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Simulation methodologies to support novel fuse design for energy storage systems using COMSOL

机译:支持使用COMSOL的储能系统新颖保险丝设计的仿真方法

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The conventional fusing strategy for high current applications is to use potentially bulky and expensive cartridge fuses. In a typical battery pack configuration in a hybrid electric vehicle (HEV), one fuse can be required for each module, or additionally for each cell for double protection. As an example, a vehicle battery with several modules could require significant cost, weight and volume to protect itself using conventional cartridge fuses. The paper proposes the use of finite element modelling and simulation techniques in understanding the behaviour of novel fusing features that would need to be integrated into existing conductors safely. Accurate simulation reduces the need for real parts to characterise the performance of a given fuse design, hence speeding up the design process. Using a finite-element, multi-physics simulator, such as COMSOL, complex fuse designs with perforated features rather than traditional material thinning, aimed at providing structural stability, were used for the evaluation of the methodology. The paper shows validation of a conventional fuse design against the FE model and compares the behaviour of a conventional fuse design and busbar fuse, using modelled result. It also shows the equivalent thermal performance and structural performance analysis and demonstrates the effectiveness of using tools like COMSOL by comparing simulation results with experimental test data.
机译:用于高电流应用的常规熔断策略是使用可能体积庞大且价格昂贵的盒式熔断器。在混合动力电动汽车(HEV)的典型电池组配置中,每个模块可能需要一个保险丝,或者每个电池还需要一个保险丝以提供双重保护。例如,具有多个模块的车辆电池可能需要大量的成本,重量和体积来使用常规的盒式熔断器来保护自身。本文提议使用有限元建模和仿真技术来理解新颖的熔断特征的行为,这些特征需要安全地集成到现有导体中。精确的仿真减少了用真实零件来表征给定熔断器设计性能的需求,从而加快了设计过程。通过使用有限元,多物理场仿真器(例如COMSOL),旨在提供结构稳定性的具有穿孔特征而不是传统的材料变薄的复杂保险丝设计被用于评估该方法。本文显示了针对FE模型的常规保险丝设计的验证,并使用建模结果比较了常规保险丝设计和母线保险丝的性能。它还显示了等效的热性能和结构性能分析,并通过将仿真结果与实验测试数据进行比较,证明了使用COMSOL之类工具的有效性。

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