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Isothermal Temperature Control for Battery Testing and Battery Model Parameterization

机译:电池测试的等温温度控制和电池模型参数化

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摘要

The hybrid/electric vehicle (H/EV) market is very dependent on battery models. Battery models inform cell and battery pack design, critical in online battery management systems (BMSs), and can be used as predictive tools to maximize the lifetime of a battery pack. Battery models require parameterization, through experimentation. Temperature affects every aspect of a battery's operation and must therefore be closely controlled throughout all battery experiments. Today, the private sector prefers climate chambers for experimental thermal control. However, evidence suggests that climate chambers are unable to adequately control the surface temperature of a battery under test. In this study, laboratory apparatus is introduced that controls the temperature of any exposed surface of a battery through conduction. Pulse discharge tests, temperature step-change tests, and driving cycle tests are used to compare the performance of this conductive thermal control apparatus (CTCA) against a climate chamber across a range of scenarios. The CTCA outperforms the climate chamber in all tests. In CTCA testing, the rate of heat removal from the cell is increased by two orders of magnitude. The CTCA eliminates error due to cell surface temperature rise, which is inherent to climate chamber testing due to insufficient heat removal rates from a cell under test. The CTCA can reduce the time taken to conduct entropic parameterization of a cell by almost 10 days, a 70% reduction in the presented case. Presently, the H/EV industry's reliance on climate chambers is impacting the accuracy of all battery models. The industry must move away from the flawed concept of convective cooling during battery parameterization.
机译:混合动力/电动汽车(H / EV)市场非常依赖电池模型。告知电池和电池组设计的关键网上电池管理系统(bms),可以作为预测工具来最大化电池组的寿命。需要参数化,通过实验。电池的操作,因此必须密切控制所有电池实验。气候室实验热控制。钱伯斯无法充分控制表面温度的电池测试下。这项研究中,介绍了实验室仪器控制温度的任何接触电池表面通过传导。放电测试,温度方面的测试,用于比较和驾驶循环测试这种导电热控制的性能装置(CTCA)对人工气候室一系列的场景。人工气候室在所有测试。从细胞除热的速度增加了两个数量级。消除了由于细胞表面温度误差上升,这是内在的人工气候室测试由于热量除去率不足从一个细胞被测试。时间进行的参数化细胞近10天,减少了70%提出了用例。行业的依赖气候室影响所有电池模型的准确性。行业必须从有缺陷的概念对流冷却的电池参数化。

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