Compaction and fragmentation of porous gypsum targets from low-velocity impacts

被引:14
|
作者
Fujii, Yuichi [2 ]
Nakamura, Akiko M. [1 ]
机构
[1] Kobe Univ, Grad Sch Sci, Nada Ku, Kobe, Hyogo 6578501, Japan
[2] Kobe Univ, Grad Sch Sci & Technol, Nada Ku, Kobe, Hyogo 6578501, Japan
关键词
Collisional physics; Impact processes; Asteroids; Planetesimals; COLLISIONAL DISRUPTION; RESTITUTION COEFFICIENTS; ICE; ASTEROIDS;
D O I
10.1016/j.icarus.2009.01.023
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
We performed low-velocity impact experiments of gypsum spheres with porosity ranging from 0 to 61% and diameter ranging from 25 to 83 min. The impact velocity was from 0.2 to 22 m/s. The target was an iron plate. The outcome of gypsum spheres with porosity 31-61% was different from those of nonporous ice [Higa M., Arakawa, M., Maeno, N., 1996. Planet. Space Sci. 44, 917-925; Higa M., Arakawa, M., Maeno, N., 1998. Icarus 133, 310-320] and non-porous gypsum. In between the intact and fragmentation modes, the outcome of the non-porous ice and gypsum was crack growth at the impact point. However, the outcome of the porous gypsum was compaction. We found that the restitution coefficients of the porous gypsum spheres were all in a similar range, in spite of the difference of the porosity and size at impact velocities up to about 10 m/s where they begin to be fragmented in pieces. Moreover, there is not a large difference between the restitution coefficient of porous and non-porous gypsum. These results collectively indicate that restitution coefficient of gypsum spheres of cm-size is not strongly dependent upon the porosity and compaction process. (C) 2009 Elsevier Inc. All rights reserved.
引用
收藏
页码:795 / 801
页数:7
相关论文
共 50 条
  • [41] Acoustic emission monitoring and automated characterization of low-velocity impacts on composite components
    Ai, Li
    Laxman, K. C.
    Elbatanouny, Elhussien
    Bayat, Mahmoud
    van Tooren, Michel
    Ziehl, Paul
    MECHANICAL SYSTEMS AND SIGNAL PROCESSING, 2024, 218
  • [42] An experimental study on damage intensity in composite plates subjected to low-velocity impacts
    Seifoori, Sajjad
    Izadi, R.
    Liaghat, G. H.
    Parrany, Ahmad Mahdian
    POLYMER TESTING, 2021, 93
  • [43] The relationship of seat backrest angle and neck injury in low-velocity rear impacts
    Latchford, J
    Chirwa, EC
    Chen, T
    Mao, M
    PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART D-JOURNAL OF AUTOMOBILE ENGINEERING, 2005, 219 (D11) : 1293 - 1302
  • [44] Kinematic and electromyographic response to whiplash loading in low-velocity whiplash impacts - a review
    Kumar, S
    Ferrari, R
    Narayan, Y
    CLINICAL BIOMECHANICS, 2005, 20 (04) : 343 - 356
  • [45] A novel solution of rectangular composite laminates under oblique low-velocity impacts
    Zhang, Yinxiao
    Gong, Zheng
    Pan, Ernian
    Zhang, Chao
    APPLIED MATHEMATICS AND MECHANICS-ENGLISH EDITION, 2024, 45 (12) : 2165 - 2182
  • [46] Damage of scarf-repaired composite laminates subjected to low-velocity impacts
    Cheng, Xiaoquan
    Zhao, Wenyi
    Liu, Shufeng
    Xu, Yunyan
    Bao, Jianwen
    STEEL AND COMPOSITE STRUCTURES, 2014, 17 (02): : 199 - 213
  • [47] Masticatory muscle reaction in simulated low-velocity rear-end impacts
    Hernandez, Lvonne A.
    Fyfe, Ken R.
    Heo, Giseon
    Major, Paul W.
    JOURNAL OF OROFACIAL PAIN, 2006, 20 (03): : 199 - 207
  • [48] Structural resilience of post-tensioned members to repeated low-velocity impacts
    Kang, Thomas H. -K.
    Nghiem, Andrew
    Demartino, Cristoforo
    Zhou, Sicheng
    Xiao, Yan
    ENGINEERING STRUCTURES, 2025, 330
  • [49] Protective elements for lattice composite fuselage structures against low-velocity impacts
    Kondakov I.
    Chernov A.
    Guseva N.
    Levchenkov M.
    Aerospace Systems, 2022, 5 (1) : 1 - 9
  • [50] A 3D damage analysis of low-velocity impacts on laminated composites
    Guinard, S
    Allix, O
    Guédra-Degeorges, D
    Vinet, A
    COMPOSITES SCIENCE AND TECHNOLOGY, 2002, 62 (04) : 585 - 589