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首页> 外文期刊>International Journal of Automotive Technology >Design optimization of thin-walled circular tubular structures with graded thickness under later impact loading
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Design optimization of thin-walled circular tubular structures with graded thickness under later impact loading

机译:后期冲击荷载作用下厚度分级的薄壁圆管结构设计优化

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摘要

In order to improve the crashing performance under lateral impact scenario, a thin-walled circular tube with functionally graded thickness (FGT) is introduced with its superior performance in this paper. The wall thickness of the FGT tubual structure is graded along the axial direction. Based on the assumed graded thickness function, several important parameters (such as the graded exponent, the tube diameter and yield stress) are selected and their effects on dynamic energy absorption characteristics are discussed. The analyzed results show that the FGT has better crashworthiness in special energy absorption (SEA) and crash force efficiency (CFE) than uniform thickness (UT) tube. Then, the optimization design is further employed to obtain the Pareto fronts of the graded configuration under lateral impact loading. Note that the specific energy absorption (SEA) and crashing force efficiency (CFE) are regarded as the objectives, and the grading exponent, yield stress and diameter are defined as the design variables. The surrogate model with the best accuracy is chosen by error analysis for improving the accuracy of optimization process. Thus, the optimal solution is reasonably obtained and analyzed. The optimal results indicate that the FGT structures have significant potential applications into vehicle body especially under later impacting event.
机译:为了提高侧向冲击工况下的碰撞性能,本文介绍了一种具有功能梯度厚度(FGT)的薄壁圆管,并利用其优越的性能。FGT管状结构的壁厚沿轴向分级。基于假设的梯度厚度函数,选取了几个重要参数(如梯度指数、管径和屈服应力),并讨论了它们对动能吸收特性的影响。分析结果表明,FGT在特殊能量吸收(SEA)和碰撞力效率(CFE)方面比均匀厚度(UT)管具有更好的耐撞性。然后,进一步采用优化设计得到侧向冲击荷载作用下梯度构型的帕累托前沿;请注意,将比能量吸收 (SEA) 和碰撞力效率 (CFE) 视为目标,将级配指数、屈服应力和直径定义为设计变量。通过误差分析选择精度最高的代理模型,以提高优化过程的精度。因此,可以合理地获得并分析最优解。最优结果表明,FGT结构在车身中具有显著的潜在应用,特别是在后期撞击事件中。

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