Mitigation of Uncertainty in an Islanded Microgrid Using Robust Voltage Controller

Ishika Singh, Sheetla Prasad, V. C. Pal
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Abstract

In microgrid, a severe problem occurs in terms of voltage oscillations due to mismatch between synchronizing and damping torque. In this study, a centralized nonlinear sliding mode voltage controller proposes to minimize the rotor and DC voltage oscillations issue in an islanded microgrid. The linear matrix inequality (LMI) technique has been applied for bounding the state error. Lyapunov criteria is utilized for assurance of asymptotic convergence and LMI optimization approach is used for obtaining the controller parameters. The proposed controller is able to tackle the parametric uncertainties of diesel generator, oscillations of rotor and voltage fluctuation as well as the closed-loop system responses also improves both transient responses and steady state responses simultaneously. The simulation results authenticate that the proposed controller confirms speedy recovery of nominal frequency without any oscillations and reduced the limitation of chattering notably without any loss in control accuracy. The performance and robustness of the proposed controller is also compared with conventional controllers.
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利用鲁棒电压控制器缓解孤岛微电网的不确定性
在微电网中,由于同步转矩与阻尼转矩的不匹配导致电压振荡是一个严重的问题。在本研究中,提出了一种集中式非线性滑模电压控制器,以尽量减少孤岛微电网中转子和直流电压的振荡问题。采用线性矩阵不等式(LMI)技术对状态误差进行边界化。采用Lyapunov准则保证系统的渐近收敛性,采用LMI优化方法获取控制器参数。该控制器既能解决柴油发电机组参数的不确定性、转子的振荡和电压的波动,又能改善系统的闭环响应,同时也能改善系统的暂态响应和稳态响应。仿真结果表明,该控制器在不影响控制精度的前提下,能快速恢复系统的标称频率,且无振荡,显著降低了系统的抖振限制。并与传统控制器进行了性能和鲁棒性比较。
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