Chemical Industry and Engineering Progress ›› 2025, Vol. 44 ›› Issue (3): 1706-1715.DOI: 10.16085/j.issn.1000-6613.2024-0372
• Resources and environmental engineering • Previous Articles Next Articles
FENG Peng(
), XU Donghai(
), HE Bing, LIU Huanteng, YANG Lijie, WANG Pan, LIU Qingshan
Received:2024-03-07
Revised:2024-05-13
Online:2025-04-15
Published:2025-03-25
Contact:
XU Donghai
冯鹏(
), 徐东海(
), 何冰, 刘欢腾, 杨立杰, 王攀, 刘青山
通讯作者:
徐东海
作者简介:冯鹏(1994—),男,博士研究生,研究方向为亚/超临界水中无机盐的溶解和沉积特性及机理。E-mail:4120103172@stu.xjtu.edu.cn。
基金资助:CLC Number:
FENG Peng, XU Donghai, HE Bing, LIU Huanteng, YANG Lijie, WANG Pan, LIU Qingshan. Dissolution characteristics and mechanisms of typical sulphates Na2SO4 and K2SO4 in sub-/supercritical water[J]. Chemical Industry and Engineering Progress, 2025, 44(3): 1706-1715.
冯鹏, 徐东海, 何冰, 刘欢腾, 杨立杰, 王攀, 刘青山. 亚/超临界水中典型硫酸盐Na2SO4和K2SO4的溶解特性及机理[J]. 化工进展, 2025, 44(3): 1706-1715.
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URL: https://hgjz.cip.com.cn/EN/10.16085/j.issn.1000-6613.2024-0372
| 序号 | 配置溶液浓度/g·L-1 | 温度/K | 压力/MPa | 水密度/kg·m-3 | 流出物电导率/mS·cm-1 | 溶解度/mg·L-1 |
|---|---|---|---|---|---|---|
| N1 | 30 | 643.15±0.2 | 25±0.1 | 540.46 | 11.65000 | 5269.712 |
| N2 | 30 | 653.15±0.2 | 25±0.1 | 450.82 | 4.38000 | 1429.056 |
| N3 | 10 | 663.15±0.2 | 25±0.1 | 215.18 | 0.53900 | 64.375 |
| N4 | 10 | 673.15±0.2 | 25±0.1 | 166.54 | 0.11450 | 9.971 |
| N5 | 10 | 698.15±0.2 | 25±0.1 | 126.81 | 0.03760 | 2.214 |
| N6 | 10 | 723.15±0.2 | 25±0.1 | 108.98 | 0.02900 | 1.510 |
| N7 | 30 | 643.15±0.2 | 23±0.1 | 513.97 | 9.46000 | 4236.833 |
| N8 | 10 | 653.15±0.2 | 23±0.1 | 208.68 | 1.95800 | 265.920 |
| N9 | 10 | 663.15±0.2 | 23±0.1 | 153.75 | 0.18300 | 15.527 |
| N10 | 10 | 673.15±0.2 | 23±0.1 | 133.73 | 0.09480 | 6.502 |
| N11 | 10 | 698.15±0.2 | 23±0.1 | 109.14 | 0.03180 | 1.528 |
| N12 | 10 | 723.15±0.2 | 23±0.1 | 95.96 | 0.02070 | 0.767 |
| N13 | 10 | 643.15±0.2 | 21±0.1 | 195.73 | 6.10000 | 906.141 |
| N14 | 10 | 653.15±0.2 | 21±0.1 | 138.57 | 0.11190 | 7.990 |
| N15 | 10 | 663.15±0.2 | 21±0.1 | 120.96 | 0.05190 | 2.901 |
| N16 | 10 | 673.15±0.2 | 21±0.1 | 110.18 | 0.03210 | 1.557 |
| N17 | 10 | 698.15±0.2 | 21±0.1 | 93.97 | 0.02027 | 0.735 |
| N18 | 10 | 723.15±0.2 | 21±0.1 | 84.13 | 0.01815 | 0.590 |
| K1 | 80 | 643.15±0.2 | 25±0.1 | 540.46 | 57.60000 | 35705.299 |
| K2 | 30 | 653.15±0.2 | 25±0.1 | 450.82 | 14.86000 | 5691.387 |
| K3 | 10 | 663.15±0.2 | 25±0.1 | 215.18 | 0.54200 | 70.711 |
| K4 | 10 | 673.15±0.2 | 25±0.1 | 166.54 | 0.16240 | 14.980 |
| K5 | 10 | 698.15±0.2 | 25±0.1 | 126.81 | 0.05840 | 3.772 |
| K6 | 10 | 723.15±0.2 | 25±0.1 | 108.98 | 0.02840 | 1.450 |
| K7 | 80 | 643.15±0.2 | 23±0.1 | 513.97 | 44.50000 | 25841.584 |
| K8 | 30 | 653.15±0.2 | 23±0.1 | 208.68 | 3.47000 | 509.421 |
| K9 | 10 | 663.15±0.2 | 23±0.1 | 153.75 | 0.35600 | 33.431 |
| K10 | 10 | 673.15±0.2 | 23±0.1 | 133.73 | 0.14830 | 10.692 |
| K11 | 10 | 698.15±0.2 | 23±0.1 | 109.14 | 0.05380 | 4.285 |
| K12 | 10 | 723.15±0.2 | 23±0.1 | 95.96 | 0.02730 | 1.283 |
| K13 | 30 | 643.15±0.2 | 21±0.1 | 195.73 | 18.23000 | 3335.655 |
| K14 | 10 | 653.15±0.2 | 21±0.1 | 138.57 | 0.14370 | 11.039 |
| K15 | 10 | 663.15±0.2 | 21±0.1 | 120.96 | 0.07310 | 5.896 |
| K16 | 10 | 673.15±0.2 | 21±0.1 | 110.18 | 0.04120 | 2.428 |
| K17 | 10 | 698.15±0.2 | 21±0.1 | 93.97 | 0.02330 | 1.231 |
| K18 | 10 | 723.15±0.2 | 21±0.1 | 84.13 | 0.00583 | 0.986 |
| 序号 | 配置溶液浓度/g·L-1 | 温度/K | 压力/MPa | 水密度/kg·m-3 | 流出物电导率/mS·cm-1 | 溶解度/mg·L-1 |
|---|---|---|---|---|---|---|
| N1 | 30 | 643.15±0.2 | 25±0.1 | 540.46 | 11.65000 | 5269.712 |
| N2 | 30 | 653.15±0.2 | 25±0.1 | 450.82 | 4.38000 | 1429.056 |
| N3 | 10 | 663.15±0.2 | 25±0.1 | 215.18 | 0.53900 | 64.375 |
| N4 | 10 | 673.15±0.2 | 25±0.1 | 166.54 | 0.11450 | 9.971 |
| N5 | 10 | 698.15±0.2 | 25±0.1 | 126.81 | 0.03760 | 2.214 |
| N6 | 10 | 723.15±0.2 | 25±0.1 | 108.98 | 0.02900 | 1.510 |
| N7 | 30 | 643.15±0.2 | 23±0.1 | 513.97 | 9.46000 | 4236.833 |
| N8 | 10 | 653.15±0.2 | 23±0.1 | 208.68 | 1.95800 | 265.920 |
| N9 | 10 | 663.15±0.2 | 23±0.1 | 153.75 | 0.18300 | 15.527 |
| N10 | 10 | 673.15±0.2 | 23±0.1 | 133.73 | 0.09480 | 6.502 |
| N11 | 10 | 698.15±0.2 | 23±0.1 | 109.14 | 0.03180 | 1.528 |
| N12 | 10 | 723.15±0.2 | 23±0.1 | 95.96 | 0.02070 | 0.767 |
| N13 | 10 | 643.15±0.2 | 21±0.1 | 195.73 | 6.10000 | 906.141 |
| N14 | 10 | 653.15±0.2 | 21±0.1 | 138.57 | 0.11190 | 7.990 |
| N15 | 10 | 663.15±0.2 | 21±0.1 | 120.96 | 0.05190 | 2.901 |
| N16 | 10 | 673.15±0.2 | 21±0.1 | 110.18 | 0.03210 | 1.557 |
| N17 | 10 | 698.15±0.2 | 21±0.1 | 93.97 | 0.02027 | 0.735 |
| N18 | 10 | 723.15±0.2 | 21±0.1 | 84.13 | 0.01815 | 0.590 |
| K1 | 80 | 643.15±0.2 | 25±0.1 | 540.46 | 57.60000 | 35705.299 |
| K2 | 30 | 653.15±0.2 | 25±0.1 | 450.82 | 14.86000 | 5691.387 |
| K3 | 10 | 663.15±0.2 | 25±0.1 | 215.18 | 0.54200 | 70.711 |
| K4 | 10 | 673.15±0.2 | 25±0.1 | 166.54 | 0.16240 | 14.980 |
| K5 | 10 | 698.15±0.2 | 25±0.1 | 126.81 | 0.05840 | 3.772 |
| K6 | 10 | 723.15±0.2 | 25±0.1 | 108.98 | 0.02840 | 1.450 |
| K7 | 80 | 643.15±0.2 | 23±0.1 | 513.97 | 44.50000 | 25841.584 |
| K8 | 30 | 653.15±0.2 | 23±0.1 | 208.68 | 3.47000 | 509.421 |
| K9 | 10 | 663.15±0.2 | 23±0.1 | 153.75 | 0.35600 | 33.431 |
| K10 | 10 | 673.15±0.2 | 23±0.1 | 133.73 | 0.14830 | 10.692 |
| K11 | 10 | 698.15±0.2 | 23±0.1 | 109.14 | 0.05380 | 4.285 |
| K12 | 10 | 723.15±0.2 | 23±0.1 | 95.96 | 0.02730 | 1.283 |
| K13 | 30 | 643.15±0.2 | 21±0.1 | 195.73 | 18.23000 | 3335.655 |
| K14 | 10 | 653.15±0.2 | 21±0.1 | 138.57 | 0.14370 | 11.039 |
| K15 | 10 | 663.15±0.2 | 21±0.1 | 120.96 | 0.07310 | 5.896 |
| K16 | 10 | 673.15±0.2 | 21±0.1 | 110.18 | 0.04120 | 2.428 |
| K17 | 10 | 698.15±0.2 | 21±0.1 | 93.97 | 0.02330 | 1.231 |
| K18 | 10 | 723.15±0.2 | 21±0.1 | 84.13 | 0.00583 | 0.986 |
| 1 | FENG Peng, YANG Wanpeng, XU Donghai, et al. Characteristics, mechanisms and measurement methods of dissolution and deposition of inorganic salts in sub-/ supercritical water[J]. Water Research, 2022, 225: 119167. |
| 2 | XU Tiantian, WANG Shuzhong, LI Yanhui, et al. Review of the destruction of organic radioactive wastes by supercritical water oxidation[J]. Science of The Total Environment, 2021, 799: 149396. |
| 3 | CHEN Jingwei, MENG Tian, LENG Erwei, et al. Review on metal dissolution characteristics and harmful metals recovery from electronic wastes by supercritical water[J]. Journal of Hazardous Materials, 2022, 424: 127693. |
| 4 | KHAN M S, ROGAK S N. Solubility of Na2SO4, Na2CO3 and their mixture in supercritical water[J]. The Journal of Supercritical Fluids, 2004, 30(3): 359-373. |
| 5 | REIMER J, VOGEL F. Influence of anions and cations on the phase behavior of ternary salt solutions studied by high pressure differential scanning calorimetry[J]. The Journal of Supercritical Fluids, 2016, 109: 141-147. |
| 6 | ARMELLINI Fred J, TESTER Jefferson W, HONG Glenn T. Precipitation of sodium chloride and sodium sulfate in water from sub- to supercritical conditions: 150 to 550℃, 100 to 300bar[J]. The Journal of Supercritical Fluids, 1994, 7(3): 147-158. |
| 7 | ROGAK Steven N, TESHIMA Paul. Deposition of sodium sulfate in a heated flow of supercritical water[J]. AIChE Journal, 1999, 45(2): 240-247. |
| 8 | 向波涛, 王涛, 陈跖, 等. 超临界水中硫酸钠溶解度研究[J]. 化学工程, 2001, 29(1): 72-74, 6. |
| XIANG Botao, WANG Tao, CHEN Zhi, et al. The solubility of sodium sulfate in supercritical water[J]. Chemical Engineering (China), 2001, 29(1): 72-74. | |
| 9 | VOISIN T, ERRIGUIBLE A, PHILIPPOT G, et al. Investigation of the precipitation of Na2SO4 in supercritical water[J]. Chemical Engineering Science, 2017, 174: 268-276. |
| 10 | SHVEDOV Dmitri, TREMAINE Peter R. The solubility of sodium sulfate and the reduction of aqueous sulfate by magnetite under near-critical conditions[J]. Journal of Solution Chemistry, 2000, 29(10): 889-904. |
| 11 | HODES Marc, GRIFFITH Peter, SMITH Kenneth A, et al. Salt solubility and deposition in high temperature and pressure aqueous solutions[J]. AIChE Journal, 2004, 50(9): 2038-2049. |
| 12 | REIMER Joachim, VOGEL Frédéric. High pressure differential scanning calorimetry of the hydrothermal salt solutions K2SO4-Na2SO4-H2O and K2HPO4-H2O[J]. RSC Advances, 2013, 3(46): 24503-24508. |
| 13 | DING Xin, ZHANG Tian, ZHANG Shuai, et al. Experimental determination and modelling of the solubilities of sodium sulfate and potassium sulfate in sub- and supercritical water[J]. Fluid Phase Equilibria, 2019, 483: 31-51. |
| 14 | LI Xujun, SUN Jingli, WEI Xueying, et al. Molecular dynamics study with COMPASS II forcefield on nucleation and growth mechanism of sodium chloride in supercritical water[J]. The Journal of Supercritical Fluids, 2023, 202: 106053. |
| 15 | VALYASHKO V M. Phase equilibria of water-salt systems at high temperatures and pressures[M]// Aqueous systems at elevated temperatures and pressures. Amsterdam: Elsevier, 2004: 597-641. |
| 16 | LIU Bo, DING Xin, JIANG Zhao, et al. Research on the solubilities of sodium chloride and sodium sulfate under hydrothermal conditions[J]. Journal of Solution Chemistry, 2020, 49(9): 1186-1207. |
| 17 | ARMELLINI Fred J. Phase equilibria and precipitation phenomena of sodium chloride and sodium sulfate in sub- and supercritical water[D]. Cambridge, United States: Massachusetts Institute of Technology, 1993. |
| 18 | DIPIPPO Matthew M, SAKO Kentaro, TESTER Jefferson W. Ternary phase equilibria for the sodium chloride-sodium sulfate-water system at 200 and 250bar up to 400℃[J]. Fluid Phase Equilibria, 1999, 157(2): 229-255. |
| 19 | VOISIN T, ERRIGUIBLE A, AYMONIER C. Influence of Multiphasic systems on salt(s) solubility in supercritical water: The case of NaCl and NaCl-Na2SO4 [J]. The Journal of Supercritical Fluids, 2019, 152: 104567. |
| 20 | 李以圭, 陆九芳. 电解质溶液理论[M]. 北京: 清华大学出版社, 2005. |
| LI Yigui, LU Jiufang. Electrolyte solution theory[M]. Beijing: Tsinghua University Press, 2005. | |
| 21 | RAVICH M I, BOROVAYA F E. Phase equilibria in the sodium sulphate-water system at high temperatures and pressures[J]. Russian Journal of Inorganic Chemistry, 1964, 9: 520-532. |
| 22 | DIPIPPO M M. Phase behavior of inorganic salts in sub- and supercritical water[D]. Cambridge, United States: Massachusetts Institute of Technology, 1998. |
| 23 | ARMELLINI Fred J, TESTER Jefferson W. Solubility of sodium chloride and sulfate in sub- and supercritical water vapor from 450-550℃ and 100—250bar[J]. Fluid Phase Equilibria, 1993, 84: 123-142. |
| 24 | ZHU Qiao, LI Zhe, SONG Yafei, et al. Effects of superheated surface on the deposition behavior of Na2SO4 in supercritical water[J]. Processes, 2023, 11(6): 1779. |
| 25 | SONG Yafei, LI Zhe, ZHU Qiao, et al. Precipitation behavior of salts in supercritical water: Experiments and molecular dynamics simulations[J]. Processes, 2022, 10(2): 423. |
| 26 | RINCÓN J, CAMARILLO R, MARTÍN A. Solubility of aluminum sulfate in near-critical and supercritical water[J]. Journal of Chemical & Engineering Data, 2012, 57(7): 2084-2094. |
| 27 | ZHANG Yishu, WANG Shuzhong, GAO Ziliang, et al. Hydrothermal molten salt: A hydrothermal fluid in SCWO treatment of hypersaline wastewater[J]. Chemical Engineering Journal, 2021, 421: 129589. |
| 28 | LEUSBROCK Ingo, METZ Sybrand J, REXWINKEL Glenn, et al. Quantitative approaches for the description of solubilities of inorganic compounds in near-critical and supercritical water[J]. The Journal of Supercritical Fluids, 2008, 47(2): 117-127. |
| 29 | HIGASHI Hidenori, IWAI Yoshio, MATSUMOTO Kota, et al. Measurement and correlation for solubilities of alkali metal chlorides in water vapor at high temperature and pressure[J]. Fluid Phase Equilibria, 2005, 228: 547-551. |
| 30 | GALOBARDES Javier F, VAN HARE David R, ROGERS Lockhart B. Solubility of sodium chloride in dry steam[J]. Journal of Chemical & Engineering Data, 1981, 26(4): 363-366. |
| 31 | LEUSBROCK Ingo, METZ Sybrand J, REXWINKEL Glenn, et al. Solubility of 1:1 alkali nitrates and chlorides in near-critical and supercritical water[J]. Journal of Chemical & Engineering Data, 2009, 54(12): 3215-3223. |
| 32 | PITZER Kenneth S, BISCHOFF James L, ROSENBAUER Robert J. Critical behavior of dilute NaCl in H2O[J]. Chemical Physics Letters, 1987, 134(1): 60-63. |
| 33 | LEUSBROCK Ingo, METZ Sybrand J, REXWINKEL Glenn, et al. The solubility of magnesium chloride and calcium chloride in near-critical and supercritical water[J]. The Journal of Supercritical Fluids, 2010, 53(1/2/3): 17-24. |
| 34 | SHIMOYAMA Yusuke, HIGASHI Hidenori, TSUZAKI Seiya, et al. Effect of cation species on solubilities of metal chlorides in water vapor at high temperatures and pressures[J]. The Journal of Supercritical Fluids, 2009, 50(1): 1-5. |
| 35 | LI Xujun, QI Xingang, LU Libo, et al. Experimental and molecular dynamics simulation study on solubility characteristics of chloride and sulfate salts in supercritical water[J]. The Journal of Supercritical Fluids, 2024, 205: 106150. |
| 36 | VOISIN Thomas, ERRIGUIBLE Arnaud, BALLENGHIEN David, et al. Solubility of inorganic salts in sub- and supercritical hydrothermal environment: Application to SCWO processes[J]. The Journal of Supercritical Fluids, 2017, 120: 18-31. |
| 37 | YANG Wanpeng, XU Donghai, DIAO Yunfei, et al. Molecular dynamics simulations on K2SO4 nucleation in supercritical water[J]. Journal of Molecular Liquids, 2022, 367: 120565. |
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