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Advanced thermal management for temperature homogenization in high-power lithium-ion battery systems based on prismatic cells

机译:基于棱柱形电池的大功率锂离子电池系统中温度均一化的高级热管理

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In order to extend the lifetime of lithium-ion batteries, an advanced thermal management concept is investigated. In battery modules, different cell temperatures lead to higher efforts in cell balancing and reduce the system's lifetime. Especially when battery systems with phase change material operate outside the phase transition range high temperature gradients can occur that result in different ageing speeds of the cells. The effect of temperature dependent ageing of the battery cells is further investigated. A battery module concept is developed with focus on temperature homogenization by optimization of the module design and material characteristics. The module design combines several approaches including optimized interface pads, thermal storage materials and anisotropic multilayer graphite sheets. Numerical simulations with material and geometrical models are used for the evaluation of the concept with reference models. In addition, a battery cell model is set up, which describes the reversible and irreversible heat generation rate. Using model-order-reduction, the simulations are accelerated by reduction of the calculation time. In order to optimize the material parameters, the simulations are analyzed with design exploration techniques. As a result, the overall temperature differences in the module are minimized and the temperature distribution is homogenized with new developed interface pads. In combination with high thermally conductive synthetic graphite sheets the pads also compensate the insulating behavior of thermal storage material, which is used for temperature peak reduction and to smooth temperature changes.
机译:为了延长锂离子电池的寿命,研究了一种先进的热管理概念。在电池模块中,不同的电池温度会导致在电池平衡方面付出更大的努力,并缩短系统的使用寿命。特别是当具有相变材料的电池系统在相变范围之外运行时,会出现高温梯度,从而导致电池的老化速度不同。进一步研究了温度对电池单元老化的影响。电池模块的概念是通过优化模块设计和材料特性,着重于温度均质化而开发的。该模块设计结合了多种方法,包括优化的界面垫,储热材料和各向异性多层石墨片。使用具有材料和几何模型的数值模拟来评估具有参考模型的概念。此外,建立了一个电池单元模型,该模型描述了可逆和不可逆热产生率。使用模型降阶,可以通过减少计算时间来加快仿真速度。为了优化材料参数,使用设计探索技术对仿真进行了分析。结果,模块中的整体温差被最小化,并且温度分布通过新开发的接口垫得以均匀化。与高导热合成石墨板结合使用时,垫片还可以补偿储热材料的绝缘性能,该材料可用于降低温度峰值并平滑温度变化。

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