High pressure-low temperature calorimetry - I. Application to the phase change of mercury under pressure

被引:5
|
作者
Dan, F.
Grofer, J. -P. E.
机构
[1] Univ Clermont Ferrand, Lab Thermodynam Solut & Polymers, F-63177 Clermont Ferrand, France
[2] Gh Asachi Tech Univ, Dept Macromol Chem, Iasi 700050, Romania
关键词
scanning transitiometry; low temperature; high pressure; mercury; phase change;
D O I
10.1016/j.tca.2006.05.014
中图分类号
O414.1 [热力学];
学科分类号
摘要
The melting and crystallization behaviour of pure mercury under pressure was experimentally investigated using a scanning calorimeter, which is a sensitive Calvet type differential calorimeter combined with a computer controlled high-pressure pump driven by a stepping motor. In order to have a good control of calorimetric block temperature, starting from -75 degrees C, the jacket of calorimetric block was connected to a powerful cryostat, which is also computer controlled. This set-up allows to determine the latent heat of fusion/crystallization of mercury and the associated volume changes. Typically, one of the independent variable (p, V, or T) is kept constant, another one is changed with time, and both the enthalpy effect and the change of the remaining third variable are measured with high accuracy. Fusion/crystallization of mercury was investigated both during temperature and pressure scans and n-propanol was used as pressurization fluid. Both methods gave high accuracy data of latent heat of fusion/crystallization of pure mercury. The data obtained by the two different methods are comparatively discussed and making use of Clapeyron equation, the pressure and temperature derivatives of the mercury melting temperature were calculated. A special attention was paid to the manner in which the pressurization rate affects the calorimetric signal. (c) 2006 Elsevier B.V. All rights reserved.
引用
收藏
页码:73 / 83
页数:11
相关论文
共 50 条
  • [21] Phase transformation of BN nanoparticles under high pressure low temperature conditions
    Chen, Z
    Lai, ZF
    Li, K
    Cui, DL
    Lun, N
    Wang, QL
    Jiang, MH
    INTERNATIONAL JOURNAL OF MODERN PHYSICS B, 2005, 19 (15-17): : 2663 - 2668
  • [22] Study of phase change in materials under high pressure
    Singh, VP
    Renuka, DV
    JOURNAL OF APPLIED PHYSICS, 1999, 86 (09) : 4881 - 4884
  • [23] High pressure-low flow remodeling of the rat saphenous vein wall
    Hetthessy, Judit R.
    Tokes, Anna-Maria
    Keresz, Sandor
    Balla, Petra
    Dornyei, Gabriella
    Monos, Emil
    Nadasy, Gyorgy L.
    PHLEBOLOGY, 2018, 33 (02) : 128 - 137
  • [24] Compressibility of the 23 Å phase under high pressure and high temperature
    Cai, Nao
    Kikegawa, Takumi
    Inoue, Toru
    PHYSICS OF THE EARTH AND PLANETARY INTERIORS, 2018, 283 : 1 - 6
  • [25] Phase relations of AgI under high pressure and high temperature
    Ohtaka, O
    Takebe, H
    Yoshiasa, A
    Fukui, H
    Katayama, Y
    SOLID STATE COMMUNICATIONS, 2002, 123 (05) : 213 - 216
  • [26] Phase transition of ZnO under high pressure and temperature
    Kusaba, K
    Syono, Y
    Kikegawa, T
    PROCEEDINGS OF THE JAPAN ACADEMY SERIES B-PHYSICAL AND BIOLOGICAL SCIENCES, 1999, 75 (01): : 1 - 6
  • [27] THEORY OF PERIODIC SYSTEM OF ELEMENTS UNDER HIGH PRESSURE .I.
    IZMAILOV, SV
    SHULMAN, GA
    SOVIET PHYSICS TECHNICAL PHYSICS-USSR, 1966, 10 (10): : 1455 - &
  • [28] Elastic stability of CO2 phase I under high temperature and pressure
    Guo, Siyang
    Huang, Xiaoli
    Tkachev, Sergey N.
    Fu, Xinpeng
    Lin, Jung-fu
    Li, Xinyang
    Mao, Zhu
    Zhou, Qiang
    Li, Fangfei
    Cui, Tian
    PHYSICAL REVIEW B, 2018, 98 (13)
  • [29] Strong correlation effects and new phase transition at high pressure-low temperature in La0.5Ba0.5FeO3
    Zhang, Shile
    Tan, Shun
    Pi, Li
    Zhang, Yuheng
    JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 2010, 322 (21) : 3381 - 3384
  • [30] Phase changes of CO2 hydrate under high pressure and low temperature
    Hirai, Hisako
    Komatsu, Kazuki
    Honda, Mizuho
    Kawamura, Taro
    Yamamoto, Yoshitaka
    Yagi, Takehiko
    JOURNAL OF CHEMICAL PHYSICS, 2010, 133 (12):