基于MPC、Radau配置和移动有限元技术的应急电压控制

Shuang Wang, Mingbo Liu, Bo Hu, M. Xie, Wenjun Li
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引用次数: 1

摘要

将非线性模型预测控制方法应用于应急电压控制器的设计。基于准稳态近似,建立了连续离散时间变量微分代数方程的退变动态优化模型。为了提高求解该动态优化模型的计算效率和控制精度,提出了结合运动有限元的直接动态优化方法来解决动态优化问题。首先,将研究区间划分为有限元。采用Radau配点法,通过对每个单元的多项式族逼近状态变量、代数变量和控制变量的轮廓,将优化模型转化为非线性规划。然后引入运动有限元来动态调整各区间的长度,实现控制变量的精确定位,提高算法的精度。利用AMPL给出的内点算法作为数学优化求解器来求解该问题。在新英格兰10机39总线系统上的仿真结果验证了该方法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Emergency voltage control based on MPC, Radau collocation and moving finite elements technique
The nonlinear model predictive control method is applied to design emergency voltage controller. Based on quasi-steady-state approximation, the receding dynamic optimization model is established which subjected to differential-algebraic equations with continuous-discrete time variables. To enhance computational efficiency and control precision of solving this dynamic optimization model, direct dynamic optimization approach combined with moving finite elements are proposed to solve the problem of dynamic optimization. Firstly, the research interval is divided into finite elements. Radau collocation method is used to convert the optimization model into a nonlinear programming by approximating state variable, algebraic variable and control variable profiles by a family of polynomials on each element. Then moving finite elements is introduced to adjust the length of each interval dynamically, achieve the precise positioning of control variable and improve the accuracy of the algorithm. The interior-point algorithm given by AMPL as a mathematical optimization solver is used to solve the problem. Simulation results on New England 10-machine 39-bus system verify effectiveness of the proposed method.
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