39 resultados para Residential Facilities

em Universidad Politécnica de Madrid


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Análisis del proceso de formación de precios en el mercado residencial de Lisboa desde el punto de vista de la eliminación de los aspectos subjetivos de la apreciación por el tasador de las características de los inmuebles

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The main objective of this paper is to review the state of the art of residential PV systems in Belgium by the analysis of the operational data of 993 installations. For that, three main questions are posed: how much energy do they produce? What level of performance is associated to their production? Which are the key parameters that most influence their quality? This work brings answers to these questions. A middling commercial PV system, optimally oriented, produces a mean annual energy of 892 kWh/kWp. As a whole, the orientation of PV generators causes energy productions to be some 6% inferior to optimally oriented PV systems. The mean performance ratio is 78% and the mean performance index is 85%. That is to say, the energy produced by a typical PV system in Belgium is 15% inferior to the energy produced by a very high quality PV system. Finally, on average, the real power of the PV modules falls 5% below its corresponding nominal power announced on the manufacturer's datasheet. Differences between real and nominal power of up to 16% have been detected.

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The main objective of this paper is to review the state of the art of residential PV systems in France. This is done analyzing the operational data of 6868 installations. Three main questions are posed. How much energy do they produce? What level of performance is associated to their production? Which are the key parameters that most influence their quality? During the year 2010, the PV systems in France have produced a mean annual energy of 1163 kWh/kWp. As a whole, the orientation of PV generators causes energy productions to be some 7% inferior to optimally oriented PV systems. The mean Performance Ratio is 76% and the mean Performance Index is 85%. That is to say, the energy produced by a typical PV system in France is 15% inferior to the energy produced by a very high quality PV system. On average, the real power of the PV modules falls 4.9% below its corresponding nominal power announced on the manufacturer's datasheet. A brief analysis by PV modules technology has led to relevant observations about two technologies in particular. On the one hand, the PV systems equipped with heterojunction with intrinsic thin layer (HIT) modules show performances higher than average. On the other hand, the systems equipped with the copper indium (di)selenide (CIS) modules show a real power that is 16% lower than their nominal value.

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Predictions about electric energy needs, based on current electric energy models, forecast that the global energy consumption on Earth for 2050 will double present rates. Using distributed procedures for control and integration, the expected needs can be halved. Therefore implementation of Smart Grids is necessary. Interaction between final consumers and utilities is a key factor of future Smart Grids. This interaction is aimed to reach efficient and responsible energy consumption. Energy Residential Gateways (ERG) are new in-building devices that will govern the communication between user and utility and will control electric loads. Utilities will offer new services empowering residential customers to lower their electric bill. Some of these services are Smart Metering, Demand Response and Dynamic Pricing. This paper presents a practical development of an ERG for residential buildings.

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The European HiPER project aims to demonstrate commercial viability of inertial fusion energy within the following two decades. This goal requires an extensive Research &Development program on materials for different applications (e.g., first wall, structural components and final optics). In this paper we will discuss our activities in the framework of HiPER to develop materials studies for the different areas of interest. The chamber first wall will have to withstand explosions of at least 100 MJ at a repetition rate of 5-10 Hz. If direct drive targets are used, a dry wall chamber operated in vacuum is preferable. In this situation the major threat for the wall stems from ions. For reasonably low chamber radius (5-10 m) new materials based on W and C are being investigated, e.g., engineered surfaces and nanostructured materials. Structural materials will be subject to high fluxes of neutrons leading to deleterious effects, such as, swelling. Low activation advanced steels as well as new nanostructured materials are being investigated. The final optics lenses will not survive the extreme ion irradiation pulses originated in the explosions. Therefore, mitigation strategies are being investigated. In addition, efforts are being carried out in understanding optimized conditions to minimize the loss of optical properties by neutron and gamma irradiation

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CATR facilities are attractive antenna measurement facilities. Main reasons which contribute to this fact lie on its inherent reduced volume, on-the-fly measurements and the extension of both to a wide range of frequencies. However, these features rely on the assumption that the field collimation scheme is able to generate a plane wave distribution (quiet zone) where the AUT is to be placed and operated in RX mode. Unfortunately, electromagnetic theory states that this field distribution is not possible to be generated by a finite size scatterer operated as the collimator of a nonzero wavelength time-harmonic propagating field. This is the background of this paper, where two well-known electromagnetic field collimators will be discussed: the serrated edge reflector and the blended rolled edge reflector. To reach this purpose, electromagnetic hybrid analysis techniques developed at Technical University of Madrid will be applied.

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The main objective of this paper is to review the state of the art of residential PV systems in France and Belgium. This is done analyzing the operational data of 10650 PV systems (9657 located in France and 993 in Belgium). Three main questions are posed. How much energy do they produce? What level of performance is associated to their production? Which are the key parameters that most influence their quality? During the year 2010, the PV systems in France have produced a mean annual energy of 1163 kWh/kWp in France and 852 kWh/kWp in Belgium. As a whole, the orientation of PV generators causes energy productions to be some 7% inferior to optimally oriented PV systems. The mean Performance Ratio is 76% in France and 78% in Belgium, and the mean Performance Index is 85% in both countries. On average, the real power of the PV modules falls 4.9% below its corresponding nominal power announced on the manufacturer?s datasheet. A brief analysis by PV modules technology has lead to relevant observations about two technologies in particular. On the one hand, the PV systems equipped with Heterojunction with Intrinsic. Thin layer (HIT) modules show performances higher than average. On the other hand, the systems equipped with Copper Indium (di)Selenide (CIS) modules show a real power that is 16 % lower than their nominal value.

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Land value bears significant weight in house prices in historical town centers. An essential aim for regulating the mortgage market, particularly in the financial and property crisis that countries such as Spain are undergoing, is to have at hand objective procedures for its valuation, whatever the conditions (location, construction, planning). Of all the factors contributing to house price make-up, the land is the only one whose value does not depend on acquisition cost, but rather on the location-time binomial. That is to say, the specific circumstances at that point and at the exact moment of valuation. For this reason, the most commonly applied procedure for land valuation in town centers is the use of the residual method: once the selling price of new housing in a district is known, the other necessary costs and expenses of development are deducted, including those of building and the developer’s profit. The value left is that of the land. To apply these procedures it is vital to have figures such as building costs, technical fees, tax costs, etc. But, above all, it is essential to obtain the selling price of the new housing. This is not always feasible, on account of the lack of newbuild development in this location. This shortage of information occurs in historical town cities, where urban renewal is slight due to the heritage-protection policies, and where, nevertheless there is substantial activity in the secondary market. In these circumstances, as an alternative for land valuation in consolidated urban areas, we have the adaptation of the residual method to the particular characteristics of the secondary market. To these ends, there is the proposal for the appreciation of the dwelling which follows, in a backwards direction, the application of traditional depreciation methods proposed by the various valuation manuals and guidelines. The reliability of the results obtained is analyzed by contrasting it with published figures for newly-built properties, according to different rules applied in administrative appraisals in Spain and the incidence of an eventual correction due to conservation state.

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This paper provides some results on the potential to minimize environmental impacts in residential buildings life cycle, through façade design strategies, analyzing also their impact on costs from a lifecycle perspective. On one hand, it assesses the environmental damage produced by the materials of the building envelope, and on the other, the benefits they offer in terms of habitability and liveability in the use phase. The analysis includes several design parameters used both for rehabilitation of existing facades, as for new facades, trying to cover various determinants and proposing project alternatives. With this study we intended to contribute to address the energy challenges for the coming years, trying also to propose pathways for innovative solutions for the building envelope.

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With the rising prices of the retail electricity and the decreasing cost of the PV technology, grid parity with commercial electricity will soon become a reality in Europe. This fact, together with less attractive PV feed-in-tariffs in the near future and incentives to promote self-consumption suggest, that new operation modes for the PV Distributed Generation should be explored; differently from the traditional approach which is only based on maximizing the exported electricity to the grid. The smart metering is experiencing a growth in Europe and the United States but the possibilities of its use are still uncertain, in our system we propose their use to manage the storage and to allow the user to know their electrical power and energy balances. The ADSM has many benefits studied previously but also it has important challenges, in this paper we can observe and ADSM implementation example where we propose a solution to these challenges. In this paper we study the effects of the Active Demand-Side Management (ADSM) and storage systems in the amount of consumed local electrical energy. It has been developed on a prototype of a self-sufficient solar house called “MagicBox” equipped with grid connection, PV generation, lead–acid batteries, controllable appliances and smart metering. We carried out simulations for long-time experiments (yearly studies) and real measures for short and mid-time experiments (daily and weekly studies). Results show the relationship between the electricity flows and the storage capacity, which is not linear and becomes an important design criterion.

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En este trabajo se han cubierto diferentes asuntos del diseño neutrónico de los aspectos radiológicos de las dos instalaciones del proyecto HiPER. El proyecto HiPER es un proyecto europeo concebido en el marco del programa ESFRI (European Scientific Facilities Research Infrastructure). Está destinado al desarrollo de la energía de fusión nuclear inercial mediante el uso de láseres y el esquema iluminación directa. Consecuentemente, se trata de una instalación con fines exclusivamente civiles. Se divide en dos fases, correspondientes con dos instalaciones: HiPER Engineering y HiPER Reactor. La instalación HiPER Engineering desarrollará las tecnologías implicadas en la ignición de alta repetición de cápsulas de DT por iluminación directa. El HiPER Reactor será una planta demostradora que produzca electricidad haciendo uso de las tecnologías desarrolladas durante la fase HiPER Engineering. El HiPER Engineering se centrará en las tecnologías relevantes para las igniciones a alta repetición de cápsulas de DT usando la iluminación directa. El principal esfuerzo de desarrollo tecnológico se hará en todos los asuntos directamente relacionados con la ignición: láseres, óptica, inyector, y fabricación masiva de cápsulas entre otros. Se espera una producción de entre 5200 MJ/año y 120000 MJ/año dependiendo del éxito de la instalación. Comparado con la energía esperada en NIF, 1200 MJ/año, se trata de un reto y un paso más allá en la protección radiológica. En este trabajo se ha concebido una instalación preliminar. Se ha evaluado desde el punto de vista de la protección radiológica, siendo las personas y la óptica el objeto de protección de este estudio. Se ha establecido una zonificación durante la operación y durante el mantenimiento de la instalación. Además, se ha llevado a cabo una evaluación de la selección de materiales para la cámara de reacción desde el punto de vista de gestión de residuos radiactivos. El acero T91 se ha seleccionado por, siendo un acero comercial, presentar el mismo comportamiento que el acero de baja activación EUROFER97 al evaluarse como residuo con el nivel de irradiación de HiPER Engineering. Teniendo en cuenta los resultados obtenidos para la instalación preliminar y las modificaciones de la instalación motivadas en otros campos, se ha propuesto una instalación avanzada también en este trabajo. Un análisis más profundo de los aspectos radiológicos, así como una evaluación completa de la gestión de todos los residuos radiactivos generados en la instalación se ha llevado a cabo. La protección radiológica se ha incrementado respecto de la instalación preliminar, y todos los residuos pueden gestionarse en un plazo de 30 sin recurrir al enterramiento de residuos. El HiPER Reactor sera una planta demostradora que produzca electricidad basada en las tecnologías de ignición desarrolladas durante la fase HiPER Engineering. El esfuerzo de desarrollo tecnológico se llevará a cabo en los sistemas relacionados con la generación de electricidad en condiciones económicas: manto reproductor de tritio, ciclos de potencia, vida y mantenimiento de componentes, o sistemas de recuperación de tritio entre otros. En este trabajo la principal contribución a HiPER Reactor está relacionada con el diseño de la cámara de reacción y sus extensiones en la planta. La cámara de reacción es la isla nuclear más importante de la planta, donde la mayoría de las reacciones nucleares tienen lugar. Alberga la primera pared, el manto reproductor de tritio y la vasija de vacío. Todo el trabajo realizado aquí ha pivotado en torno al manto reproductor de tritio y sus interacciones con el resto de componentes de la planta. Tras una revisión profunda de la bibliografía de los diseños recientes de cámaras de reacción con características similares a HiPER Reactor, se ha propuesto y justificado un esquema tecnológico innovador para el manto reproductor de tritio. El material fértil selecconado es el eutéctico 15.7 at.% Litio – 84.3 at.% Plomo, LiPb, evitando el uso de berilio como multiplicador neutrónico mientras se garantiza el ajuste online de la tasa de reproducción de tritio mediante el ajuste en el enriquecimiento en 6Li. Aunque se podría haber elegido Litio purom el LiPb evita problemas relacionados con la reactividad química. El precio a pagar es un reto materializado como inventario radiactivo de Z alto en el lazo de LiPb que debe controlarse. El material estructural seleccionado es el acero de baja activación EUROFER97, que estará en contacto directo con le LiPb fluyendo a alta velocidad. En este esquema tecnológico, el LiPb asegurará la autosuficiente de tritio de la planta mientras el propio LiPb extrae del manto el calor sobre él depositado por los neutrones. Este esquema recibe el nombre de manto de Litio-Plomo auto-refrigerado (SCLL por sus siglas en inglés). Respecto de los conceptos SCLL previos, es destacable que nos e requieren componentes del SiC, puesto que no hay campos magnéticos en la cámara de reacción. Consecuentemente, el manto SCLL propuesto para HiPER presenta riesgo tecnológicos moderados, similares a otros dispositivos de fusión magnética, como el HCLL, e incluso inferiores a los del DCLL, puesto que no se require SiC. Los retos que se deben afrontar son el control del inventario de Z alto así como las tasas de corrosión derivadas de la interacción del LiPb con el EUROFE97. En este trabajo se abordan ambos aspectos, y se presentan los respectivos análisis, junto con otros aspectos neutrónicos y de activación, tales como la protección de la vasija de vacío por parte del material fértil para garantizar la resoldabilidad de por vida en la cara externa de la vasija. También se propone y se estudio un ciclo de potencia de Brayton de Helio para dos configuraciones diferentes de refrigeración del sistema primera pared-manto reproductor. Las principales conclusiones de estos estudios son: i) el inventario de Z alto puede controlarse y es comparable al que se encuentra en dispositivos de fusión similares, ii)la vasija de vacío requiere una mayor protección frente a la radiación neutrónica y iii) las tasas de corrosión son demasiado altas y la temperatura media de salida del LiPb es demasiado baja. Tiendo en cuenta estos resultados juntos con otras consideraciones relacionadas con el mantenimiento de componentes y la viabilidad constructiva, se ha propuesto una evolución de la cámara de reacción. Las evoluciones más destacables son la introducción de un reflector neutrónico de grafito, la modificación de la configuración de la óptica final, la forma y el tamaño de la cámara de vacío y una nueva subdivisión modular del manto. Se ha evaluado desde el punto de vista neutrónico, y su análisis y posterior evolución queda fuera del objeto de este trabajo. Los códigos utilizados en este trabajo son: CATIA para la generación de geometrías 3D complejas MCAM para la traducción de archivos de CATIA a formato de input de MCNP MCNP para el transporte de la radiación (neutrones y gammas) y sus respuestas asociadas ACAB para la evolución del inventario isotópico y sus respuestas asociadas MC2ACAB para acoplar MCNP y ACAB para el cómputo de dosis en parada usando la metodología R2S basada en celda. Moritz para visualizar los reultados de MCNP FLUENT para llevar a cabo cálculos de fluido-dinámica Para llevar a cabo este trabajo, han sido necesarias unas destrezas computacionales. Las más relevantes utilizadas son: generación de geometrás 3D complejas y transmisión a MCNP, diferentes tñecnica de reducción de varianza como importancia por celdas y weight windows basado en malla, metodología Rigorous-two-Steps basada en celdas para el cálculo de dosis en parada y la modificación del código ACAB para el cálculos con múltiples espectros en la misma simulación. Como resumen, la contribución de este trabajo al proyecto HiPER son dos diseños conceptuales de instalación: una para HiPER Engineering y otra para HiPER Reactor. La primera se ha estudio en profundidad desde el punto de vista de protección radiológica y gestión de residuos, mientras que la segunda se ha estudiado desde el punto de vista de operación: seguridad, comportamiento, vida y mantenimiento de componentes y eficiencia del ciclo de potencia.

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There are many industries that use highly technological solutions to improve quality in all of their products. The steel industry is one example. Several automatic surface-inspection systems are used in the steel industry to identify various types of defects and to help operators decide whether to accept, reroute, or downgrade the material, subject to the assessment process. This paper focuses on promoting a strategy that considers all defects in an integrated fashion. It does this by managing the uncertainty about the exact position of a defect due to different process conditions by means of Gaussian additive influence functions. The relevance of the approach is in making possible consistency and reliability between surface inspection systems. The results obtained are an increase in confidence in the automatic inspection system and an ability to introduce improved prediction and advanced routing models. The prediction is provided to technical operators to help them in their decision-making process. It shows the increase in improvement gained by reducing the 40 % of coils that are downgraded at the hot strip mill because of specific defects. In addition, this technology facilitates an increase of 50 % in the accuracy of the estimate of defect survival after the cleaning facility in comparison to the former approach. The proposed technology is implemented by means of software-based, multi-agent solutions. It makes possible the independent treatment of information, presentation, quality analysis, and other relevant functions.

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In this paper, we describe the development of a control system for Demand-Side Management in the residential sector with Distributed Generation. The electrical system under study incorporates local PV energy generation, an electricity storage system, connection to the grid and a home automation system. The distributed control system is composed of two modules: a scheduler and a coordinator, both implemented with neural networks. The control system enhances the local energy performance, scheduling the tasks demanded by the user and maximizing the use of local generation.

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The present Master/Doctorate in Nuclear Science and Technology programme implemented in the Department of Nuclear Engineering of the Universidad Politécnica de Madrid (NED-UPM) has the excellence qualification by the Spanish Ministry of Education. One of the main of this programme is the training for the development of methodologies of simulation, design and advanced analysis, including experimental tools, necessary in research and in professional work in the nuclear field.

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One of the key scrutiny issues of new coming energy era would be the environmental impact of fusion facilities managing one kg of tritium. The potential change of committed dose regulatory limits together with the implementation of nuclear design principles (As Low as Reasonably achievable - ALARA -, Defense in Depth -D-i-D-) for fusion facilities could strongly impact on the cost of deployment of coming fusion technology. Accurate modeling of environmental tritium transport forms (HT, HTO) for the assessment of fusion facility dosimetric impact in Accidental case appears as of major interest. This paper considers different short-term releases of tritium forms (HT and HTO) to the atmosphere from a potential fusion reactor located in the Mediterranean Basin. This work models in detail the dispersion of tritium forms and dosimetric impact of selected environmental patterns both inland and in-sea using real topography and forecast meteorological data-fields (ECMWF/FLEXPART). We explore specific values of this ratio in different levels and we examine the influence of meteorological conditions in the HTO behavior for 24 hours. For this purpose we have used a tool which consists on a coupled Lagrangian ECMWF/FLEXPART model useful to follow real time releases of tritium at 10, 30 and 60 meters together with hourly observations of wind (and in some cases precipitations) to provide a short-range approximation of tritium cloud behavior. We have assessed inhalation doses. And also HTO/HT ratios in a representative set of cases during winter 2010 and spring 2011 for the 3 air levels.