Brain storm optimization algorithm based economic dispatch considering wind power

H. T. Jadhav, U. Sharma, J. Patel, R. Roy
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引用次数: 38

Abstract

The economic dispatch problem deals with minimization of cost of producing electrical power demanded by power system. The penetration of wind power in power systems is increasing worldwide due to environmental constraints and fossil fuel depletion. The main difficulty, however, is accurate prediction of wind power which otherwise may lead to situation in network operation. For more safe and reliable operation, the penalty and reserve costs must be considered to account for power imbalance in the evaluation process. In this paper, an economic load dispatch problem (ED) for the system consisting of both thermal and wind generators is solved by brain storm optimization algorithm (BSO). The random behavior of wind power is modeled using weibull function. The factors such as overestimation and underestimation of available wind power due to power imbalance are included in cost function in addition to other classical economic dispatch terms. The proposed algorithm is tested with six standard test functions to prove its efficacy. Two test systems consisting six and forty units integrated to wind farm of comparable capacity are studied to determine the overall cost of operation.
基于头脑风暴优化算法的风电经济调度
经济调度问题涉及电力系统所需电力的生产成本最小化。由于环境限制和化石燃料的枯竭,风力发电在全球电力系统中的渗透正在增加。但主要的难点在于风电功率的准确预测,否则可能导致电网运行出现问题。为了更安全可靠的运行,在评估过程中必须考虑惩罚和储备成本,以考虑权力不平衡。本文用头脑风暴优化算法(BSO)求解了热电机组和风力发电机组并网发电系统的经济负荷调度问题。利用威布尔函数对风电的随机行为进行建模。除了其他经典经济调度条件外,成本函数中还包含了由于功率不平衡而导致的可用风电的高估和低估等因素。用六个标准测试函数对算法进行了测试,验证了算法的有效性。研究了两个测试系统,分别由6个和40个机组集成到容量相当的风电场,以确定总体运行成本。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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