[an error occurred while processing this directive] [an error occurred while processing this directive] [an error occurred while processing this directive]
[an error occurred while processing this directive]
火箭技术

冲击载荷下贫氧推进剂的压缩力学响应

  • 童心 ,
  • 郑健 ,
  • 孙朝翔 ,
  • 郑亚
展开
  • 南京理工大学机械工程学院, 南京 210094

童心(1991-), 男, 安徽安庆人, 博士研究生, 研究方向: 固体火箭发动机结构完整性.

收稿日期: 2015-10-26

  网络出版日期: 2025-05-30

Compressive Mechanical Response of Fuel-rich Propellant Subjected to Impact Loading

  • TONG Xin ,
  • ZHENG Jian ,
  • SUN Chaoxiang ,
  • ZHENG Ya
Expand
  • School of Mechanical Engineering, Nanjing University of Science and Technology, Nanjing 210094, China

Received date: 2015-10-26

  Online published: 2025-05-30

摘要

为了解贫氧推进剂在冲击载荷下的力学响应,实施了贫氧推进剂的SHPB实验,获得了推进剂相应的动态压缩力学特性。实验结果表明,贫氧推进剂在高应变率下具有显著的应变率敏感性,推进剂的应力随应变率增加而不断上升;推进剂的最大应力与应变率对数存在线性关系;从应力应变曲线推断,该推进剂在高应变率变形时表现出粘弹性和超弹性相结合的性质。实验研究可作为研究贫氧推进剂药柱在点火阶段结构完整性的重要依据.

本文引用格式

童心 , 郑健 , 孙朝翔 , 郑亚 . 冲击载荷下贫氧推进剂的压缩力学响应[J]. 弹箭与制导学报, 2016 , 36(5) : 85 -88 . DOI: 10.15892/j.cnki.djzdxb.2016.05.022

Abstract

To investigate mechanical response of fuel-rich propellant under impact loading, SHPB tests were carried out and corresponding compressive mechanical properties of the propellant were acquired. Experimental results indicate that fuel-rich propellant's mechanical properties are sensitive to strain rate, and stress of the propellant rises with increasing strain rates. The maximum compressive stress versus logarithmic strain rate curve shows linear relationship. It can be concluded the propellant exhibits visco-hyperelastic properties. The presented experimental work could be applied to researching structural integrity of fuel-rich propellant grain during ignition regime.

[an error occurred while processing this directive]

参考文献

[1]
HO S Y.High strain-rate constitutive models for solid rocket propellants [J].Journal of Propulsion and Power, 2002,18( 5) : 1106-1111.
[2]
XU J S,CHEN X,WANG H L,et al.Thermo-damageviscoelastic constitutive model of HTPB composite propellant [J].International Journal of Solids and Structures, 2014,51( 18) : 3209-3217.
[3]
成红刚,鞠玉涛,周长省,等.铝镁贫氧推进剂压缩力学性能及本构模型实验研究[J].弹道学报,2012,24 ( 1) : 75-78.
[4]
常新龙,赖建伟,张晓军,等.HTPB 推进剂高应变率粘弹性本构模型研究[J].推进技术,2014,35 ( 1) : 123-127.
[5]
KOLSKY H.An Investigation of the mechanical properties of materials at very high rates of loading [J].Proceedings of the Physical Society: Section B, 1949, 62 ( 11 ) :676-700
[6]
胡时胜,王礼立,宋力,等.Hopkinson 压杆技术在中国的发展回顾[J].爆炸与冲击,2014,34( 6) : 641-657.
[7]
CHEN W N,SONG B.Split Hopkinson ( Kolsky) bar: design, testing and applications [M].Germany: Springer, 2012: 12-13.
[8]
邹广平,王新征,陈剑杰,等.空心锥撞击杆对分离式霍普金森压杆入射脉冲弥散的抑制效果分析[J].兵工学报,2012,33( 11) : 1346-1351.
[9]
宋博,姜锡权,陈为农.霍普金森压杆实验中的脉冲整形技术[C]//第三届全国爆炸力学实验技术交流会论文集,2004: 28-32.
[10]
WANG Z J,QIANG H F,WANG G,et al.Tensile mechanical properties and constitutive model for HTPB propellant at low temperature and high strain rate [J].Journal of Applied Polymer Science,2015,132( 24).
文章导航

/

[an error occurred while processing this directive]