Study of the effect of high-energy discrete processing on the extraction kinetics and properties of wool grease

Authors

DOI:

https://doi.org/10.15587/1729-4061.2016.65478

Keywords:

wool grease, lanolin, wool fiber, extraction rate, high-energy discrete processing

Abstract

Wool grease is a valuable raw material for the food, perfume and cosmetic and pharmaceutical industries. The extraction method is selected for wool grease extraction, which will allow extracting the maximum amount of it, but for a long time. The use of high-energy discrete processing as a method of preliminary processing of wool fibers to accelerate the wool grease extraction is proposed.

The effect of the proposed intensification method on the wool grease extraction kinetics is investigated. It is found that the high-speed discrete processing increases the wool grease extraction rate, as evidenced by an increase in the reaction rate constant.

The changes in the basic physical and chemical properties of the resulting wool grease under the influence of high-energy discrete processing are examined. It is determined that high-energy discrete processing enhances the wool grease quality.

The mechanism of the intensifying effect of preliminary high-energy discrete processing of wool fibers on the wool grease extraction process is proposed.

Author Biographies

Olga Semeshko, Kherson National Technical University 24 Berislav highway, Kherson, Ukraine, 73008

PhD, scientist

Research sector

Alexandra Kunik, Kherson National Technical University 24 Berislav highway, Kherson, Ukraine, 73008

PhD, junior scientist

Research sector

Tatiana Asaulyuk, Kherson National Technical University 24 Berislav highway, Kherson, Ukraine, 73008

Junior scientist

Research sector

Yulia Saribyekova, Kherson National Technical University 24 Berislav highway, Kherson, Ukraine, 73008

Doctor of technical sciences, Сhief scientist

Research sector

Sergey Myasnykov, Kherson National Technical University 24 Berislav highway, Kherson, Ukraine, 73008

PhD

Department of chemical technology, expertise and food safety

References

  1. Evylevych, A. Z., Evylevych, M. A. (1988). Utylyzatsyia osadkov stochnykh vod. Leningrad: Stroiyzdat, 248.
  2. Sengupta, A., Behera, J. (2014). Comprehensive view on chemistry, manufacturing & applications of lanolin extracted from wool pretreatment. American Journal of Engineering Research, 3 (7), 33–43.
  3. Seader, J. D., Henley, E. J., Roper, D. K. (2010). Separation process principles. Chemical and Biochemical Operations. John Wiley & Sons, Inc, 849.
  4. Visser, A. E., Swatloski, R. P., Reichert, W. M., Davis Jr., J. H., Rogers, R. D., Mayton, R. et. al. (2001). Task-specific ionic liquids for the extraction of metal ions from aqueous solutions. Chemical Communications, 1, 135–136. doi: 10.1039/b008041l
  5. Wei, G.-T., Yang, Z., Chen, C.-J. (2003). Room temperature ionic liquid as a novel medium for liquid/liquid extraction of metal ions. Analytica Chimica Acta, 488 (2), 183–192. doi: 10.1016/s0003-2670(03)00660-3
  6. Kharisov, B. I., Dias, H. V. R., Kharissova, O. V. (2014). Nanotechnology-based remediation of petroleum impurities from water. Journal of Petroleum Science and Engineering, 122, 705–718. doi: 10.1016/j.petrol.2014.09.013
  7. Eow, J. S., Ghadiri, M., Sharif, A. O. (2007). Electro-hydrodynamic separation of aqueous drops from flowing viscous oil. Journal of Petroleum Science and Engineering, 55 (1-2), 146–155. doi: 10.1016/j.petrol.2006.04.005
  8. Singh, A., Ahmad, S., Ahmad, A. (2015). Green extraction methods and environmental applications of carotenoids-a review. RSC Adv., 5 (77), 62358–62393. doi: 10.1039/c5ra10243j
  9. Hrabov, L. N., Posunko, D. V. (2014). Yntensyfykatsyia teplomasoobmennykh protsessov poluchenyia halenovykh preparatov. Naukovi pratsi Odeskoi natsionalnoi akademii kharchovykh tekhnolohii, 45 (3), 66–69.
  10. Khanturhaev, A. H., Shyretorova, V. H., Radnaeva, L. D., Khanturhaeva, H. Y., Averyna, E. S., Bodoev, N. V. (2003). Yssledovanye sostava lypydov semian sosny sybyrskoi. Khymyia v ynteresakh ustoichyvoho razvytyia, 11 (4), 667–671.
  11. Korchynskyi, A. A., Matiushkyn, M. V. (2003). Ekstraktsyia syria rastytelnoho proyskhozhdenyia. Promyshlennaia teplotekhnyka, 25 (4), 137–139.
  12. Vasylev, A. D. (2004). Yntensyfykatsyia protsessa ekstraktsyy byolohychesky-aktyvnykh veshchestv yz rastytelnoho syria y sozdanye termodyffuzyonnoho oborudovanyia. Promyshlennaia teplotekhnyka, 26 (6), 15–19.
  13. Huseinova, B. M., Ysmaylov, E. Sh., Daudova, T. Y. (2011). Yntesyfykatsyia protsessa ekstraktsyy nutryentov yz plodov y yahod deistvyem mykrovoln. Yzvestyia vysshykh uchebnykh zavedenyi. Pyshchevaia tekhnolohyia, 4, 50–52.
  14. López-Mesas, M., Carrillo, F., Crespi, M. (2003). Microwave enhanced extraction of wool wax from solid wool scour wastes. Analytica Chimica Acta, 494 (1-2), 255–260. doi: 10.1016/s0003-2670(03)00884-5
  15. Zhuravskaia-Skalova, D. V., Kvasenkov, O. Y. (2009). Aktyvnуe metodу yntensyfykatsyy еkstrahyrovanyia byolohycheskoho sуria. Khranenye y pererabotka selkhozsуria, 12, 23–24.
  16. Hracheva, N. V., Holovanchykov, A. B. (2011). Yntensyfykatsyia protsessa ekstraktsyy berezovoho hryba chaha v elektrycheskom pole postoiannoho toka. Yzvestyia Volhohradskoho hosudarstvennoho tekhnycheskoho unyversyteta, 4 (1), 82–86.
  17. López-Mesas, M., Christoe, J., Carrillo, F., Crespi, M. (2005). Supercritical fluid extraction with cosolvents of wool wax from wool scour wastes. The Journal of Supercritical Fluids, 35 (3), 235–239. doi: 10.1016/j.supflu.2005.01.008
  18. López-Mesas, M., Carrillo, F., Gutiérrez, M. C., Crespi, M. (2007). Alternative methods for the wool wax extraction from wool scouring wastes. Grasas y Aceites, 58 (4), 402–407. doi: 10.3989/gya.2007.v58.i4.453
  19. Kozub, V. T., Koshkarova, A. H. (2014). Yntensyfykatsyia protsessov еkstrahyrovanyia ympulsnуm еlektrycheskym polem vуsokoi napriazhennosty. Vestnyk Tambovskoho hosudarstvennoho tekhnycheskoho unyversyteta, 3 (20), 496–501.
  20. Ulakhovych, N. A. (1999). Еkstraktsyia kak metod razdelenyia y kontsentryrovanyia. Sorosovskyi obrazovatelnii zhurnal, 6, 39–46.
  21. Semeshko, O., Saribekova, J., Asaulyuk, T., Myasnikov, S. (2014). Тhe influence of electrical discharge nonlinear bulk cavitation on the structural and chemical changes in water during the wool fiber bleaching. Chemistry & chemical technology (Сh&ChT), 8 (4), 410–415.
  22. Sarybekova, Yu. H., Semeshko, O. Ya., Ermolaeva, A. V. (2013). Ynnovatsyonnaia tekhnolohyia obrabotky sherstianoho volokna. Yzvestyia vуsshykh uchebnуkh zavedenyi. Tekhnolohyia tekstylnoi promуshlennosty, 3, 79–83.
  23. Myroshnychenko, S. Y. (2005). Dostovernost metodyk opredelenyia kolychestva zhyra v nemуtoi shersty. Ovtsу, kozу, sherstianoe delo, 2, 30–33.
  24. Domı́nguez, C., Jover, E., Bayona, J. M., Erra, P. (2003). Effect of the carbon dioxide modifier on the lipid composition of wool wax extracted from raw wool. Analytica Chimica Acta, 477 (2), 233–242. doi: 10.1016/s0003-2670(02)01418-6
  25. Krasovskyi, Y. V., Vail, E. Y., Bezuhlуi, V. D. (1983). Fyzycheskaia y kolloydnaia khymyia. Kyiv: Vyshcha shkola, 352.
  26. Panchenkov, H. M., Lebed, V. P. (1985). Khymycheskaia kynetyka y katalyz. Moscow: Khymyia, 590.
  27. Pysmenko, V. T., Kaliukova, E. N. (2002). Kynetyka khymycheskykh reaktsyi. Opredelenye konstanti skorosty y enerhyy aktyvatsyy reaktsyi. Ulianovsk: UlHTU, 20.
  28. Horbunova, L. S., Rohachev, N. V., Vasyleva, L. H., Koldaev, V. M. (1981). Pervychnaia obrabotka shersty. Moscow: Lehkaia y pyshchevaia promishlennost, 352.
  29. Semeshko, O. Ya., Saribiekova, Yu. H., Yermolaieva, A. V., Kulihin, M. L. (2014). Elektrorozriadna obrobka v tekhnolohiiakh promyvky vovny ta oderzhannia vovnianoho zhyru. Visnyk Kyivskoho natsionalnoho universytetu tekhnolohii ta dyzainu, 5 (79), 215–218.
  30. Paronjan, V. K. (2004). Tehnologija zhirov i zhirozamenitelej. Moscow: Ljogkaja i pishhevaja prot'myshlennost', 352.

Published

2016-04-27

How to Cite

Semeshko, O., Kunik, A., Asaulyuk, T., Saribyekova, Y., & Myasnykov, S. (2016). Study of the effect of high-energy discrete processing on the extraction kinetics and properties of wool grease. Eastern-European Journal of Enterprise Technologies, 2(6(80), 40–45. https://doi.org/10.15587/1729-4061.2016.65478

Issue

Section

Technology organic and inorganic substances