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TATB基PBX的单轴主特征破坏参数识别研究
作者:
作者单位:

(1. 南京理工大学理学院, 江苏 南京 210094; 2. 中国工程物理研究院化工材料研究所, 四川 绵阳 621900; 3. 西南科技大学, 四川 绵阳 621010; 4. 中国工程物理研究院研究生部, 四川 绵阳 621999)

作者简介:

唐维(1981-),男,博士生,助理研究员,主要从事炸药及其部件的热力学行为研究。e-mail: Will_ton@126.com 通信联系人: 刘彤(1964-),男,研究员,武器系统中的工程力学问题研究。e-mail: Tliu@swust.edu.cn

通讯作者:

刘彤(1964-),男,研究员,武器系统中的工程力学问题研究。e-mail: Tliu@swust.edu.cn

基金项目:

国家自然科学基金(11372292、11302198、11102189),中物院发展基金(2013A0203006、2014B0201020)资助


Identification of Uniaxial main Characteristic Failure Parameter on TATB-based PBX
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(1. School of Sciences, Nanjing University of Science and Technology, Nanjing 210094, China; 2. Institute of Chemical Materials, China Academy of Engineering Physics, Mianyang 621999, China; 3.Southwest University of Science and Technology Mianyang 621010, China; 4. Graduate School of CAEP, Mianyang 621999, China)

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    摘要:

    高聚物粘结炸药(Polymer Bonded Explosive,PBX)的主特征破坏参数识别是强度准则建立和结构强度评估的基础。以TATB基PBX为研究对象,基于单轴拉伸和单轴压缩两种加载方式,考虑20 ℃、35 ℃及50 ℃三个温度点,设计了系列的直接破坏和不同初始应力水平的蠕变后破坏试验。依据获得的破坏参数数据,对比分析了环境温度、初始应力水平对破坏应力/破坏应变这两个典型破坏参数的影响。结果表明,不论是直接破坏还是蠕变后破坏,破坏应力随环境温度的升高而降低,破坏应变体现为拉伸时的增大和压缩时的减小;相同的环境温度下,初始应力水平的增加会导致破坏应力的降低和破坏应变的增大。进一步分析表明,破坏应力受环境温度、初始应力水平的影响较大,且无临界值,不宜作为主特征破坏参数;破坏应变作为主特征破坏参数则较为简便,可认为当一点应变达到临界应变时破坏,而不论该应变是载荷直接引起的还是时温诱发蠕变引起的,直接破坏的破坏应变可作为该温度点的临界破坏应变,20 ℃、35 ℃及50 ℃单轴拉伸临界破坏应变分别为0.1330%、0.1452%和0.1675%,单轴压缩时临界破坏应变分别为-1.4206%、-1.4159%和-1.1731%。

    Abstract:

    Main characteristic parameter identification of polymer bonded explosive (PBX) failure is the basis for establishing strength criterion and evaluating structural strength. A series of uniaxial tension and compression-induced direct failure tests, and also failure after creep tests under different initial stresses, were designed within the temperature range of 20-50 ℃ on a type of TATB-based PBX. Based on the acquired failure data, effect of environment temperature and initial creep stress on the failure stress and strain was analyzed. Results demonstrate that for both direct failure and failure after creep: 1)With the increase of environment temperature, failure stress reduces both under tension and compression. Failure strain increases under tension but decreases under compression. 2) Given the same environment temperature, failure stress reduces and failure strain increases as the initial creep stress increases. This reveals that failure stress isn't an appropriate main characteristic failure parameter, because it fluctuates violently when environment temperature and initial creep stress change and has no critical value. On the contrary, failure strain is relative simpler as a main characteristic failure parameter. When strain reaches the critical strain, failure is generated no matter how loading history changes and what causes this strain (load or creep). Direct failure strain can be viewed as the critical failure strain at one temperature point. The critical failure strains at 20 ℃, 35 ℃ and 50 ℃ under uniaxial tension are 0.1330%, 0.1452% and 0.1675% respectively, and it changes to -1.4206%, -1.4159% and -1.1731% respectively under uniaxial compression.

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引用本文

唐维,颜熹琳,李明,等. TATB基PBX的单轴主特征破坏参数识别研究[J].含能材料, 2015, 23(8):766-770. DOI:10.11943/j. issn.1006-9941.2015.08.011.
TANG Wei, YAN Xi-lin, LI Ming, et al. Identification of Uniaxial main Characteristic Failure Parameter on TATB-based PBX[J]. Chinese Journal of Energetic Materials, 2015, 23(8):766-770. DOI:10.11943/j. issn.1006-9941.2015.08.011.

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历史
  • 收稿日期: 2014-04-16
  • 最后修改日期: 2014-07-18
  • 录用日期: 2014-11-11
  • 在线发布日期: 2015-06-29
  • 出版日期: 2015-07-15