Out-of-plane crashworthiness of hierarchical cellular topology with different wall thicknesses in hierarchies

IF 3.5 3区 材料科学 Q1 ENGINEERING, MECHANICAL Journal of Sandwich Structures & Materials Pub Date : 2023-06-01 DOI:10.1177/10996362231180142
Yuwu Zhang, Guoliang Liu, Shu Liu, Yugang Li
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Abstract

Hierarchical honeycomb is a topology presenting better weight-efficiency than the conventional honeycomb. However, the existing research are mainly conducted based on an assumption of uniform in-plane wall thickness. Rare studies consider the effect of different wall thicknesses in hierarchies. This paper investigates the out-of-plane crashworthiness of vertex hexagonal-based hierarchical honeycombs with non-uniform wall thickness in distinct hierarchies experimentally and theoretically. The coupons with parent material of 316L steel are obtained using Selective Laser Melting fabricating technique. The experimental results indicate that the first order honeycombs with uniform wall thickness experience a failure mechanism transition from local elastic buckling to local plastic buckling of cell walls at the critical density of 0.0772. A progressive folding wave can be identified when relative density is lower than 0.0386. At any edge length ratio, the plateau crushing stress increases monotonously as the increase of the wall thickness ratio, but not for the half wavelength. Both the half wavelength and maximum plateau crushing stresses are linearly related to relative density. For the first order honeycombs, the effect of edge length ratio is more considerable on the plateau crushing stress than the wall thickness ratio. The second order honeycombs exhibit higher half wavelengths and maximum plateau crushing stresses than the first order honeycombs owing to the more considerable cell wall constraint among the hierarchies. Compared to the hierarchical honeycombs with uniform wall thicknesses at relative densities of 0.005∼0.0386, the non-uniform wall thickness enhances the maximum plateau crushing stress significantly, especially at a low relative density, and the maximum improvements for first order and second order honeycombs are 71.5 and 48.6%, respectively. However, the absolute improvements are similar, averaging approximately 1.18 MPa. This work provides a foundation for developing ultralight hierarchical material candidates applied in passive protection equipment, such as aircrafts and vehicles.
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不同壁厚分层元胞拓扑的面外耐撞性
分层蜂窝结构是一种比传统蜂窝结构具有更好的重量效率的拓扑结构。然而,现有的研究主要是基于面内壁厚均匀的假设。很少有研究考虑不同壁厚在层次上的影响。本文从实验和理论两方面研究了不同层次非均匀壁厚的顶点六边形分层蜂窝的面外耐撞性。采用选择性激光熔化法制备了以316L钢为母材的钢板。实验结果表明,等壁厚一阶蜂窝在临界密度为0.0772时,蜂窝细胞壁发生了由局部弹性屈曲到局部塑性屈曲的破坏机制转变。当相对密度小于0.0386时,可识别为递进折叠波。在任意边长比下,随着壁厚比的增加,平台破碎应力单调增加,但在半波长处不单调增加。半波长和最大平台破碎应力均与相对密度呈线性相关。对于一级蜂窝,边缘长度比对平台破碎应力的影响比壁厚比更大。二级蜂窝的半波长和最大平台压碎应力比一级蜂窝高,这是由于各层次间细胞壁的约束更大。与相对密度为0.005 ~ 0.0386的均匀壁厚分层蜂窝相比,非均匀壁厚显著提高了最大平台破碎应力,特别是在相对密度较低时,一级和二级蜂窝的最大增幅分别为71.5%和48.6%。然而,绝对改进是相似的,平均约为1.18 MPa。这项工作为开发应用于飞机和车辆等被动防护设备的超轻分层候选材料奠定了基础。
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来源期刊
Journal of Sandwich Structures & Materials
Journal of Sandwich Structures & Materials 工程技术-材料科学:表征与测试
CiteScore
9.60
自引率
2.60%
发文量
49
审稿时长
7 months
期刊介绍: The Journal of Sandwich Structures and Materials is an international peer reviewed journal that provides a means of communication to fellow engineers and scientists by providing an archival record of developments in the science, technology, and professional practices of sandwich construction throughout the world. This journal is a member of the Committee on Publication Ethics (COPE).
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