By-products of disinfection of potable water at placing of armies in field conditions
Zhanna V. Plakhotskaya , Vladimir P. Andreev , Andrey V. Krivtsov
Russian Military Medical Academy Reports ›› 2023, Vol. 42 ›› Issue (1) : 65 -74.
By-products of disinfection of potable water at placing of armies in field conditions
On the basis of studying of the data published in open sources, the problem of the comparative characteristic of potential danger of various methods of disinfection of water about formation in process or as a result of its clearing of the substances possessing toxic and (or) cancerogenic action dared. Application of practically all methods, both traditional, and perspective is established, that is accompanied by formation of by-products of disinfection directly in potable water or as a part of drains in the form garbage removed from the water.
Now the most widespread, effective and economic way of disinfection water is the use of chlorine-containing preparations. Such approach provides destruction of the majority of pathogenic microorganisms that defines the application of chlorine-containing preparations in world practice of clearing and water disinfecting in spite of the fact that at their use there is a formation of the big number of products of collateral disinfection.
As concentration of the last depends on parameters of the process of disinfection, to solve a safety problem it is offered by strict observance of conditions of technological process, instead of prohibition of application of those or other techniques.
The most perspective for water preparation perfection in the field conditions, having the least quantity of by-products of disinfection, is the approach to disinfecting of water which includes two alternative systems: reverse osmosis and an ultrafiltration (and in the long term — nanofiltration) with possibility of a choice of one of these variants of clearing.
As concentration of the last depends on parameters of the process of clearing, to solve a safety problem it is offered by strict observance of conditions of technological process, instead of prohibition of application of those or other techniques.
The basis for refusal of connection of field camp to the centralised networks of water supply and use of the chlorinated potable water is not revealed.
by-products of disinfection / nanofiltration / nanoparticles / technological effluents / water disinfection / water supply to the troops / water treatment
| [1] |
Drozdova EV, Buraya VV, Girina VV, et al. On the issue of the formation of by-products of drinking water disinfection (regulated and emergent), their genotoxic and carcinogenic properties: a review of the problem and directions for further research. In: Zdorov’e I okruzhayushchaya sreda. Collection of scientific papers. Issue. 26. Minsk: RNMB Publ.; 2016. P. 12–16. (In Russ.) |
| [2] |
Дроздова Е.В., Бурая В.В., Гирина В.В., и др. К вопросу об образовании побочных продуктов дезинфекции питьевой воды (регламентируемых и эмерджентных), их генотоксических и канцерогенных свойствах: обзор проблемы и направления дальнейших исследований. В сб.: Здоровье и окружающая среда. Сборник научных трудов. Вып. 26. Минск: РНМБ, 2016. C. 12–16. |
| [3] |
Kirilenko VI, Rudnev IM. Modern means of field water supply of troops. Scientific problems of material support of armed forces of the Russian Federation. 2018;(4(10)):98–107. (In Russ.) |
| [4] |
Кириленко В.И., Руднев И.М. Современные средства полевого водообеспечения войск // Научные проблемы материально-технического обеспечения Вооруженных сил Российской Федерации. 2018. № 4, вып. 10. С. 98–107. |
| [5] |
Hrudey SE, Charrois JWA. Disinfection By-products and Human Health: Relevance to Human Health. Vol. 11. IWA Publishing; 2012. P. 213–281. DOI: 10.2166/9781780400624 |
| [6] |
Hrudey S.E., Charrois J.W.A. Disinfection By-products and Human Health: Relevance to Human Health. Vol. 11. IWA Publishing, 2012. P. 213–281. DOI: 10.2166/9781780400624 |
| [7] |
Drinking water requirements for states and public water systems: Stage 1 and Stage 2 Disinfectants and Disinfection Byproducts Rules. Suppl. 2. EPA 816-F-10-080. Washington, DC, USA: Office of Water; 2017. |
| [8] |
Drinking water requirements for states and public water systems: Stage 1 and Stage 2 Disinfectants and Disinfection Byproducts Rules. Suppl. 2. EPA 816-F-10-080. Washington, DC, USA: Office of Water, 2017. |
| [9] |
Six-year review 3 technical support document for disinfectants/disinfection by products rules. EPA 810-R-16-012. Washington, DC, USA; Office of Water. 2016. |
| [10] |
Six-year review 3 technical support document for disinfectants/disinfection by products rules. EPA 810-R-16-012. Washington, DC, USA: Office of Water, 2016. |
| [11] |
McGuire MJ. The chlorine revolution: water disinfection and the fight to save lives. Zeilig Nancy, editor. 1st ed. Denver, Colorado, USA: AWWA; 2013. |
| [12] |
McGuire M.J. The chlorine revolution: water disinfection and the fight to save lives. Zeilig Nancy, editor. 1nd ed. Denver, Colorado, USA: AWWA, 2013. |
| [13] |
Hrudey SE, Backer LC, Humpage AR, et al. Evaluating evidence for association of human bladder cancer with drinking-water chlorination disinfection by-products. J Toxicol Environ Health B Crit Rev. 2015;18(5):213–241. DOI: 10.1080/10937404.2015.1067661 |
| [14] |
Hrudey S.E., Backer L.C., Humpage A.R., et al. Evaluating evidence for association of human bladder cancer with drinking-water chlorination disinfection by-products // J Toxicol Environ Health B Crit Rev. 2015. Vol. 18, No. 5. P. 213–241. DOI: 10.1080/10937404.2015.1067661 |
| [15] |
Beretta S, Vivaldo T, Morelli M, Zuccotti GV. Swimming pooll-induced asthma. J Investing Allergo Clin Immunol. 2011;21(3):240–241. |
| [16] |
Beretta S., Vivaldo T., Morelli M., Zuccotti G.V. Swimming pooll-induced asthma // J. Investing Allergo. Clin. Immunol. 2011. Vol. 21, No. 3. P. 240–241. |
| [17] |
Moreira A, Palmares C, Lopes C, Delgado L. Airway vascular damage in elite swimmers. Respir Med. 2011;105(11):1761–1765. DOI: 10.1016/j.rmed.2011.05.011 |
| [18] |
Moreira A., Palmares C., Lopes C., Delgado L. Airway vascular damage in elite swimmers // Respir. Med. 2011;105(11):1761–1765. DOI: 10.1016/j.rmed.2011.05.011 |
| [19] |
Voisin C, Sardella A, Marcucci F, Bernard A. Infant swimming in chlorinated pools and the risk of bronchiolitis, asthma and allergy. Eur Respir J. 2010;36(1):41–47. DOI: 10.1183/09031936.00118009 |
| [20] |
Voisin C., Sardella A., Marcucci F., Bernard A. Infant swimming in chlorinated pools and the risk of bronchiolitis, asthma and allergy // Eur. Respir. J. 2010. Vol. 36, No. 1. P. 41–47. DOI: 10.1183/09031936.00118009 |
| [21] |
Rutala WA, Weber DJ, Weinstein RA, et al. Guideline for disinfection and sterilization in healthcare facilities, 2008. CDC. 2019. P. 163. Available at: https://www.cdc.gov/infectioncontrol/guidelines/disinfection/ (accessed 08.06.22). |
| [22] |
Rutala W.A., Weber D.J., Weinstein R.A., et al. Guideline for disinfection and sterilization in healthcare facilities, 2008. CDC. 2019. P. 163. Available at: https://www.cdc.gov/infectioncontrol/guidelines/disinfection/ (accessed 08.06.22.). |
| [23] |
Lehtola MJ, Miettinen IT, Keinänen MM, et al. Microbiology, chemistry and biofilm development in a pilot drinking water distribution system with copper and plastic pipes. Water Res. 2004;38(17): 3769–3779. DOI: 10.1016/j.watres.2004.06.024 |
| [24] |
Lehtola M.J., Miettinen I.T., Keinänen M.M., et al. Microbiology, chemistry and biofilm development in a pilot drinking water distribution system with copper and plastic pipes // Water Res. 2004. Vol. 38, No. 17. P. 3769–3779. DOI: 10.1016/j.watres.2004.06.024 |
| [25] |
Butterworth T, Faugier J, editors. Clinical Supervision and Mentorship in Nursing. Springer Science+Business Media; 2013. 246 p. |
| [26] |
Butterworth T., Faugier J., editors. Clinical Supervision and Mentorship in Nursing. Springer Science+Business Media, 2013. 246 p. |
| [27] |
Oshiro RK. Method 1600: Enterococci in water by membrane filtration using membrane-enterococcus indoxyl-β-D-Glucoside agar. EPA-821-R-09-016. Washington, DC, USA: Office of Water; 2009. 42 p. |
| [28] |
Oshiro RK. Method 1600: Enterococci in water by membrane filtration using membrane-enterococcus indoxyl-β-D-Glucoside agar. EPA-821-R-09-016. Washington, DC, USA: Office of Water, 2009. 42 p. |
| [29] |
Disinfectants and disinfection byproducts rule (Stage 1 DBPR). EPA 816 F-02-021. Washington, DC, USA: Office of Water; 2001. |
| [30] |
Disinfectants and disinfection byproducts rule (Stage 1 DBPR). EPA 816 F-02-021. Washington, DC, USA: Office of Water, 2001. |
| [31] |
Chuang YH, Tung HH. Formation of trichloronitromethane and dichloroacetonitrile in natural waters: precursor characterization, kinetics and interpretation. J Hazard Mater. 2015;283:218–226. (Engl) DOI: 10.1016/j.jhazmat.2014.09.285 |
| [32] |
Chuang Y.H., Tung H.H. Formation of trichloronitromethane and dichloroacetonitrile in natural waters: precursor characterization, kinetics and interpretation // J. Hazard. Mater. 2015. Vol. 283. P. 218–226. (Engl) DOI: 10.1016/j.jhazmat.2014.09.285 |
| [33] |
Deng L, Huang CH, Wang YL. Effects of combined UV and chlorine treatment on the formation of trichloronitromethane from amine precursor. Environ Sci Technol. 2014;48(5):2697–2705. DOI: 10.1021/es404116n |
| [34] |
Deng L., Huang C.H., Wang Y.L. Effects of combined UV and chlorine treatment on the formation of trichloronitromethane from amine precursor // Environ. Sci. Technol. 2014. Vol. 48, No. 5. P. 2697–2705. DOI: 10.1021/es404116n |
| [35] |
Dotson AD, Keen VO, Metz D, Linden KG. UV/H(2)O(2) treatment of drinking water increases post-chlorination DBP formation. Water Research. 2010;44(12):3703–3713. DOI: 10.1016/j.watres.2010.04.006 |
| [36] |
Dotson A.D., Keen V.O., Metz D., Linden K.G. UV/H(2)O(2) treatment of drinking water increases post-chlorination DBP formation // Water Research. 2010, Vol. 44, No. 12. P. 3703–3713. DOI: 10.1016/j.watres.2010.04.006 |
| [37] |
Krasner SW, Weinberg HS, Richardson SD, et al. Occurrence of a new generation of disinfection byproducts. Environ Sci Technol. 2006;40(23):7175–7185. DOI: 10.1021/es060353j |
| [38] |
Krasner S.W., Weinberg H.S,. Richardson S.D., et al. Occurrence of a new generation of disinfection byproducts // Environ. Sci. Technol. 2006. Vol. 40, No. 23. P. 7175–7185. DOI: 10.1021/es060353j |
| [39] |
Li J, Blatchley ER. UV photodegradation of inorganic chloramines. Environ Sci Technol. 2009;43(1):60–65. DOI: 10.1021/es8016304 |
| [40] |
Li J., Blatchley E.R. UV photodegradation of inorganic chloramines // Environ. Sci. Technol. 2009. Vol. 43, No. 1. P. 60–65. DOI: 10.1021/es8016304 |
| [41] |
Plewa MJ, Wagner ED, Jazwierska P, et al. Halonitromethane drinking water disinfection byproducts: chemical characterization and mammalian cell cytotoxicity and genotoxicity. Environ Sci Technol. 2004;38(1):3862–3868. DOI: 10.1021/es0304771 |
| [42] |
Plewa M.J., Wagner E.D., Jazwierska P., et al. Halonitromethane drinking water disinfection byproducts: chemical characterization and mammalian cell cytotoxicity and genotoxicity // Environ. Sci. Technol. 2004. Vol. 38, No. 1. P. 3862–3868. DOI: 10.1021/es0304771 |
| [43] |
Echigo S, Minear RA. Kinetics of the reaction of hypobromous acid and organic matters in water treatment processes. Environ Sci Technol. 2006;53(11):235–243. DOI: 10.2166/wst.2006.358 |
| [44] |
Echigo S., Minear R.A. Kinetics of the reaction of hypobromous acid and organic matters in water treatment processes // Environ. Sci. Technol. 2006. Vol. 53, No. 11. P. 235–243. DOI: 10.2166/wst.2006.358 |
| [45] |
Hua G, Reckhow D. Determination of TOCl, TOBr, and TOI in drinking water by pyrolysis and off-line ion chromatography. Analytical and Bioanalytical Chemistry. 2006;384(2):495–504. DOI: 10.1007/s00216-005-0214-3 |
| [46] |
Hua G., Reckhow D. Determination of TOCl, TOBr, and TOI in drinking water by pyrolysis and off-line ion chromatography // Analytical and Bioanalytical Chemistry. 2006. Vol. 384, No. 2. P. 495–504. DOI: 10.1007/s00216-005-0214-3 |
| [47] |
Du JR, Peldszus S, Huck PM, Feng XS. Modification of poly(vinylidene fluoride) ultrafiltration membranes with poly(vinyl alcohol) for fouling control in drinking water treatment. Water Res. 2009;43(18):4559–4568. DOI: 10.1016/j.watres.2009.08.008 |
| [48] |
Du J.R., Peldszus S., Huck P.M., Feng X.S. Modification of poly(vinylidene fluoride) ultrafiltration membranes with poly(vinyl alcohol) for fouling control in drinking water treatment // Water Res. 2009. Vol. 43, No. 8. P. 4559–4568. DOI: 10.1016/j.watres.2009.08.008 |
| [49] |
Hammes F, Salhi E, Koster O, et al. Mechanistic and kinetic evaluation of organic disinfection by-product and assimilable organic carbon (AOC) formation during the ozonation of drinking water. Water. Res. 2006;40(12):2275–2286. DOI: 10.31031/cjmi.2019.02.000543 |
| [50] |
Hammes F., Salhi E., Koster O., et al. Mechanistic and kinetic evaluation of organic disinfection by-product and assimilable organic carbon (AOC) formation during the ozonation of drinking water // Water. Res. 2006. Vol. 40, No. 12. P. 2275–2286. DOI: 10.31031/cjmi.2019.02.000543 |
| [51] |
Lehman LL. Application of ceramic membranes with pre-ozonation for treatment of secondary wastewater effluent. Water. Res. 2009;43(7):2020–2028. DOI: 10.1016/j.watres.2009.02.003 |
| [52] |
Lehman L.L. Application of ceramic membranes with pre-ozonation for treatment of secondary wastewater effluent // Water. Res. 2009. Vol. 43, No. 7. P. 2020–2028. DOI: 10.1016/j.watres.2009.02.003 |
| [53] |
Montgomery Watson Consulting Engineering. Mathematical modeling of the formation of THMs and HAA in Chlorinated Natural Waters, Denver, Colorado, USA. Final report reported for AWWA. 1993. |
| [54] |
APHA, AWWA WEF. Standard methods for the examination of water and wastewater. 24th ed. Washington, USA. 2012. |
| [55] |
Clarke S, Bettin W. Ultraviolet light disinfection in the use of ındividual water purification devices. Environmental science. 2006. DOI: 10.21236/ada453967 |
| [56] |
Clarke S., Bettin W. Ultraviolet light disinfection in the use of ındividual water purification devices // Environmental science. 2006. DOI: 10.21236/ada453967 |
| [57] |
Vilhunen S, Sarkka H, Sillanpaa M. Ultraviolet light-emitting diodes in water disinfection. Environ Sci Pollut Res Int. 2009;16(4): 439–442. DOI: 10.1007/s11356-009-0103-y |
| [58] |
Vilhunen S., Sarkka H., Sillanpaa M. Ultraviolet light-emitting diodes in water disinfection // Environ. Sci. Pollut. Res. Int. 2009. Vol. 16, No. 4. P. 439–442. DOI: 10.1007/s11356-009-0103-y |
| [59] |
Tarhan G. Which disinfection method is effective for water disinfection. Cohesive J Microbiol Infect Dis. 2019;2(4):1–6. DOI: 10.31031/CJMI.2019.02.000544 |
| [60] |
Tarhan G. Which disinfection method is effective for water disinfection // Cohesive J. Microbiol. Infect. Dis. 2019. Vol. 2, Issue 4. P. 1–6. DOI: 10.31031/CJMI.2019.02.000544 |
| [61] |
Yavorskiy NA, Kornev YA, Preys SV, et al. The pulse barrier category as a method of processing of water: Active particles-oxidizers in a water-air stream. Izvestiya Tomskogo politekhnicheskogo universiteta. 2006;309(2):108–113. (In Russ.) |
| [62] |
Яворский Н.А., Корнев Я.И., Прейс С.В., и др. Импульсный барьерный разряд как метод обработки воды: Активные частицы-окислители в водо-воздушном потоке // Известия Томского политехнического университета. 2006. Т. 309, № 2. С. 108–13. |
| [63] |
Butko MP, Tiganov VS, Frolov VS. Alternative to traditional disinfectants. Problemy veterinarnoy sanitarii, gigieny I ekologii. 2012;1(7):34–37. (In Russ.) |
| [64] |
Бутко М.П., Тиганов В.С., Фролов В.С. Альтернатива традиционным дезинфицирующим средствам // Проблемы ветеринарной санитарии, гигиены и экологии. 2012. № 1(7). С. 34–37. |
| [65] |
Zhao D, Qiu L, Song J, et al. Efficiencies and mechanisms of chemical cleaning agents for nanofiltration membranes used in produced wastewater desalination. Sci Total Environ. 2019;652:256–266. DOI: 10.1016/j.scitotenv.2018.10.221 |
| [66] |
Zhao D., Qiu L., Song J., et al. Efficiencies and mechanisms of chemical cleaning agents for nanofiltration membranes used in produced wastewater desalination // Sci. Total Environ. 2019. Vol. 652. P. 256–266. DOI: 10.1016/j.scitotenv.2018.10.221 |
| [67] |
Matus LI, Nefed’eva EE. Konspekt lektsiy po distsipline “Metody ochistki stochnykh vod”. Volgograd: Volgogradskiy GTU Publ.; 2019. (In Russ.) |
| [68] |
Матус Л.И., Нефедьева Е.Э. Конспект лекций по дисциплине «Методы очистки сточных вод». Волгоград: Волгоградский ГТУ, 2019. |
| [69] |
Chigaev IG, Komarova LF. A study of nano-filtration and ion exchange as complex methods for natural underground water treatment. Bulletin of the Technological University. 2019;22(4):99–102. (In Russ.) |
| [70] |
Чигаев И.Г., Комарова Л.Ф. Исследование нанофильтрации и ионного обмена как комплексных методов очистки природных подземных вод // Вестник Технологического университета. 2019. Т. 22, № 4. С. 99–102. |
| [71] |
Pervov AG. Modern highly efficient technologies for purification of drinking and industrial water using membranes: reverse osmosis, nanofiltration, ultrafiltration. Moscow: MGSU Publ.; 2009. (In Russ.) |
| [72] |
Первов А.Г. Современные высокоэффективные технологии очистки питьевой и технической воды с применением мембран: обратный осмос, нанофильтрация, ультрафильтрация. М.: МГСУ, 2009. |
| [73] |
Arbatskov AN. Water purification using reverse osmosis. Sbornik materialov zaochn. nauchn.-prakt. konferentsii. 2020. P. 253–261. (In Russ.) |
| [74] |
Арбатсков А.Н. Очистка воды с помощью обратного осмоса // Сборник материалов заочн. научн.-практ. конф. 2020. С. 253–261. |
| [75] |
Shevchenko DV, Perepechenova YuA. Effect of aluminum nanoparticles on the respiratory system of outbred laboratory rats after a single intracheal injection. In: Aktual’nye problemy biomeditsiny. Collection of abstracts of the XXVII All-Russian Conference of Young Scientists with International Participation. Saint Petersburg, 25–26 March 2021. Saint Petersburg: RITs PSPbGMU Publ.; 2021. P. 254–255. (In Russ.) |
| [76] |
Шевченко Д.В., Перепеченова Ю.А. Влияние наночастиц алюминия на респираторную систему белых беспородных лабораторных крыс после однократного интрахеального введения. В сб.: Актуальные проблемы биомедицины. Сборник тезисов XXVII Всероссийской конференции молодых ученых с международным участием. Санкт-Петербург, 25–26 марта 2021 г. СПб.: РИЦ ПСПбГМУ, 2021. С. 254–255. |
| [77] |
Oberdörster G, Stone V, Donaldson K. Toxicology of nanoparticles: a historical perspective. Nanotoxicology. 2007;1(1):2–25. DOI: 10.1080/17435390701314761 |
| [78] |
Oberdörster G., Stone V., Donaldson K. Toxicology of nanoparticles: a historical perspective // Nanotoxicology. 2007. Vol. 1, No. 1. P. 2–25. DOI: 10.1080/17435390701314761 |
| [79] |
Bonner JC. Carbon nanotubes as delivery systems for respiratory disease: do the dangers outweigh the potential benefits? Expert Rev Respir Med. 2011;5(6):779–787. DOI: 10.1586/ers.11.72 |
| [80] |
Bonner J.C. Carbon nanotubes as delivery systems for respiratory disease: do the dangers outweigh the potential benefits? // Expert Rev. Respir. Med. 2011. Vol. 5, No. 6. P. 779–787. DOI: 10.1586/ers.11.72 |
Eco-Vector
/
| 〈 |
|
〉 |