Recovery of Alkaline Earth Metals from Desalination Brine for Carbon Capture and Sodium Removal

被引:16
|
作者
Lee, Cheng-Han [1 ]
Chen, Pin-Han [2 ]
Chen, Wei-Sheng [1 ]
机构
[1] Natl Cheng Kung Univ, Dept Resources Engn, 1 Daxue Rd, Tainan 70101, Taiwan
[2] Natl Cheng Kung Univ, Tainan Hydraul Lab, 500,Sec 3,Anming Rd, Tainan 709015, Taiwan
关键词
recovery; desalination brine; amine carrier; modified Solvay process; carbon capture; sodium removal; magnesium; calcium; CO2; GREENHOUSE-GAS; WASTE-WATER TREATMENT; FLY-ASH; REJECT BRINE; SOLID-WASTE; AMMONIA; DIOXIDE; NESQUEHONITE; ADSORBENTS; CALCIUM;
D O I
10.3390/w13233463
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Because carbon dioxide adsorbs the radiation from the Sun and the Earth's surface, global warming has become a severe problem in this century. Global warming causes many environmental problems such as heatwave, desertification, and erratic rainfall. Above all, erratic rainfall makes people have insufficient freshwater. To solve this problem, desalination technology has been developed in many countries. Although desalination technology can provide freshwater, it produces brine as well (producing 1 L of freshwater would result in 1 L of brine). The brine will decrease the dissolved oxygen in the sea and affect the organism's habitat. In this study, magnesium and calcium from desalination brine were recovered in the form of magnesium hydroxide and calcium hydroxide by adjusting the pH value for carbon capture and sodium removal. Magnesium hydroxide would turn into magnesium carbonate through contacting CO2 in saturated amine carriers. Calcium hydroxide was added to the brine and reacted with CO2 (modified Solvay process). Sodium in brine would then be precipitated in the form of sodium bicarbonate. After removing sodium, brine can be released back into the ocean, or other valuable metals can be extracted from brine without the side effect of sodium. The results revealed that 288 K of 3-Amino-1-propanol could capture 15 L (26.9 g) of CO2 and that 25 g/L of Ca(OH)(2) at 288 K was the optimal parameter to remove 7000 ppm sodium and adsorb 16 L (28.7 g) of CO2 in the modified Solvay process. In a nutshell, this research aims to simultaneously treat the issue of CO2 emission and desalination brine by combining the amines carrier method and the modified Solvay process.
引用
收藏
页数:12
相关论文
共 50 条
  • [41] Determination of optimal conditions for magnesium recovery process from seawater desalination brine using paper sludge ash, sulfuric acid, and ethanol
    Na, Hye-Rim
    Kim, Myoung-Jin
    DESALINATION AND WATER TREATMENT, 2019, 157 : 324 - 331
  • [42] Environmental aspects of metals removal from waters and gold recovery
    Salminen, Justin
    Blomberg, Peter
    Maekinen, Jarno
    Raesaenen, Lea
    AICHE JOURNAL, 2015, 61 (09) : 2739 - 2748
  • [43] The recovery of rare-earth metals from fly ash using alkali pre-treatment with sodium hydroxide
    Zelazny, Sylwester
    Swinder, Henryk
    Jarosinski, Andrzej
    Bialecka, Barbara
    GOSPODARKA SUROWCAMI MINERALNYMI-MINERAL RESOURCES MANAGEMENT, 2020, 36 (03): : 127 - 143
  • [44] Two-stage sulfate removal from reject brine in inland desalination with zero-liquid discharge
    Almasri, Dema
    Mahmoud, Khaled A.
    Abdel-Wahab, Ahmed
    DESALINATION, 2015, 362 : 52 - 58
  • [45] Exploring Avoided Environmental Impacts as Well as Energy and Resource Recovery from Microbial Desalination Cell Treatment of Brine
    Nastro, Rosa Anna
    Leccisi, Enrica
    Toscanesi, Maria
    Liu, Gengyuan
    Trifuoggi, Marco
    Ulgiati, Sergio
    ENERGIES, 2021, 14 (15)
  • [46] Recovery of baking soda from reverse osmosis reject of desalination plant using carbon dioxide gas
    Aishwaryalakshmi, A.
    Palanivelu, K.
    INDIAN JOURNAL OF CHEMICAL TECHNOLOGY, 2022, 29 (02) : 174 - 180
  • [47] HYDROMETALLURGICAL RECOVERY OF RARE EARTH METALS FROM SPENT FCC CATALYSTS
    Wenzel, M.
    Schnaars, K.
    Kelly, N.
    Goetzke, L.
    Robles, S. M.
    Kretschmer, K.
    Phuc Nguyen Le
    Dang Thanh Tung
    Nguyen Huu Luong
    Nguyen Anh Duc
    Dang Van Sy
    Gloe, K.
    Weigand, J. J.
    RARE METAL TECHNOLOGY 2016, 2016, : 37 - 45
  • [48] Role of alkaline earth metals adsorption on capped single-walled carbon nanotubes based on first-principles calculations
    Liu, Weihui
    Xu, Shunfu
    Yuan, Guang
    Xu, Yan
    PHYSICA B-CONDENSED MATTER, 2013, 408 : 46 - 50
  • [49] Adsorption potential for the concentration and recovery of rare earth metals from NdFeB magnet scrap in the hydrometallurgical route: A review in a circular economy approach
    Briao, Giani de Vargas
    da Silva, Meuris Gurgel
    Vieira, Melissa Gurgel Adeodato
    JOURNAL OF CLEANER PRODUCTION, 2022, 380
  • [50] Activated carbon from sewage sludge for removal of sodium diclofenac and nimesulide from aqueous solutions
    dos Reis, Glaydson Simoes
    Bin Mahbub, Mohammad Khalid
    Wilhelm, Michaela
    Lima, Eder Claudio
    Sampaio, Carlos Hoffmann
    Saucier, Caroline
    Pereira Dias, Silvio Luis
    KOREAN JOURNAL OF CHEMICAL ENGINEERING, 2016, 33 (11) : 3149 - 3161