Robust Control of Solid State Transformer using Dynamic Phasor based model with dq transformation

M. Monika, R. Meshram, Sushama Wagh, Navdeep Singh, A. M. Stankovic
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Abstract

A high frequency solid-state transformer (SST) proposed by FREEDM centre is an interesting alternative to conventional distribution transformer in microgrids as it supports additional functionalities such as active-reactive power flow control, fault current limitation and voltage regulation. This paper proposes a dynamic phasor based robust control of SST through the modular control of each stage. The control problem is formulated in frequency domain by representing the system states with time varying Fourier coefficients or dynamic phasors (DP). This formulation transforms the oscillating waveforms of ac circuits to constant or slowly varying variables, hence allow the use of PI controller to track the sinusoidal references. For rectifier and inverter stages of SST, dq transformation is applied on DP which facilitates the design of PI controller to smoothen out the ripples in the output voltage waveform. The controller gains are tuned to reject input and load disturbances and attenuate measurement noise using loop shaping and pole assignment technique. The robustness of the controller is assured analytically against parametric uncertainties using small gain theorem. Simulation results are provided to support the proposed control scheme. Hardware-in-Loop (HIL) simulation is carried out on critical stages using Opal-RT and dSPACE simulators to confirm the effectiveness of the proposed scheme.
基于dq变换的动态相量模型的固态变压器鲁棒控制
FREEDM中心提出的高频固态变压器(SST)是微电网中传统配电变压器的一个有趣的替代方案,因为它支持诸如有功功率流控制、故障电流限制和电压调节等附加功能。通过对各阶段的模块化控制,提出了一种基于动态相量的海温鲁棒控制方法。控制问题在频域中用时变傅立叶系数或动态相量表示系统状态。该公式将交流电路的振荡波形转换为恒定或缓慢变化的变量,因此允许使用PI控制器来跟踪正弦参考。对于SST的整流级和逆变级,在DP上采用dq变换,便于PI控制器的设计,以平滑输出电压波形中的纹波。控制器增益被调谐以抑制输入和负载干扰,并使用环路整形和极点配置技术衰减测量噪声。利用小增益定理解析地保证了控制器对参数不确定性的鲁棒性。仿真结果支持了所提出的控制方案。利用Opal-RT和dSPACE仿真器在关键阶段进行了硬件在环(HIL)仿真,验证了所提方案的有效性。
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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