11 resultados para Electric load rejection


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Sustainable Construction, Materials and Practice, p. 426-432

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A Work Project, presented as part of the requirements for the Award of a Masters Degree in Finance from the NOVA – School of Business and Economics

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A Work Project, presented as part of the requirements for the Award of a Masters Degree in Finance from the NOVA – School of Business and Economics

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

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Dissertação para obtenção do Grau de Mestre em Engenharia Civil – Perfil de Estruturas

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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

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Na sequência do panorama económico atual, existe cada vez mais uma tendência de redução de custos e de, em simultâneo, obter a eficiência energética desejada, mais concretamente no setor dos edifícios, uma vez que este tem um peso bastante considerável nos consumos totais em Portugal e na Europa. Existem variadas formas de atuar neste sentido nomeadamente ao nível dos equipamentos e sistemas instalados, bem como, nos hábitos e comportamentos dos ocupantes. Com esse intuito, muitas empresas têm desenvolvido mecanismos ou formas de minimizar os gastos, nomeadamente em termos de consumos elétricos. Dentro dos possíveis caminhos para se alcançar esse objetivo, surgem os sistemas de monitorização e os sistemas de gestão técnica centralizada. O objetivo de reduzir a discrepância entre a fatura que se paga pela eletricidade e o que realmente consiste numa necessidade de consumo é atualmente uma preocupação real. Desta forma, o desenvolvimento de soluções com capacidade para garantir a redução do erro na tomada de decisão bem como as que tornem possível o acompanhamento do desempenho de toda a instalação em detalhe e em tempo real são áreas nas quais se tem e se vai continuar a investir. É por isso, realmente importante, perceber onde e porquê se consome mais e é um desafio alterar esse panorama e continuar a realizar a monitorização dos registos. Para tal, a empresa Schneider Electric tem instaladas estações de medida, mais concretamente analisadores de energia, nos seus quadros elétricos, de forma a conseguir percecionar os consumos de forma mais detalhada e direcionada, ou seja, permitindo visualizar dados de todas as frações do piso. 281 Esta dissertação tem como objetivo a avaliação dos consumos de eletricidade de forma detalhada, tendo como objeto de estudo o edifício onde está sediada a empresa Schneider Eletric, de forma detalhada e a posterior identificação de hábitos ou fatores que influenciem os mesmos da forma não pretendida. Tem ainda o objetivo de avaliar o comportamento da técnica solar passiva utilizada no referido edifício. Desta forma será possível saber, não só o perfil de consumos e respetivos impactos bem como sugerir possíveis ajustes que levem a uma maior eficiência energética. Os resultados deste estudo deverão permitir às pessoas responsáveis pela entidade tomar decisões assentes em informação concreta e detalhada.

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Zero valent iron nanoparticles (nZVI) are considered very promising for the remediation of contaminated soils and groundwaters. However, an important issue related to their limited mobility remains unsolved. Direct current can be used to enhance the nanoparticles transport, based on the same principles of electrokinetic remediation. In this work, a generalized physicochemical model was developed and solved numerically to describe the nZVI transport through porous media under electric field, and with different electrolytes (with different ionic strengths). The model consists of the Nernst–Planck coupled system of equations, which accounts for the mass balance of ionic species in a fluid medium, when both the diffusion and electromigration of the ions are considered. The diffusion and electrophoretic transport of the negatively charged nZVI particles were also considered in the system. The contribution of electroosmotic flow to the overall mass transport was included in the model for all cases. The nZVI effective mobility values in the porous medium are very low (10−7–10−4 cm2 V−1 s−1), due to the counterbalance between the positive electroosmotic flow and the electrophoretic transport of the negatively charged nanoparticles. The higher the nZVI concentration is in the matrix, the higher the aggregation; therefore, low concentration of nZVI suspensions must be used for successful field application.

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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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The EM3E Master is an Education Programme supported by the European Commission, the European Membrane Society (EMS), the European Membrane House (EMH), and a large international network of industrial companies, research centres and universities (http://www.em3e.eu)

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Microbial electrolysis cells (MECs) are an innovative and emerging technique based on the use of solid-state electrodes to stimulate microbial metabolism for wastewater treatment and simultaneous production of value-added compounds (such as methane). This research studied the performance of a two-chamber MEC in terms of organic matter oxidation (at the anode) and methane production (at the cathode). MEC‟s anode had been previously inoculated with an activated sludge, whereas the cathode chamber inoculum was an anaerobic sludge (containing methanogenic microorganisms). During the experimentation, the bioanode was continuously fed with synthetic solutions in anaerobic basal medium, at an organic load rate (OLR) of around 1 g L-1 d-1, referred to the chemical oxygen demand (COD). At the beginning (Run I), the feeding solution contained acetate and subsequently (Run II) it was replaced with a more complex solution containing soluble organic compounds other than acetate. For both conditions, the anode potential was controlled at -0.1 V vs. standard hydrogen electrode, by means of a potentiostat. During Run I, over 80% of the influent acetate was anaerobically oxidized at the anode, and the resulting electric current was recovered as methane at the cathode (with a cathode capture efficiency, CCE, accounting around 115 %). The average energy efficiency of the system (i.e., the energy captured into methane relative to the electrical energy input) under these conditions was over 170%. However, reactor‟s performance decreased over time during this run. Throughout Run II, a substrate oxidation over 60% (on COD basis) was observed. The electric current produced (57% of coulombic efficiency) was also recovered as methane, with a CCE of 90%. For this run the MEC‟s average energy efficiency accounted for almost 170 %. During all the experimentation, a very low biomass growth was observed at the anode whereas ammonium was transferred through the cationic membrane and concentrated at the cathode. Tracer experiments and scanning electron microscopy analyses were also carried out to gain a deeper insight into the reactor performance and also to investigate the possible reasons for partial loss of performance. In conclusion, this research suggests the great potential of MEC to successfully treat low-strength wastewaters, with high energy efficiency and very low sludge production.