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Dynamic progressive buckling of thin-wall grooved conical tubes under impact loading

机译:冲击载荷下薄壁槽锥管的动态渐进式屈曲

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In the present study, a new analytical model is employed to investigate thin-wall grooved conical tubes under impact loading. In fact, by considering the groove that made on the wall structure, the effects of groove on the process of crushing and absorption ability have been investigated. Crushing of non-grooved cone has been compared with one grooved and then by considering different numbers of grooves and thickness, and variable gradient for cone's wall is investigated under the axial impact loading. The number of grooves, thickness and cone's wall gradient are the main variables in this paper. The results of current new model are compared with the finite element simulation results obtained by the ABAQUS code. A good agreement is observed between the analytical and numerical model results. Finally, absorption ability and more control of the process of crushing in conical energy absorbers are optimised by executing grooves on the cone's wall. The initial peak load and mean axial crushing load are the main factors of the study, which showed that by increasing tension concentration at grooves, the initial peak load and the amount of absorbed energy will decrease, but the decrease in absorbed energy compared to reduction in initial peak load and control and more uniformity of absorber's crushing can be ignored.
机译:在本研究中,采用新的分析模型来研究冲击载荷下的薄壁槽锥形管。事实上,通过考虑在墙体结构上制造的凹槽,研究了凹槽对破碎和吸收能力过程的影响。已经将非带槽锥体的粉碎与一个带凹槽进行了比较,然后考虑到不同数量的凹槽和厚度,并且在轴向冲击载荷下研究了锥形壁的可变梯度。凹槽,厚度和锥形壁梯度的数量是本文的主要变量。将当前新模型的结果与ABAQUS代码获得的有限元模拟结果进行比较。在分析和数值模型结果之间观察到良好的一致性。最后,通过在锥形壁上执行凹槽优化了吸收能力和更多对抗锥形能量吸收过程的过程。初始峰值负荷和平均轴压载荷是研究的主要因素,这表明通过增加凹槽处的张力浓度,初始峰值负荷和吸收能量的量将降低,但与减少相比,吸收能量的减少降低可以忽略初始峰值负荷和控制以及吸收器的破碎的更均匀性。

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