CHARACTERIZING EXPERIMENTAL PRESSURE AND TEMPERATURE CONDITIONS IN MULTI-ANVIL APPARATUS

被引:102
|
作者
WALTER, MJ [1 ]
THIBAULT, Y [1 ]
WEI, K [1 ]
LUTH, RW [1 ]
机构
[1] UNIV ALBERTA,DEPT GEOL,CM SCARFE LAB EXPTL PETROL,EDMONTON,AB T6G 2E3,CANADA
关键词
D O I
10.1139/p95-039
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
Octahedral media made of MgO-5%Cr2O3, with edge lengths of 18, 14, and 10 mm are used as pressure cells in experiments in a multi-anvil solid media apparatus at pressures of 4 to 27 GPa and temperatures to >2700 degrees C. Calibrations of press-load versus sample pressure: are based on room-temperature and high temperature phase transitions, and are accurate to within +/-0.5 GPa. Calibrations of the temperature distribution were made in the central portion of the furnaces (graphite or LaCrO3) in the various sample assemblies used routinely in this laboratory. The following gradients away from the furnace midlines were observed: 18 mm: high-T straight graphite (-100 degrees C mm(-1)), high-T stepped graphite (+25 degrees C mm(-1)), low-T stepped graphite (-20 degrees C mm(-1)), high-T stepped LaCrO3 (-50 degrees C mm(-1)); 14 mm: high-T stepped LaCrO3 (-70 degrees C mm(-1)); 10 mm: straight LaCrO3 (-200 degrees C mm(-1)). The effect of increasing the wall thickness of the central segment of the furnace (''stepping'') is to reduce the temperature gradient relative to a straight design. The relative effect of pressure on W3Re-W25Re and Pt-Pt13Rh thermocouples was measured by comparison of apparent temperatures recorded by each type in a given experiment. Corrections for the effect of pressure on thermocouple emf depend on the temperature distribution in the gasket regions surrounding the pressure cell, where pressure is reduced to ambient conditions. The temperature of this pressure seal controls the magnitude of the effect of pressure on thermocouple emf. Because this temperature: will vary depending on the assembly, no universal pressure correction can be derived.
引用
收藏
页码:273 / 286
页数:14
相关论文
共 50 条
  • [41] Control and monitor of oxygen fugacity in piston-cylinder and multi-anvil apparatus
    Zhao C.
    Zhang B.
    Ruan X.
    Dizhi Xuebao/Acta Geologica Sinica, 2022, 96 (12): : 4340 - 4348
  • [42] Measurement setup for the simultaneous determination of diffusivity and Seebeck coefficient in a multi-anvil apparatus
    Jacobsen, M. K.
    Liu, W.
    Li, B.
    REVIEW OF SCIENTIFIC INSTRUMENTS, 2012, 83 (09):
  • [43] 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)
  • [45] Development of the Kawai-type Multi-anvil Apparatus (KMA) and Its Application to High Pressure Earth Science
    Ito, E.
    23RD INTERNATIONAL CONFERENCE ON HIGH PRESSURE SCIENCE AND TECHNOLOGY (AIRAPT-23), 2012, 377
  • [46] High pressure synthesis at 10 GPa and 1400 K using a small cubic anvil apparatus with a multi-anvil 6-6 system
    Kawazoe, Takaaki
    Yamada, Ikuya
    HIGH PRESSURE RESEARCH, 2012, 32 (03) : 347 - 353
  • [47] Studies of mineral properties at mantle condition using Deformation multi-anvil apparatus
    Li Li
    PROGRESS IN NATURAL SCIENCE-MATERIALS INTERNATIONAL, 2009, 19 (11) : 1467 - 1475
  • [48] Pressure generation to 65GPa in a Kawai-type multi-anvil apparatus with tungsten carbide anvils
    Ishii, Takayuki
    Yamazaki, Daisuke
    Tsujino, Noriyoshi
    Xu, Fang
    Liu, Zhaodong
    Kawazoe, Takaaki
    Yamamoto, Takafumi
    Druzhbin, Dmitry
    Wang, Lin
    Higo, Yuji
    Tange, Yoshinori
    Yoshino, Takashi
    Katsura, Tomoo
    HIGH PRESSURE RESEARCH, 2017, 37 (04) : 507 - 515
  • [49] A double-layer heating method to generate high temperature in a two-stage multi-anvil apparatus
    彭博
    寇自力
    赵梦溪
    姜明莉
    张佳威
    王义鹏
    张陆
    Chinese Physics B, 2020, (09) : 295 - 298
  • [50] Dual mode ultrasonic interferometry in multi-anvil high pressure apparatus using single-crystal olivine as the pressure standard
    Sinelnikov, YD
    Chen, GL
    Liebermann, RC
    HIGH PRESSURE RESEARCH, 2004, 24 (01) : 183 - 191