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Study of the Predictive Capability of Modular Multilevel Converter Simulation Models under Parametric and Model Form Uncertainty

机译:参数和模型形式不确定性下模块化多电平换流器仿真模型的预测能力研究

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The deviation of real system behavior from the predictions made from modeling and simulation is inevitable due to variations in different model input parameters as well as inaccurate modeling. The potential sources of uncertainty in modular multilevel converters (MMCs) is significant in medium- and high-voltage applications where each arm consists of several power electronics building blocks (PEBBs) connected in series. Therefore, assessing the predictive proficiency of the model, in the presence of various uncertainties, is critical in gaining confidence in modeling and simulation results. This paper investigates the predictive capability of MMC simulation models when adding more PEBBs. The relationship between the total uncertainty in modeling and simulation, and the number of PEBBs in each arm is presented for different model outputs. The results reveal an interesting feature of MMC—despite the fact that the number of potential sources of uncertainty increases by adding more PEBBs in each arm, the total uncertainty in the prediction of a system response quantity remains the same or decreases, depending on the selected model output response.
机译:由于不同模型输入参数的变化以及不正确的建模,不可避免地会出现实际系统行为与建模和仿真预测之间的偏差。模块化多电平转换器(MMC)的潜在不确定性来源在中压和高压应用中非常重要,在该应用中,每个臂均由多个串联的功率电子构建块(PEBB)组成。因此,在存在各种不确定性的情况下,评估模型的预测能力对于获得对建模和仿真结果的信心至关重要。本文研究了添加更多PEBB时MMC仿真模型的预测能力。对于不同的模型输出,给出了建模和仿真中的总不确定性与每个臂中PEBB的数量之间的关系。结果揭示了MMC的一个有趣特征-尽管通过在每个臂中添加更多PEBB来增加潜在不确定性来源的数量,但系统响应量的预测中的总不确定性仍保持不变或有所降低,具体取决于所选择的模型输出响应。

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