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Development of a constitutive model defining the point of short-circuit within lithium-ion battery cells

机译:开发定义锂离子电池单元内短路点的本构模型

摘要

The use of Lithium Ion batteries continues to grow in electronic devices, the automotive industry in hybrid and electric vehicles, as well as marine applications. Such batteries are the current best for these applications because of their power density and cyclic life. The United States Navy and the automotive industries have a keen interest in making and maintaining these batteries safe for use within the public. The testing necessary to ensure this safety is time consuming and expensive to manufacturers, thus a constitutive model that can emulate the effects of mechanical abuse to a battery cell or pack is necessary to be able to rapidly test various configurations and enclosures to preclude possible short circuit and thermal runaway of an installed battery is necessary. Homogenized computational cells have been developed at the MIT Crashworthiness laboratory and this research validates and refines those models for use in future work with both cylindrical and prismatic cells.A total of 22 mechanical abuse tests were conducted on partially charged cylindrical and pouch/prismatic Li-Jon cells under multiple loading conditions. The tests included lateral compression by cylindrical rods of various sizes, three point bending tests, and hemispherical punch tests on cylindrical cells. For the pouch/prismatic cells, the tests included hemispherical punch tests of various sizes as well as a conical punch test, vertical cylindrical punch test, and rectangular punch test. The tests measured the force imparted to the cell, linear displacement oft he punch into the cell structure, voltage output of the cell, as well as the temperature at the surface of the cell.The test data was utilized to validate and refine homogenous computational models for both cylindrical and pouch/prismatic Li-Ion cells for future use in the MIT Crashworthiness laboratory. The computational models subjected to simulated tests that were conducted on actual cells in the laboratory conclude that the computational models are valid and behave well compared to actual cells.This paper reports on results generated for the Li-Ion Battery Consortium at MIT.
机译:锂离子电池在电子设备,混合动力汽车和电动汽车的汽车行业以及船舶应用中的使用持续增长。这种电池由于其功率密度和循环寿命而成为目前最适合这些应用的电池。美国海军和汽车工业对制造和维护这些电池安全以供公众使用非常感兴趣。确保此安全性所必需的测试对于制造商而言既耗时又昂贵,因此,必须能够模拟机械滥用对电池或电池组的影响的本构模型,才能快速测试各种配置和外壳以防止可能的短路并且已安装电池的热失控是必要的。麻省理工学院耐撞性实验室已开发出均质化计算单元,该研究验证并完善了这些模型,以供将来用于圆柱和棱柱形单元中。对部分充电的圆柱和袋/棱柱形锂电池进行了22次机械滥用测试Jon细胞在多种负载条件下。测试包括通过各种尺寸的圆柱杆进行侧向压缩,三点弯曲测试以及对圆柱孔的半球形冲孔测试。对于袋/棱柱形电池,测试包括各种尺寸的半球形冲孔测试,以及锥形冲孔测试,垂直圆柱冲孔测试和矩形冲孔测试。这些测试测量了施加到电池上的力,冲入电池结构的线性位移,电池的电压输出以及电池表面的温度。测试数据用于验证和完善均质的计算模型适用于圆柱形和袋装/棱柱形锂离子电池,以备将来在麻省理工学院耐撞性实验室中使用。在实验室中对实际电池进行的模拟测试计算模型得出的结论是,该计算模型与实际电池相比是有效的,并且表现良好。本文报道了麻省理工学院锂离子电池联盟产生的结果。

著录项

  • 作者

    Campbell John Earl Jr;

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  • 年度 2012
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  • 原文格式 PDF
  • 正文语种 eng
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