A Lagrangian framework for analyzing microstructural level response of polymer-bonded explosives

被引:150
|
作者
Barua, Ananda [1 ]
Zhou, Min [1 ]
机构
[1] Georgia Inst Technol, George W Woodruff Sch Mech Engn, Atlanta, GA 30332 USA
关键词
FINITE-ELEMENT SIMULATIONS; STRAIN-RATE; NUMERICAL SIMULATIONS; MECHANICAL-PROPERTIES; CRACK-PROPAGATION; DEFORMATION; FRACTURE; FAILURE; HMX; TEMPERATURE;
D O I
10.1088/0965-0393/19/5/055001
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
A cohesive finite element method (CFEM) framework for quantifying the thermomechanical response of polymer-bonded explosives (PBXs) at the microstructural level is developed. The analysis carried out concerns the impact loading of HMX/Estane at strain rates on the order of 10(4)-10(5) s(-1). Issues studied include large deformation, thermomechanical coupling, failure in the forms of microcracks in both bulk constituents and along grain/matrix interfaces, and frictional heating. The polymer matrix is described by a thermo-elasto-viscoelastic constitutive formulation, accounting for temperature dependence, strain rate sensitivity and strain hardening. The HMX crystals are assumed to be elastic. The CFEM framework allows the contributions of individual constituents, fracture and frictional contact along failed crack surfaces to heating to be tracked and analyzed. Digitized micrographs of actual PBX materials and idealized microstructures with Gaussian distributions of grain sizes are used in the analysis. The formation of local hot spots as potential ignition sites is primarily due to the viscoelastic dissipation in the matrix in early stages of deformation and frictional heating along crack surfaces in later stages of deformation. The framework is a useful tool for the design of energetic composites and the results can be used to establish microstructure-response relations that can be used to assess the performance of energetic composites.
引用
收藏
页数:24
相关论文
共 50 条
  • [21] Ignition thresholds of aluminized HMX-based polymer-bonded explosives
    Miller, Christopher
    Kim, Seokpum
    Horie, Yasuyuki
    Zhou, Min
    AIP ADVANCES, 2019, 9 (04)
  • [22] Shock response of polymer-bonded copper powder
    A. C. Anastacio
    C. Braithwaite
    J. Kucera
    E. Schmidova
    J. Pachman
    Shock Waves, 2020, 30 : 373 - 384
  • [23] Effects of temperature and strain rate on the dynamic responses of three polymer-bonded explosives
    Li, Junling
    Lu, Fangyun
    Qin, Jingui
    Chen, Rong
    Zhao, Pengduo
    Lan, Lingang
    Jing, Shiming
    JOURNAL OF STRAIN ANALYSIS FOR ENGINEERING DESIGN, 2012, 47 (02): : 104 - 112
  • [24] Semi-Analytical Approach to Determine Interfacial Adhesion in Polymer-Bonded Explosives
    Kodali, M.
    Bharadwaj, P.
    Bhavanam, S.
    Karanjgaokar, N.
    EXPERIMENTAL MECHANICS, 2023, 63 (02) : 237 - 250
  • [25] Data-driven predicting the ignition of polymer-bonded explosives with heterogeneous microcracks
    Liu, Rui
    Cheng, Liang-Liang
    Chen, Peng-Wan
    Zhu, Shun-Peng
    JOURNAL OF ENERGETIC MATERIALS, 2022, 40 (04) : 375 - 401
  • [27] Semi-Analytical Approach to Determine Interfacial Adhesion in Polymer-Bonded Explosives
    M. Kodali
    P. Bharadwaj
    S. Bhavanam
    N. Karanjgaokar
    Experimental Mechanics, 2023, 63 : 237 - 250
  • [28] Mesoscale thermal-mechanical analysis of impacted granular and polymer-bonded explosives
    Wang, Xinjie
    Wu, Yanqing
    Huang, Fenglei
    Jiao, Tong
    Clifton, Rodney J.
    MECHANICS OF MATERIALS, 2016, 99 : 68 - 78
  • [29] Microfluidic strategy for coating and modification of polymer-bonded nano-HNS explosives
    Yan, Fanyuhui
    Zhu, Peng
    Zhao, Shuangfei
    Shi, Jinyu
    Mu, Yunfei
    Xia, Huanming
    Shen, Ruiqi
    CHEMICAL ENGINEERING JOURNAL, 2022, 428
  • [30] Ignition probability of polymer-bonded explosives accounting for multiple sources of material stochasticity
    Kim, S.
    Barua, A.
    Horie, Y.
    Zhou, M.
    JOURNAL OF APPLIED PHYSICS, 2014, 115 (17)