Design of Suboptimal Controller for Improved Dynamic Response in DC Microgrid Linked to Multiple Constant Power Loads

Ila Rai, A. R
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Abstract

The high switching frequency electronics linked to the DC microgrid are used to keep the load power constant. These constant power loads(CPLs), due to the high bandwidth, are nonlinear by nature and may cause system instability. This work suggests a robust suboptimal controller design built on semidefinite programming (SDP) to control the CPLs connected to the DC microgrid. The objectives are to keep the bus voltage steady during transients and to alter the injecting current from the energy storage system (ESS) as efficiently as possible. A nonlinear mathematical representation of a DC microgrid is used for the suboptimal controller design procedure, and the problem is solved using the SDP method. The microgrid's performance is assessed in the framework of parameter uncertainty and measurement noises. The obtained simulation results show that the suggested technique is very effective and attains stability fast during faults and transients compared to the conventional PI control even when external disturbances are present. The efficacy of the suggested design approach is evaluated in MATLAB/SIMULINK and compared to the standard PI controller using mathematical simulations. The obtained results verify the usefulness of the suggested suboptimal controller architecture for the DC microgrid connected to the CPLs.
提高多恒载直流微电网动态响应的次优控制器设计
与直流微电网相连的高开关频率电子设备用于保持负载功率恒定。这些恒功率负载(cpl)由于带宽高,本质上是非线性的,可能导致系统不稳定。本文提出了一种基于半确定规划(SDP)的鲁棒次最优控制器设计来控制连接到直流微电网的cpl。目标是在瞬态期间保持母线电压稳定,并尽可能有效地改变来自储能系统(ESS)的注入电流。将直流微电网的非线性数学表示用于次优控制器设计过程,并采用SDP方法求解该问题。在参数不确定度和测量噪声的框架下对微电网的性能进行了评估。仿真结果表明,与传统的PI控制相比,即使存在外部干扰,该方法也能在故障和瞬态状态下快速稳定。在MATLAB/SIMULINK中评估了所建议设计方法的有效性,并通过数学仿真与标准PI控制器进行了比较。所得结果验证了所建议的次优控制器结构对于与cpl相连的直流微电网的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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