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A New Model Predictive Control Formulation for CHB Inverters

机译:CHB逆变器的新型模型预测控制公式

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The finite control model predictive control (FCS-MPC) is considered one of the most important advances in power converter control. MPC offers the power converters with high dynamic performance, multi-objective capability, and no need for modulation schemes or tuning of PI parameters. It was reported that longer prediction horizon MPC yield better performance than short prediction horizon MPC. However, the number of computations increases significantly when real-time implementing long prediction horizon MPC on a multilevel power converter due to the existence of a huge number of switching combinations and redundancies. To overcome this bottleneck, this paper has presented a FCS-MPC scheme. In the proposed method, instead of estimation all the possible switching combinations in each sampling step, the multistep FCS-MPC is reformulated mathematically to an optimization problem, which can be solved through matrix theory. Compared with the existing MPC optimization algorithms, the proposed prediction formulation method has the advantage of reduced computational burden and no need for the cost function. The proposed method is finally verified on a seven-level CHB inverter.
机译:有限控制模型预测控制(FCS-MPC)被认为是功率转换器控制中最重要的进步之一。 MPC为功率转换器提供了高动态性能,多目标能力,并且无需调制方案或PI参数的调整。据报道,较长的预测范围MPC比较短的预测范围MPC产生更好的性能。但是,由于存在大量的开关组合和冗余,当在多电平功率转换器上实时实现长预测范围MPC时,计算数量会大大增加。为了克服这个瓶颈,本文提出了一种FCS-MPC方案。在提出的方法中,代替估算每个采样步骤中所有可能的开关组合,将多步骤FCS-MPC数学上重新公式化为一个优化问题,可以通过矩阵理论解决该问题。与现有的MPC优化算法相比,所提出的预测公式化方法具有减轻计算负担,不需要成本函数的优点。最终,该方法在七电平CHB逆变器上得到了验证。

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