SHOCK-WAVE COMPRESSION AND RELEASE OF ALUMINUM CERAMIC COMPOSITES

被引:16
|
作者
JOHNSON, JN
HIXSON, RS
GRAY, GT
机构
[1] Los Alamos National Laboratory, Los Alamos
关键词
D O I
10.1063/1.357078
中图分类号
O59 [应用物理学];
学科分类号
摘要
Several composite materials consisting of ceramic particles embedded in a 6061-T6 aluminum matrix have been studied under conditions of shock-wave compression and release, including spallation. The 6061-T6 matrix represents a material for which high-rate shock-wave response has been extremely well characterized for thermoelastic-plastic deformation. The ceramic particles (alumina and mullite) are also well characterized, particularly in the elastic regime. Experimental tests consist of quasistatic, uniaxial-stress compression of both virgin and shock-recovered samples as well as time-resolved velocity interferometer measurements under conditions of flat-plate impact. The latter tests were performed with lithium fluoride windows for transmitted wave studies and free surfaces for spallation measurement. Theoretical analysis of the data is carried out with a pseudodissipation model originated by Barker [J. Composite Mat. 5, 140 (1971)] for application to elastic deformation of layered composites and generalized here to include thermoelastic-plastic properties of the constituents. For a pseudodissipative model to apply to composite material response, significant geometrical randomization must be present in the composite structure; this is something that all commercially produced composites naturally possess. Randomization produces mechanical energy traps, which convert some fraction of regular, directed motion into random elastic vibrations behind the shock front. Within a few microseconds (depending on the pinned dislocation segment density) this macroscale, continuum vibrational energy is converted to heat by means of the anelastic properties of the metal matrix. The use of pseudodissipation as a means of representing dispersive composite material behavior is thus placed on a more secure physical foundation.
引用
收藏
页码:5706 / 5718
页数:13
相关论文
共 50 条
  • [1] SHOCK-WAVE COMPRESSION OF ALUMINUM
    DORAN, DG
    FOWLES, GR
    PETERSON, GA
    [J]. PHYSICAL REVIEW LETTERS, 1958, 1 (11) : 402 - 404
  • [2] PROPERTIES OF SC CERAMIC PRODUCED BY SHOCK-WAVE COMPRESSION
    SAZONOVA, LV
    KRZHIZHANOVSKAYA, VA
    GLUSHKOVA, VB
    KOMAROV, AV
    [J]. INORGANIC MATERIALS, 1993, 29 (04) : 667 - 669
  • [3] ELECTRICAL RESPONSE OF ANODIZED ALUMINUM LAYERS TO SHOCK-WAVE COMPRESSION
    CHAMPION, AR
    [J]. JOURNAL OF APPLIED PHYSICS, 1969, 40 (09) : 3766 - +
  • [4] SHOCK-WAVE COMPRESSION OF ALUMINUM AT PRESSURES OF 1.7-TPA
    PODURETS, MA
    KTITOROV, VM
    TRUNIN, RF
    POPOV, LV
    MATVEEV, AY
    PECHENKIN, BV
    SEVASTYANOV, AG
    [J]. HIGH TEMPERATURE, 1994, 32 (06) : 890 - 892
  • [5] Pulse Compression and Tension of Composites under Shock-Wave Impact
    A. V. Utkin
    V. M. Mochalova
    V. V. Yakushev
    V. E. Rykova
    M. Yu. Shakula
    A. V. Ostrik
    V. V. Kim
    I. V. Lomonosov
    [J]. High Temperature, 2021, 59 : 169 - 173
  • [6] Pulse Compression and Tension of Composites under Shock-Wave Impact
    Utkin, A., V
    Mochalova, V. M.
    Yakushev, V. V.
    Rykova, V. E.
    Shakula, M. Yu
    Ostrik, A., V
    Kim, V. V.
    Lomonosov, I., V
    [J]. HIGH TEMPERATURE, 2021, 59 (2-6) : 169 - 173
  • [7] SHOCK-WAVE COMPRESSION OF MINERALS
    SIMAKOV, GV
    TRUNIN, RF
    [J]. IZVESTIYA AKADEMII NAUK SSSR FIZIKA ZEMLI, 1980, (02): : 77 - 81
  • [8] SHOCK-WAVE COMPRESSION OF QUARTZ
    WACKERLE, J
    [J]. JOURNAL OF APPLIED PHYSICS, 1962, 33 (03) : 922 - +
  • [9] SHOCK-WAVE COMPRESSION OF SAPPHIRE
    GRAHAM, RA
    BROOKS, WP
    [J]. TRANSACTIONS-AMERICAN GEOPHYSICAL UNION, 1969, 50 (11): : 673 - &
  • [10] Shock-wave compression of a porous material
    Resnyansky, AD
    Bourne, NK
    [J]. JOURNAL OF APPLIED PHYSICS, 2004, 95 (04) : 1760 - 1769