894 resultados para Consensus building process


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Hoy en día, el proceso de un proyecto sostenible persigue realizar edificios de elevadas prestaciones que son, energéticamente eficientes, saludables y económicamente viables utilizando sabiamente recursos renovables para minimizar el impacto sobre el medio ambiente reduciendo, en lo posible, la demanda de energía, lo que se ha convertido, en la última década, en una prioridad. La Directiva 2002/91/CE "Eficiencia Energética de los Edificios" (y actualizaciones posteriores) ha establecido el marco regulatorio general para el cálculo de los requerimientos energéticos mínimos. Desde esa fecha, el objetivo de cumplir con las nuevas directivas y protocolos ha conducido las políticas energéticas de los distintos países en la misma dirección, centrándose en la necesidad de aumentar la eficiencia energética en los edificios, la adopción de medidas para reducir el consumo, y el fomento de la generación de energía a través de fuentes renovables. Los edificios de energía nula o casi nula (ZEB, Zero Energy Buildings ó NZEB, Net Zero Energy Buildings) deberán convertirse en un estándar de la construcción en Europa y con el fin de equilibrar el consumo de energía, además de reducirlo al mínimo, los edificios necesariamente deberán ser autoproductores de energía. Por esta razón, la envolvente del edifico y en particular las fachadas son importantes para el logro de estos objetivos y la tecnología fotovoltaica puede tener un papel preponderante en este reto. Para promover el uso de la tecnología fotovoltaica, diferentes programas de investigación internacionales fomentan y apoyan soluciones para favorecer la integración completa de éstos sistemas como elementos arquitectónicos y constructivos, los sistemas BIPV (Building Integrated Photovoltaic), sobre todo considerando el próximo futuro hacia edificios NZEB. Se ha constatado en este estudio que todavía hay una falta de información útil disponible sobre los sistemas BIPV, a pesar de que el mercado ofrece una interesante gama de soluciones, en algunos aspectos comparables a los sistemas tradicionales de construcción. Pero por el momento, la falta estandarización y de una regulación armonizada, además de la falta de información en las hojas de datos técnicos (todavía no comparables con las mismas que están disponibles para los materiales de construcción), hacen difícil evaluar adecuadamente la conveniencia y factibilidad de utilizar los componentes BIPV como parte integrante de la envolvente del edificio. Organizaciones internacionales están trabajando para establecer las normas adecuadas y procedimientos de prueba y ensayo para comprobar la seguridad, viabilidad y fiabilidad estos sistemas. Sin embargo, hoy en día, no hay reglas específicas para la evaluación y caracterización completa de un componente fotovoltaico de integración arquitectónica de acuerdo con el Reglamento Europeo de Productos de la Construcción, CPR 305/2011. Los productos BIPV, como elementos de construcción, deben cumplir con diferentes aspectos prácticos como resistencia mecánica y la estabilidad; integridad estructural; seguridad de utilización; protección contra el clima (lluvia, nieve, viento, granizo), el fuego y el ruido, aspectos que se han convertido en requisitos esenciales, en la perspectiva de obtener productos ambientalmente sostenibles, saludables, eficientes energéticamente y económicamente asequibles. Por lo tanto, el módulo / sistema BIPV se convierte en una parte multifuncional del edificio no sólo para ser física y técnicamente "integrado", además de ser una oportunidad innovadora del diseño. Las normas IEC, de uso común en Europa para certificar módulos fotovoltaicos -IEC 61215 e IEC 61646 cualificación de diseño y homologación del tipo para módulos fotovoltaicos de uso terrestre, respectivamente para módulos fotovoltaicos de silicio cristalino y de lámina delgada- atestan únicamente la potencia del módulo fotovoltaico y dan fe de su fiabilidad por un período de tiempo definido, certificando una disminución de potencia dentro de unos límites. Existe también un estándar, en parte en desarrollo, el IEC 61853 (“Ensayos de rendimiento de módulos fotovoltaicos y evaluación energética") cuyo objetivo es la búsqueda de procedimientos y metodologías de prueba apropiados para calcular el rendimiento energético de los módulos fotovoltaicos en diferentes condiciones climáticas. Sin embargo, no existen ensayos normalizados en las condiciones específicas de la instalación (p. ej. sistemas BIPV de fachada). Eso significa que es imposible conocer las efectivas prestaciones de estos sistemas y las condiciones ambientales que se generan en el interior del edificio. La potencia nominal de pico Wp, de un módulo fotovoltaico identifica la máxima potencia eléctrica que éste puede generar bajo condiciones estándares de medida (STC: irradición 1000 W/m2, 25 °C de temperatura del módulo y distribución espectral, AM 1,5) caracterizando eléctricamente el módulo PV en condiciones específicas con el fin de poder comparar los diferentes módulos y tecnologías. El vatio pico (Wp por su abreviatura en inglés) es la medida de la potencia nominal del módulo PV y no es suficiente para evaluar el comportamiento y producción del panel en términos de vatios hora en las diferentes condiciones de operación, y tampoco permite predecir con convicción la eficiencia y el comportamiento energético de un determinado módulo en condiciones ambientales y de instalación reales. Un adecuado elemento de integración arquitectónica de fachada, por ejemplo, debería tener en cuenta propiedades térmicas y de aislamiento, factores como la transparencia para permitir ganancias solares o un buen control solar si es necesario, aspectos vinculados y dependientes en gran medida de las condiciones climáticas y del nivel de confort requerido en el edificio, lo que implica una necesidad de adaptación a cada contexto específico para obtener el mejor resultado. Sin embargo, la influencia en condiciones reales de operación de las diferentes soluciones fotovoltaicas de integración, en el consumo de energía del edificio no es fácil de evaluar. Los aspectos térmicos del interior del ambiente o de iluminación, al utilizar módulos BIPV semitransparentes por ejemplo, son aún desconocidos. Como se dijo antes, la utilización de componentes de integración arquitectónica fotovoltaicos y el uso de energía renovable ya es un hecho para producir energía limpia, pero también sería importante conocer su posible contribución para mejorar el confort y la salud de los ocupantes del edificio. Aspectos como el confort, la protección o transmisión de luz natural, el aislamiento térmico, el consumo energético o la generación de energía son aspectos que suelen considerarse independientemente, mientras que todos juntos contribuyen, sin embargo, al balance energético global del edificio. Además, la necesidad de dar prioridad a una orientación determinada del edificio, para alcanzar el mayor beneficio de la producción de energía eléctrica o térmica, en el caso de sistemas activos y pasivos, respectivamente, podría hacer estos últimos incompatibles, pero no necesariamente. Se necesita un enfoque holístico que permita arquitectos e ingenieros implementar sistemas tecnológicos que trabajen en sinergia. Se ha planteado por ello un nuevo concepto: "C-BIPV, elemento fotovoltaico consciente integrado", esto significa necesariamente conocer los efectos positivos o negativos (en términos de confort y de energía) en condiciones reales de funcionamiento e instalación. Propósito de la tesis, método y resultados Los sistemas fotovoltaicos integrados en fachada son a menudo soluciones de vidrio fácilmente integrables, ya que por lo general están hechos a medida. Estos componentes BIPV semitransparentes, integrados en el cerramiento proporcionan iluminación natural y también sombra, lo que evita el sobrecalentamiento en los momentos de excesivo calor, aunque como componente estático, asimismo evitan las posibles contribuciones pasivas de ganancias solares en los meses fríos. Además, la temperatura del módulo varía considerablemente en ciertas circunstancias influenciada por la tecnología fotovoltaica instalada, la radiación solar, el sistema de montaje, la tipología de instalación, falta de ventilación, etc. Este factor, puede suponer un aumento adicional de la carga térmica en el edificio, altamente variable y difícil de cuantificar. Se necesitan, en relación con esto, más conocimientos sobre el confort ambiental interior en los edificios que utilizan tecnologías fotovoltaicas integradas, para abrir de ese modo, una nueva perspectiva de la investigación. Con este fin, se ha diseñado, proyectado y construido una instalación de pruebas al aire libre, el BIPV Env-lab "BIPV Test Laboratory", para la caracterización integral de los diferentes módulos semitransparentes BIPV. Se han definido también el método y el protocolo de ensayos de caracterización en el contexto de un edificio y en condiciones climáticas y de funcionamiento reales. Esto ha sido posible una vez evaluado el estado de la técnica y la investigación, los aspectos que influyen en la integración arquitectónica y los diferentes tipos de integración, después de haber examinado los métodos de ensayo para los componentes de construcción y fotovoltaicos, en condiciones de operación utilizadas hasta ahora. El laboratorio de pruebas experimentales, que consiste en dos habitaciones idénticas a escala real, 1:1, ha sido equipado con sensores y todos los sistemas de monitorización gracias a los cuales es posible obtener datos fiables para evaluar las prestaciones térmicas, de iluminación y el rendimiento eléctrico de los módulos fotovoltaicos. Este laboratorio permite el estudio de tres diferentes aspectos que influencian el confort y consumo de energía del edificio: el confort térmico, lumínico, y el rendimiento energético global (demanda/producción de energía) de los módulos BIPV. Conociendo el balance de energía para cada tecnología solar fotovoltaica experimentada, es posible determinar cuál funciona mejor en cada caso específico. Se ha propuesto una metodología teórica para la evaluación de estos parámetros, definidos en esta tesis como índices o indicadores que consideran cuestiones relacionados con el bienestar, la energía y el rendimiento energético global de los componentes BIPV. Esta metodología considera y tiene en cuenta las normas reglamentarias y estándares existentes para cada aspecto, relacionándolos entre sí. Diferentes módulos BIPV de doble vidrio aislante, semitransparentes, representativos de diferentes tecnologías fotovoltaicas (tecnología de silicio monocristalino, m-Si; de capa fina en silicio amorfo unión simple, a-Si y de capa fina en diseleniuro de cobre e indio, CIS) fueron seleccionados para llevar a cabo una serie de pruebas experimentales al objeto de demostrar la validez del método de caracterización propuesto. Como resultado final, se ha desarrollado y generado el Diagrama Caracterización Integral DCI, un sistema gráfico y visual para representar los resultados y gestionar la información, una herramienta operativa útil para la toma de decisiones con respecto a las instalaciones fotovoltaicas. Este diagrama muestra todos los conceptos y parámetros estudiados en relación con los demás y ofrece visualmente toda la información cualitativa y cuantitativa sobre la eficiencia energética de los componentes BIPV, por caracterizarlos de manera integral. ABSTRACT A sustainable design process today is intended to produce high-performance buildings that are energy-efficient, healthy and economically feasible, by wisely using renewable resources to minimize the impact on the environment and to reduce, as much as possible, the energy demand. In the last decade, the reduction of energy needs in buildings has become a top priority. The Directive 2002/91/EC “Energy Performance of Buildings” (and its subsequent updates) established a general regulatory framework’s methodology for calculation of minimum energy requirements. Since then, the aim of fulfilling new directives and protocols has led the energy policies in several countries in a similar direction that is, focusing on the need of increasing energy efficiency in buildings, taking measures to reduce energy consumption, and fostering the use of renewable sources. Zero Energy Buildings or Net Zero Energy Buildings will become a standard in the European building industry and in order to balance energy consumption, buildings, in addition to reduce the end-use consumption should necessarily become selfenergy producers. For this reason, the façade system plays an important role for achieving these energy and environmental goals and Photovoltaic can play a leading role in this challenge. To promote the use of photovoltaic technology in buildings, international research programs encourage and support solutions, which favors the complete integration of photovoltaic devices as an architectural element, the so-called BIPV (Building Integrated Photovoltaic), furthermore facing to next future towards net-zero energy buildings. Therefore, the BIPV module/system becomes a multifunctional building layer, not only physically and functionally “integrated” in the building, but also used as an innovative chance for the building envelope design. It has been found in this study that there is still a lack of useful information about BIPV for architects and designers even though the market is providing more and more interesting solutions, sometimes comparable to the existing traditional building systems. However at the moment, the lack of an harmonized regulation and standardization besides to the non-accuracy in the technical BIPV datasheets (not yet comparable with the same ones available for building materials), makes difficult for a designer to properly evaluate the fesibility of this BIPV components when used as a technological system of the building skin. International organizations are working to establish the most suitable standards and test procedures to check the safety, feasibility and reliability of BIPV systems. Anyway, nowadays, there are no specific rules for a complete characterization and evaluation of a BIPV component according to the European Construction Product Regulation, CPR 305/2011. BIPV products, as building components, must comply with different practical aspects such as mechanical resistance and stability; structural integrity; safety in use; protection against weather (rain, snow, wind, hail); fire and noise: aspects that have become essential requirements in the perspective of more and more environmentally sustainable, healthy, energy efficient and economically affordable products. IEC standards, commonly used in Europe to certify PV modules (IEC 61215 and IEC 61646 respectively crystalline and thin-film ‘Terrestrial PV Modules-Design Qualification and Type Approval’), attest the feasibility and reliability of PV modules for a defined period of time with a limited power decrease. There is also a standard (IEC 61853, ‘Performance Testing and Energy Rating of Terrestrial PV Modules’) still under preparation, whose aim is finding appropriate test procedures and methodologies to calculate the energy yield of PV modules under different climate conditions. Furthermore, the lack of tests in specific conditions of installation (e.g. façade BIPV devices) means that it is difficult knowing the exact effective performance of these systems and the environmental conditions in which the building will operate. The nominal PV power at Standard Test Conditions, STC (1.000 W/m2, 25 °C temperature and AM 1.5) is usually measured in indoor laboratories, and it characterizes the PV module at specific conditions in order to be able to compare different modules and technologies on a first step. The “Watt-peak” is not enough to evaluate the panel performance in terms of Watt-hours of various modules under different operating conditions, and it gives no assurance of being able to predict the energy performance of a certain module at given environmental conditions. A proper BIPV element for façade should take into account thermal and insulation properties, factors as transparency to allow solar gains if possible or a good solar control if necessary, aspects that are linked and high dependent on climate conditions and on the level of comfort to be reached. However, the influence of different façade integrated photovoltaic solutions on the building energy consumption is not easy to assess under real operating conditions. Thermal aspects, indoor temperatures or luminance level that can be expected using building integrated PV (BIPV) modules are not well known. As said before, integrated photovoltaic BIPV components and the use of renewable energy is already a standard for green energy production, but would also be important to know the possible contribution to improve the comfort and health of building occupants. Comfort, light transmission or protection, thermal insulation or thermal/electricity power production are aspects that are usually considered alone, while all together contribute to the building global energy balance. Besides, the need to prioritize a particular building envelope orientation to harvest the most benefit from the electrical or thermal energy production, in the case of active and passive systems respectively might be not compatible, but also not necessary. A holistic approach is needed to enable architects and engineers implementing technological systems working in synergy. A new concept have been suggested: “C-BIPV, conscious integrated BIPV”. BIPV systems have to be “consciously integrated” which means that it is essential to know the positive and negative effects in terms of comfort and energy under real operating conditions. Purpose of the work, method and results The façade-integrated photovoltaic systems are often glass solutions easily integrable, as they usually are custommade. These BIPV semi-transparent components integrated as a window element provides natural lighting and shade that prevents overheating at times of excessive heat, but as static component, likewise avoid the possible solar gains contributions in the cold months. In addition, the temperature of the module varies considerably in certain circumstances influenced by the PV technology installed, solar radiation, mounting system, lack of ventilation, etc. This factor may result in additional heat input in the building highly variable and difficult to quantify. In addition, further insights into the indoor environmental comfort in buildings using integrated photovoltaic technologies are needed to open up thereby, a new research perspective. This research aims to study their behaviour through a series of experiments in order to define the real influence on comfort aspects and on global energy building consumption, as well as, electrical and thermal characteristics of these devices. The final objective was to analyze a whole set of issues that influence the global energy consumption/production in a building using BIPV modules by quantifying the global energy balance and the BIPV system real performances. Other qualitative issues to be studied were comfort aspect (thermal and lighting aspects) and the electrical behaviour of different BIPV technologies for vertical integration, aspects that influence both energy consumption and electricity production. Thus, it will be possible to obtain a comprehensive global characterization of BIPV systems. A specific design of an outdoor test facility, the BIPV Env-lab “BIPV Test Laboratory”, for the integral characterization of different BIPV semi-transparent modules was developed and built. The method and test protocol for the BIPV characterization was also defined in a real building context and weather conditions. This has been possible once assessed the state of the art and research, the aspects that influence the architectural integration and the different possibilities and types of integration for PV and after having examined the test methods for building and photovoltaic components, under operation conditions heretofore used. The test laboratory that consists in two equivalent test rooms (1:1) has a monitoring system in which reliable data of thermal, daylighting and electrical performances can be obtained for the evaluation of PV modules. The experimental set-up facility (testing room) allows studying three different aspects that affect building energy consumption and comfort issues: the thermal indoor comfort, the lighting comfort and the energy performance of BIPV modules tested under real environmental conditions. Knowing the energy balance for each experimented solar technology, it is possible to determine which one performs best. A theoretical methodology has been proposed for evaluating these parameters, as defined in this thesis as indices or indicators, which regard comfort issues, energy and the overall performance of BIPV components. This methodology considers the existing regulatory standards for each aspect, relating them to one another. A set of insulated glass BIPV modules see-through and light-through, representative of different PV technologies (mono-crystalline silicon technology, mc-Si, amorphous silicon thin film single junction, a-Si and copper indium selenide thin film technology CIS) were selected for a series of experimental tests in order to demonstrate the validity of the proposed characterization method. As result, it has been developed and generated the ICD Integral Characterization Diagram, a graphic and visual system to represent the results and manage information, a useful operational tool for decision-making regarding to photovoltaic installations. This diagram shows all concepts and parameters studied in relation to each other and visually provides access to all the results obtained during the experimental phase to make available all the qualitative and quantitative information on the energy performance of the BIPV components by characterizing them in a comprehensive way.

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Se presenta la tesis doctoral, titulada ‘TRANS Arquitectura. Imaginación, Invención e individuación del objeto tecnico arquitectónico. Transferencia tecnológica desde la Industria del Transporte al Proyecto de Arquitectura [1900-1973]'’, que aborda la relación entre la Arquitectura y el Objeto Técnico durante la Modernidad.1 La temática de la tesis gravita en torno a la cultura técnica, la cultura material y la historia de la Tecnología del siglo XX. Hipótesis Se sostiene aquí la existencia de unas arquitecturas que se definen como Objetos Técnicos. Para demostrarlo se estudia si éstas comparten las mismas propiedades ontológicas de los objetos técnicos. Industria y Arquitectura La historia de la Arquitectura Moderna es la historia de la Industria Moderna y sus instalaciones industriales, sus productos y artefactos o sus procedimientos y procesos productivos. Fábricas, talleres, acerías, astilleros, minas, refinerías, laboratorios, automóviles, veleros, aviones, dirigibles, transbordadores, estaciones espaciales, electrodomésticos, ordenadores personales, teléfonos móviles, motores, baterías, turbinas, aparejos, cascos, chassis, carrocerías, fuselajes, composites, materiales sintéticos, la cadena de montaje, la fabricación modular, la cadena de suministros, la ingeniería de procesos, la obsolescencia programada… Todos estos objetos técnicos evolucionan constantemente gracias al inconformismo de la imaginación humana, y como intermediarios que son, cambian nuestra manera de relacionarnos con el mundo. La Arquitectura, al igual que otros objetos técnicos, media entre el hombre y el mundo. Con el objetivo de reducir el ámbito tan vasto de la investigación, éste se ha filtrado a partir de varios parámetros y cualidades de la Industria, estableciendo un marco temporal, vinculado con un determinado modo de hacer, basado en la ciencia. El inicio del desarrollo industrial basado en el conocimiento científico se da desde la Segunda Revolución Industrial, por consenso en el último tercio del siglo XIX. Este marco centra el foco de la tesis en el proceso de industrialización experimentado por la Arquitectura desde entonces, y durante aproximadamente un siglo, recorriendo la Modernidad durante los 75 primeros años del siglo XX. Durante este tiempo, los arquitectos han realizado transferencias de imágenes, técnicas, procesos y materiales desde la Industria, que ha servido como fuente de conocimiento para la Arquitectura, y ha evolucionado como disciplina. Para poder abordar más razonablemente un periodo tan amplio, se ha elegido el sector industrial del transporte, que históricamente ha sido, no sólo fuente de inspiración para los Arquitectos, sino también fuente de transferencia tecnológica para la Arquitectura. Conjuntos técnicos como los astilleros, fábricas de automóviles o hangares de aviones, individuos técnicos como barcos, coches o aviones, y elementos técnicos como las estructuras que les dan forma y soporte, son todos ellos objetos técnicos que comparten propiedades con las arquitecturas que aquí se presentan. La puesta en marcha de la cadena móvil de montaje en 1913, se toma instrumentalmente como primer foco temporal desde el que relatar la evolución de numerosos objetos técnicos en la Primera Era de la Máquina; un segundo foco se sitúa en 19582, año de la creación de la Agencia Espacial norteamericana (NASA), que sirve de referencia para situar la Segunda Era de la Máquina. La mayoría de los objetos técnicos arquitectónicos utilizados para probar la hipótesis planteada, gravitan en torno a estas fechas, con un rango de más menos 25 años, con una clara intención de sincronizar el tiempo de la acción y el tiempo del pensamiento. Arquitectura y objeto técnico Los objetos técnicos han estado siempre relacionados con la Arquitectura. En el pasado, el mismo técnico que proyectaba y supervisaba una estructura, se ocupaba de inventar los ingenios y máquinas para llevarlas a cabo. Los maestros de obra, eran verdaderos ‘agentes de transferencia tecnológica’ de la Industria y su conocimiento relacionaba técnicas de fabricación de diferentes objetos técnicos. Brunelleschi inventó varia grúas para construir la cúpula de Santa Maria dei Fiori (ca.1461), seguramente inspirado por la reedición del tratado de Vitruvio, De Architectura (15 A.C.), cuyo último capítulo estaba dedicado a las máquinas de la arquitectura clásica romana, y citaba a inventores como Archimedes. El arquitecto florentino fue el primero en patentar un invento en 1421: una embarcación anfibia que serviría para transportar mármol de Carrara por el río Arno, para su obra en Florencia. J. Paxton. Crystal Palace. London 1851. Viga-columna. Robert McCormick. Cosechadora 1831. 2ª patente, 1845. La Segunda Revolución Industrial nos dejó un primitivo ejemplo moderno de la relación entre la Arquitectura y el objeto técnico. El mayor edificio industrializado hasta la fecha, el Crystal Palace de Londres, obra de Joseph Paxton, fue montado en Londres con motivo de la Gran Exposición sobre la Industria Mundial de 1851, y siempre estará asociado a la cosechadora McCormick, merecedora del Gran Premio del Jurado. De ambos objetos técnicos, podrían destacarse características similares, como su origen industrial, y ser el complejo resultado de un ensamblaje simple de elementos técnicos. Desde la entonces, el desarrollo tecnológico ha experimentado una aceleración continuada, dando lugar a una creciente especialización y separación del conocimiento sobre las técnicas antes naturalmente unidas. Este proceso se ha dado a expensas del conocimiento integrador y en detrimento de la promiscuidad entre la Industria y la Arquitectura. Este es, sin lugar a dudas, un signo consustancial a nuestro tiempo, que provoca un natural interés de los arquitectos y otros tecnólogos, por las transferencias, trans e inter-disciplinareidades que tratan de re-establecer los canales de relación entre los diferentes campos del conocimiento. La emergencia de objetos técnicos como los vehículos modernos a principios del siglo XX (el automóvil, el trasatlántico, el dirigible o el aeroplano) está relacionada directamente con la Arquitectura de la Primera Era de la Máquina. La fascinación de los arquitectos modernos por aquellas nuevas estructuras habitables, se ha mantenido durante más de un siglo, con diferente intensidad y prestando atención a unos objetos técnicos u otros, oscilando entre el dominio del valor simbólico de los vehículos como objetosimágenes, durante el periodo heroico de la Primera Era de la Máquina, y la mirada más inquisitiva durante la Segunda, que perseguía un conocimiento más profundo de la organización de los mismos y del sistema técnico en el que estaban incluidos. La relación homóloga que existe entre arquitecturas y vehículos, por su condición de estructuras habitables, es algo de sobra conocido desde que Le Corbusier utilizara aquellas imágenes de barcos, coches y aviones para ilustrar su manifiesto Vers une architecture, de 1923. Los vehículos modernos han sido los medios con los que transmitir los conceptos que ansiaban transformar las propiedades tradicionales de la Arquitectura, relativas a su factura, su habitabilidad, su duración, su funcionalidad o su estética. Destaca particularmente el caso del automóvil en las décadas de los años 30 y 50, y los vehículos del programa espacial en las décadas de los 60 y 70. El conocimiento y la documentación previa de estos hechos, fueron un buen indicio para identificar y confirmar que el sector industrial del transporte, era un especialmente trascendente y fértil proveedor de casos de transferencia tecnológica para la Arquitectura. La tradición Moderna inaugurada por Le Corbusier en los años 20, ha sido mantenida y defendida por una multitud de arquitectos modernos como Albert Frey, Richard Neutra, Ralph Soriano, Charles Eames o Craig Ellwood, cuyo trabajo, animado por el legado de anteriores tecnólogos como Bucky Fuller o Jean Prouvé, fue fundamental y referencia obligada para la siguiente generación de arquitectos como Cedric Price, Archigram, Norman Foster, Richard Rogers, Renzo Piano, Jean Kaplicky o Richard Horden, entre otros. Todos ellos han contribuido a engrosar el imaginario del objeto técnico, aportando sus obras arquitectónicas. Estos arquitectos que aparecen repetidamente en el discurrir de la tesis, pertenecen a un mismo linaje, y son agrupados según una estructura ‘genealógica’, que se ha denominado ‘Estirpe Técnica’. Unidos por intereses comunes y similares enfoques o actitudes ante el proyecto de arquitectura, entendida como objeto Técnico, han operado mediante la práctica de la transferencia tecnológica, sin limitarse a las técnicas compositivas propias de la disciplina arquitectónica. Durante la investigación, se ha recopilado una selección de menciones explícitas -hechas por arquitectos- sobre otros objetos técnicos para referirse a la Arquitectura, mostrando las constantes y las variaciones de sus intereses a lo largo del siglo, lo que nos ha llevado a conclusiones como por ejemplo, que los conjuntos técnicos (fábricas de zepelines, aviones, automóviles o trasatlánticos) eran tomados por los arquitectos de la primera Modernidad, como un modelo imaginario, formal y compositivo, mientras que los de la Segunda Era de la Máquina los tomaban como modelo espacial y organizativo para la arquitectura. La mencionada estirpe de tecnólogos incluye líneas de descendencia conocidas, como: EiffelSuchovBehrens GropiusMiesLeCorbusierLodsProuve, en la Europa continental, o una rama británica como: LoudonPaxtonWilliamsStirlingGowan SmithsonsPriceArchigramFosterRogersPiano KaplickyHorden. También podemos encontrar conexiones intercontinentales como Fuller EamesRudolphFosterRogers, o ramificaciones menos previsibles como: LeRicolaisKahn PianoKaplicky, o LeCorbusierFreyLacaton Vassal… Seguramente muchos más merecerían incluirse en esta lista, y de hecho, la tesis asume la imposibilidad de incluirlo todo (por motivos prácticos) aunque contempla la posibilidad de ser ampliada en un futuro. Con lo aquí incluido, se pretende mostrar la continuidad en los enfoques, planteamientos y técnicas de proyectos aplicadas, de los que podemos deducir algunas conclusiones, como por ejemplo, que en los periodos inmediatamente posteriores a las dos Guerras Mundiales, aumentó la intensidad de aportaciones de nuevas imágenes de vehículos, al imaginario del objeto técnico utilizado por los arquitectos, a través de publicaciones y exposiciones. Hoy, cien años después de que Ford pusiera en marcha la cadena móvil de montaje, aún encontramos viva esta tradición en las palabras de un arquitecto, Richard Horden, cuyo trabajo porta consigo –como la información embebida en los elementos técnicos- toda una cultura técnica de una tradición moderna. Horden representa uno de los exponentes de la que he denominado estirpe de tecnólogos. Es por ello que he querido concluir la tesis con una entrevista, realizada en Mayo de 2015, en su estudio de Berkeley Square en Londres (ver Apéndices). Guías Para el desarrollo de la presente tesis, se ha tomado, como principal obra de referencia, otra tesis, titulada El modo de existencia de los objetos técnicos, leída y publicada en 1958 por el filósofo francés Gilbert Simondon [1924-89], dedicada a la ontología del objeto técnico. Esta obra enmarca el enfoque intelectual de la tesis, que entronca con la fenomenología, para movilizar una visión particular de la Arquitectura, a la que sirve como modelo de análisis ontológico para estudiar sus procesos de génesis, invención e individuación. Para el desarrollo de éstos, se ha utilizado como complemento bibliográfico, otra obra del mismo autor, titulada Imaginación e invención 1965-66. En cuanto a las fuentes historiográficas disciplinares, se ha elegido utilizar a Reyner P. Banham [1922-1988] y a Martin E. Pawley [1938-2008] como guías a través de la arquitectura del siglo XX. Sus crónicas sobre la Primera y Segunda Era de la Máquina3 y su obra crítica, han servido como índices desde los que reconstruir el imaginario del objeto técnico moderno, y del que aprovisionarse de proyectos y obras de Arquitectura como casos de estudio para la tesis. Estas obras han servido además como índices de otra bibliografía, que ha sido complementaria a la de éstos. Objetivos de la Tesis El principal objetivo de la tesis es demostrar la hipótesis: si una obra de arquitectura puede ser considerada un objeto técnico y bajo qué condiciones, construyendo un criterio que permita reconocer cuándo una obra de Arquitectura responde a la definición de objeto técnico. Otro objetivo es demostrar la importancia y potencia de la Transferencia tecnológica en el proceso evolutivo de la Arquitectura, y para ello se presentan ejemplos de una metodología de proyecto por ensamblaje, que Martin Pawley denominaba ‘Design by Assembly’. También es un objetivo el de reconstruir un Atlas del Imaginario del objeto técnico moderno, con el fin de conocer mejor las causas, razones y finalidades que llevaron a los arquitectos modernos a perseguir una arquitectura como objeto técnico. Este Atlas permite relacionar panópticamente los distintos objetos técnicos entre sí, revelando la verdadera importancia y trascendencia de aquéllos y las arquitecturas con las que se relacionan. En él, las arquitecturas vuelven a situarse en el contexto más extenso y complejo de la industria y la historia de la tecnología, al que siempre pertenecieron. De este modo, éstas son capaces de desvelar todo el conocimiento -en forma de información- que portan en su propio código ‘genético’, desplegando capítulos completos de cultura tecnológica, tan antigua como la Humanidad y en constante y creciente evolución. Estructura de la tesis Tras una Introducción en la que se presentan algunos de los conceptos principales que se instrumentalizan en la tesis sobre la ontología Simondoniana del objeto técnico y sobre la transferencia tecnológica aplicada al proyecto de Arquitectura, el texto principal de la tesis consta de tres partes: La primera se dedica a la Imaginación, una segunda parte a la Invención y una tercera a Individuación o evolución del objeto técnico. Se termina con una Discusión de la tesis y un apartado de Conclusiones. En la Introducción al objeto técnico, éste se define ontológicamente y se distinguen sus diferentes categorías (conjuntos técnicos, individuos técnicos y elementos técnicos). Se explica el proceso de génesis del objeto técnico y sus fases de imaginación, invención e individuación. También se presentan los conceptos de transducción, tecnicidad y sistema técnico, fundamentales para entender el concepto de transferencia tecnológica que se desarrollará después. La concretización, explica el modo particular de individuación y evolución de los objetos técnicos, un proceso por el que las diferentes partes de un objeto técnico, se integran y tienden hacia la propia convergencia. Aquí se comprueba la efectividad del concepto simondoniano de Transducción, como señal o información transmitida y transformada, y se relaciona con la Transferencia Tecnológica - un proceso sinergético, por el que un sector industrial se beneficia del desarrollo de otro sector- a la que se han referido explícitamente arquitectos e historiadores para explicar sus obras, durante la Segunda Era de la Máquina, y que es determinante para el desarrollo de la Industria. La transferencia tecnológica sería la transmisión del conjunto de conocimientos sobre la técnica, que incluyen su esfera fáctica, pero también la esfera sensible de la experiencia. En su aplicación a la arquitectura, las transferencias se han clasificado según tres tipos: Eidéticas, Tectónicas, Orgánicas. En la primera parte dedicada a la Imaginación del objeto técnico arquitectónico se realiza una reconstrucción ‘arqueológica’ –y parcial- del imaginario del objeto técnico moderno, con la intención de conocer mejor su génesis y la relación con otros objetos técnicos. Las fuentes de ese imaginario se buscan en las instalaciones de la Industria de principios de siglo XX, en particular en las fábricas de vehículos, con la finalidad de comprobar hasta qué punto, esos objetos técnicos fueron importantes para imaginar la Arquitectura moderna. La reconstrucción se continúa hasta la Segunda Era de la Máquina, cuando una nueva mirada más inquisitiva y precisa, se dirige a otras fábricas, vehículos y componentes, interesándose por sus cualidades materiales y organizativas. Transferencias Eidéticas, que operan desde un conocimiento intuitivo y son útiles para transmitir información sobre la esencia de un objeto técnico que sirve de fuente. Conceptos abstractos se transmiten por medio de las imágenes—objeto, para producir una transformación en su equivalente arquitectónico. Fruto de la investigación, se han detectado un grupo de conceptos que han sido objeto de transferencias tecnológicas de naturaleza eidética, provenientes del imaginario del objeto técnico moderno: FABRICADO, HABITABLE, FUNCIONAL, EFICIENTE, OBSOLESCENTE y BELLO. En la segunda parte dedicada a la Invención del objeto técnico arquitectónico, las transferencias también pueden ser Tectónicas, cuando lo que se transmite es una técnica constructiva o estructural aplicada mediante MATERIALES artificiales (como los metales, los composites como el ferrocemento, y el plywood, o las aleaciones como el aluminio) o mediante el ensamblaje de ESTRUCTURAS o partes componentes de otro objeto técnico, (como cascos, fuselajes, carrocerías o aparejos) y tiene como resultado la invención de un nuevo objeto técnico arquitectónico. En la tercera parte dedicada a la individuación, se abordan las transferencias ORGÁNICAS, lo que se transfiere es una técnica organizativa, aplicada a través de PROCEDIMIENTOS que definen la actividad del arquitecto como tecnólogo e inventor de objetos técnicos. Estos procedimientos tienen un efecto transformador en tres instituciones tradicionales para la Arquitectura: la Escuela, el Estudio y la Obra, y sus resultados se resumen en nuevos modelos de organización de la Educación de la Arquitectura, con la aparición de los Talleres de proyectos; nuevos modelos de organización del ejercicio de arquitecto: la Oficina técnica; nuevos modelos de organización del espacio, basados en la organización espacial de la Industria, que da lugar a patrones o Matrices espaciales; un nuevo modelo de organización del proyecto, que utiliza las herramientas gráficas de la industria y el ensamblaje como metodología; y un nuevo modelo de producción arquitectónica, basado en la Industrialización. Tras explicar los conceptos y la génesis del ensamblaje y el montaje, se presenta el proyecto por ensamblaje (Design by assembly) como un método que promueve la invención arquitectónica. Se demuestra utilizando algunos casos analizados en la tesis, en los que se ha realizado alguna transferencia conceptual, constructiva u organizativa. Tras analizar las arquitecturas estudiadas en la tesis, se ha utilizado el método genético propuesto por Simondon para comprender cada evolución particular, reconstruyendo las líneas genealógicas hasta sus ancestros, e identificando una serie de linajes genéticos, que corresponderían con los conjuntos técnicos estudiados en la tesis: el astillero, la fábrica de coches, y la fábrica de aeronaves: los Ancestros de la Modernidad. Los sistemas de organización espacial de estos conjuntos técnicos, están directamente relacionados con el objeto técnico que se produce en él. A partir de ellos se definen una serie de matrices operativas (MILL, SHOP, SHED), que sirven para hacer una taxonomía del objeto técnico arquitectónico. Esto se ejemplifica con algunos proyectos de Norman Foster, Richard Rogers, Renzo Piano, Nicholas Grimshaw, Jean Kaplicky y Richard Horden. Tesis: Comprobación de la hipótesis Simondon definía ontológicamente el Objeto técnico como aquello de lo que existe génesis y que desarrolla una tendencia hacia la solidaridad y unidad. Para que una Arquitectura pueda ser reconocida como un Objeto técnico, se deben dar una serie de condiciones, en las sucesivas fases que intervienen en su modo de existencia: Imaginación. Estas arquitecturas remiten a un imaginario protagonizado por imágenes-objeto de otros objetos técnicos (conjuntos técnicos, individuos técnicos y elementos técnicos). Esas imágenes-objeto vehiculizan una transferencia eidética de los objetos técnicos que simbolizan. Invención. Estas arquitecturas son el resultado de transferencias tectónicas, que se producen durante el proceso de proyecto, mediante el ensamblaje de materiales, componentes o procedimientos, utilizados en la industria para la producción de otros objetos técnicos. Individuación. Estas arquitecturas evolucionan y se individualizan por concretización, un proceso por el que los objetos técnicos se organizan para seguir su tendencia hacia la integración de sus partes, con el fin de alcanzar la convergencia de funciones en una única estructura. Esta integración tiende hacia la naturalización del objeto técnico, mediante la inclusión simbiótica de sus medios naturales asociados. En este caso, veremos cómo se ha producido transferencias orgánicas, o lo que es lo mismo, cómo los objetos técnicos –en el nivel de los conjuntos técnicos- se han tomado como modelo de organización por la arquitectura. Tras comprobar que de ellas existe una génesis, que evoluciona por las fases de imaginación e invención y concretización, se analiza su imaginario, su materialidad, sus estructuras y su organización, con el fin de detectar patrones y principios organizativos comunes a otros objetos técnicos. Interés de la tesis Desde el comienzo del nuevo siglo, diversos autores han demostrado un renovado interés por definir qué es el proyecto, qué lo constituye para qué sirve. Las aproximaciones al tema provienen de la filosofía analítica (Galle, 2008) o de la filosofía de la tecnología (Verbeek, 2005; Vermaas, 2009) y a menudo versan sobre la relación entre diseño y la cultura material (Dorschel 2003, Boradkar 2010 o Preston 2012). Es importante indicar el reciente y también creciente interés suscitado por la obra del filósofo francés, Gilbert Simondon [1924-1989], reconocida por su importante contribución a la filosofía de la técnica y la fenomenología, y por la influencia en el pensamiento de filósofos como Gilles Deleuze, autor presente en multitud de tesis doctorales e investigaciones teóricas llevadas a cabo en las principales escuelas de Arquitectura de todo el mundo desde los años 90 hasta el presente. La reedición y traducción de la obra de Simondon (ing. 1980, esp. 2008) ha recibido la atención de filósofos actuales como Paolo Virno, Bruno Latour o Bernard Stiegler, que siguen recurriendo a su estudio y análisis para avanzar en su pensamiento, estando por tanto presente en el debate contemporáneo sobre la técnica. Tras su reciente traducción al español, el pensamiento de Simondon ha despertado un gran interés en América Latina, como demuestra la organización de varios congresos y simposios, así como la proliferación de publicaciones en torno a su obra y pensamiento. Las futuras traducciones del resto de sus principales obras, asegurarán una introducción cada vez mayor en la comunidad académica. Se ha procurado presentar una mirada alternativa de la Historia de la Arquitectura Moderna, utilizando como guía a un cronista como Reyner Banham. La Era de la Máquina se ha cruzado con la Mecanología y el “vitalismo técnico” de Simondon, obteniendo como resultado una interpretación fresca, renovada y optimista de algunas de las más importantes obras de Arquitectura del siglo XX, que seguro contribuirán al desarrollo de la del siglo XXI, inmerso ya en el cambio de paradigma hacia la sostenibilidad y la ecología. ABSTRACT 'TRANS architecture. Imagination, invention and technical individuation of the architectural technical object. Technology transfer from the Transport Industry to Architectural Design [1900- 1973]' is a thesis dealing with the relationship between Architecture and the Technical Object during Modernity5. The theme of the thesis revolves around the technical culture, material culture and the history of twentieth-century technology. Hypothesis Held here is the existence of some architectures defined as technical objects. A study has been developed to prove if those architectures share the ontological properties of a technical object. Industry and Architecture The history of Modern Architecture is also the history of modern industry and its facilities, its products and devices, its procedures and production processes. Factories, workshops, steel mills, shipyards, mines, refineries, laboratories, cars, yachts, airplanes, airships, shuttles, space stations, home appliances, personal computers, mobile phones, motors, batteries, turbines, rigs, hulls, chassis, bodies, fuselages , composites and synthetic materials, the assembly line, modular manufacturing, the supply chain, process engineering, the planned obsolescence ... All these technical objects are constantly evolving thanks to the inconsistency of the human imagination and, as our intermediates, keep changing our way of relating and being in the world. Architecture, alike other technical objects, mediates between man and the World. In order to frame the vast field of the research, it has been filtered according to various parameters and qualities of Industry, establishing also a time frame which is related to a particular science-based way of making. The start of an industrial development, based on scientific knowledge is given from the Second Industrial Revolution -by consensus on the last third of the nineteenth century. This frame puts the focus of the thesis in the process of industrialization experienced by the Architecture of at least one century, and tours through Modernity during the first 75 years of the twenieth century. During this time, architects have made transfers of images, techniques, processes and materials from Industry, serving as a source of knowledge and thus allowing Architecture to evolve as a discipline. To reasonably address the enormous scope of the thesis, the industrial sector of transportation has ben chosen. It is not only a historical source of inspiration for architects, but also a traditional source of technology transfer for Modern Architecture. Technical sets such as shipyards, automobile factories or aircraft hangars, technical individuals as boats, cars or planes, and technical elements like the structures shaping and supporting them, are all technical objects which share properties with the architectures here presented. The launch of the moving assembly line in 1913, is instrumentally taken as a first time focus, from which to describe the evolution of many technical objects in the First Machine Age; a second focus could be found in 19586, year of the creation of the North American Space Agency (NASA), serving as a reference to the Second Machine Age. Most architectural technical objects used to test the hypothesis, gravitate around this second focus, in a range of plus or minus 25 years, with a clear intention to synchronize the time for action and time of thought. Architecture and Technical Object Technical objects have always been related to Architecture. In the past, the same technician who planned and oversaw a building structure, invented the devices and machines to carry them out. The foremen were the true 'technology transfer agents' from Industry. Their knowledge naturally related different manufacturing techniques to make diverse technical objects. Brunelleschi invented various cranes to build the dome of Santa Maria dei Fiori in Florence (ca.1461). Probably inspired by the reedition of Vitruvius’ treaty De Architectura (15 BC), whose last chapter was dedicated to the machines of classical Roman architecture and quoted inventors as Archimedes, the florentine architect was the first to patent an invention in 1421: an amphibious craft serving as a means of transportation for Carrara marble along the Arno river. At the daw of the Second Industrial Revolution, whose development was based on the scientific knowledge, we find a primitive modern example of the relationship between Architecture and a Technical Object: The Crystal Palace, built in London for the Great Exhibition of 1851 World Industry and designed by Joseph Paxton, was the largest to date industrialized building, and it will be always associated with the McCormick Reaper, worthy of the Grand Jury’s Prize. Similar characteristics could be emphasized of both technical objects, such as their industrial origin and for being be the complex result of a simple assembly of technical elements. Since then, technological development has experienced a continued acceleration, resulting in an increasing specialization and separation of knowledge about techniques which were naturally attached in the past. This process has happened at the expense of an integrative knowledge and against promiscuity between Industry and Architecture. This is, undoubtedly, an inherent sign of our time, which causes the natural and interest of architects and other technicians about transfers, trans-disciplinarity and inter-disciplinarity, as a reaction to reestablish channels of relationships between these different fields of knowledge. The emergence of technical objects as modern vehicles in the early twentieth century (the car, the Ocean liner, the airship or the airplane) is directly related to the Architecture of the First Machine Age. Modern architects’ fascination for those new ‘inhabitable’ structures has been maintained for over a century, with different intensity and paying attention to one and other technical objets, ranging from the domain of the symbolic value of the vehicles as objectsimages, during heroic period of the First Machine Age, to the more inquisitive glance characterizing the Second Machine Age, which sought a deeper understanding of the organization of such objects and the technical system to which they belonged. The periods immediately following both World Wars, showed a concentrated effort to bring new images of vehicles to the imaginary of architects, by means of publications and exhibitions. The homologous relationship between architectures and vehicles, in their capacity as living structures, is something well known since Le Corbusier used the images of cars, boats and airplanes to illustrate his manifesto, Towards an architecture in 1923. Modern vehicles have been the means by which to convey the concepts eager to transform the traditional attributes of Architecture: those relating to its manufacture, habitability, duration, functionality or aesthetics. The automobile stands out during the 30s and 50s, and the new vehicles of the Space Program satnd in the 60s and 70s. The prior knowledge and documentation of these events were a good indication to identify the industrial sector of Transportation as one of especial importance and as a fertile provider of technology transfer cases for Architecture. The Modern tradition, inaugurated by Le Corbusier in the 20s, has been maintained and defended by a host of modern architects like Albert Frey, Richard Neutra, Ralph Soriano, Charles Eames and Craig Ellwood, whose work - inspired by the legacy of previous technologists as Bucky Fuller or Jean Prouvé- was fundamental and a mandatory reference for the next generation of architects like Cedric Price, Archigram, Norman Foster, Richard Rogers, Renzo Piano, Jean and Richard Horden Kaplicky, among others. They have all contributed to increase the imaginary of the technical object, adding to it their architectural works. In the passage of the thesis, we repeatedly find a number of architects, who have been grouped according to a 'genealogical' structure, which has been called 'Technical Lineage'. Gathered by common interests and similar views or attitudes to the architectural design, understood as a technical object, they have operated through the practice of technology transfer, without limiting itself to specific compositional techniques of the architectural discipline. During the investigation, a selection of explicit references made by those architects, about other technical objects referring to their Architecture, has been compiled, showing constants and variations in their interests throughout the century, which has led to conclusions such as, having technicians sets (zeppelins factories, airships factories, car factories and shipyards) been taken by the architects of the first Modernity, as their main formal, compositional and imaginary models, while the Second Machine Age had taken them as a spatial and organizational model for their architecture. The above mentioned lineage of technologists includes weel-known ‘seed lines’ as: Eiffel- Suchov-Behrens, Gropius-Mies-LeCorbusier- Lods-Prouve, in continental Europe; British branches as Loudon-Paxton-Williams-Stirling- Gowan-Smithsons-Price-Archigram-Foster- Rogers-Piano-Kaplicky-Horden. And we could also find intercontinental connections as Fuller- Eames-Rudolph-Foster-Rogers, or other less predictable ramifications as LeRicolais-Kahn Piano-Kaplicky, or LeCorbusier-Frey-Lacaton & Vassal... Many more would surely deserve to be included in this list, and indeed, the thesis assumes the impossibility of including them all (for practical reasons) and even contemplates possible future extensions. The material included herein is to demonstrate the continuity in the approaches, statements and in the applied architectural design techniques, from which we can draw some conclusions. Today, one hundred years after Ford put up the moving assembly line, we still find this tradition alive in the words of the architect Richard Horden, whose work carries with it –as with the information embedded in every technical element- the whole techncial culture of a modern tradition. Horden is represented here as one of the exponents of what I have called the lineage of technologists. That is why I wanted to conclude the thesis with an interview to Richard Horden, held in May 2015 in his studio in London's Berkeley Square (see Appendices). Guides For the development of this thesis, another thesis, entitled: The mode of existence of technical objects, is taken as the main reference work. Read and published in 1958 by the French philosopher Gilbert Simondon [1924- 1989], it was dedicated to the ontology of the technical object. This work frames the intellectual approach of the thesis, which connects with phenomenology to mobilize a particular vision of Architecture. It is used as a model of ontological analysis to study its genesis, invention and evolutionary processes. To develop these, another work by the same author, titled Imagination and Invention (1965- 1966) has been used as a bibliographical complement. As for the disciplinary historical sources, Reyner P. Banham [1922-1988] and Martin E. Pawley [1938-2008] have been chosen as guides through the modern Architecture of the twentieth century. Their cronical reports on the First and Second Machine Age and their critical works have served as an index from which to reconstruct the imaginary of the modern technical object in the Machine Age7, and to stock up on projects and works of architecture, used as case studies for the thesis. These works have also been used as triggers for other literatures, which has been complementary to the former. Objectives of the Thesis The main objective of the thesis is to prove its hypothesis: if a work of architecture can be considered a technical object and under what conditions, building then a criterion for recognizing when a work of architecture meets the definition of a technical object. Another aim is to demonstrate the importance and power of Technology Transfer in the evolutionary process of Architecture, and to do it, some examples of a methodology for architectural design that Martin Pawley called 'Design by Assembly' are presented. It is also an objective to reconstruct an Atlas of the imaginary of the modern technical object, in order to better understand the causes, reasons and purposes that led modern architects to pursue architecture as a technical object. This Atlas allows to panoptically relate the various technical objects, revealing the true importance and significance of those and the architecture with whom they interact. Architectures are again at the largest and most complex industrial context and the history of technology, which always belonged. Thus, they are able to reveal all the knowledge-in the shape of information-carried in their own 'genetic' code, displaying full chapters of technological culture as old as mankind and constantly growing and evolving. Thesis: Proving the Hypothesis Simondon ontologically defined the technical object as ‘that of which genesis exists’ and that develops ‘a tendency towards solidarity and unity’. For an architecture to be recognized as a technical object, a number of conditions should be given, in the successive phases involved in their mode of existence: Imagination. These architectures refer to an imaginary featuring images-object other technical objects (technical sets, technical individuals and technical elements). These images are the means to an eidetic transfer of the technical objects which they symbolize. Invention. These architectures are the result of tectonic transfers, which occur during the architectural design process, by assembling materials, components or procedures used in industry for the production of other technical objects. Individuation. These architectures evolve and are individualized by ‘concretization’, a process leading to the full integration of its parts and aiming the full convergence of its functions into a single structure. This integration tends towards the naturalization of the technical object, by means of a symbiotic incorporation of their associated milieus. After checking if there is a genesis of them, which evolves through the phases of imagination and invention and concretization, their imaginary, materiality, structure and organization are analyzed in order to detect patterns and common organizational principles to other technical objects counterparts. Structure The main text of the thesis consists of three parts. Before there is an Introduction to the main concepts that are exploited in the thesis on ontology Simondonian technical object, and technology transfer applied to Architecture. Then a first part covers the Imaginary of the modern technical object, a second part is dedicated to the Invention and a third part to the individuation process The thesis ends with a section for the Discussion and the Conclusions. The Introduction to the technical object, this is ontologically defined and its different categories are distinguished. The process of genesis of the technical object and the phases of imagination, invention and indivuation are explained. Concepts as Transduction, Technicality and Technical system are presented for being fundamental to understand the concept of Technology Transfer that will take place later. The concretization is explained as the particular mode of individuation and evolution of technical objects, a process by which the different parts of a technical object, are integrated and begin a tendency towards a convergence in itself. The first part, dedicated to the Imagination of the architectural technical object presents a parcial "archaeological" reconstruction the imaginary of the modern technical object, intended to better understand its genesis and the relationship with other technical objects. The imaginary sources are searched in the premises of the Industry of the early twentieth century, and particularly in the factories of modern vehicles, in order to see, to what extent these technical objects were important to imagine modern architecture. The reconstruction is continued until the Second Machine Age, when a new, more inquisitive and precise gaze turns to other factories, other vehicles and other components and materials, inquiring now about their organizational qualities. The second part is devoted to the Invention of the architectural technical object. The effectiveness of the simondonian concept of Transduction is checked: a transmitted and transformed sign or information, which relates to Technology Transfer, a synergetic process by which an industrial sector benefits from the development of another sector, to which some architects and historians have explicitly referred to explain their works during Machine Age, and which is crucial for the development of the industry. Technology transfer would be the transmission of a set of information or knowledge about technique, including the factual sphere of technique, but also the sensitive sphere of experience. In their application to Architecture, these transfers have been classified according to three types: Eidetic, Tectonic and Organic. Eidetic Transfers operate from an intuitive knowledge and are useful for transmitting information about the essence of the technical object serving as a source. Abstract concepts are transmitted through the object-images to produce an equivalent transformation in Architecture. A group of concepts that have been the subject of technology transfers of eidetic nature, and have been originated in the imaginary of the modern technical object, have been detected as a result of the research: FABRICATED, INHABITABLE, FUNCTIONAL, EFFICIENT, OBSOLESCENT, and BEAUTIFUL. The transfers can also be Tectonic when, that which is transferred is a constructive or structural technique, applied through artificial MATERIALS such as metals, composites as the ferrocement, or plywood, or alloys such as aluminum; or by means of the assembly of STRUCTURES or parts of other technical objects such as hulls, fuselages, car bodies or rigs, resulting in the invention of a new architectural technical object. In the case of ORGANIC transfers, what is transferred is an organizational technique, applied by means of a set of PROCEDURES defining the activity of the architect as a technologist and inventor of technical objects. These procedures have a transformative effect on three traditional institutions for Architecture: the School, the Atelier and the Work, and the results are summarized in new models of organization of the Education of Architecture, with the onset of the Architectural Design Studios or workshops; new models of organization of the practice of architect: the technical office; and new models of space organization, based on the spatial organization of the industry, resulting in spatial patterns or spatial matrices; a new model of organization of the project, which uses graphical tools and industrail protocols as the assembly as a methodology; a new model of architectural production based on the industrialization. After explaining the concepts and the genesis of assembly and montage, Design by assembly is presented as a method that promotes architectural invention, and is shown using some case studies analyzed in the thesis, in which there has been made some conceptual, constructive or organizational transfer. After analyzing the architectures studied in the thesis, genetic method proposed by Simondon was used to understand every particular evolution, reconstructing their genealogical lines up to their ancestors, identifying a series of genetic lineages, which correspond to the technical sets studied in the thesis : the shipyard, the car factory, and aircraft factory. The real ancestors of Modernity. The spatial organization systems of these technical sets are directly related to the technical object that is fabricated within them. From that point, a number of operational matrices are defined (MILL, SHOP, SHED) and used to make a taxonomy of the architectural technical object. This is exemplified by some projects by architects as Norman Foster, Richard Rogers, Renzo Piano, Nicholas Grimshaw, Jean and Richard Horden Kaplicky. Interest of the thesis Since the beginning of the new century, several authors have shown a renewed interest in defining what a project is, how it is constituted and what it is for. The approaches to the subject are brought from analytic philosophy (Galle, 2008) or from the philosophy of technology (Verbeek, 2005; Vermaas, 2009) and they often speak about the relationship between design and material culture (Dorschel 2003, 2010 or Preston Boradkar 2012). It is also important to note the recent and growing interest in the work of French philosopher Gilbert Simondon [1924-1989], mainly known for its important contribution to the philosophy of technology and phenomenology of the technical object, and the influence on the thinking of contemporary philosophers as Paolo Virno, Bruno Latour or Gilles Deleuze, being the latter a author present in many doctoral theses and theoretical research conducted at major architecture schools around the world since the 90s to the present. The republication and translation of the work of Simondon (eng. 1980, spn. 2008) has received the attention from current philosophers such as Bernard Stiegler who continues to use its study and analysis to advance his thinking, thus being present in the contemporary debate about the technique. After its recent translation into Spanish, the thought of Simondon has aroused great interest in Latin America, as evidenced by the organization of various conferences and symposia, as well as the proliferation of publications about his work and thought8. Future translations of the rest of his major works, will ensure increased introduction in the academic community. Efforts have been made to present an alternative view of the History of Modern Architecture, using a reporter as Reyner P.Banham as a guide. The Machine Age intersects Simondon’s mechanology and his "technical vitalism", resulting in a fresh, renewed and optimistic interpretation of some of the most important works of Architecture of the twentieth century, which will surely contribute to the development of this century’s Architecture, already immersed in the paradigm shift towards sustainability and ecology.

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For the average citizen and the public, "earthquake prediction" means "short-term prediction," a prediction of a specific earthquake on a relatively short time scale. Such prediction must specify the time, place, and magnitude of the earthquake in question with sufficiently high reliability. For this type of prediction, one must rely on some short-term precursors. Examinations of strain changes just before large earthquakes suggest that consistent detection of such precursory strain changes cannot be expected. Other precursory phenomena such as foreshocks and nonseismological anomalies do not occur consistently either. Thus, reliable short-term prediction would be very difficult. Although short-term predictions with large uncertainties could be useful for some areas if their social and economic environments can tolerate false alarms, such predictions would be impractical for most modern industrialized cities. A strategy for effective seismic hazard reduction is to take full advantage of the recent technical advancements in seismology, computers, and communication. In highly industrialized communities, rapid earthquake information is critically important for emergency services agencies, utilities, communications, financial companies, and media to make quick reports and damage estimates and to determine where emergency response is most needed. Long-term forecast, or prognosis, of earthquakes is important for development of realistic building codes, retrofitting existing structures, and land-use planning, but the distinction between short-term and long-term predictions needs to be clearly communicated to the public to avoid misunderstanding.

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Building Information Modelling (BIM) provides a shared source of information about a built asset, which creates a collaborative virtual environment for project teams. Literature suggests that to collaborate efficiently, the relationship between the project team is based on sympathy, obligation, trust and rapport. Communication increases in importance when working collaboratively but effective communication can only be achieved when the stakeholders are willing to act, react, listen and share information. Case study research and interviews with Architecture, Engineering and Construction (AEC) industry experts suggest that synchronous face-to-face communication is project teams’ preferred method, allowing teams to socialise and build rapport, accelerating the creation of trust between the stakeholders. However, virtual unified communication platforms are a close second-preferred option for communication between the teams. Effective methods for virtual communication in professional practice, such as virtual collaboration environments (CVE), that build trust and achieve similar spontaneous responses as face-to-face communication, are necessary to face the global challenges and can be achieved with the right people, processes and technology. This research paper investigates current industry methods for virtual communication within BIM projects and explores the suitability of avatar interaction in a collaborative virtual environment as an alternative to face-to-face communication to enhance collaboration between design teams’ professional practice on a project. Hence, this paper presents comparisons between the effectiveness of these communication methods within construction design teams with results of further experiments conducted to test recommendations for more efficient methods for virtual communication to add value in the workplace between design teams.

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This layer is a georeferenced raster image of the historic paper map entitled: Uebersichtsplan zur Banordnung für den Stadtkreis Cöln. It was published by Wilh. Gross in 1905. Scale 1:15,000. Covers Cologne, Germany. Map in German. The image inside the map neatline is georeferenced to the surface of the earth and fit to the Deutsches Hauptdreiecksnetz (DHDN) 3-degree Gauss-Kruger Zone 2 coordinate system. All map collar and inset information is also available as part of the raster image, including any inset maps, profiles, statistical tables, directories, text, illustrations, index maps, legends, or other information associated with the principal map. This map shows features such as roads, railroads, drainage, building zones, built-up areas and selected buildings, fortification, and more. Includes legend of zones. This layer is part of a selection of digitally scanned and georeferenced historic maps from The Harvard Map Collection as part of the Imaging the Urban Environment project. Maps selected for this project represent major urban areas and cities of the world, at various time periods. These maps typically portray both natural and manmade features at a large scale. The selection represents a range of regions, originators, ground condition dates, scales, and purposes.

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The Arabellion is now in its fourth year. There is more freedom today, but less security. There are far more opportunities, but fewer jobs. And there is a patchwork of conflicts. In many places though the Arab world is tentatively moving towards democracy and the social market economy. Although there have been some difficulties along the way, European assistance for the transformation process is moving in the right direction. Still, the EU could certainly do more on the political level.

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Notwithstanding the failure on February 15th of the second round of the Geneva II talks on Syria, Luigi Scazzieri and Steven Blockmans take note in this CEPS commentary of several welcome signs that the international community as a whole is starting to move in a more coordinated manner on the Syrian peace process.

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If a set of investors plan a grand apartment building in which they can each afford just one apartment, they need an architect to design a building that is both affordable and that meets all their needs, to negotiate with the constructor, and to ensure follow-up. When building capabilities for European defence, the sole possible architect is the European Defence Agency (EDA). Those who have to reach consensus and invest are the EU Member States. And there is even a European Investment Bank (EIB) to assist them.

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On the basis of the success of the two previous waves of European Union enlargement to post-communist states, EU accession is the international community's solution for ending the state-building impasse in Bosnia and Herzegovina. Through a literature review of analysis of the recent EU enlargements, this paper compares those countries' experiences with the current situation in Bosnia, and raises questions about the ability of the EU to address state-building issues through the accession process. The paper concludes that the previous enlargements do not provide a model for state-building in Bosnia. Because the EU's attempts to help along the process of state building in Bosnia is a new type of policy project, the paper proposes how the enlargement process might be adapted to address the specific problems in Bosnia, particularly in terms using human rights norms to compel Bosnian leaders to adopt necessary reforms.

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In the aftermath of the crisis, new instruments of economic governance have been adopted at the EU level. Until recently, these have been strongly dominated by what I assume to be the ECFIN coalition. However, at least since 2011, this coalition’s supremacy has been challenged by the competing coalition’s (EPSCO) willingness to rebalance the economic governance so that social concerns are better taken into account. Hence, drawing on the agenda-setting literature in the EU context, this working paper aims at retracing the process that has led to put this issue of the social dimension of the EMU on to the EU political agenda. Three hypotheses are made concerning the rise of this issue, the strategies employed by agenda-setters, and the policy subsystem of the economic governance. First, this study shows that the interest in this issue has been gradually fostered ‘from below’, at the level of the European Parliament and the European Commission. Second, due to its ‘high politics’ nature, this issue could only be initiated ‘from above’ (European Council) and then expanded to lower levels of decision-making (Commission). Specifically, DG EMPL has managed to attract attention to this issue and to build its credibility in dealing with it by strategically framing the issue and directing it towards the EPSCO venue. Finally, I analyze the outcome of this agenda-setting process by assessing to what extent the two new social scoreboards which form part of this social dimension have been taken into account during the 2014 European semester. The result of this analysis is that the new economic governance has not been genuinely rebalanced insofar as its dominant policy core remains that of the ECFIN coalition.

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With the EU-enlargement process well underway, this paper focuses on social citizenship as a conceptual frame for analyzing the restructuring of social institutions in applicant countries in East Central Europe. So far, comparative welfare state analysis has concentrated mainly on the developed economies of the OECD-countries; there is little systematic analytical work on the transitions in post-communist Europe. Theoretically, this paper builds on comparative welfare state analysis as well as on new institutionalism. The initial hypothesis is built on the assumption that emerging patterns of social support and social security diverge from the typology described in the comparative welfare state literature inasmuch as the transformation of postcommunist societies is distinctly different from the building of welfare states in Europe. The paper argues that institutionbuilding is shaped by and embedded in the process of European integration and part of governance in the EU. Anticipating full membership in the European Union, the applicant countries have to adapt to the rules and regulations of the EU, including the "social acquis." Therefore, framing becomes an important feature of institutional changes. The paper seeks to identify distinct patterns and problems of the institutionalization of social citizenship.

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In this CEPS Commentary, economists Anton Brender, Florence Pisani and Daniel Gros challenge the foundation on which the European Commission launched a key debate earlier this year on the development of the EU’s financial system, with publication of its Green Paper "Building a Capital Markets Union". While acknowledging that a single capital market could be useful in the European Union, they argue that it is extremely dangerous to conduct one and the same monetary policy in an area with broadly varying financial practices and structures – as the first 15 years of the euro area's history have vividly shown. They conclude that financial integration of the countries in EMU must receive top priority in a process that the rest of the European Union may then subsequently join.

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European Union energy policy calls for nothing less than a profound transformation of the EU's energy system: by 2050 decarbonised electricity generation with 80-95% fewer greenhouse gas emissions, increased use of renewables, more energy efficiency, a functioning energy market and increased security of supply are to be achieved. Different EU policies (e.g., EU climate and energy package for 2020) are intended to create the political and regulatory framework for this transformation. The sectorial dynamics resulting from these EU policies already affect the systems of electricity generation, transportation and storage in Europe, and the more effective the implementation of new measures the more the structure of Europe's power system will change in the years to come. Recent initiatives such as the 2030 climate/energy package and the Energy Union are supposed to keep this dynamic up. Setting new EU targets, however, is not necessarily the same as meeting them. The impact of EU energy policy is likely to have considerable geo-economic implications for individual member states: with increasing market integration come new competitors; coal and gas power plants face new renewable challengers domestically and abroad; and diversification towards new suppliers will result in new trade routes, entry points and infrastructure. Where these implications are at odds with powerful national interests, any member state may point to Article 194, 2 of the Lisbon Treaty and argue that the EU's energy policy agenda interferes with its given right to determine the conditions for exploiting its energy resources, the choice between different energy sources and the general structure of its energy supply. The implementation of new policy initiatives therefore involves intense negotiations to conciliate contradicting interests, something that traditionally has been far from easy to achieve. In areas where this process runs into difficulties, the transfer of sovereignty to the European level is usually to be found amongst the suggested solutions. Pooling sovereignty on a new level, however, does not automatically result in a consensus, i.e., conciliate contradicting interests. Rather than focussing on the right level of decision making, European policy makers need to face the (inconvenient truth of) geo-economical frictions within the Union that make it difficult to come to an arrangement. The reminder of this text explains these latter, more structural and sector-related challenges for European energy policy in more detail, and develops some concrete steps towards a political and regulatory framework necessary to overcome them.

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In March 2011, the governments of Kosovo and Serbia started a dialogue that was intended to lead to the normalisation of mutual relations. This process, launched under the pressure of the EU, was aimed at building up confidence between the parties and resolving the everyday problems of the Serbian and Albanian communities, and as a consequence, reducing tension in the Western Balkans. The start of talks between representatives of the antagonist countries was the breakthrough that led to the Kosovo government gaining control over the whole of its territory, the establishment of a border (or ‘administrative boundary line’, as Belgrade calls it), and the start of the process of subordinating the Kosovo Serbian institutions to the authorities in Prishtina. Serbia also lifted its trade blockade on Kosovo, and allowed Prishtina to join the regional organisations. As a result, progress has been made in the process of integration of both states with the EU: Serbia has started accession negotiations, and Kosovo has signed a Stabilisation and Association Agreement (SAA).

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In modern democratic systems, usually no single collective actor is able to decisively influence political decision-making. Instead, actors with similar preferences form coalitions in order to gain more influence in the policy process. In the Swiss political system in particular, institutional veto points and the consensual culture of policy-making provide strong incentives for actors to form large coalitions. Coalitions are thus especially important in political decision-making in Switzerland, and are accordingly a central focus of this book. According to one of our core claims - to understand the actual functioning of Swiss consensus democracy - one needs to extend the analysis beyond formal institutions to also include informal procedures and practices. Coalitions of actors play a crucial role in this respect. They are a cornerstone of decision-making structures, and they inform us about patterns of conflict, collaboration and power among actors. Looking at coalitions is all the more interesting in the Swiss political system, since the coalition structure is supposed to vary across policy processes. Given the absence of a fixed government coalition, actors need to form new coalitions in each policy process.