Dynamic structural response of thin conical shells during drop impact and related load characteristics

IF 5.3 2区 工程技术 Q1 MECHANICS
Ke Lin , Shuai Wang , Jicheng Li , Ming Qu , Yixia Yan , Gang Chen , Qingping Zhang , Liang Xiang
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Abstract

To study the deformation and failure modes of thin conical shells during drop impact and related load characteristics derived from the structural response of conical shells, the dynamic structural response of thin conical shells during drop impact and related load characteristics are investigated in the present manuscript, integrated with the numerical simulation and the stress wave analysis. The deformation and failure morphologies of thin conical shells, as well as the acceleration history of components mounted on its upper end will be emphasized, and the influences of several factors, including drop height, structural mass, and support frame rigidity, etc., are also discussed in detail. Related results demonstrate that in the drop impact condition, damage and failure in the thin conical shell mainly initiates in the region near the inner surface at its bottom end, then the whole bottom part separates from the shell, and cracks propagate gradually along with the drop progress, finally petal-like fragments are formed and they further fold inward progressively. The deformation and failure process of thin conical shell significantly affects the acceleration characteristics of components mounted on the upper end. The reflection and superposition of impact stress wave within the conical shell, support frame, and component structure dominate the overall load characteristics. The drop height and structural mass contribute significantly to the deformation and failure morphologies of conical shell and then the acceleration history of the key component, higher drop height will result in higher degree of deformation and longer deformation duration, and then lead to the increase in the amplitude and width of the acceleration pulse; similarly, larger structural mass will also induce higher width of acceleration pulse, but it results in a reduced acceleration amplitude. Moreover, due to the vibration of the support frame during the drop process, a certain vibration feature occurs in the acceleration curve of the key component, and the vibration frequency is the same as the elastic vibration frequency of support frame structure. Related work is beneficial in providing theoretical guidance for the structural design of load generators based on thin conical shells.
薄锥形壳在跌落冲击下的动力结构响应及其载荷特性
为了研究由圆锥壳结构响应导出的圆锥壳在跌落冲击过程中的变形、破坏模式及相关荷载特性,本文结合数值模拟和应力波分析,研究了圆锥壳在跌落冲击过程中的动力结构响应及相关荷载特性。本文将重点讨论锥形薄壳的变形和破坏形态,以及安装在其上端的构件的加速度历史,并详细讨论了落差高度、结构质量、支撑框架刚度等因素的影响。研究结果表明:在水滴冲击条件下,锥形薄壳的破坏破坏主要从底端内表面附近区域开始,然后整个底部与壳分离,裂纹随着水滴的下落逐渐扩展,最终形成花瓣状碎片,并进一步向内折叠。锥形薄壳的变形和破坏过程对上端安装构件的加速度特性有显著影响。冲击应力波在圆锥壳、支撑框架和构件结构内部的反射和叠加决定了整体荷载特性。下落高度和结构质量对锥形壳的变形破坏形态有显著影响,进而影响关键构件的加速度历程,下落高度越高,变形程度越高,变形持续时间越长,从而导致加速度脉冲的幅值和宽度增大;同样,较大的结构质量也会产生较大的加速度脉冲宽度,但会导致加速度幅值减小。而且,由于支撑架在下落过程中的振动,关键部件的加速度曲线出现一定的振动特征,且振动频率与支撑架结构的弹性振动频率相同。相关工作有助于为薄锥壳负载发电机的结构设计提供理论指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
8.70
自引率
13.00%
发文量
606
审稿时长
74 days
期刊介绍: EFM covers a broad range of topics in fracture mechanics to be of interest and use to both researchers and practitioners. Contributions are welcome which address the fracture behavior of conventional engineering material systems as well as newly emerging material systems. Contributions on developments in the areas of mechanics and materials science strongly related to fracture mechanics are also welcome. Papers on fatigue are welcome if they treat the fatigue process using the methods of fracture mechanics.
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