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Performance reliability analysis and optimization of lithium-ion battery packs based on multiphysics simulation and response surface methodology

机译:基于多体仿真和响应表面方法的锂离子电池组性能可靠性分析与优化

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摘要

Reliability optimization has always been an important topic in the application of lithium-ion batteries in electric vehicles. To optimize the redundancy and layout design of battery packs accurately and efficiently, a novel reliability optimization method based on a multiphysics coupling simulation and a response surface methodology is proposed. An electrochemical-thermal-fluid dynamics model, a temperature-dependent stochastic degradation model and a multistate performance reliability model are developed. A response surface method with the BoxBehnken design method is applied to reduce the number of simulation trials. Then, the redundancy scheme and two layouts of a battery pack are optimized, followed by a sensitivity analysis of the design parameters. The results show that a large spacing in the direction of air flow contributes to improving system reliability. In this case, for the layout of a cross arrangement with equal spacing, the optimal reliability design scheme of a 5 x 5 parallel series with optimal design parameters can improve the cycle life from approximately 1989 to 2933 when taking 90% system reliability as the criterion. The collaborative optimization of redundancy and layout is of great importance to extend the service life and improve the system reliability of battery packs.
机译:可靠性优化始终是在电动车辆中锂离子电池应用的重要主题。提出了一种优化电池组的冗余和布局设计,提出了一种基于多体耦合仿真和响应表面方法的新型可靠性优化方法。开发了电化学 - 热流体动力学模型,依赖于温度的随机降解模型和多岩性能可靠性模型。应用具有Boxbehnken设计方法的响应面方法来减少模拟试验的数量。然后,优化冗余方案和电池组的两个布局,然后进行设计参数的灵敏度分析。结果表明,空气流方向的大间距有助于提高系统可靠性。在这种情况下,对于具有相等间隔的交叉装置的布局,具有最佳设计参数的5×5并联系列的最佳可靠性设计方案可以在将90%的系统可靠性作为标准时从大约1989年到2933改善循环寿命。冗余和布局的协同优化非常重要,以扩展使用寿命,提高电池组的系统可靠性。

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