Skip to main content
Erschienen in: Thermal Engineering 9/2023

01.09.2023 | WATER TREATMENT AND WATER CHEMISTRY

Biological Pollution of Technological Equipment and the Chemically Desalting Water Treatment Plant at a TPP (Review)

verfasst von: N. D. Chichirova, A. A. Filimonova, S. M. Vlasov, O. E. Babikov

Erschienen in: Thermal Engineering | Ausgabe 9/2023

Einloggen

Aktivieren Sie unsere intelligente Suche, um passende Fachinhalte oder Patente zu finden.

search-config
loading …

Abstract

At thermal power plants, installations in contact with the water coolant are subject to biological contamination. This is due to a number of factors: the maintenance of favorable temperature regimes, the formation of stagnant zones, the constant supply of nutrients, the presence of large areas of equipment surfaces (pipelines, water storage tanks, the pipe surface of the condenser), the presence of various materials (ion-exchange resins, membranes), and changing climatic conditions. The fight against the formation of such pollution of thermal power equipment is very relevant today, although almost all TPPs carry out thorough preparation of additional and feed water. It should be noted that the control of the concentration of organic impurities in the liquid and vapor phases, as well as continuous monitoring, are rather laborious processes. Organic deposits and the presence of biofilms on the process equipment of circulating cooling systems (CCS), water treatment plants (WTP), and chemically treated water storage tanks lead to various production failures, emergencies, and a general decrease in the efficiency of heat and electricity generation. In this paper, foreign and domestic studies on the features of the formation and development of biofilms were reviewed. Current methods for detecting and assessing biological pollution are considered and traditional chemical, physical, electrochemical, acoustic, electromagnetic, and other methods of combating microorganisms and bacteria are described. It has been shown that the growth of bacteria significantly complicates the equipment-cleaning procedures and accelerates the process of scale formation. To effectively solve the problems of biological deposits, the development of methods for monitoring and controlling the formation of bacterial deposits, the preparation of additional water, and the maintenance of a water-chemical regime must be carried out differentially based on the identification of colonies of microorganisms using test systems. The previous works of the team of authors concerning the issues of pollution of the coolant of circulating cooling systems and water treatment plants at TPPs of the Republic of Tatarstan in the period from 2009 to 2022 are noted.

Sie haben noch keine Lizenz? Dann Informieren Sie sich jetzt über unsere Produkte:

Springer Professional "Wirtschaft+Technik"

Online-Abonnement

Mit Springer Professional "Wirtschaft+Technik" erhalten Sie Zugriff auf:

  • über 102.000 Bücher
  • über 537 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Finance + Banking
  • Management + Führung
  • Marketing + Vertrieb
  • Maschinenbau + Werkstoffe
  • Versicherung + Risiko

Jetzt Wissensvorsprung sichern!

Springer Professional "Technik"

Online-Abonnement

Mit Springer Professional "Technik" erhalten Sie Zugriff auf:

  • über 67.000 Bücher
  • über 390 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Maschinenbau + Werkstoffe




 

Jetzt Wissensvorsprung sichern!

Literatur
1.
Zurück zum Zitat J. W. Costerton, J. C. Nickel, and T. I. Ladd, “Suitable methods for the comparative study of free-living and surface-associated bacterial populations,” Bact. Nat. 2, 49–84 (1986). J. W. Costerton, J. C. Nickel, and T. I. Ladd, “Suitable methods for the comparative study of free-living and surface-associated bacterial populations,” Bact. Nat. 2, 49–84 (1986).
2.
Zurück zum Zitat J. W. Costerton and H. M. Lappin-Scott, “Behaviour of bacteria in biofilms,” ASM News 55, 650–654 (1989). J. W. Costerton and H. M. Lappin-Scott, “Behaviour of bacteria in biofilms,” ASM News 55, 650–654 (1989).
4.
Zurück zum Zitat D. R. Absolom, F. Y. Lamberti, Z. Policova, W. Zingg, C. J. van Oss, and A. W. Neumann, “Surface thermodynamics of bacterial adhesion,” Appl. Environ. Microbiol. 46, 90–97 (1983).CrossRef D. R. Absolom, F. Y. Lamberti, Z. Policova, W. Zingg, C. J. van Oss, and A. W. Neumann, “Surface thermodynamics of bacterial adhesion,” Appl. Environ. Microbiol. 46, 90–97 (1983).CrossRef
5.
Zurück zum Zitat P. R. Rutter and B. Vincent, “Attachment mechanisms in the surface growth of microorganisms,” in Physiological Models in Microbiology, 2nd ed. (CRC Press, Boca Raton, Fla., 1988). P. R. Rutter and B. Vincent, “Attachment mechanisms in the surface growth of microorganisms,” in Physiological Models in Microbiology, 2nd ed. (CRC Press, Boca Raton, Fla., 1988).
6.
Zurück zum Zitat M. C. M. van Loosdrecht, J. Lyklema, W. Norde, and A. J. B. Zehnder, “Influence of interfaces on microbial activity,” Microbiol. Rev. 54, 75–87 (1990). https://doi.org/0146-0749t90/010075-13$02.00/0 CrossRef M. C. M. van Loosdrecht, J. Lyklema, W. Norde, and A. J. B. Zehnder, “Influence of interfaces on microbial activity,” Microbiol. Rev. 54, 75–87 (1990). https://​doi.​org/​0146-0749t90/​010075-13$02.​00/​0 CrossRef
9.
Zurück zum Zitat T. R. Bott, L. F. Melo, C. B. Panchal, and E. F. C. Somerscales, “An overview of biofouling: From basic science to mitigation,” in Proc. Int. Conf. on Understanding Heat Exchanger Fouling and Its Mitigation, Castelvecchio Pascoli, Lucca, Italy, 1997 (Begell House, New York, 1999), pp. 55–66. T. R. Bott, L. F. Melo, C. B. Panchal, and E. F. C. Somerscales, “An overview of biofouling: From basic science to mitigation,” in Proc. Int. Conf. on Understanding Heat Exchanger Fouling and Its Mitigation, Castelvecchio Pascoli, Lucca, Italy, 1997 (Begell House, New York, 1999), pp. 55–66.
11.
Zurück zum Zitat W. Dacheng, Q. Caifu, and C. Shengxian, “Dynamic simulation of microbial fouling in heat exchanger and analysis of influencing factors,” Chem. Ind. Eng. Prog. 8, 1934–1938 (2013). W. Dacheng, Q. Caifu, and C. Shengxian, “Dynamic simulation of microbial fouling in heat exchanger and analysis of influencing factors,” Chem. Ind. Eng. Prog. 8, 1934–1938 (2013).
13.
Zurück zum Zitat S. R. Yang, “The research of fouling intelligent monitor,” in Proc. 3rd Natl. Interuniv. Conf. on Engineering Thermophysics, Dalian, 1990 (Xi’an Jiaotong Univ. Press, 1990), pp. 611–614. S. R. Yang, “The research of fouling intelligent monitor,” in Proc. 3rd Natl. Interuniv. Conf. on Engineering Thermophysics, Dalian, 1990 (Xi’an Jiaotong Univ. Press, 1990), pp. 611–614.
14.
Zurück zum Zitat X. Wen, Q. Miao, and L. Sun, “Modeling and prediction of fouling characteristics of heat exchanger,” Chem. Eng. Mach. 6, 699–704 (2014). X. Wen, Q. Miao, and L. Sun, “Modeling and prediction of fouling characteristics of heat exchanger,” Chem. Eng. Mach. 6, 699–704 (2014).
15.
Zurück zum Zitat L. Sun, M. Tao, and H. Piao, “Foul prediction of heat exchanger based on regular sequential extreme learning machine,” J. Northeast Dianli Univ. 35 (4), 84–90 (2015). L. Sun, M. Tao, and H. Piao, “Foul prediction of heat exchanger based on regular sequential extreme learning machine,” J. Northeast Dianli Univ. 35 (4), 84–90 (2015).
16.
Zurück zum Zitat T. Ford and R. Mitchell, “The ecology of microbial corrosion,” Adv. Microb. Ecol. 11, 231–262 (1990).CrossRef T. Ford and R. Mitchell, “The ecology of microbial corrosion,” Adv. Microb. Ecol. 11, 231–262 (1990).CrossRef
17.
Zurück zum Zitat A. Von Holy, “Microbial corrosion,” in Proc. Int. Workshop on Industrial Biofouling and Biocorrosion, Mulheim, Germany, Sept. 1997. A. Von Holy, “Microbial corrosion,” in Proc. Int. Workshop on Industrial Biofouling and Biocorrosion, Mulheim, Germany, Sept. 1997.
18.
Zurück zum Zitat E. De Bruyn, Microbial Ecology of Sulphide-Producing Bacteria in Water Cooling Systems, PhD Thesis (Univ. of Pretoria, South Africa, 1992). E. De Bruyn, Microbial Ecology of Sulphide-Producing Bacteria in Water Cooling Systems, PhD Thesis (Univ. of Pretoria, South Africa, 1992).
20.
Zurück zum Zitat V. S. Brozel and T. E. Cloete, “The role of sulphate-reducing bacteria in microbial induced corrosion,” Paper SA.11/12/89, pp. 30–36 (1989). V. S. Brozel and T. E. Cloete, “The role of sulphate-reducing bacteria in microbial induced corrosion,” Paper SA.11/12/89, pp. 30–36 (1989).
22.
Zurück zum Zitat A. A. Chichirov, N. D. Chichirova, I. I. Galiev, L. I. Gainutdinova, and A. Yu. Smirnov, “Study of the composition and structure of deposits in the circulating cooling system of thermal power plants,” Izv. Vyssh. Uchebn. Zaved., Probl. Energ., No. 7–8, 37–45 (2009). A. A. Chichirov, N. D. Chichirova, I. I. Galiev, L. I. Gainutdinova, and A. Yu. Smirnov, “Study of the composition and structure of deposits in the circulating cooling system of thermal power plants,” Izv. Vyssh. Uchebn. Zaved., Probl. Energ., No. 7–8, 37–45 (2009).
23.
Zurück zum Zitat B. N. Driker, A. I. Murashova, A. G. Tarantaev, and A. F. Nikiforov, “Methodological aspects of the selection of reagents to prevent mineral deposits,” Energosberezhenie Vodopodgot., No. 2(88), 2–4 (2014). B. N. Driker, A. I. Murashova, A. G. Tarantaev, and A. F. Nikiforov, “Methodological aspects of the selection of reagents to prevent mineral deposits,” Energosberezhenie Vodopodgot., No. 2(88), 2–4 (2014).
24.
Zurück zum Zitat A. A. Chichirov, N. D. Chichirova, M. A. Volkov, and S. M. Vlasov, “Complex reagent water treatment of industrial water supply systems with cooling towers at thermal power plants,” Tr. Akademenergo, No. 1, 90–100 (2012). A. A. Chichirov, N. D. Chichirova, M. A. Volkov, and S. M. Vlasov, “Complex reagent water treatment of industrial water supply systems with cooling towers at thermal power plants,” Tr. Akademenergo, No. 1, 90–100 (2012).
26.
Zurück zum Zitat V. V. Kozlovskii and A. B. Larin, “Method of studying the water chemistry condition of the circulating cooling system of thermal power plants,” Vestn. IGEU, No. 3, 14–21 (2019).CrossRef V. V. Kozlovskii and A. B. Larin, “Method of studying the water chemistry condition of the circulating cooling system of thermal power plants,” Vestn. IGEU, No. 3, 14–21 (2019).CrossRef
27.
Zurück zum Zitat J. Wang, M. Liu, H. Xiao, W. Wu, M. Xie, M. Sun, C. Zhu, and P. Li, “Bacterial community structure in cooling water and biofilm in an industrial recirculating cooling water system,” Water Sci. Technol. 68, 940–947 (2013).CrossRef J. Wang, M. Liu, H. Xiao, W. Wu, M. Xie, M. Sun, C. Zhu, and P. Li, “Bacterial community structure in cooling water and biofilm in an industrial recirculating cooling water system,” Water Sci. Technol. 68, 940–947 (2013).CrossRef
28.
Zurück zum Zitat V. Bohus, Z. Keki, K. Márialigeti, K. Baranyi, G. Patek, J. Schunk, and E. M. Toth, “Bacterial communities in an ultrapure water containing storage tank of a power plant,” Acta Microbiol. Immunol. Hung. 58, 371–382 (2011).CrossRef V. Bohus, Z. Keki, K. Márialigeti, K. Baranyi, G. Patek, J. Schunk, and E. M. Toth, “Bacterial communities in an ultrapure water containing storage tank of a power plant,” Acta Microbiol. Immunol. Hung. 58, 371–382 (2011).CrossRef
29.
Zurück zum Zitat C. Xiao, Y. Qirong, W. Ronghua, Z. Ning, and L. Nan, “Experimental study of the growth characteristics of microbial fouling on sewage heat exchanger surface,” Appl. Therm. Eng. 128, 426–433 (2017). C. Xiao, Y. Qirong, W. Ronghua, Z. Ning, and L. Nan, “Experimental study of the growth characteristics of microbial fouling on sewage heat exchanger surface,” Appl. Therm. Eng. 128, 426–433 (2017).
30.
Zurück zum Zitat R. C. Drake, “Increasing heat exchanger efficiency through continuous mechanical tube maintenance,” in Biofouling Control Procedures: Technology and Ecological Effects, Ed. by L. D. Jensen, (Marcel Decker, New York, 1977), pp. 43–53. R. C. Drake, “Increasing heat exchanger efficiency through continuous mechanical tube maintenance,” in Biofouling Control Procedures: Technology and Ecological Effects, Ed. by L. D. Jensen, (Marcel Decker, New York, 1977), pp. 43–53.
32.
Zurück zum Zitat P. Cristiani and F. Agostini, “On-line monitoring of chlorination treatments at Vado Ligure power plant by BIOX system: Two year of experience,” in Proc. Int. Conf. on Mitigation of Heat Exchanger Fouling and Its Economic and Environmental Implications, Banff, Alberta, Canada, July 11–16, 1999, (Begell House, New York, 1999), pp. 103–110. P. Cristiani and F. Agostini, “On-line monitoring of chlorination treatments at Vado Ligure power plant by BIOX system: Two year of experience,” in Proc. Int. Conf. on Mitigation of Heat Exchanger Fouling and Its Economic and Environmental Implications, Banff, Alberta, Canada, July 11–16, 1999, (Begell House, New York, 1999), pp. 103–110.
33.
Zurück zum Zitat Z. Kéki, J. Makk, K. Barkács, Balázs Vajna, M. Palatinszky, K. Márialigeti, and E. Tóth, “Critical point analysis and biocide treatment in a microbiologically contaminated water purification system of a power plant,” SN Appl. Sci. 1 (820) (2019). Z. Kéki, J. Makk, K. Barkács, Balázs Vajna, M. Palatinszky, K. Márialigeti, and E. Tóth, “Critical point analysis and biocide treatment in a microbiologically contaminated water purification system of a power plant,” SN Appl. Sci. 1 (820) (2019).
36.
Zurück zum Zitat N. Matsuda, W. Agui, T. Tougou, H. Sakai, K. Ogino, and M. Abe, “Gram-negative bacteria viable in ultrapure water: Identification of bacteria isolated from ultrapure water and effect of temperature on their behavior,” Colloids Surf., B 5, 279–289 (1996).CrossRef N. Matsuda, W. Agui, T. Tougou, H. Sakai, K. Ogino, and M. Abe, “Gram-negative bacteria viable in ultrapure water: Identification of bacteria isolated from ultrapure water and effect of temperature on their behavior,” Colloids Surf., B 5, 279–289 (1996).CrossRef
38.
Zurück zum Zitat S. M. Abdelsalam, Z. M. H. Kheiralla, F. A. Abo-Seif, and S. M. E. Asker, “Abiotic factors and microbial communities fouling anion exchange resin causing performance deficiency in electric power plants,” Egypt. J. Microbiol. 52 (37), 17–28 (2017).CrossRef S. M. Abdelsalam, Z. M. H. Kheiralla, F. A. Abo-Seif, and S. M. E. Asker, “Abiotic factors and microbial communities fouling anion exchange resin causing performance deficiency in electric power plants,” Egypt. J. Microbiol. 52 (37), 17–28 (2017).CrossRef
39.
Zurück zum Zitat B. Liu, D. Wang, G. Yu, X. Meng, J. David Giraldo, V. K. Thakur, and E. Gutiérrez, “The history and state of art in membrane technologies Tarragona, Erasmus,” J. Membr. Sci. 16, 1–28 (2005). B. Liu, D. Wang, G. Yu, X. Meng, J. David Giraldo, V. K. Thakur, and E. Gutiérrez, “The history and state of art in membrane technologies Tarragona, Erasmus,” J. Membr. Sci. 16, 1–28 (2005).
42.
Zurück zum Zitat A. Y. Kirschner, Y. H. Cheng, D. R. Paul, R. W. Field, and B. D. Freeman, “Fouling mechanisms in constant flux crossflow ultrafiltration,” J. Membr. Sci. 574, 65–75 (2019).CrossRef A. Y. Kirschner, Y. H. Cheng, D. R. Paul, R. W. Field, and B. D. Freeman, “Fouling mechanisms in constant flux crossflow ultrafiltration,” J. Membr. Sci. 574, 65–75 (2019).CrossRef
43.
Zurück zum Zitat T. R. Card and R. L. Purdom, “Ozone in wastewater treatment,” in Proc. Ozone World Congr., New York, N.Y., USA, June 3–9, 1989 (International Ozone Association, Norwalk, Conn., 1989), Vol. 2, p. 281. T. R. Card and R. L. Purdom, “Ozone in wastewater treatment,” in Proc. Ozone World Congr., New York, N.Y., USA, June 3–9, 1989 (International Ozone Association, Norwalk, Conn., 1989), Vol. 2, p. 281.
44.
Zurück zum Zitat G. Reynolds, N. Graham, A. Perry, and R. G. Rice, “Aqueous ozonation of pesticides: A review,” Ozone Sci. Eng. 11, 339–382 (1989).CrossRef G. Reynolds, N. Graham, A. Perry, and R. G. Rice, “Aqueous ozonation of pesticides: A review,” Ozone Sci. Eng. 11, 339–382 (1989).CrossRef
45.
Zurück zum Zitat E. G. Gogolashvili, “"Mol Clean” technology — An advanced method of fighting biofouling,” Energ. Tatar., No. 2, 45–50 (2008). E. G. Gogolashvili, “"Mol Clean” technology — An advanced method of fighting biofouling,” Energ. Tatar., No. 2, 45–50 (2008).
46.
Zurück zum Zitat Midori Kawabe and Masaki Kawabe, “Factors determining chemical oxygen demand in Tokyo bay,” J. Oceanogr. 53, 443–453 (1997).CrossRef Midori Kawabe and Masaki Kawabe, “Factors determining chemical oxygen demand in Tokyo bay,” J. Oceanogr. 53, 443–453 (1997).CrossRef
47.
Zurück zum Zitat A. D. Bryden, “Zebra mussel (Dreissena polymorpha) and other aquatic organism control,” US Patent No. PCT/CA91/00269 (1993). A. D. Bryden, “Zebra mussel (Dreissena polymorpha) and other aquatic organism control,” US Patent No. PCT/CA91/00269 (1993).
48.
Zurück zum Zitat M. G. Grothaus, M. S. Mazzola, and M. Walch, “System for preventing biofouling of surfaces exposed to water,” US Patent No. 5636180 (1997). M. G. Grothaus, M. S. Mazzola, and M. Walch, “System for preventing biofouling of surfaces exposed to water,” US Patent No. 5636180 (1997).
49.
Zurück zum Zitat R. B. Schaefer, Pulsed Acoustic Sparker Biofouling Control in Heat Transfer Equipment: Technical Final Report SERDP/SEED (Phoenix Science and Technology, 2002). R. B. Schaefer, Pulsed Acoustic Sparker Biofouling Control in Heat Transfer Equipment: Technical Final Report SERDP/SEED (Phoenix Science and Technology, 2002).
50.
Zurück zum Zitat G. L. Mackie, P. Lowery, and C. Cooper, Plasma Pulse Technology to Control Zebra Mussel Biofouling (U.S. Army Corps of Engineers, Waterways Experiment Station, Vicksburg, Miss., 2020). G. L. Mackie, P. Lowery, and C. Cooper, Plasma Pulse Technology to Control Zebra Mussel Biofouling (U.S. Army Corps of Engineers, Waterways Experiment Station, Vicksburg, Miss., 2020).
51.
Metadaten
Titel
Biological Pollution of Technological Equipment and the Chemically Desalting Water Treatment Plant at a TPP (Review)
verfasst von
N. D. Chichirova
A. A. Filimonova
S. M. Vlasov
O. E. Babikov
Publikationsdatum
01.09.2023
Verlag
Pleiades Publishing
Erschienen in
Thermal Engineering / Ausgabe 9/2023
Print ISSN: 0040-6015
Elektronische ISSN: 1555-6301
DOI
https://doi.org/10.1134/S0040601523090021

Weitere Artikel der Ausgabe 9/2023

Thermal Engineering 9/2023 Zur Ausgabe

STEAM-TURBINE, GAS-TURBINE, COMBINED-CYCLE POWER PLANTS AND THEIR AUXILIARY EQUIPMENT

The Effectiveness of Film Cooling with Injection of Pulsating Air Flow (Review)

HEAT AND MASS TRANSFER, PROPERTIES OF WORKING BODIES AND MATERIALS

Simulation of Mixing of Single-Phase Fluids in T-Junctions

STEAM-TURBINE, GAS-TURBINE, COMBINED-CYCLE POWER PLANTS AND THEIR AUXILIARY EQUIPMENT

Efficiency of Multistage Filtration of Turbine Oil in the Oil-Supply System of Turbo Units

    Premium Partner