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The Use of Membrane Technologies of the CWTP to Obtain Quality Drinking Water

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The purpose of the study is a scientific and theoretical substantiation of the energy characteristics of ultra and nano filtration, which directly depend on the quality of the source water, to ensure reliable and uninterrupted operation of a combined water treatment plant (CWTP), to obtain high-quality drinking water in water supply systems intended for settlements and industrial facilities. The developed method of combined operation of a water treatment plant is based on membrane technology, the efficiency of which directly depends on the preliminary improvement of the quality of purified low-mineralized water using an energy-efficient membrane, post-treatment and subsequent disinfection. Indicators of the quality of treated water that meet regulatory requirements and indicators of improving the energy efficiency of the water treatment plant have been investigated and calculated on the basis of experimental data. The results of studies on low-mineralized water made it possible to obtain TDS (Total dissolved solids) with a total residual concentration of hardness and chlorides in the range of 0.77 mg/dm3 without any problems. The proposed combined water treatment plant method is a priority among fundamental and applied works in the field of water treatment, it is intended for the purification of natural waters under conditions of increased anthropogenic loads on natural water sources.
Rocznik
Strony
103--110
Opis fizyczny
Bibliogr. 20 poz., rys., tab.
Twórcy
  • Non-Profit JSC Almaty University of Power Engineering and Telecommunications named after Gumarbek Daukeev, Almaty, Kazakhstan
  • Non-Profit JSC Almaty University of Power Engineering and Telecommunications named after Gumarbek Daukeev, Almaty, Kazakhstan
  • Non-Profit JSC Almaty University of Power Engineering and Telecommunications named after Gumarbek Daukeev, Almaty, Kazakhstan
  • BSc in Economics and Finance – University of London International Programmes
  • Non-Profit JSC Almaty University of Power Engineering and Telecommunications named after Gumarbek Daukeev, Almaty, Kazakhstan
Bibliografia
  • 1. Krishnamoorthy S. Modera, M., Harrington C. (2017). Efficiency optimization of a variable-capacity/variable-blower-speed residential heat-pump system with ductwork. Energy and Buildings, 150, 294–306. DOI:10.1016/j.enbuild.2017.05.066
  • 2. Kang, Z., Zhou, X., Zhao, Y., Wang, R., Wang, X. (2017). Study on Optimization of Underground Water Source Heat Pump. Procedia Engineering, 205, 1691–1697. DOI: 10.1016/j.proeng.2017.10.353
  • 3. Junussova L., Chicherin S. (2019). Treatment and a Heating Performance of the Water-to-Water Heat Pump: Misallocation and Available Solutions. IOP Conf. Series: Earth and Environmental Science 288(1)012092 IOP Publishing. Improving a Water. DOI:10.1088/1755-1315/288/1/012092
  • 4. Junussova L., Chicherin S., Abildinova S.K., Aliyarova М.В., Junussov T.J. (2018). The means to improve water treatment and to enhance power engineering perfo rmance of the water source heat pump. Energetika. Proceedings of CIS Higher Education Institutions and Power Engineering Associations. 61(4), 372–380. doi: 61(4), c 372–380.
  • 5. Junussova L., Chicherin S., Junussov T.Ja. (2019). E3S Web of Conferences 118, 02004. E3S Web of Conferences Volume Minimizing the supply temperature at the district heating plant – Dynamic optimization. 118, 2019 4th International Conference on Advances in Energy and Environment Research (ICAEER 2019) Shanghai, China, August 16–18, 2019, Weng C.H., Weerasinghe R. and Wu J. (Eds.) DOI: 10.1051/e3sconf/201911802004
  • 6. Junussova L., Chicherin S. (2019). Method of Aluminum Salts Extraction from Wastewater Using Desalination Techno logy: Sir Darya River Case Study IOP Conf. Series: Earth and Environmental Science 288, 01200 IOP Publishing. doi:10.1088/1755-1315/288/1/012008
  • 7. Junussova L., Chicherin S. (2019). The hydro seeding and concrete anchors as a method for preventing damage to district heating network by local landslides. E3S Web of Conferences 140, 05014 EECE2019. DOI: 10.1051/e3sconf/201914005014
  • 8. Janghorban Esfahani, I., Lee, S., Yoo, C. (2015). Evaluation and optimization of a multi-effect evaporation–absorption heat pump desalination based conventional and advanced exergy and exergoeconomic analyses. Desalination, 359, 92–107. DOI: 10.1016/j.desal.2014.12.030
  • 9. Parham, K., Khamooshi, M., Daneshvar, S., Assadi, M., & Yari, M. (2016). Comparative assessment of different categories of absorption heat transformers in water desalination process. Desalination, 396, 17–29. DOI: 10.1016/j.desal.2016.05.031
  • 10. Junussova L., Chicherin S. (2019). Wastewater treatment and application in the advanced Nanofil traction system. IOP Conf. Series: Earth nd Environmental Science. Sustainable and Efficient Use of Energy, Water and Natural Resources, IOP Publishing. SEVAN 2019, 131–134.
  • 11. Junussova L. (2015). The impact of techno logical characteristics of membrane devices for the degree of desalination water treatment plant in the shemes VII Science, Technology and Higher Education [Text]: materials of the III International research and practice confe rence, Westwood, Canada, April 2–3, 251–256.
  • 12. Junussova L. (2015). Using technology of ultrafiltration as a pretreat ment in water treatment scheme. The Strategies of Modern Science Development: Proceedings of the VII International scientific–practical conference. North Charleston, SC, USA, 7–8 April 2015. North Charleston: Create Space, 30–33.
  • 13. Chicherin S.V. (2017). The Analysis of Design Arrangements Associated with a Measuring Points Location of the Pipe Surveillance System. Automation and IT in Power Engineering, 12, 12–15.
  • 14. Junussova, L.R. (2016). Improving the Quality of Desalinated Water with Combined Water Treatment Plant Boiler. Alternative Energy and Ecology (ISJAEE), 23, 167–176. DOI: 10.15518/isjaee.2015.23.021
  • 15. Junussova L.R. (2015). Using membrane water treatment plants. Collection of scientific works XLIV MNPK, Technical sciences from theory to practice. RF Novosibirsk: Ed. SibAK, April 9–14, 3(40), 40–45.
  • 16. Junussova, L.R. (2015). Membrane Plants in Water Conditioning Schemes at Thermal Power Stations. Journal of European Applied Sciences. Germany, Stuttgart. April, 4, 60–63.
  • 17. Junussova L.R. (2016). Application of effective methods for demineralization of groundwater in arid regions of the Aral Sea region. Magazine “Vodoochistka” Moscow: “Panorama”, 5, 54–57.
  • 18. Ortega Sandoval A.D., Barbosa Brião V., Cartana Fernandes V.M., Hemkemeier, A., Friedrich, M.T. (2017). Stormwater management by microfiltration and ultrafiltration treatment. Journal of Water Process Engineering. DOI: 10.1016/j.jwpe.2017.07.018
  • 19. Andrianov A.P., Pervov A.G. (2003). Methodology for determining the operating parameters of ultrafiltration systems for natural water purification. Membranes. 2, 43–46.
  • 20. Chicherin, S., Zhuikov, A., Kolosov, M., Junussova, L., Aliyarova, M., Yelemanova, A. (2021). Specifying DHW heat demand profiles according to operational data: Enhancing quality of a DH system model. E3S Web of Conferences, 263.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-ddef6888-7963-454e-a1ff-f75d9ff83887
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