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Multi-fidelity Electro-thermal optimization of Multiport Converter employing SiC MOSFET and Indirect Liquid Cooling

机译:采用SiC MOSFET和间接液体冷却的多端口转换器的多保真度电热优化

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This article presents a systematic multi-fidelity optimization framework applied to a 60kW Multiport Converter (MPC) for Electric Vehicle drivetrains. The proposed design methodology integrates the multidisciplinary design process through the integration of system optimization, multi-domain modeling, and existing Computer Aid Design (CAD) tools. At the first design stage, low-fidelity models of multi-objective functions (the static converter losses, the weight of inductor and the input ripple current) have been developed to find the optimal set of number of phases, switching frequency and inductor size. A set of optimal solutions in the form of a Pareto front is found by means of Non-dominated Sorting Genetic Algorithm (NSGA-II). At the second design stage, a medium-fidelity model coupling the dynamic electro-thermal behavior of a SiC MOSFET half-bridge module has been used to predict the instantaneous losses and junction temperature over a typical current load profile. Finally, a high fidelity model of the indirect liquid-cooling heatsink has been designed in ANSYS AIM to find the geometry parameters of the cold plate. The proposed design framework is an intermediate step to utilize better materials and select power components properly for a future hardware prototype.
机译:本文介绍了适用于60kW多端口转换器(MPC)的电动汽车传动系统的系统多保真度优化框架。拟议的设计方法通过系统优化,多领域建模和现有的计算机辅助设计(CAD)工具的集成,将多学科设计过程集成在一起。在第一个设计阶段,已开发出多目标函数的低保真度模型(静态转换器损耗,电感器的重量和输入纹波电流),以找到最佳的相数,开关频率和电感器尺寸的集合。通过非支配排序遗传算法(NSGA-II)找到了一组Pareto前沿形式的最优解。在第二个设计阶段,已使用耦合SiC MOSFET半桥模块动态电热行为的中保真度模型来预测典型电流负载曲线上的瞬时损耗和结温。最后,在ANSYS AIM中设计了一个高保真度的间接液体冷却散热器模型,以找到冷板的几何参数。拟议的设计框架是中间步骤,可以利用更好的材料并为将来的硬件原型正确选择电源组件。

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