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Automotive crashworthiness of adhesively bonded carbon fiber polymer composite structures.

机译:粘合碳纤维聚合物复合结构的汽车耐撞性。

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In passenger vehicles, the ability to absorb impact energy and be survivable for the occupant is called the "crashworthiness" of the structure. The ACC (Automotive Composite Consortium) has been and continues to be very interested in investigating the use of fiber-reinforced composites as crash energy absorbers. It would have been ideal if the composite structure to be used as a crash energy absorber were manufactured as an integral, monolithic component, but limitations in the present day manufacturing technology necessitate the presence of joints in composite structures.; While many scientists have investigated the energy absorption characteristics in various fiber reinforced composite materials, there is no literature available on the energy absorption and crushing characteristics of these materials when they are used in a bonded structure. The influence of having a bonded joint within the crush zone of a composite structure has not been adequately characterized in the past. After reviewing the existing literature and based on our own work done in automotive crashworthiness studies it can be concluded that investigating the strain rate dependence of fiber reinforced polymer composites and bonded structures made from them are also very important since the amount of energy they absorb and their performance properties vary with loading rate. The above is the last stage in crashworthiness research, where in one would like to determine how best fiber composite structures can be bonded together in the pursuit of designing the most crashworthy adhesively bonded automotive composite structure.; Hence, a comprehensive experimental methodology to analyze and design adhesively bonded automotive composite structures made of carbon fiber polymer composites to sustain axial, off-axis and lateral crash/impact loads is developed and strain rate effects on the crashworthiness of these bonded carbon fiber composite structures are studied. The experimental results from this work are being used to provide the building blocks for model developments---first the coupon level, then progressing in complexity to component level. Correlation with experimental results will provide the basis for which the analytical developments including development of constitutive laws, materials models, damage algorithms and new finite elements, are made.
机译:在乘用车中,吸收碰撞能量并为乘员生存的能力被称为结构的“耐撞性”。汽车复合材料联盟(ACC)一直并且继续对研究将纤维增强复合材料用作碰撞能量吸收器非常感兴趣。如果将用作碰撞能量吸收器的复合结构制造为一体的整体部件将是理想的,但是当今制造技术的局限性要求在复合结构中存在接头。尽管许多科学家已经研究了各种纤维增强复合材料的能量吸收特性,但是当这些材料用于粘合结构时,尚无文献报道这些材料的能量吸收和破碎特性。过去没有充分表征在复合结构的压溃区域内具有粘结接头的影响。在回顾现有文献并基于我们在汽车耐撞性研究中所做的工作后,可以得出结论,研究纤维增强聚合物复合材料和由其制成的粘结结构的应变率依赖性也非常重要,因为它们吸收的能量和性能属性随加载速率而变化。以上是耐撞性研究的最后阶段,其中一个是要确定如何将最佳的纤维复合材料结构粘合在一起,以设计最耐撞性的粘合汽车复合材料结构。因此,开发了一种综合实验方法来分析和设计由碳纤维聚合物复合材料制成的粘合汽车复合材料结构,以承受轴向,离轴和横向碰撞/冲击载荷,并且应变率对这些粘合碳纤维复合结构的耐撞性具有影响被研究。这项工作的实验结果被用于为模型开发提供构建模块-首先是优惠券级别,然后是复杂性级别提高到组件级别。与实验结果的相关性将为进行分析开发(包括本构定律,材料模型,损伤算法和新的有限元)提供依据。

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