Blast-loading simulators: Multiscale design of graded cellular projectiles considering projectile-beam coupling effect | |
Zhang, Yuanrui; Zhu, Yudong; Chang, Baixue; Yu, Jilin; Zheng, Zhijun![]() | |
Corresponding Author | Zheng, Zhijun([email protected]) |
Source Publication | JOURNAL OF THE MECHANICS AND PHYSICS OF SOLIDS
![]() |
2023-11-01 | |
Volume | 180Pages:27 |
ISSN | 0022-5096 |
Abstract | Graded cellular materials with a proper design may simulate blast loading and can be applied to test the anti-blast performance of protective structures. A multiscale design strategy is proposed to obtain the density distribution and mesostructure of graded cellular projectiles when taking a clamped beam as a protective structure and an exponential attenuation load as the simulation target. A projectile-target coupling model is developed for determining the projectile density distribution, and the dimensionless governing equations containing two kinds of dimensionless parameters, namely target-independent parameters and coupling parameters, are obtained. The closed-cell mesostructure of a graded cellular projectile is generated through the Voronoi technique, and the cell configuration parameters are optimized to achieve the designed density distribution while ensuring manufacturability. The graded cellular projectiles are prepared by using 3D printing technology, and their load simulation effects are verified through numerical simulations and impact tests. Case studies demonstrate the necessity of considering the projectile-target coupling effect in the density design. The applicable test condition and selection method of initial parameters of graded cellular projectiles are analyzed with dimensionless parameters. It is found that the initial momentum of the projectile mainly governs its effective simulation duration. With the increase of the initial momentum, the effective simulation duration increases, and the initial momentum should be less than the total impulse of the simulated blast load. The impact technique of well-designed graded cellular projectiles shows great potential in simulating various blast loadings and testing novel protective structures in a laboratory environment. |
Keyword | Blast loading Graded cellular projectile Multiscale design Coupling effect 3D printing |
DOI | 10.1016/j.jmps.2023.105402 |
Indexed By | SCI ; EI |
Language | 英语 |
WOS ID | WOS:001069480300001 |
WOS Keyword | CLAMPED SANDWICH BEAMS ; DYNAMIC-RESPONSE ; METAL FOAM ; DEFORMATION ; IMPACT ; CORE ; RESISTANCE ; BEHAVIOR ; MODE ; WAVE |
WOS Research Area | Materials Science ; Mechanics ; Physics |
WOS Subject | Materials Science, Multidisciplinary ; Mechanics ; Physics, Condensed Matter |
Funding Project | National Natural Science Foundation of China[11872360] ; National Natural Science Foundation of China[12102429] |
Funding Organization | National Natural Science Foundation of China |
Classification | 一类/力学重要期刊 |
Ranking | 1 |
Contributor | Zheng, Zhijun |
Citation statistics | |
Document Type | 期刊论文 |
Identifier | http://dspace.imech.ac.cn/handle/311007/92985 |
Collection | 非线性力学国家重点实验室 |
Recommended Citation GB/T 7714 | Zhang, Yuanrui,Zhu, Yudong,Chang, Baixue,et al. Blast-loading simulators: Multiscale design of graded cellular projectiles considering projectile-beam coupling effect[J]. JOURNAL OF THE MECHANICS AND PHYSICS OF SOLIDS,2023,180:27.Rp_Au:Zheng, Zhijun |
APA | Zhang, Yuanrui,Zhu, Yudong,Chang, Baixue,Yu, Jilin,&Zheng, Zhijun.(2023).Blast-loading simulators: Multiscale design of graded cellular projectiles considering projectile-beam coupling effect.JOURNAL OF THE MECHANICS AND PHYSICS OF SOLIDS,180,27. |
MLA | Zhang, Yuanrui,et al."Blast-loading simulators: Multiscale design of graded cellular projectiles considering projectile-beam coupling effect".JOURNAL OF THE MECHANICS AND PHYSICS OF SOLIDS 180(2023):27. |
Files in This Item: | Download All | |||||
File Name/Size | DocType | Version | Access | License | ||
Jp2023Fa177.pdf(4953KB) | 期刊论文 | 出版稿 | 开放获取 | CC BY-NC-SA | View Download |
Items in the repository are protected by copyright, with all rights reserved, unless otherwise indicated.
Edit Comment