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首页> 外文期刊>IEEE Transactions on Power Systems >An extended nonlinear primal-dual interior-point algorithm for reactive-power optimization of large-scale power systems with discrete control variables
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An extended nonlinear primal-dual interior-point algorithm for reactive-power optimization of large-scale power systems with discrete control variables

机译:采用离散控制变量的大型电力系统无功功率优化的扩展非线性原始 - 双室算法

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摘要

This paper presents a new algorithm for reactive-power optimization of large-scale power systems involving both discrete and continuous variables. This algorithm realizes successive discretization of the discrete control variables in the optimization process by incorporating a penalty function into the nonlinear primal-dual interior-point algorithm. The principle of handling these discrete variables by the penalty function, the timing of introducing the penalty function during iterations, and the setting of penalty factors are discussed in detail. To solve the high-dimension linear correction equation speedily and efficiently in each iteration, a novel data structure rearrangement is proposed. Compared with the existing data structures, it can effectively reduce the number of nonzero fill-in elements and does not give rise to difficulty in triangular factorization. The numerical results of test systems that range in size from 14 to 538 buses have shown that the proposed method can give nearly optimum solutions, has good convergence, and is suitable for large-scale system applications.
机译:本文介绍了涉及离散和连续变量的大型电力系统的无功功率优化算法。该算法通过将惩罚功能结合到非线性原始 - 双电点算法中,实现了优化过程中的离散控制变量的连续离散化。通过惩罚函数处理这些离散变量的原则,在迭代期间引入惩罚功能的时间,以及惩罚因素的设置。为了在每次迭代中快速且有效地解决高尺寸线性校正方程,提出了一种新的数据结构重排。与现有数据结构相比,它可以有效地减少非零填充元素的数量,并且不会导致三角分解的困难。测试系统的数值结果,其尺寸为14到538母线,表明该方法可以提供几乎最佳的解决方案,具有良好的收敛性,适用于大型系统应用。

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