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A novel chaotic differential evolution hybridized with quadratic programming for short-term hydrothermal coordination

机译:一种新的混沌差分演进,与短期水热协调的二次规划杂交

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摘要

In this paper, a viable global optimizer based on chaotic differential evolution is hybridized with sequential quadratic programming, an efficient local search technique to exploit short-term hydrothermal coordination (STHTC) involved for power generation and its efficient management. A multi-objective optimization framework is established for minimizing the total cost of thermal generators with valve point loading effects satisfying power balance constraint as well as generator operating and hydrodischarge limits, respectively. The proposed model is implemented on various systems comprising hydrogenerating units as well as different thermal units. The results are compared with state-of-the-art heuristic techniques recently employed on STHTC problems, while the reliability, stability and effectiveness of the proposed framework are validated through the comprehensive analysis of Monte Carlo simulations.
机译:本文采用了一种基于混沌差分演进的可行的全球优化器与顺序二次编程,一种有效的本地搜索技术杂交,以利用所涉及发电的短期水热协调(STHTC)及其有效管理。 建立多目标优化框架,以最大限度地减少具有阀点加载效果的热发电机的总成本,分别满足电力平衡约束以及发电机操作和氢化电压限制。 所提出的模型在各种系统上实现,该系统包括氢化单元以及不同的热单元。 将结果与最近在STHTC问题上使用的最新启发式技术进行了比较,而通过蒙特卡罗模拟的综合分析,验证了所提出的框架的可靠性,稳定性和有效性。

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