Shock-induced phase transition and damage in nano-polycrystalline graphite affected by grain boundaries

被引:0
|
作者
Liu, Junjie [1 ]
Tian, Hong [1 ]
Li, Fang [1 ]
Zuo, Pei [1 ]
机构
[1] Wuhan Inst Technol, Sch Opt Informat & Energy Engn, Sch Mech & Elect Engn,Hubei Prov Key Lab Chem Equi, Hubei Key Lab Opt Informat & Pattern Recognit,Hube, Wuhan 430073, Peoples R China
关键词
Nano-polycrystalline graphite; Grain boundaries; Shock compression; Structural transition; Dynamic fracture; BOND-ORDER POTENTIALS; TERSOFF-BRENNER; DIAMOND; MECHANISM; GRAPHENE; TEMPERATURE; PRESSURE; INSIGHTS;
D O I
10.1016/j.commatsci.2024.113303
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Dynamic structural response of nano-polycrystalline graphite under shock compression is investigated using molecular dynamics (MD) simulations. Hugoniot data shows that the structural transition is activated at shock pressure P similar to 30 GPa (experimental range, 20-50 GPa), resulting in the formation and extension of hexagonal diamond nuclei along grain boundaries, embedded incoherently among thin-graphite grains. As P increases from 130 GPa, the structure starts to liquefy, accompanied by a decrease in shear stress tau from approximately 5.3 GPa, and completely liquefies at P similar to 250 GPa (melting pressure of graphite, 180-280 GPa) and tau similar to 0 GPa. In ultrahigh-pressure region, a two-wave structure is generated consisting of an elastic shock wave and a phase transition wave, and when the piston velocity exceeds 5.2 km/s, the latter wave can catch up with the elastic one, eventually becoming a single over-driven wave. During the relaxation of compressed nano-polycrystalline graphite, void nucleation inside the sample induces the initiation of visible cracks when piston velocity is higher than 1 km/s. At low piston velocities, the cracks propagate gradually along grain boundaries due to shear-slip effects. While at high piston velocities, direct spall of the nano-polycrystalline graphite makes it into multiple fragments by ultrahigh strain rate tensile forces. This study provides a useful guide to the structural transition and dynamic damage evolution of nano-polycrystalline graphite under shock compression.
引用
收藏
页数:9
相关论文
共 50 条
  • [41] Discrete-element modeling of shock-induced phase transition in iron
    Yano, K
    Horie, Y
    SHOCK COMPRESSION OF CONDENSED MATTER-1999, PTS 1 AND 2, 2000, 505 : 287 - 290
  • [42] Shock-induced phase transition of MnO around 90GPa
    Noguchi, Y
    Kusaba, K
    Fukuoka, K
    Syono, Y
    GEOPHYSICAL RESEARCH LETTERS, 1996, 23 (12) : 1469 - 1472
  • [43] Shock-induced phase transition and spalling characteristic in pure iron and FeMnNi alloy
    Chen Yong-Tao
    Tang Xiao-Jun
    Li Qing-Zhong
    CHINESE PHYSICS B, 2010, 19 (05) : 0564021 - 0564028
  • [44] Evaluation of the shock-induced phase transition in β-Ga2O3
    Kishimura, Hiroaki
    Matsumoto, Hitoshi
    JAPANESE JOURNAL OF APPLIED PHYSICS, 2018, 57 (12)
  • [45] SHOCK-INDUCED HEXAGONAL TO CUBIC PHASE-TRANSITION IN BORON-NITRIDE
    GUST, WH
    BULLETIN OF THE AMERICAN PHYSICAL SOCIETY, 1975, 20 (03): : 350 - 350
  • [46] Shock-induced phase transition in systems of hard spheres with internal degrees of freedom
    Taniguchi, Shigeru
    Mentrelli, Andrea
    Zhao, Nanrong
    Ruggeri, Tommaso
    Sugiyama, Masaru
    PHYSICAL REVIEW E, 2010, 81 (06):
  • [47] Shock-induced phase transition of Tin: experimental study with velocity and temperature measurements
    Chauvin, Camille
    Bouchkour, Zakaria
    Sinatti, Frederic
    Petit, Jacques
    SHOCK COMPRESSION OF CONDENSED MATTER - 2015, 2017, 1793
  • [48] Shock-induced phase transition and spalling characteristic in pure iron and FeMnNi alloy
    陈永涛
    唐小军
    李庆忠
    Chinese Physics B, 2010, 19 (05) : 446 - 453
  • [49] ANISOTROPIC BEHAVIOR OF THE SHOCK-INDUCED PHASE-TRANSITION OF RUTILE PHASE TITANIUM-DIOXIDE
    MASHIMO, T
    SAWAOKA, A
    PHYSICS LETTERS A, 1980, 78 (04) : 419 - 422
  • [50] Giant power output in lead-free ferroelectrics by shock-induced phase transition
    Gao, Zhipeng
    Peng, Wei
    Chen, Bin
    Redfern, Simon A. T.
    Wang, Ke
    Chu, Baojin
    He, Qiang
    Sun, Yi
    Chen, Xuefeng
    Nie, Hengchang
    Deng, Wen
    Zhang, Lingkong
    He, Hongliang
    Wang, Genshui
    Dong, Xianlin
    PHYSICAL REVIEW MATERIALS, 2019, 3 (03)