Effect of the Chemical Composition of Coals on Surface Wettability and Filtration Properties

Capa

Citar

Texto integral

Acesso aberto Acesso aberto
Acesso é fechado Acesso está concedido
Acesso é fechado Somente assinantes

Resumo

The method of liquid filtration through a layer of coal powder was used for a comprehensive characterization of surface wettability in conjunction with the determination of the contact angle. The effect of the degree of chemical maturity (metamorphism) of coal on the filtration characteristics of a layer with fractured porous properties was evaluated. Different activity of coal surfaces to water wettability upon a change from the native state to the surface-oxidized one was established. It was shown that the wetting and filtration properties of the coal surfaces increased from native to surface-oxidized coals and decreased as the degree of metamorphism increased from low to medium metamorphosed coals.

Sobre autores

Yu. Patrakov

Coal Institute, Federal Research Center of Coal and Coal Chemistry, Siberian Branch, Russian Academy of Sciences

Email: yupat52@gmail.com
Kemerovo, 650065 Russia

S. Semenova

Coal Institute, Federal Research Center of Coal and Coal Chemistry, Siberian Branch, Russian Academy of Sciences

Email: semlight@mail.ru
Kemerovo, 650065 Russia

A. Yarkova

Coal Institute, Federal Research Center of Coal and Coal Chemistry, Siberian Branch, Russian Academy of Sciences

Autor responsável pela correspondência
Email: nas.yarkova1998@yandex.ru
Kemerovo, 650065 Russia

Bibliografia

  1. Liao X., Wang B., Wang L., Zhu J., Chu P., Zhu Z., Zheng S. // ACS Omega. 2021. V. 6. P. 21925. https://doi.org/10.1021/acsomega.1c02205
  2. Xu Ch., Wang D., Wang H., Xin H., Ma L., Zhu X., Zhang Y., Wang Q. // Powder Technol. 2017. V. 318. P. 33. https://doi.org/10.1016/j.powtec.2017.05.02
  3. Elkin I., Tan Yu. // E3S Web of Conferences. 2019. V. 105 P. 1042. https://doi.org/10.1051/e3sconf/201910501042
  4. Ping A., Xia W., Peng Ya., Xie G. // Int. J. Mining Sci. Technol. 2021. V. 31. P. 233. https://doi.org/10.1016/j.ijmst.2020.12.026
  5. Jena M.S., Biswal S.K., Rudramuniyappa M.V. // Int. J. Miner. Process. 2008. V. 87. P. 42. https://doi.org/10.1016./J.MINPRO.2008.01.004
  6. Laskowski J.S. Coal flotation and fine coal utilization. Amsterdam: Elsevier, 2001. 368 p.
  7. Torosyan V.F., Torosyan E.S., Borovikov I.F., Yakutova V.A. // IOP Conf. Series: Materials Science and Engineering. 2016. V. 127. P. 12022. https://doi.org/10.1088/1757-899X/127/1/012022
  8. Drebenstedt C., Argimbaev K.R. // Int. J. Eng. 2021. V. 34. P. 292. https://doi.org/10.5829/ije.2021.34.01a.32
  9. Саранчук В.И. Окисление и самовозгорание угля. Киев: Наук. думка, 1982. 166 с.
  10. Van Krevelen Dirk W. Coal: typology, physics, chemistry, constitution. Amsterdam: Elsevier, 1993. 979 p.
  11. Патраков Ю.Ф., Семенова С.А., Майоров А.Е. // Заводская лаборатория. Диагностика материалов. 2022. Т. 88. № 4. С. 42. https://doi.org/10.26896/1028-6861-2022-88-4-42-47
  12. Архипов В.А., Палеев Д.Ю., Патраков Ю.Ф., Усанина А.С. // ФТПРПИ. 2011. № 5. С. 22. (Arkhipov V.A., Paleev D.Y., Patrakov Y.F., Usanina A.S. Journal of Mining Science, 2011, vol. 47, no. 5, p. 561.)
  13. Зимон А.Д. Адгезия жидкости и смачивание. М.: Химия, 1974. 416 с.
  14. Патраков Ю.Ф., Семенова С.А., Майоров А.Е., Созинов С.А. // Кокс и химия. 2022. № 1. С. 2. [Patrakov Y.F., Semenova S.A., Majorov A.E., Sozinov S.A. Coke and Chemistry, 2022, vol. 65, no 1, p. 1. https://doi.org/10.3103/S1068364X2201004510.3103/S1068364X22010045]https://doi.org/10.52351/00232815_2022_01_2
  15. Федяева О.Н., Патраков Ю.Ф. // ХТТ. 2004. № 5. С. 24. [Fedyaeva O.N., Patrakov Y.F. Solid Fuel Chemistry, 2004, vol. 38, no. 5, p. 21.]

Arquivos suplementares

Arquivos suplementares
Ação
1. JATS XML
2.

Baixar (42KB)
3.

Baixar (501KB)
4.

Baixar (92KB)
5.

Baixar (63KB)

Declaração de direitos autorais © Ю.Ф. Патраков, С.А. Семенова, А.В. Яркова, 2023