25 resultados para Iberian pottery

em Instituto Politécnico do Porto, Portugal


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The best places to locate the Gas Supply Units (GSUs) on a natural gas systems and their optimal allocation to loads are the key factors to organize an efficient upstream gas infrastructure. The number of GSUs and their optimal location in a gas network is a decision problem that can be formulated as a linear programming problem. Our emphasis is on the formulation and use of a suitable location model, reflecting real-world operations and constraints of a natural gas system. This paper presents a heuristic model, based on lagrangean approach, developed for finding the optimal GSUs location on a natural gas network, minimizing expenses and maximizing throughput and security of supply.The location model is applied to the Iberian high pressure natural gas network, a system modelised with 65 demand nodes. These nodes are linked by physical and virtual pipelines – road trucks with gas in liquefied form. The location model result shows the best places to locate, with the optimal demand allocation and the most economical gas transport mode: by pipeline or by road truck.

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A major determinant of the level of effective natural gas supply is the ease to feed customers, minimizing system total costs. The aim of this work is the study of the right number of Gas Supply Units – GSUs - and their optimal location in a gas network. This paper suggests a GSU location heuristic, based on Lagrangean relaxation techniques. The heuristic is tested on the Iberian natural gas network, a system modelized with 65 demand nodes, linked by physical and virtual pipelines. Lagrangean heuristic results along with the allocation of loads to gas sources are presented, using a 2015 forecast gas demand scenario.

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The introduction of wind power generation in several countries around the world, including in European countries, where energy policy directives have encouraged the use of renewables, led to several changes in market and power systems operation. The intensive integration of these sources has led to situations in which the demand is lower than the available renewable resources. In these situations a part of the available generation is wasted if not used for storage or to supply additional demand. This paper proposes a real time demand response methodology based on changing the electricity price for the consumers expecting an increase in the demand in the periods in which that demand is lower than the available renewable generation. The consumers response to the changes in electricity price is characterized by their price elasticity of demand considered distinct for each consumer type. The proposed methodology is applied to the Portuguese power system, in the context of the Iberian electricity market (MIBEL). The renewable-based producers are considered as special producers, with special tariffs, and so it is important to use the energy available as it will be paid anyway. In this context, consumers are entities actively participating in the operation of the market.

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In competitive electricity markets with deep concerns for the efficiency level, demand response programs gain considerable significance. As demand response levels have decreased after the introduction of competition in the power industry, new approaches are required to take full advantage of demand response opportunities. Grid operators and utilities are taking new initiatives, recognizing the value of demand response for grid reliability and for the enhancement of organized spot markets’ efficiency. This paper proposes a methodology for the selection of the consumers that participate in an event, which is the responsibility of the Portuguese transmission network operator. The proposed method is intended to be applied in the interruptibility service implemented in Portugal, in convergence with Spain, in the context of the Iberian electricity market. This method is based on the calculation of locational marginal prices (LMP) which are used to support the decision concerning the consumers to be schedule for participation. The proposed method has been computationally implemented and its application is illustrated in this paper using a 937 bus distribution network with more than 20,000 consumers.

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In this paper we study the optimal natural gas commitment for a known demand scenario. This study implies the best location of GSUs to supply all demands and the optimal allocation from sources to gas loads, through an appropriate transportation mode, in order to minimize total system costs. Our emphasis is on the formulation and use of a suitable optimization model, reflecting real-world operations and the constraints of natural gas systems. The mathematical model is based on a Lagrangean heuristic, using the Lagrangean relaxation, an efficient approach to solve the problem. Computational results are presented for Iberian and American natural gas systems, geographically organized in 65 and 88 load nodes, respectively. The location model results, supported by the computational application GasView, show the optimal location and allocation solution, system total costs and suggest a suitable gas transportation mode, presented in both numerical and graphic supports.

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To comply with natural gas demand growth patterns and Europe´s import dependency, the gas industry needs to organize an efficient upstream infrastructure. The best location of Gas Supply Units – GSUs and the alternative transportation mode – by phisical or virtual pipelines, are the key of a successful industry. In this work we study the optimal location of GSUs, as well as determining the most efficient allocation from gas loads to sources, selecting the best transportation mode, observing specific technical restrictions and minimizing system total costs. For the location of GSUs on system we use the P-median problem, for assigning gas demands nodes to source facilities we use the classical transportation problem. The developed model is an optimisation-based approach, based on a Lagrangean heuristic, using Lagrangean relaxation for P-median problems – Simple Lagrangean Heuristic. The solution of this heuristic can be improved by adding a local search procedure - the Lagrangean Reallocation Heuristic. These two heuristics, Simple Lagrangean and Lagrangean Reallocation, were tested on a realistic network - the primary Iberian natural gas network, organized with 65 nodes, connected by physical and virtual pipelines. Computational results are presented for both approaches, showing the location gas sources and allocation loads arrangement, system total costs and gas transportation mode.

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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.

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Como o sector cerâmico é um consumidor intensivo de energia, este trabalho teve como objectivo principal a elaboração de um plano de optimização do desempenho energético da olaria número três da Fábrica Cerâmica de Valadares. Para o efeito, efectuou-se o levantamento energético desta fracção autónoma. O valor total obtido para os ganhos térmicos foi de 8,7x107 kJ/dia, sendo 82% desta energia obtida na combustão do gás natural. Por outro lado, as perdas energéticas rondam os 8,2x107 kJ/dia, sendo o ar de exaustão e a envolvente os principais responsáveis, com um peso de 42 % e 38%, respectivamente. Tendo em conta estes valores, estudaram-se várias medidas de isolamento da cobertura, pavimento, paredes e saída de ar através de fendas do edifício. No caso do isolamento da cobertura sugeriu-se a substituição das telhas de fibrocimento e do isolamento actualmente existentes por painéis sandwich de cobertura. Esta acção permite uma poupança de 64.796€/ano, com um investimento de 57.029€ e o seu período de retorno de 0,9 anos. O Valor Actualizado Líquido (VAL) no 5º ano foi de 184.069€, com uma Taxa Interna de Rentabilidade (TIR) de 92%. Para isolar o pavimento, sugeriu-se a utilização de placas de poliuretano expandido (PU) de 20mm de espessura. Assim, consegue-se uma poupança de 7.442 €/ano, com um investimento de 21.708€, e um tempo de retorno 2,9 anos. No final do 5º ano de vida útil do projecto, o VAL é de 4.070€ e a TIR 7%. Relativamente ao isolamento das paredes e pilares, sugeriu-se a utilização de placas de PU (30mm), recobertas com chapa de ferro galvanizado. O tempo de retorno do investimento é de 1,5 anos, uma vez que, o investimento é de 13.670€ e a poupança anual será de 9.183€. Esta solução apresenta no último ano um VAL de 12.835€ e uma TIR de 22%. No isolamento das fendas do edifício, sugeriu-se a redução de 20% da sua área livre. Esta medida de optimização implica um investimento de 8.000€, revelando-se suficientemente eficaz, pois apresenta um tempo de retorno de 0,67 anos. O VAL e a TIR da solução no último ano de vida útil do projecto de investimento são de 36.835€ e 35%, respectivamente. Por fim, sugeriu-se ainda a instalação de um sistema de controlo que visa o aproveitamento de ar quente proveniente do forno, instalado no piso inferior à olaria, para pré-aquecer o ar alimentado aos geradores de calor. Esta medida implicaria um investimento de 4.000€, com um tempo de retorno de 2,4 anos e uma poupança anual é de 1.686€. O investimento é aconselhável, já que, no 5º ano, o VAL é de 1.956€ e a TIR é de 17%.

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Na indústria cerâmica o consumo de energia é elevado, fazendo com que este custo represente uma parte significativa dos custos totais de produção das peças. De forma a diminuir esta dependência, a energia deve ser gerida de forma contínua e eficazmente. O presente trabalho consistiu na análise da situação energética e na elaboração de propostas de optimização da etapa de conformação que ocorre na Olaria número quatro da Fábrica Cerâmica de Valadares, S.A. Determinou-se o rendimento efectivo da Olaria, tendo-se obtido um valor de 24,7%. As perdas térmicas ocorrem na Olaria, a nível da envolvente, da ventilação, da exaustão de gases e da inércia térmica, representando, respectivamente, 18122 MJ, 50222 MJ, 39228 MJ e 4338 MJ por semana de trabalho. Numa última fase sugeriram-se algumas medidas de optimização energética. A primeira medida visa uma melhoria na manutenção dos geradores, um aumento na gama de temperaturas de funcionamento dos geradores e uma minimização dos tempos de abertura dos portões. Na segunda medida propõe-se a diminuição da percentagem de excesso de ar para 10%, equivalendo a uma poupança de 8839 €/ano. Na terceira medida avaliou-se a possibilidade da aplicação de um permutador de calor de modo a aproveitar os gases de combustão. Esta permitiria uma poupança de 119 €/ano, no entanto, devido ao elevado tempo de retorno do investimento (12,6 anos) considerou-se que esta medida não era viável. A quarta proposta relaciona-se com a optimização da ventilação da Olaria por aumento do ciclo de renovação de ar para 5 h, promovendo uma poupança de 8583 € anuais. Como última sugestão de optimização, aconselhou-se a diminuição do volume da olaria em 6935 m3. Com esta proposta é possível obter uma poupança de 4993 €/ano. Esta medida envolve um investimento de 12000 €, sendo o tempo de retorno do investimento de 2,4 anos. Das cinco propostas estudadas concluiu-se que quatro são viáveis permitindo uma melhoria do funcionamento da Olaria e uma poupança significativa na factura energética.

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Atualmente, fala-se de sociedade da informação e do conhecimento, de globalização, de inovação, e, mais particularmente, de competências, de resultados aprendizagem e do Processo de Bolonha. As áreas de conhecimento interligam-se e as mudanças acontecem a um ritmo impressionante. O objetivo deste trabalho reside no desenvolvimento de um modelo de identificação e classificação de competências e resultados de aprendizagem, baseado nos documentos oficiais das Unidades Curriculares (UC) de um curso de Ensino Superior. O resultado da aplicação deste modelo, disponível na Web Semântica, vai permitir interoperabilizar os Resultados de Aprendizagem (RA) do caso de estudo, potenciando assim a mobilidade de docentes e discente no Espaço Europeu de Ensino Superior (EEES) e países terceiros.

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Electricity markets are complex environments, involving a large number of different entities, with specific characteristics and objectives, making their decisions and interacting in a dynamic scene. Game-theory has been widely used to support decisions in competitive environments; therefore its application in electricity markets can prove to be a high potential tool. This paper proposes a new scenario analysis algorithm, which includes the application of game-theory, to evaluate and preview different scenarios and provide players with the ability to strategically react in order to exhibit the behavior that better fits their objectives. This model includes forecasts of competitor players’ actions, to build models of their behavior, in order to define the most probable expected scenarios. Once the scenarios are defined, game theory is applied to support the choice of the action to be performed. Our use of game theory is intended for supporting one specific agent and not for achieving the equilibrium in the market. MASCEM (Multi-Agent System for Competitive Electricity Markets) is a multi-agent electricity market simulator that models market players and simulates their operation in the market. The scenario analysis algorithm has been tested within MASCEM and our experimental findings with a case study based on real data from the Iberian Electricity Market are presented and discussed.

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This paper addresses the impact of the CO2 opportunity cost on the wholesale electricity price in the context of the Iberian electricity market (MIBEL), namely on the Portuguese system, for the period corresponding to the Phase II of the European Union Emission Trading Scheme (EU ETS). In the econometric analysis a vector error correction model (VECM) is specified to estimate both long–run equilibrium relations and short–run interactions between the electricity price and the fuel (natural gas and coal) and carbon prices. The model is estimated using daily spot market prices and the four commodities prices are jointly modelled as endogenous variables. Moreover, a set of exogenous variables is incorporated in order to account for the electricity demand conditions (temperature) and the electricity generation mix (quantity of electricity traded according the technology used). The outcomes for the Portuguese electricity system suggest that the dynamic pass–through of carbon prices into electricity prices is strongly significant and a long–run elasticity was estimated (equilibrium relation) that is aligned with studies that have been conducted for other markets.

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Dissertação apresentada ao Instituto Politécnico do Porto para obtenção do Grau de Mestre em Logística Orientada por: Professora Doutora Patrícia Alexandra Gregório Ramos

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This paper presents the system developed to promote the rational use of electric energy among consumers and, thus, increase the energy efficiency. The goal is to provide energy consumers with an application that displays the energy consumption/production profiles, sets up consuming ceilings, defines automatic alerts and alarms, compares anonymously consumers with identical energy usage profiles by region and predicts, in the case of non-residential installations, the expected consumption/production values. The resulting distributed system is organized in two main blocks: front-end and back-end. The front-end includes user interface applications for Android mobile devices and Web browsers. The back-end provides data storage and processing functionalities and is installed in a cloud computing platform - the Google App Engine - which provides a standard Web service interface. This option ensures interoperability, scalability and robustness to the system.

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The current ubiquitous network access and increase in network bandwidth are driving the sales of mobile location-aware user devices and, consequently, the development of context-aware applications, namely location-based services. The goal of this project is to provide consumers of location-based services with a richer end-user experience by means of service composition, personalization, device adaptation and continuity of service. Our approach relies on a multi-agent system composed of proxy agents that act as mediators and providers of personalization meta-services, device adaptation and continuity of service for consumers of pre-existing location-based services. These proxy agents, which have Web services interfaces to ensure a high level of interoperability, perform service composition and take in consideration the preferences of the users, the limitations of the user devices, making the usage of different types of devices seamless for the end-user. To validate and evaluate the performance of this approach, use cases were defined, tests were conducted and results gathered which demonstrated that the initial goals were successfully fulfilled.