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A new mathematical model and control of a three-phase AC-DC voltage source converter

机译:三相AC-DC电压源转换器的新数学模型和控制

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A new mathematical model of the power circuit of a three-phase voltage source converter (VSC) was developed in the stationary and synchronous reference frames. The mathematical model was then used to analyze and synthesize the voltage and current control loops for the VSC. Analytical expressions were derived for calculating the gains and time constants of the current and voltage regulators. The mathematical model was used to control a 140-kW regenerative VSC. The synchronous reference-frame model was used to define feedforward signals in the current regulators to eliminate the cross coupling between the d and q phases. It allowed the reduction of the current control loops to first-order plants and improved their tracking capability. The bandwidths of the current and voltage-control loops were found to be approximately 20 and 60 times (respectively) smaller than the sampling frequency. All control algorithms were implemented in a digital signal processor. All results of the analysis were experimentally verified.
机译:在固定和同步参考系中开发了三相电压源转换器(VSC)电源电路的新数学模型。然后,该数学模型用于分析和综合VSC的电压和电流控制回路。导出了用于计算电流和电压调节器的增益和时间常数的解析表达式。该数学模型用于控制140 kW再生VSC。同步参考框架模型用于定义电流调节器中的前馈信号,以消除d相和q相之间的交叉耦合。它允许减少一阶工厂的电流控制回路,并提高了其跟踪能力。发现电流和电压控制环路的带宽分别大约比采样频率小20倍和60倍。所有控制算法均在数字信号处理器中实现。分析的所有结果均通过实验验证。

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