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author:

Song, Q. (Song, Q..) [1] | Shen, L. (Shen, L..) [2] | Shi, L. (Shi, L..) [3] | Pan, L. (Pan, L..) [4] | Wang, A. (Wang, A..) [5] | Ren, Z. (Ren, Z..) [6]

Indexed by:

EI Scopus

Abstract:

Flexible microporous metal rubber (FMP-MR) is widely used in national defense applications, yet its mechanical behavior under high-speed impact conditions remains insufficiently explored. In this study, dynamic and static experiments were conducted to systematically investigate the mechanical response of metal-wrapped microporous materials under impact loading that spanned 106 orders of magnitude. By combining a high-precision numerical model with a spatial contact point search algorithm, the spatio–temporal contact characteristics of the complex network structure in FMP-MR were systematically analyzed. Furthermore, the mapping mechanism from turn topology and mesoscopic friction behavior to macroscopic mechanical properties was comprehensively explored. The results showed that compared with quasi-static loading, FMP-MR under high-speed impact exhibited higher energy absorption efficiency due to high-strain-rate inertia effect. Therefore, the peak stress increased by 141%, and the maximum energy dissipation increased by 300%. Consequently, the theory of dynamic friction locking effect was innovatively proposed. The theory explains that the close synergistic effect of sliding friction and plastic dissipation promoted by the stable interturn-locked embedded structure is the essential reason for the excellent dynamic mechanical properties of FMP-MR under dynamic loading conditions. Briefly, based on the in-depth investigation of the mechanical response and energy dissipation mechanism of FMP-MR under impact loads, this study provides a solid theoretical basis for further expanding the application range of FMP-MR and optimizing its performance. © 2025 China Ordnance Society

Keyword:

Dynamic mechanical properties Energy dissipation Flexible microporous metal rubber Strain rate effect

Community:

  • [ 1 ] [Song Q.]School of Mechanical Engineering and Automation, Fuzhou University, Fuzhou, 350116, China
  • [ 2 ] [Song Q.]Institute of Metal Rubber & Vibration Noise, Fuzhou University, Fuzhou, 350116, China
  • [ 3 ] [Shen L.]State Key Laboratory of Fine Chemicals, Liaoning High Performance Polymer Engineering Research Center, School of Chemical Engineering, Dalian University of Technology, Dalian, 116024, China
  • [ 4 ] [Shen L.]Zhejiang Key Laboratory of Data-Driven High-Safety Energy Materials and Applications, Ningbo Key Laboratory of Special Energy Materials and Chemistry, Ningbo Institute of Materials Technology and Engineering, Chinese Academy of Sciences, Ningbo, 315201, China
  • [ 5 ] [Shi L.]School of Mechanical Engineering and Automation, Fuzhou University, Fuzhou, 350116, China
  • [ 6 ] [Shi L.]Institute of Metal Rubber & Vibration Noise, Fuzhou University, Fuzhou, 350116, China
  • [ 7 ] [Pan L.]School of Mechanical Engineering and Automation, Fuzhou University, Fuzhou, 350116, China
  • [ 8 ] [Pan L.]Institute of Metal Rubber & Vibration Noise, Fuzhou University, Fuzhou, 350116, China
  • [ 9 ] [Wang A.]AVIC Jincheng UAS Co., Ltd, Nanjing, 210000, China
  • [ 10 ] [Ren Z.]School of Mechanical Engineering and Automation, Fuzhou University, Fuzhou, 350116, China
  • [ 11 ] [Ren Z.]Institute of Metal Rubber & Vibration Noise, Fuzhou University, Fuzhou, 350116, China

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Source :

Defence Technology

ISSN: 2096-3459

Year: 2025

5 . 0 0 0

JCR@2023

Cited Count:

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ESI Highly Cited Papers on the List: 0 Unfold All

WanFang Cited Count:

Chinese Cited Count:

30 Days PV: 1

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