6 resultados para Energy rehabilitation
em Universidad Politécnica de Madrid
Resumo:
The main goal of the cofounded by the European Commission LIFE Project, New4Old (LIFE10 ENV/ES/439), is to define the most appropriate method and the best available practice in social housing rehabilitation with energy and environmental sustainability criteria, as well as to apply innovative technologies in the fight against climate change through an efficient use of resources and energy. The institutions involved in the Project are the Technological Centre AITEMIN, Madrid Polytechnic University (UPM), Portugal Technological Centre for Ceramics and Glass (CTCV) and the Zaragoza City Housing Society (SMZV). The demonstrator project consists in the energy rehabilitation of a rental social housing building located in Zaragoza?s historic quarter, according to the conclusions and strategies developed for the LIFE project. In actions taken in households of this nature passive design strategies are essential due to the limited income of owners, who often cannot afford energy bills. Therefore, the proposed actions will help improve the building?s passive performance and reach a higher thermal comfort, without increasing the economic cost linked to energy consumption.
Resumo:
Se propone una metodología para la evaluación de soluciones constructivas de fachada para la rehabilitación de viviendas sociales, construidas entre el final de la Guerra Civil y la entrada en vigor de la norma básica NBE-CT-79, sobre condiciones térmicas en edificios. La metodología parte por un lado del análisis del estado actual en las viviendas, y por otro de la caracterización de las soluciones constructivas de rehabilitación, para la evaluación conjunta de las posibles mejoras. Esta evaluación persigue valorar su repercusión en la calidad del ambiente interior, y en la reducción de la demanda energética para acondicionamiento térmico. Se aplica sobre dos viviendas tipo que se han monitorizado en Madrid, utilizando dos soluciones innovadoras para rehabilitación energética, que disponen de documentos de idoneidad DIT y DITE. Una incorpora sobre la fachada tipo un aislamiento por el exterior, y otra incorpora un sistema de fachada ventilada, también sobre esta fachada tipo. El análisis de las viviendas se ha realizado a partir de la toma de datos, ensayos y estudio de detalle, llevados a cabo a lo largo de los años 2014 y 2015. El análisis de los sistemas de fachada se ha realizado a partir de ensayos controlados, comparando los resultados para tres tipos de fachada: una fachada tipo, habitual en la construcción de las viviendas de este periodo, y las dos soluciones innovadoras mencionadas. Una vez realizado el diagnóstico de las viviendas y el análisis de los ensayos de los sistemas constructivos, los resultados obtenidos se utilizan para generar los modelos de simulación sobre los que evaluar las mejoras. El periodo de estudio comprende cuatro décadas que comienzan en 1940, en un momento con escasos medios técnicos para la construcción, y que coincide con el comienzo del crecimiento en las grandes ciudades, y finaliza con la incorporación en la normativa de las exigencias de aislamiento en fachadas, de 1979. En la ciudad de Madrid las viviendas construidas en este periodo, suponen un 45% del total de viviendas censadas en 2011. La rehabilitación energética se ha ido incorporando en los sucesivos planes nacionales de vivienda como actuación protegida, y son muchos y muy diversos los planes de acción desde la administración en materia de vivienda social, tanto a nivel nacional como europeo. La vivienda queda incluida en materia de desarrollo y cohesión urbana, territorial y social, haciendo necesario un enfoque integrado. Los barrios de vivienda social forman parte de un patrimonio construido en los que los criterios de sostenibilidad toman especial interés y relevancia, ya que a través del tiempo se han construido como actores y testigos de su historia social, económica, ambiental y cultural. El diseño de los modelos y actuaciones de futuro se sustenta en la asimilación de esa complejidad y diversidad adquirida. Por otro lado, el actual reto que impone el calentamiento global obliga a plantear escenarios de adaptación y mejora en estos edificios, con una especial atención a la dependencia energética, el consumo de recursos, y emisiones de gases de efecto invernadero. La fachada es el elemento más importante de la envolvente en los edificios multifamiliares, siendo el lugar donde se produce el intercambio entre el ambiente interior y exterior. Su rehabilitación puede mejorar las prestaciones de habitabilidad en las viviendas, y disminuir la demanda de energía para alcanzar unas condiciones de confort estándar. El trabajo de investigación que se ha realizado, forma parte de una linea de investigación abierta sobre sistemas constructivos y habitabilidad en edificación. ABSTRACT A methodology for the evaluation of facade’s constructive solutions for social housing refurbishment, built between the end of the Civil War, and the entry into force of the basic standard NBE-CT-79 on thermal conditions in buildings is proposed. This methodology starts both with the analysis of the current status in dwellings, and with the characterization of rehabilitation’s constructive solutions performance, for the integrated assessment of improvements. The evaluation seeks to assess their impact on the indoor environmental quality, and on reducing the energy demand for thermal conditioning. The methodology is applied to two standard dwellings, that have been monitored in Madrid, with two innovative solutions for energy refurbishment, which have DIT and DITE assessment documents. One incorporates an exterior insulation, and the other incorporates a ventilated facade system. The analysis of the dwellings was made from data collection, testing and detailed study, conducted throughout 2014 and 2015. Analysis of the facade systems was made from controlled trials comparing the results for three types of façade: a standard usual facade common in the construction of this period, and the two innovative solutions mentioned. Based on the diagnosis of housing and systems analysis, the results are used to generate simulation models on which assess the improvements. The study period comprises four decades starting in 1940, at a time with limited technical resources for construction, which coincides with the beginning of growth in big cities, and ends with the incorporation in the 1979 legislation of the façade’s insulation requirements. In the city of Madrid the houses built in this period account for 45% of all households surveyed in 2011. As a “protected action” energy rehabilitation has been incorporated in successive national housing plans, and there are many and very different action plans from the Administration in the field of social housing, both at national and European level. An integrated approach is needed, due to the inclusion of housing in development and urban, territorial and social cohesion. Social housing neighborhoods are part of the built heritage. Sustainability criteria therefore are particularely relevant, since over time they have been built as actors and witnesses of their social, economic, environmental and cultural history. The design and performance of future models is based on the assimilation of this complexity and diversity acquired. On the other hand, the current challenge posed by global warming forces to consider scenarios for adaptation and improvement in these buildings, with particular attention to energy dependence, resource consumption, and greenhouse gas emissions. The facade is the most important element of the envelope in the multi-family buildings, being the place where the exchange occurs between the indoor and outdoor environments. Its rehabilitation can improve wellbeing in housing performance, and reduce energy demand to achieve standard comfort conditions. This research that has been done, is part of an open research line on construction and living conditions in buildings.
Resumo:
Present research is framed within the project MODIFICA (MODelo predictivo - edIFIcios - Isla de Calor Urbana) aimed at developing a predictive model for dwelling energy performance under the urban heat island effect in order to implement it in the evaluation of real energy demand and consumption of dwellings as well as in the selection of energy retrofitting strategies. It is funded by Programa de I+D+i orientada a los retos de la sociedad 'Retos Investigación' 2013. The scope of our predictive model is defined by the heat island effect (UHI) of urban structures that compose the city of Madrid. In particular, we focus on the homogeneous areas for urban structures with the same urban and building characteristics. Data sources for the definition of such homogeneous areas were provided by previous research on the UHI of Madrid. The objective is to establish a critical analysis of climate records used for energy simulation tools, which data come from weather stations placed in decontextualized areas from the usual urban reality, where the thermal conditions differs by up to 6ºC. In this way, we intend to develop a new predictive model for the consumption and demand in buildings depending on their location, the urban structure and the associated UHI, improving the future energy rehabilitation interventions
Resumo:
La envolvente de la edificación es la responsable de equilibrar el intercambio energético entre el interior y el exterior, por lo tanto cualquier actuación encaminada a la reducción del consumo energético ha de establecer, como uno de sus objetivos prioritarios, la mejora del comportamiento de la misma. Las edificaciones anteriores a 1940 constituyen la mayor parte de las existentes en áreas rurales y centros urbanos. En ellas, la repercusión de la fachada sobre las transmitancias globales pone de manifiesto la necesidad de intervención. Sin embargo, su elevada inercia térmica y los importantes saltos térmicos característicos de gran parte de España plantean la importancia de que aquélla se efectúe por el exterior. A tal respecto, la falta de disponibilidad de espesor suficiente para implantar sistemas tipo SATE deriva en que, frecuentemente, la única solución viable sea la de aislar por el interior perdiendo con ello la capacidad de acumulación térmica del muro y con el asociado riesgo de condensaciones. La amplia tradición en el empleo de revestimientos, especialmente en base de cal, permiten que éstos sean utilizados no sólo como elemento estético o de protección de la obra de fábrica antigua sino también para la mejora del comportamiento térmico del soporte, si se aprovecha el mecanismo de transmisión térmica por radiación. Éste es el objetivo de la presente Tesis Doctoral en la que se estudia la modificación de las propiedades radiantes de los morteros de revestimiento para la mejora de la eficiencia energética de las construcciones históricas, principalmente las constituidas por muros monolíticos, aunque podría ser de aplicación a otro tipo de construcciones compuestas por diversas capas. Como punto de partida, se estudió y revisó la documentación disponible sobre las investigaciones de las tres áreas científico-tecnológicas que convergen en la Tesis Doctoral: rehabilitación, material y comportamiento térmico, a partir de lo cual se comprobó la inexistencia de estudios similares al objeto de la presente Tesis Doctoral. Complementariamente, se analizaron los revestimientos en lo concerniente a los materiales que los constituyen, la composición de las mezclas y características de cada una de las capas así como al enfoque que, desde el punto de vista térmico, se estimaba más adecuado para la obtención de los objetivos propuestos. Basándonos en dichos análisis, se preseleccionaron ochenta materiales que fueron ensayados en términos de reflectancia y emisividad para elegir cuatro con los que se continuó la investigación. Éstos, junto con la cal elegida para la investigación y el árido marmóreo característico de la última capa de revestimiento, fueron caracterizados térmicamente, de forma pormenorizada, así como química y físicamente. Los fundamentos teóricos y los estudios preliminares desarrollados con distintos materiales, en estado fresco y endurecido, fueron empleados en la dosificación de componentes de las mezclas, en dos proporciones distintas, para el estudio del efecto del agregado. Éstas se ensayaron en estado fresco, para comprobar su adecuación de puesta en obra y prever su VI adherencia al soporte, así como en estado endurecido a 28 y 90 días de curado, para conocer las propiedades que permitieran prever su compatibilidad con aquél y estimar el alcance de la reducción de transferencias térmicas lograda. Además, se estudiaron las características generales de las mezclas que sirvieron para establecer correlaciones entre distintas propiedades y entender los resultados mecánicos, físicos (comportamiento frente al agua) y energéticos. Del estudio conjunto de las distintas propiedades analizadas se propusieron dos mezclas, una blanca y otra coloreada, cuyas características permiten garantizar la compatibilidad con la obra de fábrica antigua, desde el punto de vista físico y mecánico, y preservar la autenticidad de los revestimientos, en cuanto a la técnica de aplicación tradicional en sistemas multicapa. El comportamiento térmico de las mismas, sobre una obra de fábrica de 40 cm de espesor, se estimó, en estado estacionario y pseudo-transitorio, demostrándose reducciones del flujo térmico entre 16-48%, en condiciones de verano, y entre el 6-11%, en invierno, en función de la coloración y de la rugosidad de la superficie, en comparación con el empleo de la mezcla tradicional. Por lo que, se constata la viabilidad de los materiales compuestos propuestos y su adecuación al objetivo de la investigación. VII ABSTRACT The envelope is responsible for balancing the energy exchange between the inside and outside in buildings. For this reason, any action aimed at reducing energy consumption must establish, as one of its key priorities, its improvement. In rural areas and urban centers, most of the constructions were built before 1940. In them, the impact of the façade on the global transmittance highlights the need for intervention. However, its high thermal inertia and fluctuation of temperatures in the majority of Spain bring up that it should be placed outside the insulation. In this regard, the lack of availability of enough thickness to implement systems such as ETICS results in that often the only viable solution is to isolate the interior, losing thereby the wall’s heat storage capacity with the associated risk of condensation. The tradition in the use of renders, especially lime-based, allows us to use them not only as an aesthetic element or to protect the ancient masonry, but also for improved thermal performance of the support by taking advantage of the heat transfer mechanism by radiation. This is the aim of this Doctoral Thesis in which the modification of the radiative properties of lime mortars for renders to improve the energy efficiency of historic buildings, mainly composed of monolithic walls, is studied, although it could be applied to other structures composed of several layers. As a starting point, the available literature in the three scientific-technological areas that converge at the Doctoral Thesis: rehabilitation, material and thermal behaviour, was reviewed, and confirmed the absence of researches similar to this Doctoral Thesis. Additionally, the renders were studied with regard to the materials that constitute them, the composition of the mixtures and the characteristics of each layer, as well as to the approach which, from a thermal point of view, was deemed the most suitable for achieving the objectives sets. Based on thre aforementioned analysis, eighty materials tested in terms of reflectance and emissivity were pre-selected, to choose four with which the research was continued. Common marble sand, used in the last layer of the renders, together with the appointed materials and hydrated lime were characterized thermally, in detail, as well as chemically and physically. The theoretical bases and preliminary studies with different materials, in fresh and hardened state, were used in the dosage of the composition of the mixtures. In order to study their effect they were used in two different proportions, that is, ten mixtures in total. These were tested in their fresh state to evaluate their setting-up suitability and foresee their adhesion to the support, as well as in their hardened state, at 28 and 90 days of curing, to establish the properties which enabled us to anticipate their compatibility with the old masonry walls and estimate the scope of the reduction of heat transfers achieved. In addition, the general characteristics of the mixtures used to establish correlations and to understand the mechanical, physical and energy results were studied. Two mixtures, one white and one colored, were proposed as the result of the different properties analysed, whose characteristics allow the guarantee of mechanical and physical compatibility VIII with the old masonry and preserve the authenticity of the renders. The thermal behavior of both, applied on a masonry wall 40 cm thick, was estimated at a steady and pseudo-transient state, with heat flow reductions between 16-48% during summertime and 6-11% during wintertime, depending on the color and surface roughness, compared to the use of the traditional mixture. So, the viability of the proposed composite materials and their fitness to the aim of the research are established.
Resumo:
The improvement of energy efficiency in existing buildings is always a challenge due to their particular, and sometimes protected, constructive solutions. New constructive regulations in Spain leave a big undefined gap when a restoration is considered because they were developed for new buildings. However, rehabilitation is considered as an opportunity for many properties because it allows owners to obtain benefits from the use of the buildings. The current financial and housing crisis has turned society point of view to existing buildings and making them more efficient is one of the Spanish government’s aims. The economic viability of a rehabilitation action should take all factors into account: both construction costs and the future operative costs of the building must be considered. Nevertheless, the application of these regulations in Spain is left to the designer’s opinion and always under a subjective point of view. With the research work described in this paper and with the help of some case-studies, the cost of adapting an existing building to the new constructive regulations will be studied and Energetic Efficiency will be evaluated depending on how the investment is recovered. The interest of the research is based on showing how new constructive solutions can achieve higher levels of efficiency in terms of energy, construction and economy and it will demonstrate that Life Cycle Costing analysis can be a mechanism to find the advantages and disadvantages of using these new constructive solutions. Therefore, this paper has the following objectives: analysing constructive solutions in existing buildings - to establish a process for assessing total life cycle costs (LCC) during the planning stages with consideration of future operating costs - to select the most advantageous operating system – To determine the return on investment in terms of construction costs based on new techniques, the achieved energy savings and investment payback periods.
Resumo:
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.