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Asymmetrical high voltage ride through control strategy of grid-side converter for grid-connected renewable energy equipment

机译:并网可再生能源设备电网侧变流器的非对称高压穿越控制策略

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For grid-connected renewable energy equipment, asymmetrical high voltage swell threatens the grid-side converter (GSC) and the dc-link capacitor. Asymmetrical high voltage swell may cause significant fluctuations across the dc-link voltage, and energy reflux of the GSC, even result in the runaway of the GSC. To cope with this situation, the control strategy of the GSC has to be improved. Firstly, the controllability of the GSC is analyzed considering the asymmetrical high voltage swell situation and the converter power rating. Afterwards, an asymmetrical high voltage ride through (HVRT) control strategy is proposed by considering the reactive current compensation and the dc-link voltage fluctuations, which needs to raise the dc-link voltage in certain cases. However, increasing the dc-link voltage sometimes is not practical for the rating of the physical devices and the product cost. Therefore, the asymmetrical HVRT grid code has to be formulated carefully considering the operation capability of the GSC. The simulation experiments verified that the GSC can be controllable and the dc-link voltage is stable.
机译:对于并网可再生能源设备,不对称高压骤增会威胁到电网侧转换器(GSC)和直流母线电容器。不对称的高电压骤升可能会导致直流链路电压发生明显波动,并且GSC的能量回流甚至会导致GSC失控。为了应对这种情况,必须改进GSC的控制策略。首先,考虑了不对称高压骤升情况和变流器额定功率,分析了GSC的可控性。然后,考虑无功电流补偿和直流母线电压波动,提出了一种不对称的高压穿越(HVRT)控制策略,在某些情况下需要提高直流母线电压。但是,对于物理设备的额定值和产品成本而言,有时增加直流链路电压是不切实际的。因此,必须考虑GSC的运行能力,仔细制定非对称HVRT网格代码。仿真实验证明,GSC是可控的,直流母线电压稳定。

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