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Prediction of Crash Performance of Adhesively-Bonded Vehicle Front Rails

机译:粘接车辆前轨碰撞性能预测

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摘要

Adhesive bonding provides a versatile strategy for joining metallic as well as non-metallic substrates, and also offers the functionality for joining dissimilar materials. In the design of unibody vehicles for NVH (Noise, Vibration and Harshness) performance, adhesive bonding of sheet metal parts along flanges can provide enhanced stiffening of body-in-white (BIW) leading to superior vibration resistance at low frequencies and improved acoustics due to sealing of openings between flanges. However, due to the brittle nature of adhesives, they remain susceptible to failure under impact loading conditions. The viability of structural adhesives as a sole or predominant mode of joining stamped sheet metal panels into closed hollow sections such as hatsections thus remains suspect and requires further investigation. As modern vehicle design is primarily driven by CAE (Computer-Aided Engineering), it is important to ensure that the experimental behaviors of adhesively-bonded components can be satisfactorily predicted. With the stated issues in mind i.e. gathering insight into the performance of adhesively-bonded steel hat-section components under impact loading and simulation of its behavior using an explicit FEA code such as LS-DYNA, a systematic experimental and numerical study is carried out comprising: (a) testing of single lap shear joints in a UTM and prediction of the average mechanical behavior of the joints till failure using a cohesive zone material modeling approach for the adhesive with independent Mode I and Mode II fracture criteria; (b) axial impact testing of double-hat section components with conventional spot welds, the same components with purely adhesively-bonded flanges in lieu of spot welds, and hybrid components with adhesive-bonding as well as sparse spot welds, and prediction of the detailed impact responses of the components mentioned; and (c) finally, implementation of the adhesive-based joining strategies in front rails of a validated finite element model of a commercially produced unibody passenger car and assessment of its performance vis-a-vis the baseline vehicle in full frontal NCAP test mode against a rigid barrier.
机译:粘合剂提供了一个通用的策略加入金属以及非金属基板,也提供了功能加入不同的材料。一体式摩擦(噪声、振动和车辆严厉)性能、粘合剂的表沿着法兰可以提供增强的金属零件硬邦邦的白车身(BIW)导致优越的抗振性在低频率由于密封和改善声学的空缺在法兰之间。胶粘剂的性质,他们仍然容易在冲击加载条件下失败。结构胶粘剂作为唯一或企业的生存加入印金属板的主要模式板等封闭的中空部分hatsections从而保持怀疑和需要进一步调查。主要是由CAE(计算机辅助工程),重要的是要确保实验的行为adhesively-bonded组件可以令人满意地预测。所述问题即收集见解到adhesively-bonded钢的性能在冲击荷载和帽形截面组件使用显式有限元分析模拟其行为代码如LS-DYNA系统实验和数值研究实施包括:(一)测试单搭接剪切UTM关节和预测的平均力学行为使用软熔带关节到失败材料胶粘剂与建模方法独立模式和模式II断裂准则;(b)双层毡帽的轴向冲击测试部分组件与传统点焊,一样的组件与纯粹adhesively-bonded法兰点焊代替和混合组件粘合剂以及稀疏的焊点,和预测的详细影响反应提到的组件;实施adhesive-based加入策略在rails的验证有限元素的商业模型产生了一体式乘用车和评估它的性能相对于基线车辆正面全裸NCAP测试模式刚性屏障。

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