Ultrasonic experimental study on the elasticity of aluminum to 4.1 GPa in multi-anvil apparatus

被引:2
|
作者
Song, Wei [1 ]
Tang, Qizhe [2 ]
Su, Chang [3 ]
Chen, Xiang [1 ,4 ]
Liu, Yonggang [1 ]
机构
[1] Chinese Acad Sci, Inst Geochem, Key Lab High Temp & High Pressure Study Earths In, Guiyang 550081, Peoples R China
[2] Huzhou Univ, Sch Informat Engn, Huzhou 313000, Peoples R China
[3] Inst Disaster Prevent, Sanhe 065201, Peoples R China
[4] Univ Chinese Acad Sci, Beijing 100049, Peoples R China
基金
中国国家自然科学基金; 中国科学院西部之光基金;
关键词
Ultrasonic; Elasticity; Aluminum; Multi-anvil apparatus; EQUATION-OF-STATE; HIGH-PRESSURE; ISOTHERMAL COMPRESSION; HYDROSTATIC-PRESSURE; THERMODYNAMIC PROPERTIES; CONSTANTS; MODULI; AL; DERIVATIVES; METALS;
D O I
10.1016/j.physb.2021.412891
中图分类号
O469 [凝聚态物理学];
学科分类号
070205 ;
摘要
Ultrasonic experiments have been performed to measure compressional and shear wave velocities of polycrystalline aluminum under hydrostatic pressure up to 4.1 GPa at room temperature in a multi-anvil apparatus. The sample pressure was determined by the new Z-cut quartz calibrant. Two types of data processing methods, three-order finite strain method and the Anderson?s method, were utilized to calculate the elasticity of aluminum. The results from this work are in good agreement with previously reports and so it demonstrates the accuracy and convenience of our experimental methods, including the validity of the Z-cut quartz calibrant for pressure determination. We believe it?s valuable for the measurements of elasticity of other material in multianvil apparatus, especially those experiments using compressible specimens which have small elastic moduli, and lacking of X-ray source.
引用
收藏
页数:6
相关论文
共 50 条
  • [31] Calibration of a multi-anvil high-pressure apparatus to simulate planetary interior conditions
    Knibbe, J. S.
    Luginbuhl, S. M.
    Stoevelaar, R.
    van der Plas, W.
    van Harlingen, D. M.
    Rai, N.
    Steenstra, E. S.
    van de Geer, R.
    van Westrenen, W.
    EPJ TECHNIQUES AND INSTRUMENTATION, 2018, 5
  • [32] A double-layer heating method to generate high temperature in a two-stage multi-anvil apparatus*
    Peng, Bo
    Kou, Zili
    Zhao, Mengxi
    Jiang, Mingli
    Zhang, Jiawei
    Wang, Yipeng
    Zhang, Lu
    CHINESE PHYSICS B, 2020, 29 (09)
  • [33] Numerical simulation of the mechanical state of the two-stage multi-anvil high pressure apparatus
    Polotnyak, S. B.
    Borimskii, O. I.
    JOURNAL OF SUPERHARD MATERIALS, 2016, 38 (02) : 91 - 102
  • [34] Numerical simulation of the mechanical state of the two-stage multi-anvil high pressure apparatus
    S. B. Polotnyak
    O. I. Borimskii
    Journal of Superhard Materials, 2016, 38 : 91 - 102
  • [35] THE LARGE-VOLUME MULTI-ANVIL PRESS AS A HIGH P-T DEFORMATION APPARATUS
    BUSSOD, GY
    KATSURA, T
    RUBIE, DC
    PURE AND APPLIED GEOPHYSICS, 1993, 141 (2-4) : 579 - 599
  • [36] In situ measurements of electrical resistivity of metals in a cubic multi-anvil apparatus by van der Pauw method
    Yang, Fan
    Hu, Xiaojun
    Fei, Yingwei
    REVIEW OF SCIENTIFIC INSTRUMENTS, 2022, 93 (05)
  • [37] HOT-PRESSING OF POLYCRYSTALS OF HIGH-PRESSURE PHASES OF MANTLE MINERALS IN MULTI-ANVIL APPARATUS
    GWANMESIA, GD
    LI, BS
    LIEBERMANN, RC
    PURE AND APPLIED GEOPHYSICS, 1993, 141 (2-4) : 467 - 484
  • [38] Boron-doped diamond synthesized by chemical vapor deposition as a heating element in a multi-anvil apparatus
    Xie, Longjian
    Yoneda, Akira
    Liu, Zhaodong
    Nishida, Keisuke
    Katsura, Tomoo
    HIGH PRESSURE RESEARCH, 2020, 40 (03) : 369 - 378
  • [39] Detection of a P-induced liquid (sic) solid-phase transformation using multiple acoustic transducers in a multi-anvil apparatus
    Officer, Timothy
    Secco, Richard A.
    HIGH PRESSURE RESEARCH, 2015, 35 (03) : 289 - 299
  • [40] Elastic and plastic deformation of NaCl and Ni3Al polycrystals during compression in a multi-anvil apparatus
    Otto, JW
    Vassilioub, JK
    Frommeyer, G
    HIGH PRESSURE RESEARCH, 2000, 17 (01) : 13 - 34