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A Multilevel Monte Carlo Method for High-Dimensional Uncertainty Quantification of Low-Frequency Electromagnetic Devices

机译:低频电磁设备高维不确定度的多级蒙特卡罗方法

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This paper addresses uncertainty quantification of electromagnetic devices determined by the eddy current problem. The multilevel Monte Carlo (MLMC) method is used for the treatment of uncertain parameters while the devices are discretized in space by the finite element method. Both methods yield numerical approximations such that the total error is split into stochastic and spatial contributions. We propose a particular implementation where the spatial error is controlled based on a Richardson extrapolationbased error indicator. The stochastic error, in turn, is efficiently reduced in the MLMC approach by distributing the samples on multiple grids. The method is applied to a toy problem with closed-form solution and to a permanent magnet synchronous machine with uncertainties. The uncertainties under consideration are related to the material properties in the stator and the magnets in the rotor. The examples show that the error indicator works reliably, the meshes used for the different levels do not have to be nested, and, most importantly, MLMC reduces the computational cost by at least one order of magnitude compared to standard Monte Carlo.
机译:本文讨论了由涡流问题确定的电磁设备的不确定性量化。多级蒙特卡洛(MLMC)方法用于处理不确定参数,同时通过有限元方法将设备离散化。两种方法都产生数值近似值,因此总误差分为随机和空间贡献。我们提出一种特定的实现方式,其中基于基于Richardson外推的误差指示符控制空间误差。通过将样本分布在多个网格上,在MLMC方法中有效地减少了随机误差。该方法适用于封闭形式的玩具问题以及具有不确定性的永磁同步电机。所考虑的不确定性与定子中的材料特性和转子中的磁体特性有关。这些示例表明,误差指示器工作可靠,用于不同级别的网格不必嵌套,最重要的是,与标准的Monte Carlo相比,MLMC将计算成本降低了至少一个数量级。

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