Dynamic strength and inelastic deformation of ceramics under shock wave loading

被引:0
|
作者
Feng, R [1 ]
Gupta, YM [1 ]
Yuan, G [1 ]
机构
[1] Washington State Univ, Shock Dynam Ctr, Pullman, WA 99164 USA
关键词
D O I
暂无
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
To gain insight into material strength and inelastic deformation of ceramics under plane shock wave loading, an in-depth study was carried out on polycrystalline silicon carbide (SiC). Two independent methods were used to determine experimentally the material strength in the shocked state: 1) lateral piezoresistance gauge measurements, and 2) compression and shear wave experiments. The two sets of data were in good agreement. The results show that the Poisson's ratio of the MC increases from 0.162 to 0.194 at the HEL (11.5 GPa). The elastic-inelastic transition is not distinctive. In the shocked state, the material supports a maximum shear stress increasing from 4.5 GPa at the HEL to 7.0 GPa at twice the HEL. This post-MEL strength evolution resembles neither catastrophic failure due to massive cracking nor classical plasticity response. Confining stress, inherent in plane shock wave compression, plays a dominant role in such a behavior. The observed inelastic deformation is interpreted qualitatively using an inhomogeneous mechanism involving both in-grain micro-plasticity and highly confined micro-fissures. Quantitatively, the data are summarized into an empirical pressure-dependent strength model.
引用
收藏
页码:483 / 488
页数:6
相关论文
共 50 条
  • [41] Influence of plastic deformation on fracture of an aluminum single crystal under shock-wave loading
    P. A. Zhilyaev
    A. Yu. Kuksin
    V. V. Stegaĭlov
    A. V. Yanilkin
    Physics of the Solid State, 2010, 52 : 1619 - 1624
  • [42] Simulation of the Deformation Behavior and Spall Failure of an Aluminum Alloy under Shock-Wave Loading
    Natalia, Saveleva
    Yuriy, Bayandin
    Oleg, Naimark
    MECHANICS, RESOURCE AND DIAGNOSTICS OF MATERIALS AND STRUCTURES (MRDMS-2016), 2016, 1785
  • [43] Lattice Deformation Measurement under Shock Wave Loading by Pulsed X-ray Diffraction
    Tang B.
    Hei D.
    Ma G.
    Xia J.
    Sheng L.
    Wei F.
    Luo J.
    Li Y.
    Tan S.
    Yuanzineng Kexue Jishu/Atomic Energy Science and Technology, 2022, 56 (10): : 2165 - 2171
  • [44] Influence of plastic deformation on fracture of an aluminum single crystal under shock-wave loading
    Zhilyaev, P. A.
    Kuksin, A. Yu.
    Stegailov, V. V.
    Yanilkin, A. V.
    PHYSICS OF THE SOLID STATE, 2010, 52 (08) : 1619 - 1624
  • [45] Experimental study of dynamic properties of porous materials under shock-wave loading
    Zubareva, A. N.
    Efremov, V. P.
    Mochalova, V. M.
    Utkin, A. V.
    XXXI INTERNATIONAL CONFERENCE ON EQUATIONS OF STATE FOR MATTER (ELBRUS 2016), 2016, 774
  • [46] Deformation of ballast under static and dynamic loading
    Indraratna, R
    Ionescu, D
    PRE-FAILURE DEFORMATION CHARACTERISTICS OF GEOMATERIALS, VOL 1, 1999, : 283 - 290
  • [47] Numerical study of rate-dependent strength behavior under ramp and shock wave loading
    Ding, J. L.
    Asay, J. R.
    INTERNATIONAL JOURNAL OF PLASTICITY, 2009, 25 (04) : 695 - 714
  • [48] Anomaly in the dynamic strength of austenitic stainless steel 12Cr19Ni10Ti under shock wave loading
    Garkushin, G. V.
    Kanel, G. I.
    Razorenov, S. V.
    Savinykh, A. S.
    MECHANICS OF SOLIDS, 2017, 52 (04) : 407 - 416
  • [49] Anomaly in the dynamic strength of austenitic stainless steel 12Cr19Ni10Ti under shock wave loading
    G. V. Garkushin
    G. I. Kanel
    S. V. Razorenov
    A. S. Savinykh
    Mechanics of Solids, 2017, 52 : 407 - 416
  • [50] Deformation twinning: From atomic modeling to shock wave loading
    Armstrong, RW
    Zerilli, FJ
    ADVANCES IN TWINNING, 1999, : 67 - 81