首页 >

碳纳米管增强固体推进剂/衬层粘接界面力学性能试验研究-湖南大学定名100周年

尹振浩1,李秋华2,申志彬3,李海阳1,张大鹏3   

  1. 1. 国防科技大学
    2. 中国人民解放军国防科技大学
    3. 国防科技大学空天科学学院
  • 收稿日期:2026-06-15 修回日期:2026-09-10 出版日期:2026-09-17 发布日期:2026-09-17
  • 通讯作者: 李秋华
  • 基金资助:
    国家自然科学基金;中国博士后科学基金;湖南省自然科学基金资助项目

Experimental Study on the Mechanical Properties of the Bond Interface Between Carbon Nanotube-Reinforced Solid Propellant and Liner

Zhen-Hai YIN1,秋华 李2, 3, Dapeng ZHANG   

  • Received:2026-06-15 Revised:2026-09-10 Online:2026-09-17 Published:2026-09-17
  • Contact: 秋华 李
  • Supported by:
    National Natural Science Foundation of China;China Postdoctoral Science Foundation;The Natural science Foundation project of Hunan Province

摘要: 推进剂/衬层粘接界面附近的弱推进剂层及几何界面易发生Ⅰ型脱粘并扩展,是导致固体火箭发动机装药结构失效的重要因素。为提高界面及弱层的力学性能,开展了碳纳米管(carbon nanotubes,CNTs)增强“弱推进剂层-衬层-粘接界面”多层级力学性能试验。以端羟基聚丁二烯(hydroxyl-terminated polybutadiene,HTPB)基模拟推进剂、HTPB衬层和推进剂/衬层双悬臂夹层梁试样为对象,进行模拟推进剂拉伸、衬层多速率拉伸和粘接界面Ⅰ型剥离试验,并结合扫描电镜获取细观形貌与固化反应原理分析增强机制。结果表明:在考察范围内,0.3 wt%的羟基化CNTs对模拟推进剂的综合增强效果最优,弹性模量和抗拉强度分别提高69%和24%;2 wt% 羟基化CNTs增强衬层的抗拉强度和弹性模量分别为未增强试样的209%和342%,并表现出加载速率相关性;在夹层梁界面试样中引入羟基化CNTs后,最大载荷和最大载荷对应位移分别提高约31%和21%。扫描电镜观察表明,CNTs可通过桥联裂纹和孔洞、改善颗粒/基体界面载荷传递以及拔出摩擦耗能提高裂纹扩展阻力。羟基化CNTs在本试验体系中表现出较优增强效果,源于其几何参数、分散状态和羟基诱导界面作用的协同匹配。研究结果可为模拟固体推进剂/衬层粘接体系的抗脱粘设计提供试验参考。

关键词: 碳纳米管, 固体推进剂, 衬层, 粘接界面, 力学性能

Abstract: The weak propellant layer and geometric interface near the propellant/liner bonding interface are prone to Mode I debonding and crack propagation, constituting important causes of structural failure in solid rocket motor charges. To improve the mechanical properties of the interface and the weak layer, multilevel mechanical tests have been conducted on a carbon nanotube (CNT)-reinforced “weak propellant layer–liner–bonding interface” system. Tensile tests on a hydroxyl-terminated polybutadiene (HTPB)-based simulant propellant, tensile tests on an HTPB-based liner at multiple loading rates, and Mode I peel tests on propellant/liner double cantilever sandwich beam specimens have been performed. The reinforcement mechanisms have also been investigated through scanning electron microscopy observations and an analysis based on curing reaction principles. The results have shown that, within the investigated range, 0.3 wt% hydroxylated CNTs have provided the optimal overall reinforcement of the simulant propellant, increasing its elastic modulus and tensile strength by 69% and 24%, respectively. The tensile strength and elastic modulus of the liner reinforced with 2 wt% hydroxylated CNTs have reached 209% and 342% of those of the unreinforced specimens, respectively, and have exhibited loading-rate dependence. After hydroxylated CNTs have been incorporated into the interfacial sandwich-beam specimens, the maximum load and the corresponding displacement have increased by approximately 31% and 21%, respectively. Scanning electron microscopy observations have indicated that CNTs have increased crack-growth resistance by bridging cracks and voids, improving load transfer across particle/matrix interfaces, and dissipating energy through pull-out friction. Hydroxylated CNTs have exhibited superior reinforcement performance in the investigated system, which has resulted from the synergistic effects of their geometric parameters, dispersion state, and hydroxyl-induced interfacial interactions. These findings have provided an experimental basis for the debonding-resistant design of simulant solid solid rocket motor charges propellant/liner bonding systems.

Key words: carbon nanotubes, solid propellant, liner, bonding interface, mechanical properties