Investigation of polytherm solubility of system components sodium hypochlorite–potassium chloride–water
https://doi.org/10.29235/1561-8331-2025-61-4-286-293
Abstract
The results of studying the solubility in the system of sodium hypochlorite–potassium chloride–water in the temperature ranges from –22.8 to 60.0 °C using the visual-polythermal method are presented. On the solubility diagram constructed from experimental data, the fields of ice crystallization, KCl ∙ H2O, KCl are delineated; NaClO ∙ 5H2O; NaClO ∙ 2.5H2O, as well as KClO3. These fields converge at five triple invariant points of coexistence of three different solid phases. For these figurative points, the compositions of the equilibrium solution and the corresponding crystallization temperatures are deter- mined. As a result of the study of the potassium chloride–sodium hypochlorite–water system, the formation of a new compound – potassium chlorate was established, which was identified by chemical and physicochemical analytical methods. The temperature and concentration limits of KClO3 release were determined. The compound KClO3 formed by the interaction of the initial components is less soluble in this system relative to its other components and the field of its crystallization occupies a significant part of the diagram. The results will serve as the theoretical basis for the creation of a new technology for the production of potassium chlorate using industrial wastes from chemical production.
About the Authors
F. E. UmirovUzbekistan
Umirov Farhod E. – Dr. Sc. (Engineering), Professor, Professor of the Department
127, Galaba Shokh Str., 210100, Navoi
O. B. Dormeshkin
Belarus
Dormeshkin Oleg B. − Dr. Sc. (Engineering), Professor, Professor of the Department
13a, Sverdlov Str., 220006, Minsk
G. R. Nomozova
Uzbekistan
Nomozova Gulmira R. – Ph. D. (Engineering), Asso- ciate Professor of the Department
127, Galaba Shokh Str., 210100, Navoi
S. Sh. Sharipov
Uzbekistan
Sharipov Sanat Sh. – Ph. D. (Engineering), Associate Pro- fessor of the Department
127, Galaba Shokh Str., 210100, Navoi
S. K. Kenjaeva
Uzbekistan
Kenjaeva Sitora K. – Master
127, Galaba Shokh Str., 210100, Navoi
References
1. Umirov F. E., Namazova G. R., Shodilulov G. M. Physicochemical properties and agrochemical efficacy of new defoliants based on sodium, magnesium and calcium chlorates containing surfactants. Universum: Khimiya I Biologiya = Universum: Chemistry and Byology, 2021, no. 1 (79), pp. 33–35 (in Russian).
2. Umirov F. E. Obtaining a defoliant based on chlorates and organic compounds. Bukhara, Durdona Publ., 2019. 139 р. (in Russian).
3. Teshaev Sh. Preparation of a defoliant based on chlorates and organic compounds. O’zbekiston qishlog xo’jaligi , 2006, no. 1, pp. 14–20 (in Uzbek).
4. Girenko D. V., Gyrenko A. A., Nikolenko N. V. Potentiometric Determination of Chlorate Impurities in Hypochlorite Solutions. International Journal of Analytical Chemistry, 2019, vol. 2. https://doi.org/10.1155/2019/2360420
5. Togasharov A. S., Shukurov Zh. S., Tukhtaev S. New defoliants based on chlorates and man-made waste of cotton ginning plants. Navruz, 2019. 156 p. (in Uzbek).
6. Raghavendra T., Rama Reddy Y. Efficacy of Defoliants on Yield and Fibre Quality of American Cotton in Semi–Arid Conditions. Indian Journal of Agricultural Research, 2020, vol. 54, pp. 404–407. https://doi.org/10.18805/IJARe.A-5288
7. Umirov F. E., Zakirov B. S., Nomozova G. R., Khudoiberdiev F. I. Investigation of the process of obtaining the defoliant sodium tricarbamidochlorate containing surfactants. Namangan Davlat Universiteti Ilmiy Axborotnomasi = Scientific Bulletin of Namangan State University, 2019, no. 3, pp. 46–49 (in Russian).
8. Shukurov Zh. S., Togasharov A. S., Askarova M. K., Tukhtaev S. Complex defoliants with physiologically active and insecticidal properties. Navruz, 2019. 136 p. (in Uzbek).
9. El-Sherbeni A. E.-H. E.-D., Khaleid M. S., AbdAllah S. A. E. A., Ali O. S. M. Effect of some insecticides alone and in combination with salicylic acid against aphid, Aphis gossypii, and whitefly Bemisia tabaci on the cotton field. Bulletin of the National Research Centre, 2019, vol. 43, no. 1, pp. 57. https://doi.org/10.1186/s42269-019-0103-0
10. Boyd C. E. Solubility and Chemical Equilibrium. Water quality. Springer, Cham, 2020, pp. 65–82. https://doi.org/10.1007/978-3-030-23335-8_4
11. Adilov Z. Kh., Ergashev D. A., Tozhiev R. R., Khamdamova Sh. Sh. Production of chlorate-containing defoliants with insecticidal properties. Fergana – Vinnitsa “European Scientific Platform”, 2021. 133 p. https://doi.org/10.36074/ad-erto-kha.monograph (in Russian).
12. Kossev K., Tsvetanova L., Dimowa L., Nikolova R., Shivachev B. Synhtesis and crustal structure of magnesium chloride dihidrate and chlorate hexahydrate. Bulgarian Chemical Communications, 2013, vol. 45, no. 4, pp. 543–548.
13. Khamdamova Sh. Sh. Study of the process of obtaining a liquid defoliant based on calcium chlorate, urea and ethylene producers. Universum: tehnicheskiye nayki = Universum: Technical Sciences, 2019, no. 10–2 (67). Available at: http://7universum.com/ru/tech/archive/item/7938 (Accessed 2 August 2024) (in Russian).
14. Yakimenko L. N., Pasmannik M. I. Handbook for the production of chlorine, caustic soda and basic chlorine products. Moscow, Khimiya Publ., 1976. 440 p. (in Russian)
15. Umirov F. E., Namazova G. R. Obtaining sodium chlorate on the basis of sodium hypochlorite from caustic soda workshop. Namangan Davlat Universiteti Ilmiy Axborotnomasi = Scientific Bulletin of Namangan State University, 2021, no. 5, pp. 88 (in Russian).
16. Umirov F. E., Namazova G. R., Majidov H. Solubility Diagram of the Sodium Hypochlorite–Sodium Chloride–Water System. Russian Jornal of Inorganic Chemistry, 2022, vol. 67, no. 4, pp. 514–517. https://doi.org/10.1134/S0036023622040209
17. Khamdamova Sh., Askarova M., Tukhtaev S. Development of technology for the production of calcium defoliant chlorate using industrial waste. International scientific review, 2017, no. 4 (35), pp. 14.
18. Nabiev M. N., Shammasov R., Tukhtaev S., Kucharov Kh., Musaev N. Yu., Alimova G. A. Method for producing calcium chlorate chloride defoliant. Copyright Certificate USSR no. 1143691. Publ. date 7 March 1985. Available at: https://rusneb.ru/catalog/000224_000128_0001143691_19850307_A1_SU (Accessed 2 August 2024) (in Russian).
19. Shukurov Zh. S., Khusanov E. S., Mukhitdinova M. Sh., Togasharov A. S. Component Solubilities in the Acetic Acid–Monoethanolamine–Water System. Russian Journal of Inorganic Chemistry, 2021, vol. 66, no. 6, pp. 902–908. https://doi.org/10.1134/s0036023621060176
20. Sidikov A. A., Tokhasharov A. S., Shukurov Zh. S., Tukhtaev S. The solubility of the NaClO3∙CO(NH2)2– N(C2H4OH)3∙HNO3–H2O system. International journal of advanced research in science, engineering and technology, 2020, vol. 7, no. 5, pp. 13869–13874.
21. Umirov F. E., Shodikulov Zh. M., Umirov U. F. Research of processes of obtaining chlorate-magnesium defoliant on the basis of serpentinite of the arvaten deposit. Put’ nauki = The Way of Science, 2020, no. 10 (80), pp. 19–23 (in Russian).
22. Nedoma I. Deciphering radiographs of powders. Moscow, Metallurgiya Publ., 1975. 424 p. (in Russian).
23. Anosov V. Ya., Ozerova M. I., Burmistrova N. P., Shchedrina A. P. A manual for practical exercises in physical and chemical analysis. Water-salt systems and some methods of studying equilibria and phase transformations. Kazan, Kazan University Publishing House, 1969. 90 p. (in Russian).
24. Perelman F. M. Image of chemical systems with any number of components. Moscow, Nauka Publ., 1965. 98 p. (in Russian).
25. Kocherov V. I., Saraeva S. Yu., Alyamovskaya I. S., Darienko N. E., Gerasimova E. L., Malysheva N. N. Chemical and physico-chemical methods of analysis. Yekaterinburg, Ural University Press, 2016. 104 p. (in Russian).
26. Kharitonov Y. Y. Physico-chemical methods of analysis. Moscow, Vysshaya shkola Publ., 2001. 252 p. (in Russian).
27. Nakamoto K. Infrared and Raman spectra of inorganic and coordination compounds. John Wiley & Sons, Inc., 1986. 484 p.
28. Sursyakova V. V., Rubailo A. I. Determination of Chlorate and Perchlorate Ions in Drinking Water Using Capillary Electrophoresis. Journal of Siberian Federal University. Chemistry, 2018, vol. 11, no. 3, pp. 361–363 (in Russian). https://doi.org/10.17516/1998-2836-0082


























