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Counterflow ionite regeneration technologies for water treatment: Part 2

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Abstract

Areas and particular applications for which the optimum technology can be selected unequivocally are determined. Requirements allowing the maximum efficiency to be achieved with the use of counterflow regeneration of ionites are formulated. Principles to be followed in constructing modern technological cricuits for softening and desalination of water are outlined.

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References

  1. C. Barraque, J. Burriat, and J. M. Rovel, FR Patent No. 7834555 (Degremont, 1978).

  2. S. L. Gromov and A. A. Panteleev, “Counterflow lonite Regeneration Technologies for Water Treatment: Part 1,” Teploenergetika, No. 8, 34–38 (2006) [Therm. Eng., No. 8 (2006)].

  3. S. Evans, UK Patent No. 1471162 (1977).

  4. S. Evans, UK Patent No. 1501308 (1977).

  5. S. Evans, J. H. Hootsen, and A-J. P. Van Eck, UK Patent No. 1539161 (1978).

  6. The UPCORE System: The Dow Chemical Company (CH 171-280-E-100, 2000).

  7. S. L. Gromov, “Technological Advantages of the Countercurrent Regeneration Process for Ion-Exchange Resins UPCORE: Backwash Rinsing,” Teploenergetika, No. 3, 52–55 (1998) [Therm. Eng., No. 3 (1998)].

  8. S. L. Gromov, “The Main Ways of Improving the Technology for Water Treatment in the CIS Countries,” Khim. Neft. Mashinostr., No. 12, 47–48 (1998).

  9. I. I. Borovkova, I. S. Balaev, S. L. Gromov, et al., “The Introduction of the Counterflow Technology UPCORE Developed by Dow Chemical (the United States) in the Water Treatment Plant for Demineralization of Water at the TETs-12 Cogeneration Station of Mosenergo,” Elektr. Stn., No. 5, 29–31 (2000).

  10. A. A. Grishin, I. A. Malakhov, and B. M. Larin, “Environmental Problems of Ion-Exchange Technologies at Thermal Power Stations,” in Proceedings of the International Conference on the Ecology of Power Engineering (Mosk. Energ. Inst., Moscow, 2000).

    Google Scholar 

  11. E. G. Amosova, P. I. Dolgopolov, N. V. Potapova, et al., “Experience with Using the Technology of Counterflow Na-Cation Treatment at Boiler Houses,” Santekhnika, No. 2, 28–31 (2003).

  12. V. A. Kishnevskii, Modern Methods for Water Treatment in Power Engineering (OGPU, Odessa, 1999) [in Russian].

    Google Scholar 

  13. A. S. Kopylov, V. M. Lavygin, and V. F. Ochkov, Water Treatment in Power Engineering (Mosk. Energ. Inst., Moscow, 2003) [in Russian].

    Google Scholar 

  14. B. E. Ryabchikov, Modern Methods of Water Treatment for Industrial and Domestic Use (DeLi Print, Moscow, 2004) [in Russian].

    Google Scholar 

  15. S. L. Gromov, S. V. Petrov, and R. Sievers, “A Method for Regenerating Ion-Exchange Resins,” RF Patent No. 2144848, Izobret., No. 3 (2000).

  16. A. Medete, “Ways to Handle Accumulation of Suspended Solids in Packed Bed Systems,” in Proceedings of the Conference Titled Ultra Pure Water Asia 2000, Singapore, October, 2000).

  17. R. M. Malyshev, A. N. Zolotnikov, V. E. Bomshtein, et al., “A Method for Counterflow Regeneration of Ionites,” RF Patent No. 2149685, Izobret., No. 15 (2000).

  18. R. M. Malyshev, A. N. Zolotnikov, V. E. Bomshtein, et al., “A Method for Counterflow Regeneration of Ionites,” EAPV Patent No. 002503, Izobret. (2000).

  19. I. S. Balaev, “A Method for Water Purification by Ion Exchange with Counterflow Regeneration of Ionite and a Device for Implementing It,” RF Patent No. 2121873, Izobret., No. 32 (1998).

  20. I. A. Malakhov, E. G. Amosova, P. I. Dolgopolov, et al., “A Method for Ion-Exchange Treatment of Water,” RF Patent No. 2139253, Izobret., No. 28 (1999).

  21. I. S. Balaev and N. S. Demina, “A Method for Ion-Exchange Purification of Water Containing Organic Substances, with Counterflow Regeneration of Ion-Exchange Materials,” RF Patent No. 2205692, Izobret., No. 16 (2003).

  22. E. G. Amosova, P. I. Dolgopolov, R. Yu. Rudakov, et al., “An Ion-Exchange Filter,” RF Patent No. 2205691, Izobret., No. 16 (2003).

  23. I. S. Balaev and N. S. Demina, “A Method for Purifying Water from Dissolved and Nondissolved Impurities,” RF Patent No. 2206520, Izobret., No. 17 (2003).

  24. A. A. Panteleev, S. A. Uglov, S. L. Gromov, and E. B. Fedoseeva, “A Method for Regenerating Ionites,” RF Patent No. 2241542, Izobret., No. 34 (2003).

  25. S. L. Gromov, “The Technological Advantages of Ion-Exchange Resins Having a Monodispersed Granulometric Composition,” Teploenergetika, No. 2, 35–37 (1998) [Therm. Eng., No. 2 (1998)].

  26. A. A. Panteleev, S. L. Gromov, A. R. Sidorov, and S. A. Uglov, “A Method of Water Treatment,” Pat. Appl. No. 2005125382, Russia (10 August 2005).

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Original Russian Text © S.L. Gromov, A.A. Panteleev, 2006, published in Teploenergetika.

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Gromov, S.L., Panteleev, A.A. Counterflow ionite regeneration technologies for water treatment: Part 2. Therm. Eng. 53, 913–919 (2006). https://doi.org/10.1134/S0040601506110127

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  • DOI: https://doi.org/10.1134/S0040601506110127

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