№6|2012

ОХРАНА ОКРУЖАЮЩЕЙ СРЕДЫ

bbk 000000

УДК 628.16/.31

Кофман В. Я.

Очистка воды и сточных вод от соединений с гормональной активностью (обзор)

Аннотация

В природной среде присутствуют разнообразные натуральные и искусственные вещества, которые оказывают воздействие на нормальную гормональную активность в организме животных и человека. Этот класс веществ объединяется термином «соединения с гормональной активностью». Дана классификация соединений с гормональной активностью. Приведены методы очистки воды и сточных вод от этих соединений: биоаугментация, мембранные технологии, адсорбция, окислительные процессы и др.

Ключевые слова

, , , , ,

Дальнейший текст доступен по платной подписке.
Авторизуйтесь: введите свой логин/пароль.
Или оформите подписку

Список цитируемой литературы

  1. Зайко Н. Н., Быць Ю. В., Атаман А. В. и др. Патологическая физиология. – Логос, 1996.
  2. Mills L. J., Chichester C. Review of evidence: Are endocrine-disrupting chemicals in the aquatic environment impacting fish populations? // Science of the Total Environment. 2005. № 343 (1–3).
  3. Basile T., Petrella A., Petrella M., et al. Review of endocrine-disrupting compound removal technology in water and wastewater treatment plants: An EU perspective // Industrial & Engineering Chemistry Research. 2011. № 50.
  4. Liu Z. H., Kanjo Y., Mizutani S. A review of phytoestrogenes: Their occurence and fate in the environment // Water Research. 2010. № 44 (2).
  5. Sonnenschein C., Soto A. M. An updated review of environmental estrogen and androgen mimics and antagonists // Journal of Steroid Biochemistry and Molecular Biology. 1998. № 65 (1–6).
  6. Chen D., Zhang X., Mai B., et al. Polychlorinated biphenyls and organochlorine pesticides in various bird species from northern China // Journal of Environmental Pollution. 2009. № 157 (7).
  7. Staples C. A., Dorn P. B., Klecka G. M., et al. A review of the environmental fate, effects and exposures of bisphenol A // Chemosphere. 1998. № 36 (10).
  8. Eriksson P., Jakobsson E., Fredriksson A. Brominated flame retardants: A novel class of developmental neurotoxicants in our environment? // Environment Health Perspectives. 2001. № 109 (9).
  9. Ankley G. T., Brooks B. W., Huggett D. B., Simpton J. P. Repeating history: Pharmaceuticals in the environment // Environmental Science & Technology. 2007. № 41.
  10. Sanchez-Avilla J., Bonet J., Velasco G., Lacorte S. Determination and оccurrence of phtalates, alkylphenols, bisphenol A, PBDEs, PCBs and PAHs in an industrial sewage grid discharging to a municipal wastewater treatment plant // Science of the Total Environment. 2009. № 407 (13).
  11. Lopez de Alda M. J., Barselo D. Review of analytical methods for the determination of estrogens and progesterons in wastewaters // Fresenius’ Journal of Analytical Chemistry. 2001. № 371.
  12. Chang H. S., Choo K. H., Lee B., Choi S. J. The methods of identifications, analysis and removal of endocrine disrupting compounds (EDCs) in water // Journal of Hazardous Materials. 2009. № 172 (1).
  13. Richardson S. D. Water analysis: Emerging contaminants and current issues // Analytical Chemistry. 2009. № 81 (12).
  14. Hernandes F., Sancho J. V., Ibanez M., Grimalt S. Investigation of pesticide metabolites in food and water by LC-TOF-MS // Trends in Analytical Chemistry. 2008. № 27 (10).
  15. Zhao J.-L., Ying G.-G., Wang L., et al. Determination of phenolic endocrine disrupting chemicals and acidic pharmaceuticals in surface water of Pearl Rivers in South China by gas chromatography-negative chemical ionization-mass spectrometry // Science of the Total Environment. 2009. № 407 (2).
  16. Williamson L. N., Bartlett M. G. Quantitative liquid chromatography/time-of-flight mass spectrometry // Biomedical Chromatography. 2007. № 21 (6).
  17. Ibanez M., Sancho J. V., McMillan D., et al. Rapid non-target screening of organic pollutants in water by ultraperformance liquid chromatography coupled to time-of-flight mass spectrometry // Trends in Analytical Chemistry. 2008. № 27 (5).
  18. Jackson J., Sutton R. Sources of endocrine-disrupting chemicals in urban wastewater, Oakland, CA // Science of the Total Environment. 2008. № 405 (1–3).
  19. Janex-Habibi M., Huyard A., Esperanza M., Bruchet A. Reduction of endocrine disruptor emissions in the environment: The benefit of wastewater treatment // Water Research. 2009. № 43 (6).
  20. Li X., Peng P., Zhang S., et al. Removal of polychlorinated dibenzo-p-dioxins and polychlorinated dibenzofurans by three coagulants in simulated coagulation process for drinking water treatment // Journal of Hazardous Materials. 2009. № 162 (1).
  21. Liu Z., Kanjo Y., Mizutani S. Removal mechanisms for endocrine disrupting compounds (EDCs) in wastewater treatment: Physical means, biodegradation and chemical advanced oxidation: A review // Science of the Total Environment. 2009. № 407 (2).
  22. Koh Y. K. K., Chiu T. Y., Boobis A., et al. Treatment and removal strategies for estrogens from wastewater // Environmental Technology Journal. 2008. № 29 (2).
  23. Mao L., Colosi L. M., Gao S., Huang Q. Understanding ligninase-mediated reactions of endocrine disrupting chemicals in water: Reaction rates and quantitative structure-activity relationships // Environmental Science & Technology. 2011. № 45 (14).
  24. Auriol M., Filali-Meknassi, Tyagi R. D., et al. Endocrine disrupting compounds removal from wastewater, a new challenge // Proceedings of the Australian Biochemical Society. 2006. № 41.
  25. Zheng W., Closi L. M. Peroxidase-mediated removal of endocrine disrupting compound mixture from water // Chemosphere. 2011. № 85 (4).
  26. Majdik C., Katona G., Chintoanu M., et al. Phenol removal from wastewater using polyphenoloxidase from potato // Studia of University Babes-Bolyai. Chemia. 2011. № 56 (1).
  27. Shi J. H., Suzuki Y., Lee B. D., et al. Isolation and characterization of the ethynylestradiol biodegrading microorganism Fusarium proliferatum strain HNS-1 // Water Science and Technology. 2002. № 45 (12).
  28. Liu C., Huang X., Wang H. Start-up of a membrane bioreactor bioaugmented with genetically engineered microorganism for enhanced treatment of atrazine containing wastewater // Desalination. 2008. № 231 (1–3).
  29. Zhao L. J., Ma F., Guo J. G., Zhao Q. L. Petrochemical wastewater treatment with pilot-scale bioaugmented biological treatment system // Journal of Zeijang University. 2007. № 8 (11).
  30. Guo J., Ma F., Jiang K. Bioaugmentation combined with biofilm process in the treatment of petrochemical wastewater at low temperatures // Journal of Water Resources Protection. 2008. № 1.
  31. Joss A., Andersen H., Ternes T., et al. Removal of estrogens in municipal wastewater treatment under aerobic and anaerobic conditions: Consequences for plant optimization // Environmental Science & Technology. 2004. № 50 (5).
  32. Ivashechkin P., Corvini P. F. X., Dohmann M. Behavior of endocrine disrupting chemicals during the treatment of municipal sewage sludge // Water Science and Technology. 2004. № 50 (5).
  33. Kikuta T., Urase T. Removal of endocrine disruptors in membrane separation activated sludge process // Desalination. 2005. № 1778.
  34. Estrada-Arriaga E. B., Mijaylova P. N. Influence of operational parameters (sludge retention time and hydraulic residence time) on the removal of estrogens by membrane bioreactor // Environmental Science and Pollution Resources. 2011. № 18 (7).
  35. Wintgens T., Gallenkemper M., Melin T. Endocrine disrupter removal from wastewater using membrane bioreactor and nanofiltration technology // Desalination. 2002. № 146 (1–3).
  36. Brice R., Silver N., Church N., Couper R. Publication 20 Conference 2006 / Removal of viruses and endocrine disrupters across the MBR processes: www.awtwater.com/data/media/documents/.
  37. EU LIFE PERBIOF PROJECT, 2007. www.cnr.it/istituti/FocusByN_eng.html?cds=069&nfocus=7.
  38. Balest L., Mascolo G., Di Iaconi C., Lopez A. Removal of endocrine disrupter compounds from municipal wastewater by an innovative biological technology // Water Science and Technology. 2008. № 58 (4).
  39. Clouzot L., Marrot B., Doumenq P., Roche N. 17-ethinylestradiol: An endocrine disrupter of great concern. Analytical methods and removal processes applied to water purification: A review // Environmental Progress. 2008. № 27 (3).
  40. Ramadori R., Di Iaconi R., Lopez A., Passino R. An innovative technology based on aerobic granular biomass for treating municipal and/or industrial wastewater with low environment impact // Water Science and Technology. 2006. № 53 (12).
  41. Madsen P. B., Johansen N. H., Andersen H. R., Kaas P. Removal of endocrine disrupters and patogens. Advanced photooxidation processes at Horsholm WWTP: Paper for IWA Beijing, 2006.
  42. Comez-Pacheco C. V., Sanchez-Polo M., Rivera-Utrilla J., Lopez-Penalver J. Tetracycline removal from waters by integrated technologies based on ozonation and biodegradation // Chemical Engineering Journal. 2011. № 178.
  43. Pocostales P., Alvarez P., Beltran F. J. Catalytic ozonation promoted by alumina-based catalysts for the removal of some pharmaceuticals compounds from water // Chemical Engineering Journal. 2011. № 168 (3).
  44. Im J.-K., Cho I.-H., Kim S.-K., Zoh K.-D. Optimization of carbamazepine removal in O3/UV/peroxide system using a response surface methodology with central composite design // Desalination. 2012. № 285.
  45. Benotti M. J., Stanford B. D., Wert E. C., Snyder S. A. Evaluation of a photocatalytic reactor membrane pilot system for the removal of pharmaceuticals and endocrine disrupting compounds from water // Water Research. 2009. № 43.
  46. Petruzelli D., Boghetich G., Petrella M., et al. Advanced oxidation as a pretreatment of industrial landfill leachate // Global NEST Journal. 2007. № 9 (1).
  47. Rajeswari R., Kanmani S. A study on synergistic effect of photocatalytic ozonation for carbaryl degradation // Desalination. 2009. № 242 (1–3).
  48. Rivas J., Gimeno O., Borralho T., Sagasti J. UV-C and UV-C/peroxide elimination of selected pharmaceuticals in secondary effluents // Desalination. 2011. № 279 (1–3).
  49. Yuan F., Hu C., Hu X., et al. Degradation of selected pharmaceuticals in aqueous solution with UV and UV/H2O2 // Water Research. 2009. № 43 (6).
  50. Vilhunen S. H., Silanpaa M. E. T. Ultraviolet light emitted diodes and hydrogen peroxide in the photodegradation of aqueous phenol // Journal of Hazardous Materials. 2009. № 161 (2–3).
  51. Trovo A. G., Nogueira R. F. P., Aguera A., et al. Degradation of sulfamethoxazole in water by solar photo-Fenton. Chemical and toxicological evaluation // Water Research. 2009. № 43 (16).
  52. Shapelli N. W., Vrabel M. A., Madse P. J., et al. Destruction of estrogens using Fe-TAML/peroxide catalysis // Environmental Science & Technology. 2008. № 42 (4).
  53. Kunde L., Weiping L., Gan J. Oxidative removal of bisphenol A by manganese dioxide: Efficasy, products and pathways // Environmental Science & Technology. 2009. № 43 (10).
  54. Snyder S., Westerhoff P., Song R., et al. Evaluation of conventional and advanced treatment processes to remove endocrine disruptors and pharmaceutically active compounds: American Water Works Association Research Foundation (AWWARF). Project № 2758, 2011.
  55. Yoon Y., Westerhoff P., Snyder R. S. A., Wert E. C. Nanofiltration and ultrafiltration of endocrine disrupting compounds, pharmaceuticals and personal care products // Journal of Membrane Science. 2006. № 270.
  56. Nghiem L. D., Manis A., Soldenhoff K., Schafer A. I. Estrogenic hormone removal from wastewater using NF/RO membranes // Journal of Membrane Science. 2004. № 242.
  57. Bellona C., Jorg E., Drewes J. E., et al. Factors affecting the rejection of organic solutes during NF/RO treatment: A literature review // Water Research. 2004. № 38.
  58. Sahar E., Inbal D., Gelman E., et al. The use of RO to remove emerging micropollutants following CAS/UF or MBR treatment of municipal wastewater // Desalination. 2011. № 273 (1).
  59. Morimitsu K., Machida M., Yoshioka Y. Method for treatment of water containing hardly-degradable substances: European Patent EP 1 903 008 A1, 2008.
  60. Kumar A. K., Mohan S. V. Endocrine disruptive synthetic estrogen (17-ethynylestradiol) removal from aqueous phase through batch and column sorption studies: mechanistic and kinetic analysis // Desalination. 2011. № 276 (1–3).
  61. Chaber P., Gworek B. Zastosowanie zeolitow typu A do oczyszczania sciekow komunalnych z wielopiersceniowych weglowodorodow aromatycznych // Przemysl Chemiczny. 2011. № 90 (2).
  62. Zhang L., Song X., Liu X., et al. Studies on removal of tetracycline by multi-walled carbon nanotubes // Chemical Engineering Journal. 2011. № 178.
  63. Yang W., Zheng F., Lu Y., et al. Adsorption interaction of tetracyclines with porous synthetic resins // Industrial & Engineering Chemistry Research. 2011. № 50 (24).
  64. Ren Y., Nakano K., Nomura M., et al. A thermodynamic analyses on adsorption of estrogens in activated sludge process // Water Research. 2007. № 41.
  65. Belgiorno V., Rizzo L., Fatta D., et al. Review on endocrine disrupting emerging compounds in urban wastewater: Occurence and removal by photocatalysis and ultrasonic irradiation for wastewater reuse // Desalination. 2007. № 215.
  66. Sponza D. T., Oztekin R. Removals of some hydrophobic polyaromatic hydrocarbons (PAHs) and Daphnia magna acute toxicity in a petrochemical industry wastewater with ultrasound in Izmir-Turkey // Separation and Purification Technology. 2011. № 77 (3).
  67. Guo Z., Feng R. Ultrasonic irradiation-induced degradation of low-concentration bisphenol A in aqueous solution // Journal of Hazardous Materials. 2009. № 163 (2–3).
  68. Yoshihara S., Marugananthan M. Decomposition of various endocrine-disrupting chemicals at boron-doped diamond electrode // Electrochimica Acta. 2009. № 54.
  69. Lofreddo E., Gatullo E. C., Traversa A., Sensei N. Potential of various herbaceous species to remove the endocrine disruptor bisphenol A from aqueous media // Chemosphere. 2010. № 80 (11).
  70. Homlok R., Tacacs E., Wojnarovits L. Elimination of diclofenac from water using irradiation technology // Chemosphere. 2011. № 85 (4).
  71. Qiu G., Song Y., Zeng P., et al. Phosphorus recovery from fosfomycin pharmaceutical wastewater by wet air oxidation and phosphorus crystallization // Chemosphere. 2011. № 84 (2).

Журнал ВСТ включен в новый перечень ВАК

Шлафман В. В. Проектирование под заданную ценность, или достижимая эффективность технических решений – что это?

Banner Kofman 1

Авторизация

Внимание! Рекомендуется просматривать сайт максимально свежими версиями браузеров. Устаревшие версии не смогут корректно скачать материалы номеров журнала.