Thermal behavior of polyhalite: a high-temperature synchrotron XRD study

被引:23
|
作者
Xu, Hongwu [1 ]
Guo, Xiaofeng [1 ]
Bai, Jianming [2 ]
机构
[1] Los Alamos Natl Lab, Earth & Environm Sci Div, Los Alamos, NM 87545 USA
[2] Brookhaven Natl Lab, Natl Synchrotron Light Source 2, Upton, NY 11973 USA
关键词
Polyhalite; Thermal decomposition; Anhydrite; Langbeinite; Crystal structure; Thermal expansion; Synchrotron X-ray diffraction; Salt repository; PHASE-TRANSITIONS; ANHYDRITE; LANGBEINITES;
D O I
10.1007/s00269-016-0842-5
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
As an accessory mineral in marine evaporites, polyhalite, K2MgCa2(SO4)(4)center dot 2H(2)O, coexists with halite (NaCl) in salt formations, which have been considered as potential repositories for permanent storage of high-level nuclear wastes. However, because of the heat generated by radioactive decays in the wastes, polyhalite may dehydrate, and the released water will dissolve its neighboring salt, potentially affecting the repository integrity. Thus, studying the thermal behavior of polyhalite is important. In this work, a polyhalite sample containing a small amount of halite was collected from the Salado formation at the WIPP site in Carlsbad, New Mexico. To determine its thermal behavior, in situ high-temperature synchrotron X-ray diffraction was conducted from room temperature to 1066 K with the sample powders sealed in a silica-glass capillary. At about 506 K, polyhalite started to decompose into water vapor, anhydrite (CaSO4) and two langbeinite-type phases, K2Ca (x) Mg2-x (SO4)(3), with different Ca/Mg ratios. XRD peaks of the minor halite disappeared, presumably due to its dissolution by water vapor. With further increasing temperature, the two langbeinite solid solution phases displayed complex variations in crystallinity, composition and their molar ratio and then were combined into the single-phase triple salt, K2CaMg(SO4)(3), at similar to 919 K. Rietveld analyses of the XRD data allowed determination of structural parameters of polyhalite and its decomposed anhydrite and langbeinite phases as a function of temperature. From the results, the thermal expansion coefficients of these phases have been derived, and the structural mechanisms of their thermal behavior been discussed.
引用
收藏
页码:125 / 135
页数:11
相关论文
共 50 条
  • [21] High-temperature structure, elasticity, and thermal expansion of ε-ZrH 1.8
    Torres, James R.
    Mizzi, Christopher A.
    Rehn, Daniel A.
    Smith, Tyler
    Paisner, Scarlett Widgeon
    Terricabras, Adrien J.
    Parkison, Darren M.
    Vogel, Sven C.
    Kohnert, Caitlin A.
    Hayne, Mathew L.
    Nizolek, Thomas J.
    Torrez, M. A.
    Munroe, Tannor T. J.
    Maiorov, Boris
    Saleh, Tarik A.
    Shivprasad, Aditya P.
    JOURNAL OF NUCLEAR MATERIALS, 2025, 603
  • [22] High-temperature Raman and FTIR study of aragonite-group carbonates
    Wang, Xiang
    Ye, Yu
    Wu, Xiang
    Smyth, Joseph R.
    Yang, Yan
    Zhang, Zengming
    Wang, Zhongping
    PHYSICS AND CHEMISTRY OF MINERALS, 2019, 46 (01) : 51 - 62
  • [23] High temperature crystal chemistry and thermal expansion of synthetic powellite (CaMoO4):: A high temperature X-ray diffraction (HT-XRD) study
    Achary, SN
    Patwe, SJ
    Mathews, MD
    Tyagi, AK
    JOURNAL OF PHYSICS AND CHEMISTRY OF SOLIDS, 2006, 67 (04) : 774 - 781
  • [24] High-temperature synchrotron X-ray diffraction study of phases in a gamma TiAl alloy
    Novoselova, T
    Malinov, S
    Sha, W
    Zhecheva, A
    MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2004, 371 (1-2): : 103 - 112
  • [25] Thermal expansion and decomposition of jarosite: a high-temperature neutron diffraction study
    Xu, Hongwu
    Zhao, Yusheng
    Vogel, Sven C.
    Hickmott, Donald D.
    Daemen, Luke L.
    Hartl, Monika A.
    PHYSICS AND CHEMISTRY OF MINERALS, 2010, 37 (02) : 73 - 82
  • [26] Thermal analysis and high-temperature X-ray diffraction study of BiNbO4
    Zhuk, N. A.
    Makeev, B. A.
    Belyy, V. A.
    Krzhizhanovskaya, M. G.
    JOURNAL OF THERMAL ANALYSIS AND CALORIMETRY, 2019, 137 (05) : 1513 - 1518
  • [27] Thermal expansion and decomposition of jarosite: a high-temperature neutron diffraction study
    Hongwu Xu
    Yusheng Zhao
    Sven C. Vogel
    Donald D. Hickmott
    Luke L. Daemen
    Monika A. Hartl
    Physics and Chemistry of Minerals, 2010, 37 : 73 - 82
  • [28] In-situ monitoring of vanadium dioxide formation using high-temperature XRD
    Rodriguez, Mark A.
    Bell, Nelson S.
    Griego, James J. M.
    Edney, Cynthia V.
    Clem, Paul G.
    POWDER DIFFRACTION, 2014, 29 (02) : 97 - 101
  • [29] Comparison of thermal expansion and oxidation behavior of various high-temperature coating materials and superalloys
    Haynes, JA
    Pint, BA
    Porter, WD
    Wright, IG
    MATERIALS AT HIGH TEMPERATURES, 2004, 21 (02) : 87 - 94
  • [30] Insight into the Am-O Phase Equilibria: A Thermodynamic Study Coupling High-Temperature XRD and CALPHAD Modeling
    Epifano, Enrica
    Gueneau, Christine
    Belin, Renaud C.
    Vauchy, Romain
    Lebreton, Florent
    Richaud, Jean-Christophe
    Joly, Alexis
    Valot, Christophe
    Martin, Philippe M.
    INORGANIC CHEMISTRY, 2017, 56 (13) : 7416 - 7432