Dynamic failure and crash simulation of carbon fiber sheet moulding compound (CF-SMC)

Federico Coren, Philipp S. Stelzer, Daniel Reinbacher, Christian Ellersdorfer, Peter Fischer, Zoltan Major
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引用次数: 3

Abstract

Carbon fiber sheet moulding compounds (CF-SMC) are a promising class of materials with the potential to replace aluminium and steel in many structural automotive applications. In this paper, we investigate the use of CF-SMC materials for the realization of a lightweight battery case for electric cars. A limiting factor for a wider structural adoption of CF-SMC has been a difficulty in modelling its mechanical behaviour with a computational effective methodology. In this paper, a novel simulation methodology has been developed, with the aim of enabling the use of FE methods based on shell elements. This is practical for the car industry since they can retain a good fidelity and can also represent damage phenomena. A hybrid material modelling approach has been implemented using phenomenological and simulation-based principles. Data from computer tomography scans were used for micro mechanical simulations to determine stiffness and failure behaviour of the material. Data from static three-point bending tests were then used to determine crack energy values needed for the application of hashing damage criteria. The whole simulation methodology was then evaluated against data coming from both static and dynamic (crash) tests. The simulation results were in good accordance with the experimental data.

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碳纤维片材模塑料(CF-SMC)的动态失效与碰撞模拟
碳纤维片材模塑化合物(CF-SMC)是一类很有前途的材料,有可能在许多结构汽车应用中取代铝和钢。在本文中,我们研究了使用CF-SMC材料实现电动汽车的轻型电池壳。CF-SMC在结构上更广泛采用的一个限制因素是难以用有效的计算方法对其力学行为进行建模。在本文中,开发了一种新的模拟方法,目的是使基于壳单元的有限元方法能够使用。这对汽车行业来说是实用的,因为它们可以保持良好的保真度,也可以代表损坏现象。使用现象学和基于模拟的原理,实现了一种混合材料建模方法。计算机断层扫描的数据被用于微观力学模拟,以确定材料的刚度和失效行为。然后使用静态三点弯曲试验的数据来确定哈希损伤标准应用所需的裂纹能量值。然后根据来自静态和动态(碰撞)测试的数据对整个模拟方法进行评估。仿真结果与实验数据吻合较好。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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