982 resultados para micro power generator


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This paper proposes a new methodology to control the power flow between a distributed generator (DG) and the electrical power distribution grid. It is used the droop voltage control to manage the active and reactive power. Through this control a sinusoidal voltage reference is generated to be tracked by voltage loop and this loop generates the current reference for the current loop. The proposed control introduces feed-forward states improving the control performance in order to obtain high quality for the current injected to the grid. The controllers were obtained through the linear matrix inequalities (LMI) using the D-stability analysis to allocate the closed-loop controller poles. Therefore, the results show quick transient response with low oscillations. Thus, this paper presents the proposed control technique, the main simulation results and a prototype with 1000VA was developed in the laboratory in order to demonstrate the feasibility of the proposed control. © 2012 IEEE.

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Two-stage isolated converters for photovoltaic (PV) applications commonly employ a high-frequency transformer on the DC-DC side, submitting the DC-AC inverter switches to high voltages and forcing the use of IGBTs instead of low-voltage and low-loss MOSFETs. This paper shows the modeling, control and simulation of a single-phase full-bridge inverter with high-frequency transformer (HFT) that can be used as part of a two-stage converter with transformerless DC-DC side or as a single-stage converter (simple DC-AC inverter) for grid-connected PV applications. The inverter is modeled in order to obtain a small-signal transfer function used to design the PResonant current control regulator. A high-frequency step-up transformer results in reduced voltage switches and better efficiency compared with converters in which the transformer is used on the DC-DC side. Simulations and experimental results with a 200 W prototype are shown. © 2012 IEEE.

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In this work, experimental results are reported for a small scale cogeneration plant for power and refrigeration purposes. The plant includes a natural gas microturbine and an ammonia/water absorption chiller fired by steam. The system was tested under different turbine loads, steam pressures and chiller outlet temperatures. An evaluation based on the 1st and 2nd Laws of Thermodynamics was also performed. For the ambient temperature around 24°C and microturbine at full load, the plant is able to provide 19 kW of saturated steam at 5.3 bar (161 °C), corresponding to 9.2 kW of refrigeration at -5 °C (COP = 0.44). From a 2nd law point-of-view, it was found that there is an optimal chiller outlet temperature that maximizes the chiller exergetic efficiency. As expected, the microturbine presented the highest irreversibilities, followed by the absorption chiller and the HRSG. In order to reduce the plant exergy destruction, it is recommended a new design for the HRSG and a new insulation for the exhaust pipe. © 2013 Elsevier Ltd. All rights reserved.

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Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES)

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Pós-graduação em Agronomia (Energia na Agricultura) - FCA

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Pós-graduação em Agronomia (Energia na Agricultura) - FCA

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Pós-graduação em Engenharia Mecânica - FEG

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Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES)

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Devido não ser comum o estudo de sistemas de potência em plantas reais como usinas hidrelétricas por causa dos riscos e custos que envolvem sua operação, dá-se preferência pela realização computacional de modelos matemáticos desse tipo de planta na resolução de problemas, desenvolvimento de novas tecnologias e formação de recursos humanos. No entanto, modelos realizados computacionalmente não proveem a experiência, visual, auditiva e tátil que um modelo físico real pode oferecer. Portanto, neste trabalho, apresenta-se a descrição e a modelagem de um sistema de geração em escala reduzida de 10kVA, que é um sistema físico real, composto por um motor CC, um gerador síncrono e transformadores, chamado também de sistema micromáquina, o qual faz parte da infraestrutura do Laboratório de Engenharia Elétrica da UFPA. Para este sistema, por intermédio deste trabalho de mestrado e do trabalho de mestrado de Moraes (2011), foram desenvolvido subsistemas eletrônicos e computacionais de acionamento, automação e controle para operá-lo de forma segura resultando em uma excelente plataforma didática para dar suporte às pesquisas em dinâmica e controle de sistemas de potência, bem como o desenvolvimento de trabalhos acadêmicos e de ensino. Nesse mesmo contexto, é apresentada uma proposta de técnica de emulação de turbina hidráulica, tendo como base o controle de potência aplicado ao motor CC do sistema micromáquina. Tal técnica foi desenvolvida principalmente com o propósito de dar suporte ao estudo e desenvolvimento de técnicas de regulação de velocidade de turbinas hidráulicas. Consequentemente, também é apresenta uma proposta de um regulador de velocidade digital para turbinas hidráulicas baseado na estrutura canônica RST de controle digital, cujos parâmetros são projetados por duas técnicas de projeto estudadas neste trabalho: o método de alocação polinomial de polos e o projeto de compensadores por atraso de fase pelo método de resposta em frequência para sistemas discretos. Logo para comprovar a eficácia das ferramentas de hardware, software e teóricas desenvolvidas neste trabalho, resultados de experimentos realizados no sistema micromáquina são apresentados e analisados.

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Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES)

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The energy crisis has affected many countries. With the growing warning with the emission in the atmosphere and the lack of resources, the seek for sustainable sources for energy genaration have become even bigger. Some Countries, as Germany, started first in this journey, creating an incentive program to self-generation with renewable sources (wind, photovoltaics, biomass, etc.), giving priority for smaller plants. In Germany the program called EEG started in 2004. In Brazil, since the beggining of 2012, the self-generators did not know how they could be beneficted for self-generation, and self-generation didn't become commun in the country. However, with NR 482, of April 17th, 2012, the parameters were defined, and the self-generator could have a guideline. Therewith, studyies can be redirected for a better knowlegde of the conditions the self-generator will be sujected, in addition to Germany's case as reference to compare with Brazil's case. In this paper these studies are made, focused in wind power (wind turbines) and photovoltaic panels

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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)

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The theory presented in this paper was primarily developed to give a physical interpretation for the instantaneous power flow on a three-phase induction machine, without a neutral conductor, on any operational state and may be extended to any three-phase load. It is a vectorial interpretation of the instantaneous reactive power theory presented by Akagi et al. Which, believe the authors, isn't enough developed and its physical meaning not yet completely understood. This vectorial interpretation is based on the instantaneous complex power concept defined by Torrens for single-phase, ac, steady-state circuits, and leads to a better understanding of the power phenomenon, particularly of the distortion power. This concept has been extended by the authors to three-phase systems, through the utilization of the instantaneous space vectors. The results of measurements of instantaneous complex power on a self-excited induction generator's terminals, during an over-load application transient, are presented for illustration. The compensation of reactive power proposed by Akagi is discussed and a new horizon for the theory application is opened.

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This work describes the development of an electro-mechanical micro-discharges device operating at ambient condition of pressure and temperature, capable to produce plasma jets for surface finishing. The discharges are produced through a needle shape electrode hollow cathode type by which flows the helium gas. The voltage applied on the electrode is provided for an AC/AC switching voltage converter of full-bridge topology. The converter is energized by a power line of 110/220 VAC, 60 Hz and gives a 1000 V peak-to-peak from 5 kHz to 40 kHz square waveform output. The output frequency is defined by a control signal provided by an external signal generator. The equipment setup includes output acquisition of voltage and current and a photo-detector for photo-electrical measurements, which allows an optical characterization of the plasma jet