Power Systems and Power Electronics using the DEMATEL Method

3 Pub Date : 2024-03-02 DOI:10.46632/jeae/2/3/5
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Abstract

Energy and research on energy systems places a focus on all facets of electrical energy, as well as innovation in energy production and delivery, alternative resources, and efficient devices. Systems and equipment for converting, providing, and utilising energy as a kind of electricity are the subject of research initiatives. Power electronics are now a more integral part of power systems, enhancing quality and efficiency and fostering the gradual materialization of intelligent, efficient energy. Many different types of power electronics exist in power systems. The architectural study of changing electrical transformed from one medium to another is known as power electronics. Fields such as electronics reprocess or recover more than 80percent of the entire of the electricity produced at a world average rate of 3.4 billion kilowatts per hour each year. Power electronics converters, sometimes referred to as power converters or switching converters, are used to process or convert electrical energy. Electricity comes in two flavours: AC power and DC power. The distribution system is divided into AC distribution systems and DC distribution systems based on the type of power it uses. Power system analysis is an essential part of electrical power system design. Calculations and simulations are performed to verify that the electrical system, including the system components, is properly specified to perform as planned, withstand the expected stress, and be protected from failures. Advantages of Power Electronics: High power density electricity. Improved efficiency up to 99% in energy conversion. Because to its efficiency and dependability, switching power supply are also being used in medical devices with acoustically sensitive applications. Power system reliability, in general, relates to problems like service interruption and power outages. This is frequently described as a goal to try relying on codes specifically relevant to the consumer. SAIFI, SAIDI, and CAIDI are common dependability index values for US applications. DEMATEL (Decision Making Trial and Evaluation Laboratory) They are divided into analysis using the Nonmetal mineral product industry, General equipment manufacturing, Mining and washing of coal, Textile industry, Food manufacturing industry It is the interaction between the factors Visualized and assesses dependent relationships Through the structural model Also deals with identifying important. Power Electronics in Power Systems, Power Electronics in Transportation Systems, Energy Conservation, Heating & Lighting Control and Renewable Energy Integration Power Systems and Power Electronics in Power Electronics in Power Systems is got the first rank whereas is the Energy Conservation is having the Lowest rank. Power Systems and Power Electronics in Power Electronics in Power Systems is got the first rank whereas is the Energy Conservation is having the Lowest rank.
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使用 DEMATEL 方法的电力系统和电力电子学
能源和能源系统研究的重点是电能的方方面面,以及能源生产和输送、替代资源和高效设备方面的创新。作为一种电力,转换、提供和利用能源的系统和设备是研究计划的主题。目前,电力电子设备已成为电力系统不可或缺的一部分,可提高质量和效率,促进智能、高效能源的逐步实现。电力系统中存在许多不同类型的电力电子设备。将电力从一种介质转变为另一种介质的建筑学研究被称为电力电子学。每年,全世界平均每小时生产 34 亿千瓦的电力,其中 80% 以上都经过电子学等领域的再处理或回收。电力电子转换器,有时也称为功率转换器或开关转换器,用于处理或转换电能。电能有两种:交流电和直流电。配电系统根据其使用的电力类型分为交流配电系统和直流配电系统。电力系统分析是电力系统设计的重要组成部分。进行计算和模拟是为了验证电力系统(包括系统组件)是否按照计划正确指定,是否能承受预期压力,以及是否能避免故障。电力电子技术的优势:高功率密度电力。提高能源转换效率,最高可达 99%。开关电源因其高效性和可靠性,也被用于对声音敏感的医疗设备中。一般来说,电力系统的可靠性与服务中断和停电等问题有关。这通常被描述为一个目标,即尝试依赖与消费者具体相关的代码。SAIFI、SAIDI 和 CAIDI 是美国应用中常见的可靠性指数值。DEMATEL(决策试验和评估实验室) 它们分为使用非金属矿物制品业、通用设备制造业、煤炭开采和洗选业、纺织业、食品制造业进行的分析 它是各因素之间的相互作用 通过结构模型可视化和评估依赖关系 还涉及识别重要的。电力系统中的电力电子学、运输系统中的电力电子学、节能、供暖和照明控制以及可再生能源集成 电力系统中的电力电子学和电力电子学中的电力电子学排名第一,而节能排名最低。电力系统和电力电子学在电力系统中的电力电子学排名第一,而节能排名最低。
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