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Effect of Temperature on the Fracture Toughness of Al-PTFE Reactive Material by J-integral Method
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1.College of Field Engineering, Army Engineering University of PLA, Nanjing 210007, China;2.78102 troop of PLA, Chengdu 610031, China;3.63870 troop of PLA, Huayin 714200, China

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    Abstract:

    To investigate the influence of temperature-induced phase transition of polytetrafluoroethylene (PTFE) on the fracture toughness of Al-PTFE reactive material, the quasi-static tensile test and fracture toughness test were performed, and the normalization data reduction technique with single specimen in ASTM E1820 was applied for analyzing the elastic-plastic fracture toughness of Al-PTFE by J-integral method. Combined with the microstructures analysis of the fracture surface, the effect of temperature on the fracture toughness of Al-PTFE was revealed. The results show that the strength of Al-PTFE reactive material decreases with the increase of temperature, while the fracture toughness increases. Moreover, the yield strength and fracture toughness of this material change obviously after crossing the phase transition temperature. The crack propagation pattern changes from brittle fracture to ductile fracture. Furthermore, when PTFE is in phase Ⅱ, less PTFE fibrils can be formed by stretching. However, increasing temperature can lead to the transform of the crystal phase for PTFE to phase Ⅳ and Ⅰ. Besides, the stable formed PTFE fibrils can effectively dissipate the external energy in the form of local plastic deformation. The crack tip is passivated by winding bridging, so as to prevent the crack propagation and improve the fracture toughness of this material.

    表 1 不同温度下Al-PTFE试样准静态拉伸力学性能参数Table 1 Quasi-static tensile mechanical property parameters of Al-PTFE specimens at different temperatures
    图2 35 ℃下载荷-位移曲线和Apl的计算定义Fig.2 The load-displacement curve at 25 ℃ and calculation definition of Apl
    图3 裂纹最终扩展长度测量示意图: (a)~(f) 裂纹扩展过程; (g) 裂纹扩展轨迹; (h) DIC处理数据Fig.3 Schematic diagram of measurement of final crack propagation length: (a)-(f) crack growth process, (g) crack growth trajectory, (h) data processed by DIC
    图4 归一化处理载荷-位移曲线及归一化函数拟合结果Fig.4 Normalized load-displacement curve and normalization function fitting result
    图5 不同温度下Al-PTFE试样准静态拉伸应力-应变曲线Fig.5 Quasi-static tensile stress-strain curves of Al-PTFE specimens at different temperatures
    图7 不同温度下Al-PTFE试样载荷-位移曲线Fig.7 Load-displacement curves of Al-PTFE specimens at different temperatures
    图8 不同温度下Al-PTFE试样的J-R曲线Fig.8 J-R curves of Al-PTFE specimens at different temperatures
    图9 温度对Al-PTFE试样JIC和屈服强度的影响Fig.9 Effect of temperature on JIC and yield strength of Al-PTFE specimens
    表 2 断裂韧性实验参数及结果Table 2 Parameters and results of fracture toughness experiments
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吴家祥,李裕春,刘强,等.J积分法研究温度对Al-PTFE反应材料断裂韧性的影响[J].含能材料,2022,30(3):214-221.
WU Jia-xiang, LI Yu-chun, LIU Qiang, et al. Effect of Temperature on the Fracture Toughness of Al-PTFE Reactive Material by J-integral Method[J]. Chinese Journal of Energetic Materials,2022,30(3):214-221.

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History
  • Received:June 01,2021
  • Revised:June 27,2021
  • Adopted:December 14,2021
  • Online: March 17,2022
  • Published: March 25,2022