Assessment of Reliability of Composite Power System Including Smart Grids

T. Kumar, M. Ramamoorty, O. Sekhar
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Abstract

The large service interruptions of power supply in the transmission system have significant impact on modern society. The aim of the power system engineers is to prevent and mitigate such events with optimal decisions in design, planning, operation and maintenance. Due to the rapid growth in the power demand and competitive power market scenario, the transmission and distribution systems are frequently being operated under heavily loaded conditions. This tends to make failure of components more frequent in the power system necessitating large downtime to repair or replace the equipment. A majority of the service interruptions are happening due to lack of proper planning and operation of power system. Therefore, complete reliability assessment in generation, transmission and distribution systems is needed at the planning stage. The reliability assessment in smart grids is very much beneficial to the power operator and reduces the risk of grid failure due to failure of major components in power systems. This chapter is confined to composite power system reliability assessment. The composite power system combines both the generation and transmission systems’ adequacy. The generation system in the composite power system includes both conventional and renewable sources. The composite power system reliability assessment is quite difficult due to the large number of equipment, interconnected network topology and uncertainties in generation capacity. The reliability assessment concentrates mainly on the use of probabilistic states of components in generation and transmission systems to evaluate the overall reliability. This analysis will result in a cost-effective system configuration to provide continuous power supply to the consumers at reasonable cost. The reliability level of the system is measured by the defined indices. One of these indices is the probability of average power availability at load bus. This reliability assessment mainly focuses on development of methods to evaluate the probability of average power availability at load buses for a specified system configuration. This chapter discusses the two main techniques called node elimination method and modified minimal cut set method. © 2018 The Author(s). Licensee IntechOpen. This chapter is distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/3.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
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包括智能电网在内的复合电力系统可靠性评估
输电系统中出现的大规模供电中断对现代社会产生了重大影响。电力系统工程师的目标是通过在设计、规划、运行和维护方面的最佳决策来预防和减轻此类事件。由于电力需求的快速增长和电力市场的激烈竞争,输配电系统经常在高负荷条件下运行。这往往使电力系统中组件的故障更加频繁,需要大量的停机时间来维修或更换设备。大部分电力中断是由于电力系统缺乏合理的规划和运行造成的。因此,在规划阶段需要对发电、输配电系统进行全面的可靠性评估。智能电网的可靠性评估对电力运营商非常有利,可以降低因电力系统主要部件失效而导致电网故障的风险。本章主要讨论电力系统的综合可靠性评估。复合电力系统兼顾了发电系统和输电系统的充分性。复合发电系统中的发电系统既包括常规能源,也包括可再生能源。由于设备数量多、互联网络拓扑结构和发电容量的不确定性,复合电力系统可靠性评估难度较大。可靠性评估主要是利用发电和输电系统中各部件的概率状态来评估系统的整体可靠性。这种分析将导致一个具有成本效益的系统配置,以合理的成本为消费者提供持续的电力供应。通过定义的指标来衡量系统的可靠性水平。其中一个指标是负载总线上的平均可用功率概率。这种可靠性评估主要侧重于评估特定系统配置下负载总线平均功率可用性概率的方法的开发。本章讨论了节点消去法和修正最小割集法这两种主要技术。©2018作者。被许可方IntechOpen。本章是在知识共享署名许可(http://creativecommons.org/licenses/by/3.0)的条款下发布的,该许可允许在任何媒体上不受限制地使用、分发和复制,只要原始作品被适当引用。
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