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轴向尺寸对泡沫铝动静态力学性能的影响 被引量:12

Mechanical properties of foam aluminum with different sizes
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摘要 通过材料密度均匀性分析得知,泡沫材料密度分布的均匀性越差,尺寸的影响越明显,对于密度分布区间小、并符合正态分布的试件,尺寸的影响较小。根据Hopkinson杆动态测试的应力均匀性假定,利用石英片监测试件左右端面达到应力均匀所需的时间,试件轴向尺寸越大,惯性效应的影响也越大。选择合适的尺寸,将试件的惯性效应(波动效应)与应变率效应解耦,结果表明,泡沫材料具有一定的应变率效应。 The density uniformity and the corresponding size effect were analyzed for two different foam aluminum materials. Analyzed results show that the more non-uniform the density distribution of the foam aluminum, the more significant the size effect. But if the density distribution interval is smaller and in line with normal distribution, the size effect is weaker. Based on the assumption of the stress uniformity in the split Hopkinson pressure bar tests, the quartz pieces were used to measure the time required by the stress uniformity process at the two ends of the specimens. It is found that the larger the axial size of the foam specimen, the more evident the influence of the inertial effect. And the right axial sizes were chosen to decouple the inertial effect of the specimen (wave effect) from the strain rate effect. The experimental results display that the foam materials have obvious strain rate effects.
出处 《爆炸与冲击》 EI CAS CSCD 北大核心 2012年第4期393-398,共6页 Explosion and Shock Waves
基金 国家自然科学基金项目(90916026)~~
关键词 固体力学 尺寸效应 HOPKINSON杆 泡沫铝 密度均匀性 应力均匀性 应变率 solid mechanics size effect Hopkinson bar foam aluminum density uniformity stressuniformity strain rate
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参考文献15

  • 1Gibson L J, Ashby M F. Cellular solids: Structures and properties[M]. 2nd ed. Cambridge University Press, 1997. 被引量:1
  • 2Mukai T, Kanahashi H, Miyoshi T, et al. Experimental study of energy absorption in a closed-celled Aluminum foam under dynamic loading[J]. Seripta Materialia, 1999,40(8):921-927. 被引量:1
  • 3Onck P R, Andrews E W, Gibson L J. Size effects in ductile cellular solids. Part I: Modeling[J]. International Journal of Mechanical Sciences, 2001,43 : 681-699. 被引量:1
  • 4Andrews E W, Gioux G, Onck P R, et al. Size effects in ductile cellular solids. Part Ⅱ : Experimental results[J]. International Journal of Mechanical Sciences, 2001,43:701-713. 被引量:1
  • 5Chen C, Fleck N A. Size effects in the constrained deformation of metallic foams[J]. Journal of the Mechanics and Physics of Solids, 2002,50 : 955-977. 被引量:1
  • 6Tan P J, Reid S R, Harrigan J J, et al. Dynamic compressive strength properties of aluminium foams. Part I : Experimental data and observations[J]. Journal of the Mechanics and Physics of Solids, 2005,53:2174-2205. 被引量:1
  • 7Kolsky H. An investigation of the mechanical properties of material at very high rates of loading[J]. Proceedings of the Physical Society of London, 1949,B62:676-700. 被引量:1
  • 8胡时胜.霍普金森压杆技术[J].兵器材料科学与工程,1991,14(11):40-47. 被引量:119
  • 9Song B, Chen W. Dynamic stress equilibration in split Hopkinson pressure bar tests on soft materials[J]. Experimental Mechanics, 2004,44(3) :300-312. 被引量:1
  • 10宋力,胡时胜.SHPB测试中的均匀性问题及恒应变率[J].爆炸与冲击,2005,25(3):207-216. 被引量:49

二级参考文献24

  • 1宋力,胡时胜.一种用于软材料测试的改进SHPB装置[J].实验力学,2004,19(4):448-452. 被引量:9
  • 2王志华,曹晓卿,马宏伟,赵隆茂,杨桂通.泡沫铝合金动态力学性能实验研究[J].爆炸与冲击,2006,26(1):46-52. 被引量:26
  • 3Davies E D H, Hunter S C. The dynamic compression testing of solids by the method of the split Hopkinson pressure bar[J]. Journal of Mechanical Physics Solids, 1963,11(1): 155-179. 被引量:1
  • 4Gray Ⅲ G T. Classic split-Hopkinson pressure bar testing[A]. Kuhn H, Medlin D. SAM Handbook, Mechanical Testing and Evaluation, Vol. 8[M]. Materials Park, OH: ASM International, 2000:462-476. 被引量:1
  • 5Gray Ⅲ G T, Blumenthal W R. Split-Hopkinson pressure bar testing of soft materials[A]. Kuhn H, Medlin D.SAM Handbook, Mechanical Testing and Evaluation, Vol. 8[M]. Materials Park, OH: ASM International, 2000:488-496. 被引量:1
  • 6Subhash G, Ravichandran G. Split-Hopkinson pressure bar testing of ceramics[A]. Kuhn H, Medlin D. SAM Handbook, Mechanical Testing and Evaluation, Vol. 8[M]. Materials Park, OH: ASM International, 2000:497-504. 被引量:1
  • 7Nemat-Nasser S, Isaacs J B, Starrett J E. Hopkinson techniques for dynamic recovery experiments[J]. Proceedings of the Royal Society of London, Series A, 1991,435(1894):371-391. 被引量:1
  • 8Ravichandran G, Subhash G. Critical appraisal of limiting strain rates for compression testing of ceramics in a split Hopkinson pressure bar[J]. J Am Ceram Soc, 1994,77(1):263-267. 被引量:1
  • 9Yang L M, Shim V P W. An analysis of stress uniformity in split Hopkinson bar test specimens[J]. International Journal of Impact Engineering, 2005,31(2): 129- 150. 被引量:1
  • 10Gorham D A, Pope D H, Field J E. An improved method for compressive stress-strain measurements at very high strain rates[J]. Proceedings of the Royal Society London, Series A, 1992,438:153-179. 被引量:1

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