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Reactive Power Compensation Relate to Reactance Based on Modified Cataclysmic Genetic Algorithm

机译:基于改性灾害遗传算法的无功功率补偿涉及电抗

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This paper presents an improved algorithm for reactive power compensation. The objectives is to minimized the power loss and the compensation cost and the percentage of overvoltage. Operation variables include the generator's active power and reactive power output, the transformer tap, capacitor's and reactance's units. This research attempts to solve a complicated nonlinear mixed planning problem with multi-objectives. The traditional genetic algorithm (GA) is a global optimization method, but it has deficiency of long computation time and easily converging into local extreme value point. Modified cataclysmic genetic Algorithm (MCGA) can speed up the solution procedure and to make the solution near to the global optimum. Test results have been presented along with the discussion of the algorithm.
机译:本文介绍了一种改进的无功补偿算法。目标是最小化电力损失和补偿成本以及过电压的百分比。操作变量包括发电机的有功功率和无功功率输出,变压器龙头,电容和电抗的单位。该研究试图解决与多目标的复杂非线性混合规划问题。传统的遗传算法(GA)是一种全局优化方法,但它的缺点是长计算时间,并且容易地融合到局部极值点。修改的灾难性遗传算法(MCGA)可以加快解决方案程序,并使解决方案靠近全局最佳。随着算法的讨论,已经介绍了测试结果。

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