防务技术2024,Vol.35Issue(5) :137-150.DOI:10.1016/j.dt.2023.12.008

Impact response and energy absorption of metallic buffer with entangled wire mesh damper

Chao Zheng Jun Wu Mangong Zhang Xin Xue
防务技术2024,Vol.35Issue(5) :137-150.DOI:10.1016/j.dt.2023.12.008

Impact response and energy absorption of metallic buffer with entangled wire mesh damper

Chao Zheng 1Jun Wu 1Mangong Zhang 2Xin Xue1
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作者信息

  • 1. Institute of Metal Rubber & Vibration Noise,School of Mechanical Engineering and Automation,Fuzhou University,Fuzhou 350116,China
  • 2. Wuhan Second Ship Design and Research Institute,Wuhan 430205,China
  • 折叠

Abstract

An innovative metallic buffer consisting of series-connected hat-shaped entangled wire mesh damper(EWMD)and parallel springs are proposed in this work to enhance the reliability of engineering equipment.The impact response and the energy dissipation mechanism of hat-shaped EWMD under different quasi-static compression deformations(2-7 mm)and impact heights(100-200 mm)are investigated using experimental and numerical methods.The results demonstrate distinct stages in the quasi-static mechanical characteristics of hat-shaped EWMD,including stiffness softening,negative stiffness,and stiffness hardening.The loss factor gradually increases with increasing compression deformation before entering the stiffness hardening stage.Under impact loads,the hat-shaped EWMD exhibits optimal impact energy absorption when it enters the negative stiffness stage(150 mm),resulting in the best impact isolation effect of metallic buffer.However,the impact energy absorption significantly decreases when hat-shaped EWMD enters the stiffness hardening stage.Interestingly,quasi-static compression analysis after experiencing different impact loads reveals the disappearance of the nega-tive stiffness phenomenon.Moreover,with increasing impact loads,the stiffness hardening point pro-gressively shifts to an earlier stage.

Key words

Metallic buffer/Hat-shaped EWMD/Drop impact/Energy absorption characteristics/Mechanical behavior

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基金项目

国家自然科学基金(12272094)

福建省自然科学基金(2022J01541)

湖北省自然科学基金(2022CFB441)

出版年

2024
防务技术
中国兵工学会

防务技术

CSTPCD
影响因子:0.358
ISSN:2214-9147
参考文献量30
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