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首页> 外文期刊>Journal of power sources >Finite element model approach of a cylindrical lithium ion battery cell with a focus on minimization of the computational effort and short circuit prediction
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Finite element model approach of a cylindrical lithium ion battery cell with a focus on minimization of the computational effort and short circuit prediction

机译:圆柱锂离子电池单元的有限元模型方法,重点是最小化计算量和短路预测

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摘要

In this research, a parameterized beam-element-based mechanical modeling approach for cylindrical lithium ion batteries is developed. With the goal to use the cell model in entire vehicle crash simulations, focus of development is on minimizing the computational effort whilst simultaneously obtaining accurate mechanical behavior. The cylindrical cell shape is approximated by radial beams connected to each other in circumferential and longitudinal directions. The discrete beam formulation is used to define an anisotropic material behavior. An 18650 lithium ion cell model constructed in LS-Dyna is used to show the high degree of parameterization of the approach. A criterion which considers the positive pole deformation and the radial deformation of the cell is developed for short circuit prediction during simulation. An abuse testing program, consisting of radial crush, axial crush, and penetration is performed to evaluate the mechanical properties and internal short circuit behavior of a commercially available 18650 lithium cell. Additional 3-point-bending tests are performed to verify the approach objectively. By reducing the number of strength-related elements to 1600, a fast and accurate cell model can be created. Compared to typical cell models in technical literature, simulation time of a single cell load case can be reduced by approx. 90%. (C) 2017 Elsevier B.V. All rights reserved.
机译:在这项研究中,开发了一种基于参数化束元素的圆柱锂离子电池机械建模方法。为了在整个车辆碰撞仿真中使用单元模型,开发的重点是最小化计算量,同时获得准确的机械性能。圆柱单元的形状近似为在周向和纵向上相互连接的径向梁。离散梁公式用于定义各向异性材料的行为。 LS-Dyna中构建的18650锂离子电池模型用于显示该方法的高度参数化。提出了考虑电池正极变形和径向变形的判据,用于仿真过程中的短路预测。执行包括径向挤压,轴向挤压和穿透的滥用测试程序,以评估市售18650锂电池的机械性能和内部短路行为。进行附加的三点弯曲测试以客观地验证该方法。通过将强度相关元素的数量减少到1600,可以创建快速而准确的单元模型。与技术文献中的典型电池模型相比,单个电池负载情况下的仿真时间可减少约5%。 90%。 (C)2017 Elsevier B.V.保留所有权利。

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