Role of water impurity in impact fracture of quartz in the vicinity of the phase transition at 573°C

被引:0
|
作者
I. P. Shcherbakov
V. S. Kuksenko
A. E. Chmel’
机构
[1] Russian Academy of Sciences,Ioffe Physical Technical Institute
来源
Technical Physics | 2015年 / 60卷
关键词
Acoustic Emission; Acoustic Emission Signal; Heterogeneous Material; Impact Fracture; Acoustic Emission Activity;
D O I
暂无
中图分类号
学科分类号
摘要
Synthetic quartz single crystals are subjected to fracture by a falling load in the temperature range from 20 to 650°C (i.e., including the region of the α → β phase transition). The intensity of integrated acoustic emission (AE) generated during the impact is recorded in the frequency range from 80 kHz to 1 MHz. In the temperature range 20–300°C and at temperatures above the phase transition temperature (573°C), the energy distributions in temporal AE series are correctly described by the exponential function typical of random events, but at 400 and 500°C, the energy distributions follow the power law typical of correlated accumulation of microcracks in heterogeneous materials. The temperature effect is explained by the presence of submicrometer inclusions of a vapor—water mixture in the material, which exist as a rule in natural and synthetic quartz single crystals. Upon heating of the material to a certain critical temperature, the internal pressure in the bubbles of liquid attains a value for which the shock wave causes cracking around a large number of uniformly distributed inclusions. As a result, a correlated improper process of accumulation of microscopic defects, which is obviously observed only in heterogeneous materials, evolves in the bulk of deformed quartz heated to 400–500°C.
引用
收藏
页码:1405 / 1409
页数:4
相关论文
共 50 条
  • [1] Role of water impurity in impact fracture of quartz in the vicinity of the phase transition at 573A°C
    Shcherbakov, I. P.
    Kuksenko, V. S.
    Chmel', A. E.
    TECHNICAL PHYSICS, 2015, 60 (09) : 1405 - 1409
  • [2] Anisotropic viscoelastic properties of quartz and quartzite in the vicinity of the α–β phase transition
    Steffen Klumbach
    Frank R. Schilling
    Physics and Chemistry of Minerals, 2017, 44 : 627 - 637
  • [3] Anisotropic viscoelastic properties of quartz and quartzite in the vicinity of the α-β phase transition
    Klumbach, Steffen
    Schilling, Frank R.
    PHYSICS AND CHEMISTRY OF MINERALS, 2017, 44 (09) : 627 - 637
  • [4] OPTICAL EXAMINATION OF INHOMOGENEITIES OF QUARTZ CRYSTALS IN THE VICINITY OF THE PHASE-TRANSITION
    SHUSTIN, OA
    CHERNEVICH, TG
    IVANOV, SA
    YAKOVLEV, IA
    SOLID STATE COMMUNICATIONS, 1981, 37 (01) : 65 - 68
  • [5] Spin-Peierls transition in the Ge:As semiconductor impurity system in the vicinity of the insulator metal phase transition
    Veinger, A. I.
    Zabrodskii, A. G.
    Tisnek, T. V.
    Goloshchapov, S. I.
    PHYSICA B-CONDENSED MATTER, 2009, 404 (23-24) : 4537 - 4539
  • [6] Effect of water on the α-β phase transition in a surface quartz layer
    V. I. Vettegren
    G. A. Sobolev
    S. M. Kireenkova
    Yu. A. Morozov
    A. I. Smul’skaya
    R. I. Mamalimov
    V. B. Kulik
    Physics of the Solid State, 2014, 56 : 1228 - 1233
  • [7] Effect of water on the α-β phase transition in a surface quartz layer
    Vettegren, V. I.
    Sobolev, G. A.
    Kireenkova, S. M.
    Morozov, Yu A.
    Smul'skaya, A. I.
    Mamalimov, R. I.
    Kulik, V. B.
    PHYSICS OF THE SOLID STATE, 2014, 56 (06) : 1228 - 1233
  • [8] Numerical analysis of atomic motion in the incommensurate phase of quartz (SiO2) in the vicinity of phase transition
    Semagin, DA
    Shigenari, T
    Dmitriev, SV
    Abe, K
    PHYSICA STATUS SOLIDI C: CURRENT TOPICS IN SOLID STATE PHYSICS, VOL. 1, NO. 11, 2004, 1 (11): : 3057 - 3060
  • [9] Dynamic factor in impact, phase transition and fracture
    Slepyan, LI
    JOURNAL OF THE MECHANICS AND PHYSICS OF SOLIDS, 2000, 48 (05) : 927 - 960
  • [10] The chiral phase transition and hadron properties in the vicinity of T-c
    Karsch, F
    PROGRESS OF THEORETICAL PHYSICS SUPPLEMENT, 1996, (122): : 97 - 107