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A trust region interior point algorithm for optimal power flow problems

机译:最优潮流问题的信赖域内点算法

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This paper presents a new algorithm that uses the trust region interior point method to solve nonlinear optimal power flow (OPF) problems. The OPF problem is solved by a primal-dual interior point method with multiple centrality corrections as a sequence of linearized trust region sub-problems. It is the trust region that controls the linear step size and ensures the validity of the linear model. The convergence of the algorithm is improved through the modification of the trust region sub-problem. Numerical results of standard IEEE systems and two realistic networks ranging in size from 14 to 662 buses are presented. The computational results show that the proposed algorithm is very effective to optimal power flow applications, and favors the successive linear programming (SLP) method. Comparison with the predictor-corrector primal-dual interior point (PCPDIP) method is also made to demonstrate the superiority of the multiple centrality corrections technique.
机译:本文提出了一种新的算法,该算法使用信任区域内点法来解决非线性最优潮流(OPF)问题。 OPF问题通过具有多个中心校正的线性对偶区域内问题的原始对偶内点方法解决。信任区域控制线性步长并确保线性模型的有效性。通过修改信任区域子问题,提高了算法的收敛性。给出了标准IEEE系统和两个实际网络的数值结果,其大小从14到662条总线不等。计算结果表明,该算法对最优潮流应用非常有效,并且有利于连续线性规划(SLP)方法。还与预测校正原始双内点法(PCPDIP)进行了比较,以证明多重中心校正技术的优越性。

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