Thermodynamic properties of scapolites at temperatures ranging from 10 K to 1000 K

被引:7
|
作者
Komada, N
Moecher, DP
Westrum, EF
Hemingway, BS
Zolotov, MY
Semenov, YV
Khodakovsky, IL
机构
[1] US GEOL SURVEY,RESTON,VA 22092
[2] VI VERNADSKII INST GEOCHEM & ANALYT CHEM,MOSCOW V334,RUSSIA
[3] UNIV MICHIGAN,DEPT GEOL SCI,ANN ARBOR,MI 48109
来源
JOURNAL OF CHEMICAL THERMODYNAMICS | 1996年 / 28卷 / 09期
关键词
D O I
10.1006/jcht.1996.0083
中图分类号
O414.1 [热力学];
学科分类号
摘要
The heat capacities of five mineral samples From the scapolite solid-solution series, Na4Al3Si9O24Cl (marialite) to Ca4Al6Si6O24CO3 (meionite), were measured by the adiabatic method from T = 8K to T = 350K and by the differential scanning calorimetry (d.s.c.) method from T = 300K to T = 1000K. The meionite (Me) content in per cent {Me = 100 Ca*/(Ca*+Na*)} (where the asterisk indicates that possible substituents are included) and molar heat capacity (C-p,C-m/R) at T = 298.15 K for each sample is: Me(28), 82.07; Me(44), 82.09; Me(55), 83.95; Me(69), 85.80; Me(88), 84.54. The standard molar entropies, {S-m(o)(298.15 K) - S-m(o)(0 K)} R(-1) (R = 8.31451 J . K-1. mol(-1)), at T = 298.15 K for the respective compositions are: 85.05 +/- 0.26, 83.78 +/- 0.50, 85.22 +/- 0.24, 85.76 +/- 0.21, and 84.17 +/- 0.59. The calculated standard molar entropies (as above) at T = 298.15 K for the end-members marialite and meionite, and for an intermediate composition (mizzonite = Me(75)) are 84.85, 83.94 and 86.15, respectively. Values of the coefficients in the equation C-p,C-m/R = a + bT + cT(2) + dT(-1/2) + eT(-2) (valid from T = 300 K to T = 1000 K) are: (Me(x), a, b/K, c/K-2, d/K--1/2, e/K-2 Me(88)), 315.580, -0.0795676, 1.52825 . 10(-5), -3954.83, 1808460; Me(69), 261.285, -0.0415017, 8.73053 . 10(-7), -3028.28, 1083666; Me(55), 232.236, -0.0352222, 6.49875 . 10(-6), 2505.99, 601750; Me(44), 276.696, -0.0756614, 2.39722 . 10(-5), -3210.40, 1044363; Me(28), 149.917, 0.0229399, -1.23180 . 10(-5), 1208.87, -318470. Smoothed thermodynamic functions for the five samples are also presented. The enthalpies of solution for five natural scapolites were measured in 2PbO . B2O3 melts at T = 973 K by Calvet-type calorimetry. The values of Delta(sol)H(m)(o)/R . K are: Me(11), 32.1(4) +/- 0.7; Me(28), 32.3(4) +/- 0.4; Me(44), 33.6(6) +/- 0.8; Me(69), 35.2(9) +/- 0.8; Me(88), 32.8(7) +/- 0.3. The calculated enthalpies of formation for stoichiometric scapolites Delta(f)H(m)(o)/10(3) . R . K at T = 298.15 K are: Me(0), -1467.(4) +/- 1.(3); Me(11), -1491.(2) +/- 1.(2); Me(28), - 1527.(6) +/- 0.(9); Me(44), -1564.(1) +/- 1.(1); Me(55), -1587.(4) +/- 1.(1); Me(69), -1619.(7) +/- 1.(1); Me(75), -1633.(1) +/- 1.(1); Me(88), -1649.1 +/- 1.(0); Me(100), -1664 +/- 1.(6). The heat capacity, the entropy, and the enthalpy of solution have maximal values near Me(75) which may account in part for the relatively common occurrence of that composition in natural assemblages. Earlier measurements on leucite have been extended by the Komada/Westrum phonon dispersion model and corrected to end-member composition. (C) 1996 Academic Press Limited
引用
收藏
页码:941 / 973
页数:33
相关论文
共 50 条
  • [41] Thermodynamic properties of metamizol monohydrate in pure and binary solvents at temperatures from (283.15 to 313.15)K
    Guo, Mingxia
    Yin, Qiuxiang
    Wang, Chang
    Huang, Yaohui
    Li, Yang
    Zhang, Zaixiang
    Zhang, Xia
    Wang, Zhao
    Zhang, Meijing
    Zhou, Ling
    CHINESE JOURNAL OF CHEMICAL ENGINEERING, 2017, 25 (10) : 1481 - 1491
  • [42] Structure and physical properties of YCoO3 at temperatures up to 1000 K
    Knizek, K.
    Jirak, Z.
    Hejtmanek, J.
    Veverka, M.
    Marysko, M.
    Hauback, B. C.
    Fjellvag, H.
    PHYSICAL REVIEW B, 2006, 73 (21):
  • [43] Revisiting the thermophysical properties of the A-type hexagonal lanthanide sesquioxides between temperatures of 5 K and 1000 K
    Gruber, JB
    Justice, BH
    Westrum, EF
    Zandi, B
    JOURNAL OF CHEMICAL THERMODYNAMICS, 2002, 34 (04): : 457 - 473
  • [44] Thermodynamic functions of α,α-trehalose dihydrate and of α,β-trehalose monohydrate at temperatures from 13 K to 300 K
    Furuki, Takao
    Abe, Rika
    Kawaji, Hitoshi
    Atake, Tooru
    Sakurai, Minoru
    JOURNAL OF CHEMICAL THERMODYNAMICS, 2006, 38 (12): : 1612 - 1619
  • [45] THERMODYNAMIC PROPERTIES OF NITROGEN FROM THE FREEZING LINE TO 2000-K AT PRESSURES TO 1000-MPA
    JACOBSEN, RT
    STEWART, RB
    JAHANGIRI, M
    JOURNAL OF PHYSICAL AND CHEMICAL REFERENCE DATA, 1986, 15 (02) : 735 - 909
  • [46] HEAT-CAPACITIES AND THERMODYNAMIC PROPERTIES OF IRON DISELENIDE AND NICKEL DISELENIDE FROM 300 TO 1000 K
    GRONVOLD, F
    JOURNAL OF CHEMICAL THERMODYNAMICS, 1975, 7 (07): : 645 - 654
  • [48] THERMODYNAMIC PROPERTIES OF ARGON FROM THE TRIPLE POINT TO 1200-K WITH PRESSURES TO 1000-MPA
    STEWART, RB
    JACOBSEN, RT
    JOURNAL OF PHYSICAL AND CHEMICAL REFERENCE DATA, 1989, 18 (02) : 639 - 798
  • [49] REEMISSION OF HYDROGEN AND DEUTERIUM FROM GRAPHITE FOR TEMPERATURES BETWEEN 1000-K AND 1600-K
    DAVIS, JW
    HAASZ, AA
    JOURNAL OF NUCLEAR MATERIALS, 1991, 183 (03) : 229 - 232
  • [50] The H2-H infrared absorption bands at temperatures from 1000 K to 2500 K
    Gustafsson, M.
    Frommhold, L.
    Astronomy and Astrophysics, 1600, 400 (03): : 1161 - 1162