一种新的混合飞蛾火焰优化序列二次规划算法求解经济负荷调度问题

Kashif Rehman, Aftab Ahmed
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引用次数: 2

摘要

能源资源的不足、发电成本的增加和负荷需求的增加使得优化经济调度成为必然。现实世界中的经济调度问题是具有不同不等式约束的高度非凸、非线性和不连续问题。本文提出了一种新的混合MFO-SQP(蛾焰优化与顺序二次规划)方法来解决ED问题。最优解是一种随机搜索算法,通过随机搜索最小化,而SQP的本质是确定的,它将局部搜索细化到局部极小值附近。该技术已在6、15和40机组测试系统中实施,该系统具有不同的约束条件,如阀点负载效应、传输损耗、禁区、发电机容量限制和功率平衡。将所提出的技术与文献中报道的技术进行了比较,结果证明在燃料成本和收敛性方面更好。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Novel Hybrid Moth Flame Optimization with Sequential Quadratic Programming Algorithm for Solving Economic Load Dispatch Problem
The insufficiency of energy resources, increased cost of generation and rising load demand necessitate optimized economic dispatch. The real world ED (Economic Dispatch) is highly non-convex, nonlinear and discontinuous problem with different equality and inequality constraints. In this research paper, a novel hybrid MFO-SQP (Moth Flame Optimization with Sequential Quadratic Programming) is proposed to solve the ED problem. The MFO is stochastic searching algorithm minimizes by random search and SQP is definite in nature that refines the local search in vicinity of local minima. Proposed technique has been implemented on 6, 15 and 40 units test system with different constraints like valve point loading effect, transmission loss, prohibited zones, generator capacity limits and power balance. Results, obtained from proposed technique are compared with those of the techniques reported in the literature, are proven better in terms of fuel cost and convergence.
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