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A numerical approach to model and predict the energy absorption and crush mechanics within a long-fiber composite crush tube.

机译:一种模拟和预测长纤维复合材料破碎管内能量吸收和破碎力学的数值方法。

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Past research has conclusively shown that long fiber structural composites possess superior specific energy absorption characteristics as compared to steel and aluminum structures. However, destructive physical testing of composites is very costly and time consuming. As a result, numerical solutions are desirable as an alternative to experimental testing. Up until this point, very little numerical work has been successful in predicting the energy absorption of composite crush structures. This research investigates the ability to use commercially available numerical modeling tools to approximate the energy absorption capability of long-fiber composite crush tubes. This study is significant because it provides a preliminary analysis of the suitability of LS-DYNA to numerically characterize the crushing behavior of a dynamic axial impact crushing event.; Composite crushing theory suggests that there are several crushing mechanisms occurring during a composite crush event. This research evaluates the capability and suitability of employing, LS-DYNA, to simulate the dynamic crush event of an E-glass/epoxy cylindrical tube. The model employed is the composite "progressive failure model", a much more limited failure model when compared to the experimental failure events which naturally occur. This numerical model employs (1) matrix cracking, (2) compression, and (3) fiber breakage failure modes only. The motivation for the work comes from the need to reduce the significant cost associated with experimental trials. This research chronicles some preliminary efforts to better understand the mechanics essential in pursuit of this goal. The immediate goal is to begin to provide deeper understanding of a composite crush event and ultimately create a viable alternative to destructive testing of composite crush tubes.
机译:过去的研究已得出结论,与钢和铝结构相比,长纤维结构复合材料具有优异的比能量吸收特性。但是,复合材料的破坏性物理测试非常昂贵且耗时。结果,期望数值解作为实验测试的替代。到现在为止,很少有数值工作可以成功地预测复合材料破碎结构的能量吸收。这项研究调查了使用商用数值建模工具估算长纤维复合破碎管的能量吸收能力的能力。这项研究是有意义的,因为它提供了对LS-DYNA的适用性的初步分析,以数字化地表征动态轴向冲击破碎事件的破碎行为。复合破碎理论表明,在复合破碎事件中会发生多种破碎机理。这项研究评估了使用LS-DYNA模拟电子玻璃/环氧树脂圆柱管的动态挤压事件的能力和适用性。所使用的模型是复合“渐进式故障模型”,与自然发生的实验性故障事件相比,故障模型更为有限。该数值模型仅采用(1)基体开裂,(2)压缩和(3)纤维断裂破坏模式。开展这项工作的动机来自于减少与试验相关的大量费用的需求。这项研究记录了一些初步的工作,以更好地理解实现该目标所必需的力学。近期目标是开始提供对复合材料挤压事件的更深入了解,并最终为复合材料挤压管的破坏性测试提供可行的替代方案。

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