期刊文献+

3种粘结剂材料的力学性能对比研究 被引量:12

Comparative Studies on the Mechanical Properties of Three Kinds of Binders
下载PDF
导出
摘要 对比研究了F2311、F2314和Estane5703粘结剂的粘弹性能和准静态拉伸、压缩力学性能。利用修正的"朱-王-唐"非线性粘弹性本构关系描述了粘结剂拉伸屈服前的力学响应。结果表明,弹性模量关系为F2314>F2311>Estane5703;拉伸断裂强度关系为F2314>Estane5703>F2311;拉伸断裂延伸率关系为F2311>Estane5703>F2314。总的来说,F2311与Estane5703性能比较接近,而F2314与前两者相差较大。Estane5703具有介于F2311和F2314之间的断裂强度和韧性,是很好的粘结剂。研究结果为PBX炸药配方设计中粘结剂材料的选择提供了重要的依据。 The viscoelastic properties and quasi-static mechanical properties of three kinds of binders named F2311 and F2314 and Estane 5703 are studied and comparatively. The mechanical response of binders in tensile yield period is described by modified ZWT constitutive equation and viscoelastic parameters are obtained by curve fitting. The results show that the modulus comparative analysis is F2314〉F2311 〉Estane5703, and the tensile strength comparative analysis is F2314〉Estane5703〉 F2311, and the tensile strain at break comparative analysis is F2311 〉 Estane5703〉F2314. In all, the mechanical properties of F2311 and Estane5703 are similar but F2314 is obviously different. Estane5703 is a good binder. The result can provide some scientific base formular desigrL
出处 《材料导报》 EI CAS CSCD 北大核心 2009年第24期34-36,52,共4页 Materials Reports
基金 国家自然科学基金(10832003)
关键词 粘结剂 力学性能 本构关系 binder,mechanical properties,constitutive equation
  • 相关文献

参考文献5

二级参考文献25

  • 1韩小平,张元冲,沈亚鹏,张泰华,赵壮华.高能材料动态力学性能的研究[J].爆炸与冲击,1995,15(1):20-27. 被引量:10
  • 2[1] Nicholson D W. On the detachment of rigid inclusion from an elastic matrix[J].J. Adesion,1979,10: 255-260.
  • 3[2] Gent A N,Park B.Failure processes in elastomers at or near a rigid spherical inclusion[J]. J. Mater. Sci., 1984,19: 1947-1956.
  • 4[3] Palmer S J P,Field J E. The deformation and fracture of β-HMX[J].Proc. R. Soc. Lond. A.,1982,383: 399-407.
  • 5[4] Palmer S J P, Field J E, Huntley J M. Deformation,strengths and strains to failure of polymer bonded explosives[J]. Proc. R. Soc. Lond. A.,1993,440: 399-419.
  • 6[5] Seaman L, Simons J W, Erlich D C. Development of a viscous internal damage model for energetic materials based on the BFRACT microfracture model[A]. 11th International Detonation Symposium[C],Snowmass,Colorado(USA),1998.
  • 7[6] Field J E, Parry M A, Palmer S J P, et al. Deformation and explosive properties HMX powers and polymer bonded explo-sives[A].Ninth Symposium(International) on Detonation[C],Portland, Oregon(USA),1989.
  • 8[7] Skidmore C B, Phillips D S, Howe P M. The evolution of microstructural changes in pressed HMX explosives[A]. 11th International Detonation Symposium[C],Snowmass,Colorado(USA),1998.
  • 9[8] Rae P J, Goldrein H T, Palmer S J P, et al.Studies of the failure mechanisms of polymer-bonded explosives by high re-solution moire interferometry and enviromental scanning electron microscopy[A]. 11th International Detonation Symposium[C],Snowmass,Colorado(USA),1998.
  • 10[9] Wiegand D A. Mechanical properties and mechanical failure of plastic bonded explosives and other energetic materials[A]. 11th International Detonation Symposium[C],Snowmass,Co-lorado(USA),1998.

共引文献91

同被引文献97

引证文献12

二级引证文献45

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