976 resultados para Optical multi-channel analyzer
Resumo:
Thin films of TiO2 were doped with Au by ion implantation and in situ during the deposition. The films were grown by reactive magnetron sputtering and deposited in silicon and glass substrates at a temperature around 150 degrees C. The undoped films were implanted with Au fiuences in the range of 5 x 10(15) Au/cm(2)-1 x 10(17) Au/cm(2) with a energy of 150 keV. At a fluence of 5 x 10(16) Au/cm(2) the formation of Au nanoclusters in the films is observed during the implantation at room temperature. The clustering process starts to occur during the implantation where XRD estimates the presence of 3-5 nm precipitates. After annealing in a reducing atmosphere, the small precipitates coalesce into larger ones following an Ostwald ripening mechanism. In situ XRD studies reveal that Au atoms start to coalesce at 350 degrees C, reaching the precipitates dimensions larger than 40 nm at 600 degrees C. Annealing above 700 degrees C promotes drastic changes in the Au profile of in situ doped films with the formation of two Au rich regions at the interface and surface respectively. The optical properties reveal the presence of a broad band centered at 550 nm related to the plasmon resonance of gold particles visible in AFM maps. (C) 2011 Elsevier B.V. All rights reserved.
Resumo:
As recentes e crescentes modificações no sector eléctrico, tanto nacional como mundial, tornam actualmente os mercados de electricidade um caso de estudo singular e interessante. De facto, o desenvolvimento de ferramentas de análise que permitem avaliar a evolução dos comportamentos que estes mercados adoptam face à dinâmica das suas constantes transformações é, à partida, uma mais valia para as suas principais entidades. Muitas vezes os negociadores deste sector ficam satisfeitos com o resultado final. Contudo, se investigarmos mais minuciosamente, dinheiro e recursos são desperdiçados e potenciais ganhos permanecem por descobrir. Uma negociação automática, que utilize agentes computacionais autónomos, promete um elevado nível de eficiência e acordos de maior qualidade. Muitos modelos de mercado actuais são simulados através de ferramentas computacionais, algumas das quais baseadas em tecnologia multi-agente. Esta dissertação apresenta um simulador que permite ajudar a resolver vários problemas inerentes à contratação bilateral de energia. O simulador envolve dois agentes do mercado de retalho, um comprador e um vendedor de energia eléctrica, e suporta a negociação bilateral multidimensional. Cada agente tem no seu portefólio um conjunto de opções que modelam o seu comportamento individual. A essas opções dá-se o nome de estratégias de negociação. O simulador é composto por estratégias de concessão e imitativas. As estratégias de concessão ditam a velocidade de cedência que cada agente terá, enquanto que as estratégias imitativas têm em conta o comportamento passado do oponente, antes da formulação de uma nova oferta. A validação experimental do simulador foi efectuada através da realização de uma experiência computacional. O método experimental consistiu na experimentação controlada. A experiência teve como principal objectivo validar as estratégias através da verificação, em computador, de um conjunto de hipóteses formuladas através de diversas observações e conclusões da negociação real. Os resultados confirmaram as hipóteses, permitindo concluir que a estratégia de concessão baseada no volume de energia conduz a um melhor benefício para ambos os negociadores, enquanto que a estratégia de concessão baseada na prioridade dos itens conduz à troca de um maior número de propostas negociais.
Resumo:
Nos últimos anos, o sector elétrico tem sofrido profundas alterações decorrentes do processo de reestruturação. Como consequência, surgiram diferentes estruturas de mercado, tais como em bolsa, contratos bilaterais e mistos, tendo como objectivo o aumento da competitividade. Nos mercados competitivos, os consumidores de electricidade podem escolher livremente os seus fornecedores de energia, em função de possíveis vantagens económicas e da qualidade do serviço. A comercialização de electricidade pode ser realizada em mercados organizados ou através de contratação bilateral entre comercializadores e consumidores. Actualmente, existem várias ferramentas de simulação baseadas em técnicas multiagente que permitem modelar, parcialmente ou na totalidade, os mercados de electricidade, possibilitando simulações de negociação de preços e volumes através de contratos bilaterais, transacções em bolsas de energia, etc. No entanto, estas ferramentas apresentam algumas limitações devido à complexidade dos sistemas elétricos. Neste contexto, esta dissertação tem como principal objectivo desenvolver um simulador de contratos bilaterais em mercados de energia elétrica, baseado na tecnologia multi-agente. O simulador inclui dois tipos de entidades: retalhistas e consumidores de electricidade com diferentes perfis de carga. Além disso, é composto por várias estratégias de negociação, que têm como objectivo maximizar o benefício dos agentes retalhistas e minimizar o custo dos consumidores finais de electricidade. Uma das estratégias, referente ao consumidor, é direccionada para a eficiência no consumo, sendo baseada na conhecida técnica de Participação Activa dos Consumidores (ou Demand Response). O teste do simulador foi efectuado através da resolução de dois casos práticos, baseados em dados do MIBEL. De forma sucinta, os resultados obtidos com as estratégias permitem concluir que os intervenientes no mercado apresentam um comportamento esperado na gestão de preços e volumes de energia, constatando-se que a ferramenta desenvolvida constitui um auxiliar importante à tomada de decisão inerente à negociação bilateral em mercados de electricidade.
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Neste trabalho são apresentados o dimensionamento e os resultados comparativos para um edifício de serviços (escritórios), na vertente económica de aquisição, instalação, exploração e manutenção, de um sistema de climatização a água, com um sistema de climatização a volume de refrigerante variável como alternativa. Utilizando um software de simulação dinâmica para determinar as cargas térmicas a que o edifício em estudo estará sujeito, de forma a dimensionar um sistema de climatização que respeite os regulamentos em vigor pelo actual sistema de certificação energética, foram dimensionados os dois sistemas de climatização dentro dos acima indicados, tento sido efectuados vários estudos comparativos, por forma a poderem ser futuramente utilizados como base de definição do sistema a adotar por parte dos projetistas do ramo.
Resumo:
This paper describes the development and the implementation of a multi-agent system for integrated diagnosis of power transformers. The system is divided in layers which contain a number of agents performing different functions. The social ability and cooperation between the agents lead to the final diagnosis and to other relevant conclusions through integrating various monitoring technologies, diagnostic methods and data sources, such as the dissolved gas analysis.
Resumo:
Effective legislation and standards for the coordination procedures between consumers, producers and the system operator supports the advances in the technologies that lead to smart distribution systems. In short-term (ST) maintenance scheduling procedure, the energy producers in a distribution system access to the long-term (LT) outage plan that is released by the distribution system operator (DSO). The impact of this additional information on the decision-making procedure of producers in ST maintenance scheduling is studied in this paper. The final ST maintenance plan requires the approval of the DSO that has the responsibility to secure the network reliability and quality, and other players have to follow the finalized schedule. Maintenance scheduling in the producers’ layer and the coordination procedure between them and the DSO is modelled in this paper. The proposed method is applied to a 33-bus distribution system.
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The increasing number of players that operate in power systems leads to a more complex management. In this paper a new multi-agent platform is proposed, which simulates the real operation of power system players. MASGriP – A Multi-Agent Smart Grid Simulation Platform is presented. Several consumer and producer agents are implemented and simulated, considering real characteristics and different goals and actuation strategies. Aggregator entities, such as Virtual Power Players and Curtailment Service Providers are also included. The integration of MASGriP agents in MASCEM (Multi-Agent System for Competitive Electricity Markets) simulator allows the simulation of technical and economical activities of several players. An energy resources management architecture used in microgrids is also explained.
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Amorphous Si/SiC photodiodes working as photo-sensing or wavelength sensitive devices have been widely studied. In this paper single and stacked a-SiC:H p-i-n devices, in different geometries and configurations, are reviewed. Several readout techniques, depending on the desired applications (image sensor, color sensor, wavelength division multiplexer/demultiplexer device) are proposed. Physical models are presented and supported by electrical and numerical simulations of the output characteristics of the sensors.
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In this paper we present results on the use of a multilayered a-SiC:H heterostructure as a wavelength-division demultiplexing device for the visible light spectrum. The proposed device is composed of two stacked p-i-n photodiodes with intrinsic absorber regions adjusted to short and long wavelength absorption and carrier collection. An optoelectronic characterisation of the device was performed in the visible spectrum. Demonstration of the device functionality for WDM applications was done with three different input channels covering the long, the medium and the short wavelengths in the visible range. The recovery of the input channels is explained using the photocurrent spectral dependence on the applied voltage. An electrical model of the WDM device is proposed and supported by the solution of the respective circuit equations. Short range optical communications constitute the major application field, however other applications are also foreseen.
Resumo:
The spread and globalization of distributed generation (DG) in recent years has should highly influence the changes that occur in Electricity Markets (EMs). DG has brought a large number of new players to take action in the EMs, therefore increasing the complexity of these markets. Simulation based on multi-agent systems appears as a good way of analyzing players’ behavior and interactions, especially in a coalition perspective, and the effects these players have on the markets. MASCEM – Multi-Agent System for Competitive Electricity Markets was created to permit the study of the market operation with several different players and market mechanisms. MASGriP – Multi-Agent Smart Grid Platform is being developed to facilitate the simulation of micro grid (MG) and smart grid (SG) concepts with multiple different scenarios. This paper presents an intelligent management method for MG and SG. The simulation of different methods of control provides an advantage in comparing different possible approaches to respond to market events. Players utilize electric vehicles’ batteries and participate in Demand Response (DR) contracts, taking advantage on the best opportunities brought by the use of all resources, to improve their actions in response to MG and/or SG requests.
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Renewable based power generation has significantly increased over the last years. However, this process has evolved separately from electricity markets, leading to an inadequacy of the present market models to cope with huge quantities of renewable energy resources, and to take full advantage of the presently existing and the increasing envisaged renewable based and distributed energy resources. This paper proposes the modelling of electricity markets at several levels (continental, regional and micro), taking into account the specific characteristics of the players and resources involved in each level and ensuring that the proposed models accommodate adequate business models able to support the contribution of all the resources in the system, from the largest to the smaller ones. The proposed market models are integrated in MASCEM (Multi- Agent Simulator of Competitive Electricity Markets), using the multi agent approach advantages for overcoming the current inadequacy and significant limitations of the presently existing electricity market simulators to deal with the complex electricity market models that must be adopted.
Resumo:
All over the world Distributed Generation is seen as a valuable help to get cleaner and more efficient electricity. To get negotiation power and advantages of scale economy, distributed producers can be aggregated giving place to a new concept: the Virtual Power Producer. Virtual Power Producers are multitechnology and multi-site heterogeneous entities. Virtual Power Producers should adopt organization and management methodologies so that they can make Distributed Generation a really profitable activity, able to participate in the market. In this paper we address the development of a multi-agent market simulator – MASCEM – able to study alternative coalitions of distributed producers in order to identify promising Virtual Power Producers in an electricity market.
Resumo:
Distributed energy resources will provide a significant amount of the electricity generation and will be a normal profitable business. In the new decentralized grid, customers will be among the many decentralized players and may even help to co-produce the required energy services such as demand-side management and load shedding. So, they will gain the opportunity to be more active market players. The aggregation of DG plants gives place to a new concept: the Virtual Power Producer (VPP). VPPs can reinforce the importance of these generation technologies making them valuable in electricity markets. In this paper we propose the improvement of MASCEM, a multi-agent simulation tool to study negotiations in electricity spot markets based on different market mechanisms and behavior strategies, in order to take account of decentralized players such as VPP.
Resumo:
The increase of distributed generation (DG) has brought about new challenges in electrical networks electricity markets and in DG units operation and management. Several approaches are being developed to manage the emerging potential of DG, such as Virtual Power Players (VPPs), which aggregate DG plants; and Smart Grids, an approach that views generation and associated loads as a subsystem. This paper presents a multi-level negotiation mechanism for Smart Grids optimal operation and negotiation in the electricity markets, considering the advantages of VPPs’ management. The proposed methodology is implemented and tested in MASCEM – a multiagent electricity market simulator, developed to allow deep studies of the interactions between the players that take part in the electricity market negotiations.
Resumo:
This paper presents a new methodology for the creation and management of coalitions in Electricity Markets. This approach is tested using the multi-agent market simulator MASCEM, taking advantage of its ability to provide the means to model and simulate VPP (Virtual Power Producers). VPPs are represented as coalitions of agents, with the capability of negotiating both in the market, and internally, with their members, in order to combine and manage their individual specific characteristics and goals, with the strategy and objectives of the VPP itself. The new features include the development of particular individual facilitators to manage the communications amongst the members of each coalition independently from the rest of the simulation, and also the mechanisms for the classification of the agents that are candidates to join the coalition. In addition, a global study on the results of the Iberian Electricity Market is performed, to compare and analyze different approaches for defining consistent and adequate strategies to integrate into the agents of MASCEM. This, combined with the application of learning and prediction techniques provide the agents with the ability to learn and adapt themselves, by adjusting their actions to the continued evolving states of the world they are playing in.