期刊文献+

基于Archard理论分析弹体质量侵蚀 被引量:3

On the mass loss of a projectile based on the Archard theory
下载PDF
导出
摘要 基于模具与工件磨损中的Archard粘着磨损理论,分析弹体表面微粒的细观塑性变形,建立弹体质量侵蚀表征模型,运用动态空腔膨胀理论得到弹体表面应力,再通过差分计算得到高速侵彻中弹体宏观轮廓的钝化回退过程。计算得到的弹体外部轮廓、质量损失及侵彻深度等参数与实验结果基本吻合。结果表明;弹体侵蚀效应对侵彻时间和深度的影响随着撞击速度的增大愈加显著;弹体侵彻过程中最大过载与刚性条件下有较大区别,提高弹体材料的屈服强度能有效减少侵彻过程中弹体的质量损失,提高最终侵彻深度。 Based on the Archard's theory,a mass abrasion model for the projectile was proposed by using the multi-scale method of analyzing from the microscopic plastic deformation to the macroscopic mass loss of the projectile.In combination of the dynamic spherical cavity-expansion theory of the concrete materials and the abrasion model,the receding displacement of the point on the projectile surface was obtained.Thereby,the calculation results such as the shape of the projectile,the depth of penetration,the mass loss of the projectile,and so on,are consistent with the experimental results.Results show that the mass loss of the projectile has a great influence on the time and depth of the penetration with increasing impact velocity in the penetration process.The overload encountered by the projectile during the penetration is different from that of the rigid one.Improving the yield strength of the projectile can effectively reduce its mass loss and increase its depth of penetration.
出处 《爆炸与冲击》 EI CAS CSCD 北大核心 2014年第5期622-629,共8页 Explosion and Shock Waves
基金 国家自然科学基金项目(51278250) 爆炸冲击防灾减灾国家重点实验室开放基金项目(DPMEIKF201405)~~
关键词 爆炸力学 质量侵蚀 Archard理论 弹体 高速侵彻 mechanics of explosion mass loss Archard theory projectile high velocity penetration
  • 相关文献

参考文献20

  • 1Forrestal M J,Frew D J,Hanchak S J,et al.Penetration of grout and concrete targets with ogive-nose steel projectiles[J].International Journal of Impact Engineering,1996,18(5):465-476.
  • 2何翔,徐翔云,孙桂娟,沈俊,杨建超,金栋梁.弹体高速侵彻混凝土的效应实验[J].爆炸与冲击,2010,30(1):1-6. 被引量:62
  • 3杨建超,左新建,何翔,金栋梁.弹体高速侵彻混凝土质量侵蚀实验研究[J].实验力学,2012,27(1):122-127. 被引量:10
  • 4Frew D J,Hanchak S J,Green M L,et al.Penetration of concrete targets with ogive-nose steel rods[J].International Journal of Impact Engineering,1998,21(6):489-497.
  • 5Frew D J,Forrestal M J,Cargile J D.The effect of concrete target diameter on projectile deceleration and penetration depth[J].International Journal of Impact Engineering,2006,32(10):1584-1594.
  • 6Silling S A,Forreatal M J.Mass loss from abrasion on ogival-nose steel projectile that penetrate concrete targets[J].International Journal of Impact Engineering,2007,34(11):1814-1820.
  • 7陈小伟,杨世全,何丽灵.动能侵彻弹体的质量侵蚀模型分析[J].力学学报,2009,41(5):739-747. 被引量:22
  • 8Jones S E,Foster J C,Toness O A,et al.An estimate for mass loss from high velocity steel penetrators[C]//Proceedings of the ASME PVP-435 Conference on Thermal-Hydraulic Problems,Sloshing Phenomena,and Extreme Loads on Structures.New York:American Society of Mechanical Engineers,2002:227-237.
  • 9Davis R N,Jones S E,Hughes M L.High-speed penetration of concrete using a new analytical model of velocitydependent friction[C]//Proceedings of the ASME 2003 Pressure Vessels and Piping Conference.New York:American Society of Mechanical Engineers,2003,454:111-116.
  • 10Klepaczko J R,Hughes M L.Scaling of wear in kinetic penetrators[J].International Journal of Impact Engineering,2005,31(4):435-459.

二级参考文献47

  • 1陈小伟.动能深侵彻弹的力学设计(I):侵彻/穿甲理论和弹体壁厚分析[J].爆炸与冲击,2005,25(6):499-505. 被引量:53
  • 2陈小伟,金建明.动能深侵彻弹的力学设计(Ⅱ):弹靶的相关力学分析与实例[J].爆炸与冲击,2006,26(1):71-78. 被引量:24
  • 3Chen XW, Li QM. Deep penetration of a non-deformable projectile with different geometrical characteristics. Int J Impact Engng, 2002, 27(6): 619-637.
  • 4Li QM, Chen XW. Dimensionless formulae for penetration depth of concrete target impacted by a Non-Deformable Projectile. Int J Impact Engng, 2003, 28(1): 93-116.
  • 5Silling SA,Forrestal MJ. Mass loss from abrasion on ogivenose steel projectiles that penetrate concrete targets. InS J Impact Engng, 2007,34:1814-1820.
  • 6Klepaczko JR, Hughes ML. Scaling of wear in kinetic energy penetrators. Int J Impact Engng, 2005, 31:435-459.
  • 7Beissel SR, JohnsOn GR. A three-dimensional abrasion algorithm for projectile mass loss during penetration. Int J Impact Engng, 2002, 27:771-789.
  • 8Beissel SR, Johnson GR. An abrasion algorithm for projectile mass loss during penetration, lnt J Impact Engng, 2000, 24:103-116.
  • 9Jones SE, Hughes ML, Toness OAt et M. A one-dimensional analysis of rigid-body penetration with high-speed friction. J Mech Eng Sci Proc Inst Mech Eng, 2003, 217:411-422.
  • 10Jones SE, Foster JC, Toness OA, et al. An estimate for mass loss from high velocity steel penetrators. In: Moody F J, editor. Proceedings of the ASME PVP-435 Conference on Thermal-Hydraulic Problems, Sloshing Phenomena, and Extreme Loads on Structures. New York: ASME, 2002. 227-237.

共引文献84

同被引文献50

  • 1彭永,方秦,吴昊,龚自明,孔祥振.对弹体侵彻混凝土靶体阻力函数计算公式的探讨[J].工程力学,2015,32(4):112-119. 被引量:10
  • 2马天宝,岳恒超,任会兰,宁建国.陶瓷/金属复合靶抗侵彻性能的数值模拟方法研究[J].工程力学,2015,32(4):228-233. 被引量:5
  • 3何涛,文鹤鸣.靶体响应力函数的确定方法及其在侵彻力学中的应用[J].中国科学技术大学学报,2007,37(10):1249-1261. 被引量:12
  • 4Jones S E, Hughes M L, Toness O A, et al. A one-dimensional analysis of rigid-body penetration with high-speed friction. P I Mech Eng C-J Mec, 2003, 217:411--422.
  • 5Jones S E, Foster J C, Toness O A, et al. An estimate for mass loss from high velocity steel penetrators. In: Proceedings of PVP-2002.
  • 6Conference on Thermal-Hydraulic Problems, Sloshing Phenomena, and Extreme Loads on Structures. New York: ASME, 2002. 435: 227-237.
  • 7Klepaczko J R. Surface layer thermomechanics of steel penetrators at high and very high sliding velocities. Technical Report. Florida: University of Florida, 2001.
  • 8Guo L, He Y, Zhang X F, et al. Study mass loss at microscopic scale for a projectile penetration into concrete. Int J Impact Eng, 2014, 72: 17-25.
  • 9Shan Y, Huang F L, Wu H J. The influence of projectile material on mass abrasion of high-velocity penetrator. International Symposium on Ballistics, Atlanta, 2014.
  • 10Archard J F. Contact and rubbing of fiat surface. J Appl Phys, 1953, 24:981-988.

引证文献3

二级引证文献3

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部