Incorporating STATCOM into a Hydro-Thermal Optimal Power Flow Algorithm

Ridwan Gbolahan Lateef, M. Lawal, Sarafa Olayide Rasheed
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Abstract

This paper presents the results of the inclusion of Synchronous Static Compensator (STATCOM) power flow models into a hydro-thermal optimal power flow (HTOPF) algorithm. STATCOM basically introduces the voltage magnitude and phase angle of the source converter into the algorithm. For each incorporated STATCOM, an augmented Lagrangian function was formed. The first and second derivatives of these functions were added to the gradient vector and Hessian matrix of an existing algorithm. The modified algorithm was implemented using MATLAB R2018a and tested on 30 and 57 bus systems. Two and three STATCOMs were, respectively, tested on 30 and 57 bus systems. The results obtained showed that one of the STATCOMs used on 30-bus system injected reactive power that ranges from 8.99 MVAR to 28.22 MVAR while the other one injected reactive power in the range of 8.20 MVAR to 33.20 MVAR. For the STATCOMs placed on the 57-bus system, the range of reactive power absorption by the one placed at bus 5 is 7.83 MVAR to 22.86 MVAR while the one at bus 55 absorbed from 5.06 MVAR to 12.92 MVAR. The STATCOM’s reactive power injection at bus 31 ranges from 4.63 MVAR to 10.35 MVAR. All the lower and higher values were obtained at hours 3 and 7, respectively. While the STATCOMs significantly improved the systems’ voltage profile, the impacts of STATCOM on the total systems daily energy loss, daily energy generations (from both plants), daily fuel cost and hydro plant water worth are insignificant.
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将 STATCOM 纳入水热最佳功率流算法
本文介绍了将同步静态补偿器(STATCOM)功率流模型纳入水热最优功率流(HTOPF)算法的结果。STATCOM 基本上将源变流器的电压幅值和相位角引入算法。对于每个加入的 STATCOM,都会形成一个增强拉格朗日函数。这些函数的一阶和二阶导数被添加到现有算法的梯度向量和黑森矩阵中。修改后的算法使用 MATLAB R2018a 实现,并在 30 和 57 总线系统上进行了测试。分别在 30 和 57 个总线系统上测试了两个和三个 STATCOM。测试结果表明,在 30 总线系统上使用的 STATCOM 中,一个注入的无功功率范围为 8.99 MVAR 至 28.22 MVAR,而另一个注入的无功功率范围为 8.20 MVAR 至 33.20 MVAR。对于放置在 57 总线系统上的 STATCOM,放置在 5 号总线上的 STATCOM 吸收的无功功率范围为 7.83 MVAR 至 22.86 MVAR,而放置在 55 号总线上的 STATCOM 吸收的无功功率范围为 5.06 MVAR 至 12.92 MVAR。母线 31 处 STATCOM 的无功功率注入范围为 4.63 MVAR 至 10.35 MVAR。所有较低和较高的值都分别出现在第 3 小时和第 7 小时。虽然 STATCOM 显著改善了系统的电压曲线,但 STATCOM 对整个系统的日能量损失、日发电量(来自两个发电厂)、日燃料成本和水电站水价的影响却微乎其微。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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