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Switched-fidelity modeling and optimization for multi-physics dynamical systems

机译:多物理动力系统的切换保真度建模和优化

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With the advancement of computational power and modeling techniques, automotive and aerospace companies are beginning to utilize highly detailed models throughout the phases of system design and development. Often these systems consist of highly coupled subsystems that span mechanical, electrical, thermal, hydraulic, and pneumatic energy domains. Highly accurate models are typically developed for each individual subsystem, but are operated in isolation, thus ignoring the coupling between subsystems. This can prevent optimal operation at the system level. For large-scale systems, utilizing high-fidelity subsystem models for entire system simulations can be computationally expensive. As a result, lower fidelity models often replace the high-fidelity models at the expense of simulation accuracy. This paper presents a methodology for dynamically changing the fidelity of component models throughout a simulation to find an optimal balance between simulation speed and accuracy. This strategy is demonstrated for a finite-volume model of a vapor compression system where the model fidelity is based on the number of volumes used for the evaporator. Switched-fidelity modeling is shown to increase simulation speed by 64% from the baseline speed of the high-fidelity model, while reducing accumulated error by 69% for secondary flow exit temperature and 76% for primary flow exit pressure from the baseline of the low-fidelity model.
机译:随着计算能力和建模技术的发展,汽车和航空航天公司开始在系统设计和开发的整个阶段中使用高度详细的模型。通常,这些系统由跨越机械,电气,热,液压和气动能量域的高度耦合的子系统组成。通常为每个单独的子系统开发高度精确的模型,但是这些模型是独立运行的,因此忽略了子系统之间的耦合。这可能会阻止系统级别的最佳操作。对于大型系统,将高保真子系统模型用于整个系统仿真可能在计算上非常昂贵。结果,低保真度模型经常以牺牲仿真精度为代价来代替高保真度模型。本文提出了一种在整个仿真过程中动态更改组件模型保真度的方法,以在仿真速度和精度之间找到最佳平衡。该策略针对蒸汽压缩系统的有限体积模型进行了演示,其中模型保真度基于用于蒸发器的体积数量。开关保真度模型显示出,与低保真度模型的基线速度相比,仿真速度比高保真度模型的基线速度提高了64%,同时将二次流出口温度的累积误差降低了69%,将主流出口压力的累积误差降低了76%。 -保真度模型。

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