Fingerprinting shock-induced deformations via diffraction

被引:13
|
作者
Mishra, Avanish [1 ,2 ]
Kunka, Cody [3 ]
Echeverria, Marco J. [1 ]
Dingreville, Remi [3 ]
Dongare, Avinash M. [1 ,2 ]
机构
[1] Univ Connecticut, Dept Mat Sci & Engn, Storrs, CT 06269 USA
[2] Univ Connecticut, Inst Mat Sci, Storrs, CT 06269 USA
[3] Sandia Natl Labs, Ctr Integrated Nanotechnol, Albuquerque, NM 87123 USA
基金
美国能源部;
关键词
X-RAY-DIFFRACTION; PHASE-TRANSITION; COMPRESSION; COPPER; SIMULATION; NUCLEATION; SILICON; IRON;
D O I
10.1038/s41598-021-88908-y
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
During the various stages of shock loading, many transient modes of deformation can activate and deactivate to affect the final state of a material. In order to fundamentally understand and optimize a shock response, researchers seek the ability to probe these modes in real-time and measure the microstructural evolutions with nanoscale resolution. Neither post-mortem analysis on recovered samples nor continuum-based methods during shock testing meet both requirements. High-speed diffraction offers a solution, but the interpretation of diffractograms suffers numerous debates and uncertainties. By atomistically simulating the shock, X-ray diffraction, and electron diffraction of three representative BCC and FCC metallic systems, we systematically isolated the characteristic fingerprints of salient deformation modes, such as dislocation slip (stacking faults), deformation twinning, and phase transformation as observed in experimental diffractograms. This study demonstrates how to use simulated diffractograms to connect the contributions from concurrent deformation modes to the evolutions of both 1D line profiles and 2D patterns for diffractograms from single crystals. Harnessing these fingerprints alongside information on local pressures and plasticity contributions facilitate the interpretation of shock experiments with cutting-edge resolution in both space and time.
引用
收藏
页数:12
相关论文
共 50 条
  • [41] Shock-induced Structural Heterogenization
    Meshcheryakov, Yurii
    Konovalov, Grigorii
    Divakov, Alexandre
    Zhgacheva, Natali
    Osokin, Evgenii
    XXVII INTERNATIONAL CONFERENCE: MATHEMATICAL AND COMPUTER SIMULATION IN MECHANICS OF SOLIDS AND STRUCTURES - FUNDAMENTALS OF STATIC AND DYNAMIC FRACTURE (MCM 2017), 2017, 6 : 146 - 153
  • [42] Dynamic X-ray Diffraction to Study the Shock-induced α-ε Phase Transition in Iron
    Branch, B.
    Jensen, B. J.
    SHOCK COMPRESSION OF CONDENSED MATTER - 2017, 2018, 1979
  • [43] X-ray diffraction study of shock-induced phase transformations in zirconium and bismuth
    Podurets, AM
    Dorokhin, VV
    Trunin, RF
    HIGH TEMPERATURE, 2003, 41 (02) : 216 - 220
  • [44] X-Ray Diffraction Study of Shock-Induced Phase Transformations in Zirconium and Bismuth
    A. M. Podurets
    V. V. Dorokhin
    R. F. Trunin
    High Temperature, 2003, 41 : 216 - 220
  • [45] SHOCK SOURCE AND INTENSITY - VARIABLES IN SHOCK-INDUCED FIGHTING
    FOLLICK, MJ
    KNUTSON, JF
    BEHAVIOR RESEARCH METHODS & INSTRUMENTATION, 1974, 6 (05): : 477 - 480
  • [46] Formation of a disordered solid via a shock-induced transition in a dense particle suspension
    Petel, Oren E.
    Frost, David L.
    Higgins, Andrew J.
    Ouellet, Simon
    PHYSICAL REVIEW E, 2012, 85 (02):
  • [47] Formation of black phosphorus quantum dots via shock-induced phase transformation
    Qiao, Jinchao
    Gao, Xin
    Zhou, Qiang
    Liu, Jianjun
    Zhong, Longhai
    Chen, Pengwan
    APPLIED PHYSICS LETTERS, 2022, 120 (14)
  • [48] Estimation of shock-induced buffet onset
    J. P. Singh
    Acta Mechanica, 2001, 151 : 245 - 253
  • [49] SHOCK-INDUCED PHASE CHANGE IN ORTHOCLASE
    AHRENS, TJ
    LIU, HP
    TRANSACTIONS-AMERICAN GEOPHYSICAL UNION, 1973, 54 (01): : 65 - +
  • [50] SHOCK-INDUCED MELTING OF BIOTITE AND MUSCOVITE
    LAMBERT, P
    METEORITICS, 1979, 14 (04): : 466 - 468