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A novel dual closed-loop control scheme based on repetitive control for grid-connected inverters with an LCL filter

机译:一种新型双闭环控制方案,基于具有LCL滤波器的网格连接逆变器的重复控制

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摘要

Grid-connected inverters with LCL filters need high steady-state control accuracy, fast dynamic response performance, and strong robustness to guarantee the power quality. However, there are many problems in traditional control strategies that restrict improvements to control system performance, such as poor dynamic performance of traditional single-repetitive control, large ripples, low steady-state accuracy of inverter current feedback based repetitive dual-loop control or grid-current feedback based single-loop proportional-integral control. In this paper, a novel dual closed-loop repetitive control strategy based on grid current feedback is proposed for single-phase grid-connected inverters with LCL filters. The proportional-integral inner loop is stabilized by using an inherent one-beat delay achieved by digital controller. Based on the inner loop system, a detailed design scheme of a repetitive controller is presented, through which direct control of the grid current is realized, the reference is tracked perfectly to a zero phase shift, and high-attenuation gain is achieved in the high frequency range. In particular, the gird-voltage feed forward control and current reference feedforward control are adopted to suppress grid-voltage disturbance and increase dynamic tracking performance. Finally, the simulation and experimental results show that the proposed method has the advantages of high steady-state accuracy, fast dynamic response, and anti-disturbance ability. (C) 2018 ISA. Published by Elsevier Ltd. All rights reserved.
机译:具有LCL滤波器的电网连接逆变器需要高稳态控制精度,快速动态响应性能,强大的稳健性,以保证电源质量。但是,传统控制策略中存在许多问题,限制了控制系统性能的改进,如传统单重控制的动态性能差,较大的涟漪,基于逆变器电流反馈的逆变电流反馈的低稳态精度。基于反馈的基于反馈的单环比例积分控制。本文提出了一种基于网格电流反馈的新型双闭环重复控制策略,用于具有LCL滤波器的单相网连接逆变器。通过使用数字控制器实现的固有的单节拍延迟来稳定比例整体内环。基于内圈系统,提出了一种重复控制器的详细设计方案,通过该设计方案通过该设计方案实现了网格电流的直接控制,将参考写入零相移,高衰减增益在高位实现频率范围。特别地,采用了仪式馈电前向控制和电流参考前馈控制来抑制电网电压干扰并提高动态跟踪性能。最后,模拟和实验结果表明,该方法具有高稳态精度,动态响应快,抗干扰能力的优点。 (c)2018 ISA。 elsevier有限公司出版。保留所有权利。

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