Phase Equilibria of the Aqueous Lithium-Containing Carbonate Systems

Article Preview

Abstract:

It is well known that the phase diagram plays an important role in exploitation and utilization of salt lake resources. To effectively employ the systems containing lithium and carbonate, the study on phase equilibrium is essential to the comprehensive utilization of the salt lake resources. In this paper, progresses on phase equilibria of salt-water systems containing lithium and carbonate were presented.

You might also be interested in these eBooks

Info:

Periodical:

Pages:

421-424

Citation:

Online since:

August 2014

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2014 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

* - Corresponding Author

[1] Ma Peihua. Comprehensive utilization of salt lake resources [J]. Advance in earth sciences, 2000 15 (4) 365–375.

Google Scholar

[2] Cao Xu, Deng Tianlong, Li Dongchan, et al. Progresses on the Phase Equilibria of Lithium-containing Salt-water System [J]. Salt and Chemical Industry, 2009 38 (2) 36–40.

Google Scholar

[3] Guo Yafei, Han Haijun, Wang Qing, et al. Stable and metastable phase equilibria of the ternary aqueous system of sodium sulfate and lithium sulfate [A]. 15th internationall symposium on solubility phenomena and related equilibrium processes [C], (2012).

Google Scholar

[4] Wang Shiqiang, Deng Tianlong. (Solid+liquid) isothermal evaporation phase equilibria in the aqueous ternary system (Li2SO4+MgSO4+H2O) at T=308. 15 K [J]. The Journal of Chemical Thermodynamics, 2008 40 (6) 1007–1011.

DOI: 10.1016/j.jct.2008.02.008

Google Scholar

[5] Sang Shihua, Yin Hui'an, Tang Minglin, et al. (Liquid+solid) metastable equilibria in quinary system Li2CO3+Na2CO3+K2CO3+Li2B4O7+Na2B4O7+K2B4O7+H2O at T=288 K for Zhabuye salt lake [J]. J. Chem. Thermodynamics, 2003 35 (9) 1513–1520.

DOI: 10.1016/s0021-9614(03)00122-8

Google Scholar

[6] Sang Shihua, Yin Hui'an, Tang Minglin. (Liquid+Solid) Phase Equilibria in the Quinary System Li++Na++K++CO32-+B4O72-+H2O at 288 K [J]. Journal of Chemical and Engineering Data, 2005 50 (5) 1557–1559.

DOI: 10.1002/chin.200548015

Google Scholar

[7] Sang Shihua, Yu Haiyan, Peng Jiang. Metastable Equilibria in the Quaternary System Li+, Na+/CO32-, B4O72-–H2O at 273 K [J]. Chinese Journal of inorganic chemistry, 2008 24 (7) 1152–1154.

Google Scholar

[8] Zeng Ying, Lin Xiaofeng Meng Shijun. Study on metastable phase equilibrium of quaternary system Li+, K+/CO32-, B4O72-–H2O at 273 K [J]. Chemical Engineering (China), 2008 36 (9) 48–50.

Google Scholar

[9] Yin Hui'an, Sang Shihua Tang Minglin. Equilibrium of quaternary system Li+, K+/CO32-, B4O72-–H2O at 288 K [J]. Journal of Chemical Industry and Engineering (China), 2004 55 (3) 464–466.

Google Scholar

[10] Zeng Ying, Xiao Xia Yin Hui'an, et al. A Study on the Phase Equilibrium and Solution Properties of the Quaternary System Li+, K+/CO32-, B4O72-–H2O at 298 K [J], Journal of Chemical Engineering of Chinese Universities, 2002 16 (6) 592–596.

Google Scholar

[11] Yu Haiyan. Study on metastable in equilibria system of Li+, Na+/CO32-, SO42-, B4O72-–H2O at 273K [D]. Master's thesis, Chengdu: Chengdu University of Technology, (2007).

Google Scholar

[12] Sang Shihua, Yin Hui'an Zeng Yin, et al. Study on Metastable Equilibria in Quaternary System Li+, Na+/SO42-, CO3-–H2O at 288 K [J]. Acta Chimica Sinica, 2006 64 (22) 2247–2253.

Google Scholar

[13] Li Jiajia, Zeng Ying, Xudong Yu, et al. Solubility of the Aqueous Reciprocal Quaternary System Li+, Na+/CO32−, SO42−–H2O at 273. 15 K [J]. Journal of Chemical and Engineering Data, 2013 58 (2) 455–459.

Google Scholar

[14] Yan Shuyi, Yin Hui'an Liang Qu, et al. An experimental study on metastable phase equilibria in the quaternary system Li+, K+/Cl-, CO32-–H2O at 298 K [J]. Chemical Research and Application, 2008 20 (2) 167–168.

Google Scholar

[15] Zeng Ying, Tang Minglin, Yin Hui'an, et al. An experimental study on the equilibrium phase diagram and solution properties of the ternary systems Li+/CO32-, B4O72-−H2O and K+/CO32-, B4O72-–H2O at 298 K [J]. Journal of Mineralogy and Petrology, 1999 19 (2) 76–89.

DOI: 10.1002/chin.200548015

Google Scholar

[16] Sang Shihua, Tang Minglin, Yin Hui'an, et al. Study on equilibrium solubilities and properties of solutions in the ternary system Li+ (K+) /CO32-, B4O72-–H2O at 288 K [J]. Industrial Minerals & Processing, 2002 (3) 7–9, 24.

Google Scholar

[17] Yin Hui'an, Sang Shihua, Tang Minglin, et al. Equilibrium of quaternary system Li+, K+/CO32-, B4O72-–H2O at 288 K [J]. Journal of Chemical Industry and Engineering (China), 2004 55 (3) 465–467.

Google Scholar

[18] Zeng Ying, Xiao Xia, Yin Hui'an, et al. A Study on the Phase Equilibrium and Solution Properties of the Quaternary System Li+, K+/CO32-, B4O72-–H2O at 298 K [J]. Journal of Chemical Engineering of Chinese Universities, 2002 16 (6) 592–596.

Google Scholar

[19] Deng Tianlong, Yin Hui'an, Tang Minglin. A Study of Solubilities and Physicochemistry Properties of Equilibrium Solutions in the Reciprocal Quaternary System Li+, K+/Cl-, CO32-–H2O at 298 K [J]. Chemical journal of chiese universities, 2000 21 (10) 1572–1574.

Google Scholar

[20] Yin Hui'an, Hao Lifang, Zeng Yin, et al. Studies on the Phase Equilibrium and Physicochemical Properties of Solutions for the Quinary System Li+, Na+/CO32-, B4O72-, Cl-–H2O at 298 K [J]. Journal of Chemical Engineering of Chinese Universities, 2003 17 (1) 2–5.

Google Scholar