Север и рынок. 2026, № 3.

ekonomicheskogo poryadka [The North and the Market: Forming the Economic Order], 2023, no. 26 (4), pp. 157-174. https://doi.org/10.37614/2220-802XA2023.82.011. (In Russ.). 16. Eremin D. P., Volosatova A. A., Pristegina K. A. Strategicheskoe znachenie promyshlennogo razvitiya predpriyatiy v Arktike [Strategic importance of industrial development of enterprises in the Arctic]. Ekonomika ustoychivogo razvitiya [Economics of Sustainable Development], 2024, no. 2 (58), pp. 94-96. (In Russ.). 17. Samburskii G. A., Bazhenov V. I., Frog D. B. Printsipy otsenki stoimosti zhiznennogo tsikla tekhnologii vodopodgotovki pri realizatsii FP "Chistaya voda" [Principles of life cycle cost assessment for water treatment technologies in the implementation of the federal project "Clean Water"]. Zhilishchnoe stroitel'stvo [Housing Construction], 2021, no. 7, pp. 42-47. https://doi.org/10.31659/0044-4472-2021-7-42-47. (In Russ.). 18. Bazhenov V. I., Berezin S. E., Samburskii G. A. Metodika rascheta stoimosti zhiznennogo tsikla dlya oborudovaniya, system i sooruzhenii vodosnabzheniya i vodootvedeniya [Methodology for calculating life cycle cost for equipment, systems and facilities of water supply and sanitation]. Nailuchshie dostupnye tekhnologii vodosnabzheniya i vodootvedeniya [Best Available Techniques of Water Supply and Sanitation], 2017, no. 4, pp. 34-41. (In Russ.). 19. Bazhenov V. I., Pupyrev E. I., Samburskii G. A., Berezin S. E. Razrabotka metodiki rascheta stoimosti zhiznennogo tsikla oborudovaniya, system i sooruzhenii dlya vodosnabzheniya i vodootvedeniya [Development of a methodology for calculating the life cycle cost of equipment, systems and facilities for water supply and sanitation]. Vodosnabzhenie isanitarnaya tekhnika [Water Supply and Sanitary Engineering], 2018, no. 2, pp. 10-19. (In Russ.). 20. Lui J., Lee D. S., Sloan W. T., You S. Life cycle assessment of drinking water and wastewater treatment works in Mainland Scotland. Science of The Total Environment, 2025, vol. 958, art. 177989. https://doi.org/10.1016/j.scitotenv.2024.177989. 21. Laouane H., El Joumri L., Halhaly A., Arid Y., Labjar N., El Hajjaji S. Life-cycle assessment of wastewater treatment: Enhancing sustainability through process optimization. Sustainability, 2026, vol. 18 (2), Article 605. https://doi.org/10.3390/su18020605. 22. Viotti P., Tatti F., Bongirolami S., Romano R., Mancini G., Serini F., Azizi M., Croce L. Life cycle assessment methodology applied to a wastewater treatment plant. Water, 2024, vol. 16, art. 1177. https://doi.org/10.3390/w16081177. 23. Rashid S. S., Harun S. N., Hanafiah M. M., Razman K. K., Liu Y.-Q., Tholibon D. A. Life cycle assessment and its application in wastewater treatment: A brief overview. Processes, 2023, vol. 11, art. 208. https://doi.org/10.3390/pr11010208. 24. Muhamad Ng S. N., Idrus S., Ahsan A., Tuan Mohd Marzuki T. N., Mahat S. B. Treatment of wastewater from a food and beverage industry using conventional wastewater treatment integrated with membrane bioreactor system: A pilot-scale case study. Membranes, 2021, vol. 11, art. 456. https://doi.org/10.3390/membranes11060456. 25. Abdel-Fatah M. A. Integrated management of industrial wastewater in the food sector. Sustainability, 2023, vol. 15, art. 16193. https://doi.org/10.3390/su152316193. 26. Nikolic I., Mijic K., Mitrovic I. Characteristics of food industry wastewaters and their potential application in biotechnological production. Processes, 2025, vol. 13, Article 2401. https://doi.org/10.3390/pr13082401. 27. Gruber E. A full case study on treating bakery wastewater. Ecologix Environmental Systems, 2025, vol. 3. Available at: https://ecologixsystems.com/case-studies/bakery-wastewater-treatment-full-study (accessed 10.05.2026). 28. Castellet L., Molinos-Senante M. Efficiency assessment of wastewater treatment plants: A data envelopment analysis approach integrating technical, economic, and environmental issues. Journal o f Environmental Management, 2016, vol. 167, pp. 160-166. https://doi.org/10.1016/jjenvman.2015.11.037. 29. Abramova A. A., Lykhno T. M., Nepogodin A. M., Plastinina E. V. Lokal'nye ochistnye sooruzheniya stochnykh vod predpriyatii khlebopekarnoi promyshlennosti: ekonomicheskaya tselesoobraznost' i tekhnicheskie parametry [Local wastewater treatment facilities for bakery industry enterprises: Economic feasibility and technical parameters]. Vestnik Permskogo natsional'nogo issledovatel'skogo politekhnicheskogo universiteta. Prikladnaya ekologiya. Urbanistika [Bulletin of Perm National Research Polytechnic University. Applied Ecology. Urban Studies], 2021, no. 2 (42), pp. 66-77. https://doi.org/10.15593/2409-5125/2021.03.06. (In Russ.). 30. Odeibat A., Mohammad R., Abu-Zreig M. Integrated environmental management and GPS-X modelling for current and future sustainable wastewater treatment: A case study from the Middle East. Heliyon, 2024, vol. 10 (1), art. e34164. https://doi.org/10.1016/j.heliyon.2024.e34164. 31. Abbasi N., Ahmadi M., Naseri M. Quality and cost analysis of a wastewater treatment plant using GPS-X and CapdetWorks simulation programs. Journal of Environmental Management, 2021, vol. 284, art. 111993. https://doi.org/10.1016/j.jenvman.2021.111993. 32. Semenova T., Sergienko O. Application of computer models and artificial intelligence technologies to improve the quality of wastewater treatment. II International Scientific and Practical Conference "Energy, Ecology and Technology in Agriculture". E3S Web of Conferences. PA COURTABOEUF, 2024, art. 2003. https://doi.org/10.1051/e3sconf/202448002003. 33. Semenova T. S., Didikov A. E., Sergienko O. I. Simulation modeling as a tool for predicting the quality of wastewater treatment in food production. E3S Web of Conferences. VII International Conference on Actual Problems of the Energy Complex and Environmental Protection (APEC-VII-2024). France, 2024, Article 02019. https://doi.org/10.1051/e3sconf/202452402019.

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