10 resultados para Electric energy systems


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The summer school “Renewable Energy Systems: Role and Use of Parliamentary Technology Assessment” was the first European Summer School with a pure focus on technology assessment. The aim of the three-day long summer school of the European project Parliaments and Civil Society in Technology Assessment (PACITA) was to create awareness of the potential of technology groups in Europe. Therefore, the summer school involved keynotes, practical exercises, mutual reflection, cutting edge training and networking to deal with the theme of renewable energy systems out of the perspective of Technology Assessment (TA), to meet transition objectives or to critically assess energy technologies.

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Based on the presentation and discussion at the 3rd Winter School on Technology Assessment, December 2012, Universidade Nova de Lisboa (Portugal), Caparica Campus, PhD programme on Technology Assessment

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Based on the report for the unit “Project IV” of the PhD programme on Technology Assessment under the supervision of Dr.-Ing. Marcel Weil and Prof. Dr. António Brandão Moniz. The report was presented and discussed at the Doctorate Conference on Technologogy Assessment in July 2013 at the University Nova Lisboa, Caparica campus.

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Scarcity of fuels, changes in environmental policy and in society increased the interest in generating electric energy from renewable energy sources (RES) for a sustainable energy supply in the future. The main problem of RES as solar and wind energy, which represent a main pillar of this transition, is that they cannot supply constant power output. This results inter alia in an increased demand of backup technologies as batteries to assure electricity system safety. The diffusion of energy storage technologies is highly dependent on the energy system and transport transition pathways which might lead to a replacement or reconfiguration of embedded socio-technical practices and regimes (by creating new standards or dominant designs, changing regulations, infrastructure and user patterns). The success of this technology is dependent on hardly predictable future technical advances, actor preferences, development of competing technologies and designs, diverging interests of actors, future cost efficiencies, environmental performance, the evolution of market demand and design and evolution of our society.

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Dissertação para obtenção do Grau de Mestre em Engenharia Física

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A crescente atenção revelada pelas sociedades nos últimos anos, no que respeita à sustentabilidade energética do planeta, tornou-se o principal impulsionador para o desenvolvimento de formas de exploração de energia que contribuem para a redução dos gases com efeito de estufa. A energia geotérmica de baixa entalpia (Shallow Geothermal Energy–SGE) é um dos tipos de energia verde utilizados para aquecimento e arrefecimento de edifícios. Nas últimas décadas, tem vindo a demonstrar uma elevada eficácia energética e aplicabilidade em diversos países em todo o mundo. Aos sistemas convencionais de exploração abertos e fechados, seguiram-se os sistemas com estruturas de fundações termoactivas. A Suíça e Áustria foram os países pioneiros onde se iniciou a exploração utilizando este tipo de estruturas, primeiro com recurso a lajes de fundo e depois, em 1984, através de estacas. A utilização generalizada de fundações de forma bi-funcional poderá resultar numa compensação sustentável dos seus custos de implementação. No entanto, é necessário conhecer de forma sólida o comportamento geotécnico dos solos face à imposição das diferentes acções térmicas provocadas pelos Sistemas Geotérmicos de Baixa Entalpia. A eficácia dos Ground Energy Systems (GES) está directamente associada à capacidade que os solos apresentam para fornecer ou dissipar calor. O desempenho dos GES e a sua eficiência está ainda por avaliar relativamente às condições existentes em Portugal. As propriedades térmicas dos solos são um desses aspectos, sendo da maior relevância na avaliação do seu desempenho. Nesta dissertação são abordados os diferentes mecanismos de transferência de calor nos solos bem como propriedades térmicas necessárias para a sua caracterização. Apresenta-se também um caso prático, para o qual foi realizada caracterização térmica e posterior modelação numérica de uma estrutura termoactiva, determinando-se os campos de temperaturas máximos e mínimos e os fluxos térmicos provocados pelo seu funcionamento.

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To find sustainable solutions for the production of energy, it is necessary to create photovoltaic technologies that make every photon count. To pursue this necessity, in the present work photodetectors of zinc oxide embedded with nano-structured materials, that significantly raise the conversion of solar energy to electric energy, were developed. The novelty of this work is on the development of processing methodologies in which all steps are in solution: quantum dots synthesis, passivation of their surface and sol-gel deposition. The quantum dot solutions with different capping agents were characterized by UVvisible absorption spectroscopy, spectrofluorimetry, dynamic light scattering and transmission electron microscopy. The obtained quantum dots have dimensions between 2 and 3nm. These particles were suspended in zinc acetate solutions and used to produce doped zinc oxide films with embedded quantum dots, whose electric response was tested. The produced nano-structured zinc oxide materials have a superior performance than the bulk, in terms of the produced photo-current. This indicates that an intermediate band material should have been produced that acts as a photovoltaic medium for solar cells. The results are currently being compiled in a scientific article, that is being prepared for possible submission to Energy and Environmental Science or Nanoscale journals.

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The way in which electricity networks operate is going through a period of significant change. Renewable generation technologies are having a growing presence and increasing penetrations of generation that are being connected at distribution level. Unfortunately, a renewable energy source is most of the time intermittent and needs to be forecasted. Current trends in Smart grids foresee the accommodation of a variety of distributed generation sources including intermittent renewable sources. It is also expected that smart grids will include demand management resources, widespread communications and control technologies required to use demand response are needed to help the maintenance in supply-demand balance in electricity systems. Consequently, smart household appliances with controllable loads will be likely a common presence in our homes. Thus, new control techniques are requested to manage the loads and achieve all the potential energy present in intermittent energy sources. This thesis is focused on the development of a demand side management control method in a distributed network, aiming the creation of greater flexibility in demand and better ease the integration of renewable technologies. In particular, this work presents a novel multi-agent model-based predictive control method to manage distributed energy systems from the demand side, in presence of limited energy sources with fluctuating output and with energy storage in house-hold or car batteries. Specifically, here is presented a solution for thermal comfort which manages a limited shared energy resource via a demand side management perspective, using an integrated approach which also involves a power price auction and an appliance loads allocation scheme. The control is applied individually to a set of Thermal Control Areas, demand units, where the objective is to minimize the energy usage and not exceed the limited and shared energy resource, while simultaneously indoor temperatures are maintained within a comfort frame. Thermal Control Areas are overall thermodynamically connected in the distributed environment and also coupled by energy related constraints. The energy split is performed based on a fixed sequential order established from a previous completed auction wherein the bids are made by each Thermal Control Area, acting as demand side management agents, based on the daily energy price. The developed solutions are explained with algorithms and are applied to different scenarios, being the results explanatory of the benefits of the proposed approaches.

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Dissertação para obtenção do Grau de Mestre em Engenharia Electrotécnica e Computadores

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Paper presented at the Colloquium Gerpisa 2013, Paris (http://gerpisa.org/node/2085), Session n°: 19 New kinds of mobility: old and new business models