Chlorine Gas Generation in Mixed-Acid Vanadium Redox

PDF Publication Title:

Chlorine Gas Generation in Mixed-Acid Vanadium Redox ( chlorine-gas-generation-mixed-acid-vanadium-redox )

Previous Page View | Next Page View | Return to Search List

Text from PDF Page: 029

13. Flatt, C.; Sullivan, L. The U.S. made a breakthrough battery discovery - then gave the technology to China. https://www.npr.org/2022/08/03/1114964240/new-battery-technology- china-vanadium (accessed 08/03/2022). 14. Pourbaix, M., Atlas of Electrochemical Equilibria in Aqueous Solutions. National Association of Corrosion Engineers: Houston, Texas, 1974; p 648. 15. Lourenssen, K.; Williams, J.; Ahmadpour, F.; Clemmer, R.; Tasnim, S., Vanadium redox flow batteries: A comprehensive review. J. Energy Storage 2019, 25. 16. Bard, A. J.; Faulkner, L. R., Electrochemical Methods: Fundamentals and Applications. 2nd ed.; John Wiley and Sons, Inc: 2001. 17. Nielsen, H. P.; Frandesen, F. J.; Dam-Johansen, K.; Baxter, L. L., The implications of chlorine-associated corrosion on the operation of biomass-fired boilers. Prog. Energy Combust. Sci. 2000, 26, 283-298. 18. Pelucchi, M.; Frassoldati, A.; Faravelli, T.; Ruscic, B.; Glarborg, P., High-temperature chemistry of HCl and Cl2. Combust. Flame 2015, 162 (6), 2693-2704. 19. Lifshitz, A.; Schechner, P., The Mechanism of the H2 + Cl2 Reaction: Ignition Behind Reflected Shocks. Int. J. Chem. Kinet. 1975, 7, 125-142. 20. Lee, J. H.; Knystautas, R.; Guiao, C.; Bekesy, A.; Sabbagh, S., On the Instability of H2- Cl2 Gaseous Detonations. Combust. Flame 1972, 18, 321-325. 21. Cohen, N.; Jacobs, T. A.; Emanuel, G.; Wilkins, R. L., Chemical Kinetics of Hydrogen Halide Lasors. 1. The H2-Cl2 System. Int. J. Chem. Kinet. 1969, 551-569. 22. Zhou, X. L.; Lin, L. Y.; Lv, Y. H.; Zhang, X. Y.; Wu, Q. X., A Sn-Fe flow battery with excellent rate and cycle performance. J. Power Sources 2018, 404, 89-95. 23. Zhang, Y. L.; Henkensmeier, D.; Kim, S.; Hempelmann, R.; Chen, R. Y., Enhanced reaction kinetics of an aqueous Zn-Fe hybrid flow battery by optimizing the supporting electrolytes. J. Energy Storage 2019, 25. 24. Alotto, P.; Guarnieri, M.; Moro, F., Redox flow batteries for the storage of renewable energy: A review. Renew. Sust. Energ. Rev. 2014, 29, 325-335. 25. Zeng, Y. K.; Zhao, T. S.; An, L.; Zhou, X. L.; Wei, L., A comparative study of all- vanadium and iron-chromium redox flow batteries for large-scale energy storage. J. Power Sources 2015, 300, 438-443. 26. Brady, J.; Russell, J.; Holum, J., Chemistry: The Study of Matter and Its Changes. 3rd ed.; John Wiley and Sons Inc.: New York, 2000. 29

PDF Image | Chlorine Gas Generation in Mixed-Acid Vanadium Redox

chlorine-gas-generation-mixed-acid-vanadium-redox-029

PDF Search Title:

Chlorine Gas Generation in Mixed-Acid Vanadium Redox

Original File Name Searched:

gas-evolution-vanadium-redox.pdf

DIY PDF Search: Google It | Yahoo | Bing

Salgenx Redox Flow Battery Technology: Power up your energy storage game with Salgenx Salt Water Battery. With its advanced technology, the flow battery provides reliable, scalable, and sustainable energy storage for utility-scale projects. Upgrade to a Salgenx flow battery today and take control of your energy future.

CONTACT TEL: 608-238-6001 Email: greg@salgenx.com (Standard Web Page)