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Passivity-Based Design of Plug-and-Play Current-Controlled Grid-Connected Inverters

机译:即插即用电流控制并网逆变器的基于无源性的设计

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Stable operation of LCL filtered grid-connected inverters can be achieved using active damping. However, the stability can be threatened by non-ideal conditions such as delay in digitally controlled systems and grid impedance variation at the point of common coupling (PCC). In a grid-side current controlled inverter, the computational and pulsewidth modulation delays cause an unintentionally negative virtual resistance when the resonance frequency is higher than one-sixth of the sampling frequency (f(s)/6). This paper proposes a delay compensation method to address this issue, which can expand the effective damping region up to Nyquist frequency (f(s)/2). Also, it is shown that the negative real part of the inverter output admittance will make the system unstable under specific grid condition. Therefore, a PCC voltage feedforward method is proposed to cancel the negative real part of the inverter output admittance according to passivity-based stability. Thanks to the proposed methods, the inverter output admittance will be passive in all frequencies and can be connected to the grid regardless of grid impedance. It means that the inverter has robust plug-and- play functionality. The validity of the theoretical analysis and the effectiveness of the proposed approaches are verified using experimental results on a laboratory prototype.
机译:使用有源阻尼可以实现LCL滤波并网逆变器的稳定运行。但是,稳定性可能受到非理想条件的威胁,例如数控系统中的延迟以及公共耦合点(PCC)处的电网阻抗变化。在电网侧电流控制的逆变器中,当谐振频率高于采样频率(f(s)/ 6)的六分之一时,计算和脉冲宽度调制延迟会无意间产生负虚拟电阻。本文提出了一种延迟补偿方法来解决这个问题,该方法可以将有效阻尼区域扩展到奈奎斯特频率(f(s)/ 2)。此外,还显示出逆变器输出导纳的负实部将使系统在特定电网条件下不稳定。因此,提出了一种PCC电压前馈方法,以根据基于无源性的稳定性消除逆变器输出导纳的负实部。由于所提出的方法,逆变器的输出导纳在所有频率下都是无源的,并且可以与电网连接,而与电网阻抗无关。这意味着逆变器具有强大的即插即用功能。理论分析的有效性和所提出方法的有效性在实验室原型上使用实验结果进行了验证。

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