CHINESE JOURNAL OF ENERGETIC MATERIALS
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热弹性环境下HMX基PBX厚壁结构件失效破坏分析
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(中国工程物理研究院总体工程研究所, 四川 绵阳 621999)

作者简介:

王鹏飞(1991-),男,硕士研究生,主要从事固体力学研究。e-mail: wangpf_a@126.com 通信联系人: 黄西成(1966-),男,研究员,主要从事冲击动力学研究。e-mail: huangxc@caep.cn

通讯作者:

黄西成(1966-),男,研究员,主要从事冲击动力学研究。e-mail: huangxc@caep.cn

基金项目:

国家自然科学基金(11472257); 中国工程物理研究院909科技专项“计算固体力学”资助


Failure Damage Analysis of HMX Based PBX Thick Wall Structure under Thermoelastic Environment
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(Institute of Systems Engineering, CAEP, Mianyang 621999, China)

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    摘要:

    针对高聚物粘结炸药(PBX)厚壁球结构件引入稳态温度场, 并展开了热弹性变形分析, 讨论了热应力作用下构件的失效破坏状况。采用包括最大拉应力准则、von-Mises准则、Mohr-Coulomb准则、Drucker-Prager准则等强度准则来分析了厚壁球结构件的承受温差能力与最先破坏点位置, 并通过无量纲分析分离出与结构形状尺寸相关的参数因子, 从而获得PBX普通结构件的承受温差能力规律。结果表明: Drucker-Prager准则能够较为准确描述PBX厚壁球结构件的失效破坏状况; PBX结构件失效破坏状况与材料特性、结构尺寸等因素相关, 提高材料抗拉强度和降低材料弹性模量、优化结构尺寸及形状能提高其承受温差能力。室温下, PBX结构件承受温差能力可以认为由拉伸破坏应变决定, 提高PBX炸药的拉伸破坏应变, 可以提高其承受温差能力。比较了热环境下三种PBX炸药PBX-A、PBX-E和PBX-C相同结构件下的材料性能, PBX-A的承受温差能力是PBX-C的5.6倍, PBX-E的承受温差能力是PBX-C的4.4倍。

    Abstract:

    Aiming at polymer bonded explosive (PBX) thick wall spherical shell structure in steady temperature field, a thermoelastic deformation analysis was launched and the failure damage status of the structure under the action of thermal stress was discussed. The temperature difference carrying capacity and first failure point position of thick wall spherical shell structure were analyzed by strength criterions including the maximum tensile stress criterion, von-Mises criterion, Mohr-coulomb criterion and Drucker-Prager criterion. The rule of the temperature difference carrying capacity of ordinary PBX structure was obtained via related structure shape and size parameters factors isolated by the dimensionless analysis. Results show that Drucker-Prager criterion is accurate to describe the failure damage status of PBX thick wall spherical shell structure. The failure damage status of PBX structure relates to the material characterization and structure size etc factors. Increasing the tensile strength of materials, decreasing the elastic modulus of materials and optimizing the structure size and shape can improve its temperature difference carrying capacity. The temperature difference carrying capacity of PBX structure at room temperature can be considered by tensile failure strain, improving the tensile failure strain of PBX structure can improve the temperature difference carrying capacity of PBX structure. The material properties of three kinds of PBX materials PBX9-A, PBX-E and PBX-C with same structure under thermal environment were compared, the temperature difference carrying capacity of PBX-A is 5.6 times that of PBX-C, and the temperature difference carrying capacity of PBX-E is 4.4 times that of PBX-C.

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引用本文

王鹏飞,黄西成,何颖波,等.热弹性环境下HMX基PBX厚壁结构件失效破坏分析[J].含能材料, 2016, 24(2):128-136. DOI:10.11943/j. issn.1006-9941.2016.02.004.
WANG Peng-fei, HUANG Xi-cheng, HE Ying-bo, et al. Failure Damage Analysis of HMX Based PBX Thick Wall Structure under Thermoelastic Environment[J]. Chinese Journal of Energetic Materials, 2016, 24(2):128-136. DOI:10.11943/j. issn.1006-9941.2016.02.004.

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  • 收稿日期: 2014-12-04
  • 最后修改日期: 2015-05-19
  • 录用日期: 2015-06-09
  • 在线发布日期: 2016-01-19
  • 出版日期: 2016-01-25