabajo. También se puede encontrar información y material relacionado con el proyecto en el CD adjunto.

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En el presente proyecto se ha realizado un estudio de las condiciones acústicas y del refuerzo sonoro de la sala de conciertos Ritmo y Compás (Madrid), repasando las principales magnitudes de calidad acústica. El proyecto combina medidas y simulaciones. Con las medidas se obtienen los parámetros acústicos de la sala, que permiten cuantificar la sensación que producen en la audiencia las cualidades acústicas de un espacio. Mediante software de simulación electroacústica (EASE) se ha generado el modelo geométrico y acústico de la sala, ajustado en base a los resultados experimentales. El objetivo fundamental del trabajo es generar un modelo virtual que refleje fielmente las condiciones reales de la sala de conciertos, de forma que se puedan estudiar en profundidad las características acústicas y electroacústicas del recinto. En el proceso de análisis se ha querido resaltar la importancia de la acústica en salas de conciertos de música amplificada, muchas veces relegada a un segundo plano por el diseño electroacústico. La calidad de una sala de este tipo depende estrechamente de la sonorización, pero su inevitable relación con las cualidades acústicas del recinto obliga a establecer una serie de criterios acústicos mínimos que aseguren las mejores condiciones para el sistema sonoro. Dado el peso de las simulaciones, en el proyecto se presentan los resultados obtenidos con distintos métodos y recursos de análisis software para apoyar el estudio, con una información completa que muestre, con la máxima claridad, el potencial de la sala Ritmo y Compás como sala de conciertos. SUMMARY. This project is about the acoustical and electroacustical studio of “Ritmo y Compás”, an important concert hall in Madrid, analyzing the main magnitudes of acoustic quality. The project combines measurements and simulations. With the measurements it is obtained the acoustic parameters of the hall, allowing the quantification of the sensation produced in the audience by the acoustic attributes of the hall. With the acoustic simulation software (Ease), based on the experimental results, the geometric and acoustic model has been created. The main purpose of this study is to generate a virtual model that accurately reflects the real conditions of the concert hall, allowing the deep study of the acoustic and electroacoustic features of the hall. In the process of the analysis, the importance of the acoustic characteristic in the amplified music concert halls was emphasized, which is often underestimate because of the electroacoustic design. The quality of this kind of hall strictly depends on the sound electrical system, but its inevitable relation with the acoustic characteristics of the hall, forces to establish a series of minimum acoustic rules that assures the best conditions for the sound system. Due to the importance of the simulations in the project, the results are presented with different methods and analysis software resources to back up the study with complete information that shows the maximum quality and clarity of the potential of the enclosure Ritmo y Compás as a concert hall.

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En el siguiente proyecto se realiza el estudio acústico del teatro “Buero Vallejo” situado en la ciudad de Guadalajara. Teniendo en cuenta que la sala está destinada a diferentes utilizaciones , es decir, es una sala multiusos, se analizará su comportamiento acústico e idoneidad ante las diferentes funciones a las que se destina. Las principales representaciones que se han contemplado han sido las actuaciones musicales y obras de teatro. El proyecto se divide en dos partes bien diferenciadas, en primer lugar la teoría relacionada con el estudio acústico de recintos cerrados y por último la parte práctica para la obtención de resultados. En la primera fase del proyecto se analizan los principales conceptos que debemos tener en cuenta en el ámbito de la acústica así como los criterios y parámetros que definen la calidad acústica de una sala para los diferentes tipos de representación. Para obtener una idea principal de cuales son las representaciones mayoritarias en la sala, se obtiene una estadística de las obras que son representadas en el Teatro Auditorio Buero Vallejo durante 6 meses y posteriormente se estudian los valores que debería tener el recinto para las diferentes actuaciones. En este sentido se realiza en primer lugar un análisis genérico sobre los principales parámetros que califican la calidad de una sala y se establecen los parámetros acústicos que se consideran, a día de hoy, como cuantificadores relevantes en el análisis acústico. Para concluir está primera fase, definimos los objetivos acústicos y parámetros a analizar, particularizados a los objetivos que debe cumplir en Teatro Auditorio Buero Vallejo. En la segunda fase del proyecto se realiza la parte práctica del estudio que constará de dos partes: - En primer lugar se realiza un estudio de las características acústicas actuales que tiene el Teatro Auditorio Buero Vallejo mediante la obtención de medidas in situ, que nos permiten cuantificar las propiedades acústicas del recinto. - En segundo lugar se emplea uno de los software de simulación más extendidos en el campo de la acústica arquitectónica para realizar la predicción de estos parámetros acústicos y así poder efectuar un estudio completo de las características acústicas de la sala. ABSTRACT. This project is about the acoustic study of the Theatre Buero Vallejo located in the city of Guadalajara. Since the room is intended for different purposes , it means, it is a multipurpose room, we analyze acoustic behaviour and suitability for the different uses it is intended to. The main representations that have been taken into account have been music and theatre plays. The project is divided into two distinct parts , the first one, the theory related to the acoustic study of enclosures and finally the practice for obtaining results. In the first phase we analyze the main concepts we have to take into account in the field of acoustics and the criteria and parameters that define the acoustic quality of a room for different types of representation. To get an idea of the main representations played in the room, we have obtained a statistic of the plays that are represented at the Teatro Auditorio Buero Vallejo for 6 months and after that, the values for different performances are studied. First of all a generic analysis on the main parameters that describe the quality of a room is made and the acoustic parameters that are considered today as relevant quantifiers of acoustic analysis are setted. To conclude the first phase, we define the objectives and parameters to analyze acoustics, and we particularize them to the objectives to be met in Teatro Auditorio Buero Vallejo. In the second phase we make the practical study which will consist of two parts: - The first one, a study of current acoustic characteristics that Teatro Auditorio Buero Vallejo has by obtaining in situ measurements , which allow us to quantify the acoustical properties of the enclosure. - The second one, we use one of the most widespread simulation software in the field of architectural acoustics for prediction of these acoustic parameters and in this way being able to make a complete study of the acoustic characteristics of the room.

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En este proyecto se estudiarán las interferencias en el canal adyacente de los sistemas celulares, ubicados en las bandas de 900 y 1800 MHz. Para esto, se analizarán medidas de interferencia entre LTE y otros sistemas de comunicación celular. En el primer capítulo, se dará una breve descripción de los principales parámetros empleados en los distintos estándares de comunicaciones móviles, que operan en las bandas de frecuencia de interés. En el segundo, se van a explicar los distintos tipos de interferencias existentes entre sistemas celulares. También se verán las diferentes técnicas para reducir dichas interferencias, como por ejemplo, la de control de potencia y la de coordinación de interferencia entre celdas. Además, se explicarán los parámetros para determinar la interferencia en el canal adyacente, como son el ACLR, ACS y ACIR. Para finalizar se resumirán las principales características de los sistemas LTE y WiMAX. En el tercer capítulo, se estudiarán las interferencias que genera principalmente LTE a los otros sistemas celulares, mediante los parámetros que miden la interferencia en el canal adyacente explicados en el capítulo dos. Además, se determinará la separación en frecuencia que debe existir entre los canales para que los sistemas puedan coexistir. El capítulo cuatro se basa en la simulación de tres escenarios de interferencia entre dichos sistemas. Para esto, se utilizará el software de simulación de propagación radio, denominado Radio Plan. Con estas simulaciones se cuantificarán las pérdidas de rendimiento que sufren los sistemas interferidos. Por último, en el capítulo cinco se resumirán las conclusiones a las que se llegaron después de simular los diferentes escenarios de interferencia. SUMMARY In this project an adjacent channel interference study for cellular systems, allocated within 900 MHz and 1800 MHz bands will be performed. For this aim a set of measurements will be analyzed. In the first chapter, a brief explanation of the main parameters used in different mobile communications standards that operate in the frequency bands of interest, will be given. In the second chapter, different types of interference between cellular systems will be explained, as well as different techniques to reduce such interference. For example, power control and interference coordination between cells, will be shown. Furthermore, the parameters to determine the adjacent-channel interference, such as the ACLR, ACS and ACIR will be overviewed. Finally, the main features of LTE and WiMAX systems will be summarized. In the third chapter, the interference generated by the other mainly LTE cellular systems via parameters that measure the adjacent channel interference explained in chapter two will be studied. Also, the frequency separation that must exist between the channels so that the systems can coexist will be determined. The fourth chapter is based on the simulation of three scenarios of interference between these systems. For this purpose, a radio propagation simulation software package Radio Plan will be used. These simulations will quantify performance losses suffered by systems that interfered. Finally, in chapter five the conclusions about the results of simulations of interference in different scenarios will be presented.