
PDF Publication Title:
Text from PDF Page: 064
Energies 2021, 14, 6805 64 of 72 70. Um, N.; Hirato, T. A study on lithium recovery from seawater: Separation of lithium from hydrochloric acid solutions containing CaCl2, MgCl2, MnCl2, NaCl, KCl and LiCl. In Zero-Carbon Energy Kyoto 2012; Yao, T., Ed.; Springer: Tokyo, Japan, 2013; pp. 149–152. 71. An, J.W.; Kang, D.J.; Tran, K.T.; Kim, M.J.; Lim, T.; Tran, T. Recovery of lithium from Uyuni salar brine. Hydrometallurgy 2012, 117, 64–70. [CrossRef] 72. Khuyen Thi, T.; Tri Van, L.; An, J.-W.; Kang, D.-J.; Kim, M.-J.; Tam, T. Recovery of magnesium from Uyuni salar brine as high purity magnesium oxalate. Hydrometallurgy 2013, 138, 93–99. 73. Clarke, G.M. Lithium-ion batteries raw material considerations. Chem. Eng. Prog. 2013, 109, 44–52. 74. Zhao, Z.; Si, X.; Liu, X.; He, L.; Liang, X. Li extraction from high Mg/Li ratio brine with LiFePO4/FePO4 as electrode materials. Hydrometallurgy 2013, 133, 75–83. [CrossRef] 75. Bourcier, W.; Bruton, C.; Roberts, S.; Viani, B.; Conley, S.; Martin, S. Co-Production of Silica from Geothermal Fluids. California Energy Commission, PIER Renewables Research Technologies Program; CEC-500-2009-077; Lawrence Livermore National Laboratory: Livermore, CA, USA, 2009. 76. Brown, K. Thermodynamics and kinetics of silica scaling. In Proceedings of the International Workshop on Mineral Scaling, Manila, Philippines, 25–27 May 2011. 77. von Hirtz, P. Chapter 16—Silica scale control in geothermal plants—historical perspective and current technology. In Geothermal Power Generation; DiPippo, R., Ed.; Woodhead Publishing: London, UK, 2016; pp. 443–476. 78. Sato, M.; Kasai, K.; Osato, K.; Yoshizuka, K.; Okochi, H.; Mitchelmore, A.; Ward, C.; Bent, B. Application Results of Silica Extraction Technology at Kakkonda Geothermal Area and Evaluation of Extending the Life of the Reinjection Well. In Proceedings of the World Geothermal Congress 2020+1 2021, Reykjavik, Iceland, 24–27 October 2021. 79. Lee, J.M.; Bauman, W.C. Recovery of Lithium from Brines. U.S. Patent 4,159,311, 26 June 1979. 80. Li, L.; Deshmane, V.G.; Paranthaman, M.P.; Bhave, R.; Moyer, B.A.; Harrison, S. Lithium Recovery from Aqueous Resources and Batteries: A Brief Review. Johns. Matthey Technol. Rev. 2018, 62, 161–176. [CrossRef] 81. Arroyo, F.; Morillo, J.; Usero, J.; Rosado, D.; El Bakouri, H. Lithium recovery from desalination brines using specific ion-exchange resins. Desalination 2019, 468, 114073. [CrossRef] 82. Dupont Water Solutions. AmberLiteTM IRN9687 Li/OH Ion Exchange Resin; Form No. 45-D01216-en, Rev. 2. DuPont de Nemours Inc.: Wilmington, DE, USA, 2019; pp. 1–4. Available online: https://www.dupont.com/products/amberliteirn9687lioh.html (accessed on 15 October 2021). 83. Dupont Water Solutions. Separation of Lithium from Liquid Media. Available online: https://www.dupont.com/water/periodi c-table/lithium.html (accessed on 15 October 2021). 84. Lee, J.M.; Bauman, W.C. Recovery of lithium from brines. U.S. Patent 4,116,858, 26 September 1978. 85. Lee, J.M.; Bauman, W.C. Recovery of lithium from brines. U.S. Patent 4,221,767, 9 September 1980. 86. Lee, J.M.; Bauman, W.C. Recovery of lithium from brines. U.S. Patent 4,347,327, 31 August 1982. 87. Burba, J.L. Regeneration of crystalline lithium aluminates. U.S. Patent 4,472,362, 18 September 1984. 88. Ventura, S.; Bhamidi, S.; Hornbostel, M.; Nagar, A.; Perea, E. Selective Recovery of Metals from Geothermal Brines; (DE-EE0006747); SRI International: Menlo Park, CA, USA, 2016. 89. Ventura, S.; Bhamidi, S.; Hornbostel, M. Selective Recovery of Lithium from Brines. In Proceedings of the 43rd Workshop on Geothermal Reservoir Engineering, Stanford, CA, USA, 12–14 February 2018; Stanford University: Stanford, CA, USA, 2018. 90. Materials Research LLC. Pilot Scale Recovery of Lithium from Geothermal Brines; California Energy Comission: Sacramento, CA, USA, 2020. 91. Ventura, S. A Hybrid Sorbent for Selective Recovery of Lithium from Geothermal Brines. In Proceedings of the Society for Mining, Metallurgy & Exploration Annual Conference, Virtual Event, 1–5 March 2021; Available online: https://www.smeannualconfere nce.com/2020smeannualconference/includes/themes/ACE21/assets/techsessionsflip2/mobile/index.html#p=38 (accessed on 3 March 2021). 92. Small Business Innovation Research (SBIR) Program. Materials Research LLC. 2019. Available online: https://www.sbir.gov/sbi rsearch/detail/1542817 (accessed on 11 February 2021). 93. Lu, J.; Qin, Y.Y.; Zhang, Q.; Wu, Y.L.; Cui, J.Y.; Li, C.X.; Wang, L.; Yan, Y.S. Multilayered ion-imprinted membranes with high selectivity towards Li+ based on the synergistic effect of 12-crown-4 and polyether sulfone. Appl. Surf. Sci. 2018, 427, 931–941. [CrossRef] 94. Zhang, W.; Mou, Y.X.; Zhao, S.; Xie, L.X.; Wang, Y.X.; Chen, J. Adsorption Materials for Lithium Ion from Brine Resources and Their Performances. Prog. Chem. 2017, 29, 231–240. 95. Saboe, P.O.; Prestangen, R.L.; Karp, E.M.; Pivovar, B. Hybrid Thermal—Chromatographic System for Simultaneous Mineral Purification and Desalination of Saline Waters. International Publication Number WO 2021/119208 A1. 17 June 2021. 96. Ooi, K.; Miyai, Y.; Katoh, S. Recovery of lithium from seawater by manganese oxide adsorbent. Sep. Sci. Technol. 1986, 21, 755–766. [CrossRef] 97. Miyai, Y.; Ooi, K.; Katoh, S. Recovery of lithium from seawater using a new type of ion-sieve adsorbent based on MgMn2O4. Sep. Sci. Technol. 1988, 23, 179–191. [CrossRef] 98. Zhu, G.-N.; Wang, Y.-G.; Xia, Y.-Y. Ti-based compounds as anode materials for Li-ion batteries. Energy Environ. Sci. Technol. 2012, 5, 6652–6667. [CrossRef]PDF Image | Recovery of Lithium from Geothermal Brines
PDF Search Title:
Recovery of Lithium from Geothermal BrinesOriginal File Name Searched:
energies-14-06805-v2.pdfDIY PDF Search: Google It | Yahoo | Bing
Product and Development Focus for Infinity Turbine
ORC Waste Heat Turbine and ORC System Build Plans: All turbine plans are $10,000 each. This allows you to build a system and then consider licensing for production after you have completed and tested a unit.Redox Flow Battery Technology: With the advent of the new USA tax credits for producing and selling batteries ($35/kW) we are focussing on a simple flow battery using shipping containers as the modular electrolyte storage units with tax credits up to $140,000 per system. Our main focus is on the salt battery. This battery can be used for both thermal and electrical storage applications. We call it the Cogeneration Battery or Cogen Battery. One project is converting salt (brine) based water conditioners to simultaneously produce power. In addition, there are many opportunities to extract Lithium from brine (salt lakes, groundwater, and producer water).Salt water or brine are huge sources for lithium. Most of the worlds lithium is acquired from a brine source. It's even in seawater in a low concentration. Brine is also a byproduct of huge powerplants, which can now use that as an electrolyte and a huge flow battery (which allows storage at the source).We welcome any business and equipment inquiries, as well as licensing our turbines for manufacturing.| CONTACT TEL: 608-238-6001 Email: greg@infinityturbine.com | RSS | AMP |