A study of wastewater treatment conditions for the poultry meat processing enterprise

Authors

DOI:

https://doi.org/10.15587/1729-4061.2018.131122

Keywords:

wastewater, coagulant, flocculant, reagent dose, physicochemical treatment, suspended solids

Abstract

For the local treatment of wastewater of food industry enterprises, physicochemical treatment methods are widely used, which, with properly selected reagents and their doses, allow achieving high treatment efficiency. At the same time, doses of reagents and conditions for their use can differ sharply between enterprises, therefore the regularities of the treatment process must be studied at a particular drain.

In the paper, the regularities of the process of wastewater coagulation by coagulants and flocculants of different chemical composition are examined on the example of the wastewater of the turkey meat processing enterprise. The regularities of the process of wastewater coagulation in a wide range of pH values of the medium are studied. It is experimentally determined that the optimum pH of the medium for the use of polyaluminum chloride is in the range 5.9÷6.4, iron chloride 6.2÷6.7, iron sulfate 5.1÷5.7. The regularities of the effect of the coagulant dose on the efficiency of suspended solids removal from wastewater and color reduction are established. Based on the data obtained, the most optimum doses of coagulants are determined. The rational dose of polyaluminum chloride was 140 mg/l, iron sulfate – 110 mg/l and iron chloride – 80 mg/l. The regularities of the process of wastewater flocculation with the use of flocculants of different charges and molecular weight are investigated. The most effective types of flocculants are determined, and optimum reagent doses are established. The rational conditions for physicochemical wastewater treatment using coagulants and flocculants are determined. The obtained data make it possible to optimize the operation of local treatment facilities of the poultry processing enterprise: to increase performance, as well as to reduce operating costs. The selected binary combinations of reagents allow achieving the efficiency of suspended solids removal of 99.4 % and color reduction – 82.4 %.

Author Biographies

Konstantyn Makhlay, National Technical University «Kharkiv Polytechnic Institute» Kyrpychova str., 2, Kharkiv, Ukraine, 61002

Postgraduate student

Department of chemical technique and industrial ecology

Musii Tseitlin, National Technical University «Kharkiv Polytechnic Institute» Kyrpychova str., 2, Kharkiv, Ukraine, 61002

Doctor of Technical Sciences, Professor

Department of chemical technique and industrial ecology

Valentina Raiko, National Technical University «Kharkiv Polytechnic Institute» Kyrpychova str., 2, Kharkiv, Ukraine, 61002

PhD

Department of chemical technique and industrial ecology

References

  1. Promyslovist Ukrainy u 2011–2015 rokakh (2016). Kyiv: B.v., 381.
  2. Valta, K., Kosanovic, T., Malamis, D., Moustakas, K., Loizidou, M. Water consumption and wastewater generation and treatment in the Food and Beverage Industry. Available at: http://uest.gr/win4life/images/papers/valta_et_al.pdf
  3. Shtepa, V. M. (2014). Obgruntuvannia alhorytmu eksperymentalno-analitychnykh rezhymiv elektrotekhnichnoi ochystky stichnykh vod ahropromyslovykh ob’iektiv z metoiu pobudovy enerhoefektyvnykh system upravlinnia. Enerhetyka i avtomatyka, 2, 61–71.
  4. Mekonnen, M. M., Hoekstra, A. Y. (2012). A Global Assessment of the Water Footprint of Farm Animal Products. Ecosystems, 15 (3), 401–415. doi: 10.1007/s10021-011-9517-8
  5. Gerbens-Leenes, P. W., Mekonnen, M. M., Hoekstra, A. Y. (2013). The water footprint of poultry, pork and beef: A comparative study in different countries and production systems. Water Resources and Industry, 1-2, 25–36. doi: 10.1016/j.wri.2013.03.001
  6. Menshutin, Yu. A., Potanina, V. A., Kerin, A. S., Bogateev, I. A., Fomicheva, E. V., Sahno, A. P., Kerin, K. A. (2011). Modernizaciya tekhnologii ochistki zhirosoderzhashchih stochnyh vod i obrazuyushchegosya osadka predpriyatiya po pererabotke myasa ptic. Materialy 11-go Mezhdunarodnogo kongressa «Voda: ekologiya i tekhnologiya» EKVATEK-2011. Moscow: ZAO «Firma SIBIKO Interneshnl». 1 el. opt. disk (CD- ROM).
  7. Nacheva, P. M., Pantoja, M. R., Serrano, E. A. L. (2011). Treatment of slaughterhouse wastewater in upflow anaerobic sludge blanket reactor. Water Science & Technology, 63 (5), 878. doi: 10.2166/wst.2011.265
  8. Bustillo-Lecompte, C. F., Mehrvar, M., Quiñones-Bolaños, E. (2013). Combined anaerobic-aerobic and UV/H2O2processes for the treatment of synthetic slaughterhouse wastewater. Journal of Environmental Science and Health, Part A, 48 (9), 1122–1135. doi: 10.1080/10934529.2013.774662
  9. Sugito, Binawati, D. K., Al Kholif, M. (2016). The effect of BOD remove influent to remove pollutant load in waste waterof chicken slaughterhose. ARPN Journal of Engineering and Applied Sciences, 11 (5), 3519–3524.
  10. Dabhi, M. (2013). Physicochemical treatment of dairy plant wastewater using ferrous sulfate and ferric chloride coagulants. International Journal of Basic and Applied Chemical Sciences, 3 (4), 9–14.
  11. Khouni, I., Marrot, B., Moulin, P., Ben Amar, R. (2011). Decolourization of the reconstituted textile effluent by different process treatments: Enzymatic catalysis, coagulation/flocculation and nanofiltration processes. Desalination, 268 (1-3), 27–37. doi: 10.1016/j.desal.2010.09.046
  12. Garzanov, A. L., Lisicyn, A. B., Gorbunova, N. A., Sitnikova, O. I., Giro, T. M. (2016). Effektivnye tekhnologii ochistki stochnyh vod pri uboe skota i pticy. Myasnaya industriya, 11, 28–30.
  13. Dalvand, A., Ehrampoush, M., Ghaneian, M. et. al. (2017). Application of chemical coagulation process for direct dye removal from textile wastewater. J. Environ Health Sustain Dev, 2 (3), 333–339.
  14. Boughou, N., Majdy, I., Cherkaoui, E., Khamar, M., Nounah, A. (2018). Effect of pH and time on the treatment by coagulation from slaughterhouse of the city of Rabat. MATEC Web of Conferences, 149, 02091. doi: 10.1051/matecconf/201714902091
  15. Loloei, M., Nekonam, G., Alidadi, H., Kor, Y. (2014). Study of the coagulation process in wastewater treatment of dairy industries. International Journal of Environmental Health Engineering, 3 (1), 12. doi: 10.4103/2277-9183.132684
  16. Manh, B., Thi, G. D. (2017). Coagulation in treatment of swine slaughterhouse wastewater. DE Gruyter, 1, 15–21.
  17. Spiridonova, L. G. (2013). Otrabotka rezhimov ochistki stochnyh vod pticefabriki po pererabotke myasa indeek. Vestnik SGASU. Gradostroitel'stvo i arhitektura, 4, 70–74.
  18. Mahtab, A., Tariq, M., Shafiq, T., Nasir, A. (2009). Coagulation/adsorption combined treatment of slaughterhouse wastewater. Desalination and Water Treatment, 12 (1-3), 270–275. doi: 10.5004/dwt.2009.952

Downloads

Published

2018-05-15

How to Cite

Makhlay, K., Tseitlin, M., & Raiko, V. (2018). A study of wastewater treatment conditions for the poultry meat processing enterprise. Eastern-European Journal of Enterprise Technologies, 3(10 (93), 15–20. https://doi.org/10.15587/1729-4061.2018.131122