Regularities of the process of sulfation of the mixtures of organic substances

Authors

DOI:

https://doi.org/10.15587/1729-4061.2016.79359

Keywords:

sulfatizing agent, sulfation, reactor, reaction mass, density, viscosity, surface active substance

Abstract

The main advantages and disadvantages of sulfatizing agents in the technology of obtaining surface active substances are presented. Characteristics of the apparatus­technological schemes of sulfating process of organic raw materials are given. The results are represented of research into the process of sulfation of the mixtures of organic substances by low­concentrated gaseous sulphur trioxide in a volumetric reactor. Materials and methods of the research process are described. We experimentally found the ratio of higher alcohols of fraction С8–С10, higher alcohols of fraction С12–С14 and monoethanolamides of fatty acids of coconut oil (FA MEA) in the original mixture of organic raw materials. We demonstrate dependency of surface tension of aqueous solutions of SAS on the content of FA MEA. Dependencies of surface active substances quality on the main technological parameters are defined: molar ratio of the reagents, concentration of sulfur trioxide and temperature of the process of sulfation. It is demonstrated: at molar ratio of reagents 1.08:1, the maximum degree of sulfation is achieved with a slight increase in pastes chromaticity; the concentration of SO3 in the gas air flow must be maintained within 3.5–4.5 % by volume, the recommended temperature of the process is 318 K with a gradual decrease to 303 K. The data are presented on the change in magnitudes of density and viscosity of the reaction masses in the course of this process. Density of the reaction masses depends linearly on the degree of sulfation and decreases with increasing temperature. Dynamic viscosity of the reaction masses has an extremum at the degree of sulfation 70 % and a minimum at the degree of sulfation 85 %.

Author Biographies

Alyona Dzevochko, National Technical University “Kharkiv Polytechnic Institute” Bahaliya str., 21, Kharkiv, Ukraine, 61000

Assistant

Department automatization of chemistry-technological systems and ecological monitoring

Mykhaylo Podustov, National Technical University “Kharkiv Polytechnic Institute” Bahaliya str., 21, Kharkiv, Ukraine, 61000

Doctor of Technical Science, Professor, Head of Department

Department Automatization of chemistry-technological systems and ecological monitoring

References

  1. Al-Horani, R. A., Desai, U. R. (2010). Chemical sulfation of small molecules—advances and challenges. Tetrahedron, 66 (16), 2907–2918. doi: 10.1016/j.tet.2010.02.015
  2. Torres Ortega, J. A. (2012). Sulfonation/Sulfation Processing Technology for Anionic Surfactant Manufacture. Advances in Chemical Engineering, 11, 269–294. doi: 10.5772/32077
  3. Akanksha, Pant, K. K., Srivastava, V. K. (2007). Modeling of sulphonation of tridecylbenzene in a falling film reactor. Mathematical and Computer Modelling, 46 (9-10), 1332–1344. doi: 10.1016/j.mcm.2007.01.007
  4. Mendozaa, N. A. G., Dobrosz-Gómeza, I., García, M. Á. G. (2014). Modeling and simulation of an industrial falling film reactor using the method of lines with adaptive mesh. Study case: Industrial sulfonation of tridecylbenzene, IO (1), 41–46.
  5. Torres Ortega, J. A., Morales Medina, G., Suárez Palacios, O. Y., Sánchez Castellanos, F. J. (2009). Mathematical Model of a Falling Film Reactor for Methyl Ester Sulfonation. Chemical Product and Process Modeling, 4 (5). doi: 10.2202/1934-2659.1393
  6. Rathod, P., Thakore, S. B. (2015). Sulfonation of by SO3. IJARIIE. 1 (2), 61–64.
  7. Lokhat, D., Domah, A. K., Padayachee, K., Baboolal, A., Ramjugernath, D. (2016). Gas–liquid mass transfer in a falling film microreactor: Effect of reactor orientation on liquid-side mass transfer coefficient. Chemical Engineering Science, 155, 38–44. doi: 10.1016/j.ces.2016.08.002
  8. Jadidi, N., Adib, B., Malihi, F. B. (2012). Synergism and Performance Optimization in Liquid Detergents Containing Binary Mixtures of Anionic–Nonionic, and Anionic–Cationic Surfactants. Journal of Surfactants and Detergents, 16 (1), 115–121. doi: 10.1007/s11743-012-1371-y
  9. Pletnev, M. Yu. (Ed.) (2002). Poverkhnostno – aktivnye veshchestva I Kompozitsii. Moscow: OOO “Firma Klavel”, 768.
  10. Podustov, M. A. (1999). Sulfatirovanie smesei neftekhimicheskikh produktov kak odno iz napravleniy protsessa polucheniya vyisokokachestvennyih PAV. Vestnik Kharkovskogo Gosudarstvennogo Politehnicheskogo Universiteta, 28, 16–18.
  11. Podustov, M. A., Litvinenko, I. I., Pravdin, V. G., Zemenkov, D. I. (1977). Issledovanie fiziko-khimicheskikh parametrov produktov sulfatirovaniia vysshikh zhirnykh spirtov. Neftepererabotka I neftekhimiia, 9, 23–25.
  12. Schmitt, T. M. (2001). Analysis of surfactants. 2nd edition. BASF Corporation Wyandotte. 637.

Downloads

Published

2016-10-30

How to Cite

Dzevochko, A., & Podustov, M. (2016). Regularities of the process of sulfation of the mixtures of organic substances. Eastern-European Journal of Enterprise Technologies, 5(6 (83), 37–43. https://doi.org/10.15587/1729-4061.2016.79359

Issue

Section

Technology organic and inorganic substances