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Textile Wastewater Treated by Constructed Wetlands – A Critical Review

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Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Textile industries are among the most environmentally unsustainable businesses, releasing large amounts of effluent that endangers ecosystem health. Constructed wetlands (CWs) are low-cost eco-technical treatments for industrial wastewater control. The CWs are self-contained remediation systems that do not require external energy and have basic mechanisms for pollutant removal, such as biological, chemical, and physical processes. For more than sixty years, constructed wetlands have been utilized to clean wastewater. Most applications have been developed to treat municipal or household wastewater, although CWs are now successfully used to treat a wide range of wastewater types. Constructed wetlands were also employed to treat textile industry effluents in the 1990s. The survey indicated that textile manufacturing wastewaters were treated using subsurface and surface-flow wetlands. Both horizontal and vertical flow systems have been designed within subsurface flow-created wetlands. In addition, many hybrid-built wetlands have recently been documented in the literature for textile industrial wastewater treatment. According to the survey, textile industrial wastewater is treated in constructed wetlands on all continents, and this research includes the data from 65 constructed wetlands in 21 nations worldwide. This paper examined the latest improvements and discoveries in CWs and the many types of CWs used for textile wastewater treatment. The paper also demonstrated state-of-the-art integrated technologies for improving the performance and sustainability of CWs, such as CW-MFC systems.
Słowa kluczowe
Rocznik
Strony
256--275
Opis fizyczny
Bibliogr. 163 poz., tab.
Twórcy
  • Department of Civil Engineering, College of Engineering, Al-Muthanna University, Iraq
  • Civil Engineering Research Group, School of Computing, Science and Engineering, University of Salford, Salford, Greater Manchester M5 4WT, United Kingdom
Bibliografia
  • 1. Allende, K. L., Mccarthy, D. & Fletcher, T. 2014. The influence of media type on removal of arsenic, iron and boron from acidic wastewater in horizontal flow wetland microcosms planted with Phragmites australis. Chemical Engineering Journal, 246, 217–228.
  • 2. Almaamary, E.A.S., Abdullah, S.R.S., Ismail, N.I., Idris, M., Kurniawan, S.B. and Imron, M.F. 2022. Comparative performance of Scirpus grossus for phytotreating mixed dye wastewater in batch and continuous pilot subsurface constructed wetland systems. Journal of Environmental Management, 307, 14534.
  • 3. Arivoli, A., Mohanraj, R. & Seenivasan, R. 2015. Application of vertical flow constructed wetland in treatment of heavy metals from pulp and paper industry wastewater. Environmental Science and Pollution Research, 22(17), 13336–13343.
  • 4. Barakat, M. 2011. New trends in removing heavy metals from industrial wastewater. Arabian Journal of Chemistry, 4(4), 361–377.
  • 5. Bedah, B.J. and Faisal, A.A.H. 2020. Use of vertical subsurface flow constructed wetland for reclamation of wastewater contaminated with Congo red dye. Plant Arch, 20, 8784–8792.
  • 6. Benny, C.K. and Chakraborty, S. 2023. Dyeing wastewater treatment in horizontal-vertical constructed wetland using organic waste media. Journal of Environmental Management, 331, 117213.
  • 7. Bhateria, R. and Jain, D. 2016. Water quality assessment of lake water: a review. Sustainable Water Resources Management, 2(2), 161–173.
  • 8. Bidu, J.M., Van der Bruggen, B., Rwiza, M.J. and Njau, K.N. 2021. Current status of textile wastewater management practices and effluent characteristics in Tanzania. Water Science and Technology, 83(10), 2363–2376.
  • 9. Bilotta, G.S. and Brazier, R.E. 2008. Understanding the influence of suspended solids on water quality and aquatic biota. Water research, 42(12), 2849–2861.
  • 10. Brix, H. 1994. Functions of macrophytes in constructed wetlands. Water Science and Technology, 29(4), 71–78.
  • 11. Brix, H. 2003. Plants used in constructed wetlands and their functions. 1st International Seminar on the use of Aquatic Macrophytes for Wastewater Treatment in Constructed Wetlands, edit. Dias V., Vymazal J. Lisboa, Portugal, 81–109.
  • 12. Bulc, T.G. and Ojstršek, A. 2008. The use of constructed wetland for dye-rich textile wastewater treatment. Journal of hazardous materials, 155(1–2), 76–82.
  • 13. Chai, Y., Ding, H., Zhang, Z., Xian, Y., Pan, Z. & Jin, L. 2006. Study on photocatalytic oxidation for determination of the low chemical oxygen demand using a nano-TiO2–Ce(SO4)2 coexisted system. Talanta, 68(3), 610–615.
  • 14. Chandanshive, V.V., Rane, N.R., Tamboli, A.S., Gholave, A.R., Khandare, R.V. and Govindwar, S.P. 2017. Co-plantation of aquatic macrophytes Typha angustifolia and Paspalum scrobiculatum for effective treatment of textile industry effluent. Journal of Hazardous Materials, 338, 47–56.
  • 15. Chandanshive, V.V., Kadam, S.K., Khandare, R.V., Kurade, M.B., Jeon, B.H., Jadhav, JP and Govindwar, S.P. 2018. In situ phytoremediumtion of dyes from textile wastewater using garden ornamental plants, effect on soil quality and plant growth. Chemosphere, 210, 968–976.
  • 16. Chapanova, G., Jank, M., Schlegel, S. & Koeser, H. 2007. Effect of temperature and salinity on the wastewater treatment performance of aerobic submerged fixed bed biofilm reactors. Water science and technology, 55(8–9), 159–164.
  • 17. Chandanshive, V., Kadam, S., Rane, N., Jeon, B.H., Jadhav, J. and Govindwar, S. 2020. In situ textile wastewater treatment in high rate transpiration system furrows planted with aquatic macrophytes and floating phytobeds. Chemosphere, 252, 126513.
  • 18. Cooper, P.F., Job, G.D., Green, M.B. and Shutes, R.B.E. 1997. Reed beds and constructed wetlands for wastewater treatment. European water pollution control, 6(7), 49.
  • 19. Cooper, P.F. and Findlater, B.C. eds. 2013. Constructed Wetlands in Water Pollution Control: Proceedings of the International Conference on the Use of Constructed Wetlands in Water Pollution Control, Held in Cambridge, UK, 24–28 September 1990. Elsevier.
  • 20. Costa, M.C., Mota, F.S.B., Santos, A.B.D., Mendonça, G.L.F. and Nascimento, R.F.D. 2012. Effect of dye structure and redox mediumtors on anaerobic azo and anthraquinone dye reduction. Quimica Nova, 35, 482–486.
  • 21. Cui, L., Zhu, X., Ma, M., Ouyang, Y., Dong, M., Zhu, W. and Luo, S. 2008. Phosphorus sorption capacities and physicochemical properties of nine substrate materials for constructed wetland. Archives of environmental contamination and toxicology, 55, 210–217.
  • 22. Cumnan, S. and Yimrattanabovorn, J. 2012. The use of constructed wetland for azo dye textile wastewater. Int J Civ Eng Build Mat, 2(4), 150–158.
  • 23. Daris, P.J.J., Sutanto, H.B. and Prihatmo, G. 2020. Pengolahan Limbah Tekstil dengan Metode Hibrid Menggunakan Sistem Filtrasi Bottom Ash dan Constructed Wetland. SAINTEK: Jurnal Ilmiah Sains dan Teknologi Industri, 4(2), 77–81.
  • 24. Davies, L.C., Carias, C.C., Novais, J.M. and Martins-Dias, S. 2005. Phytoremediumtion of textile effluents containing azo dye by using Phragmites australis in a vertical flow intermittent feeding constructed wetland. Ecological Engineering, 25(5), 594–605.
  • 25. Davies, L.C., Pedro, I.S., Novais, J.M. and Martins-Dias, S. 2006. Aerobic degradation of Acid orange 7 in a vertical-flow constructed wetland. Water research, 40(10), 2055–2063.
  • 26. Davies, L.C., Cabrita, G.J.M., Ferreira, R.A., Carias, C.C., Novais, J.M. and Martins-Dias, S. 2009. Integrated study of the role of Phragmites australis in azo-dye treatment in a constructed wetland: from pilot to molecular scale. Ecological Engineering, 35(6), 961–970.
  • 27. Davies, T.H. and Cottingham, P.D. 1994. The use of constructed wetlands for treating industrial effluent (textile dyes). Water Science and Technology, 29(4), 227–232.
  • 28. Ding, Y., Song, X., Wang, Y. & Yan, D. 2012. Effects of dissolved oxygen and influent COD/N ratios on nitrogen removal in horizontal subsurface flow constructed wetland. Ecological Engineering, 46, 107–111.
  • 29. Dos Santos, A.B., Cervantes, F.J. and Van Lier, J.B. 2007. Review paper on current technologies for decolourisation of textile wastewaters: perspectives for anaerobic biotechnology. Bioresource technology, 98(12), 2369–2385.
  • 30. Du, X., Shi, C. and Ma, F. 2016. Influence of intermittent aeration and organic loading rate on lab-scale constructed wetland systems treating synthetic wastewater. Desalination and Water Treatment, 57(21), 9651–9659.
  • 31. Ellis, J., Shutes, R. & Revitt, D. 2003. Constructed Wetlands and Links with Sustainable Drainage Systems. Environment Agency, Bristol, Environmental agency.
  • 32. Faisal, A.A., Bedah, B.J.B.B.J. and Al-Hashimi, O. 2022. Constructed Wetland Units Filled with Waterworks Sludge for Remediating of Wastewater Contaminated with Congo Red Dye. Iraqi Journal of Chemical and Petroleum Engineering, 23(2), 9–17.
  • 33. Fang, Z., Song, H.L., Cang, N. and Li, X.N. 2013. Performance of microbial fuel cell coupled constructed wetland system for decolorization of azo dye and bioelectricity generation. Bioresource technology, 144, 165–171.
  • 34. Fang, Z., Song, H.L., Cang, N. and Li, X.N. 2015. Electricity production from Azo dye wastewater using a microbial fuel cell coupled constructed wetland operating under different operating conditions. Biosensors and Bioelectronics, 68, 135–141.
  • 35. Fang, Z., Song, H., Yu, R. and Li, X. 2016. A microbial fuel cell-coupled constructed wetland promotes degradation of azo dye decolorization products. Ecological Engineering, 94, 455–463.
  • 36. Fang, Z., Cheng, S., Wang, H., Cao, X. and Li, X. 2017. Feasibility study of simultaneous azo dye decolorization and bioelectricity generation by microbial fuel cell-coupled constructed wetland: substrate effects. RSC advances, 7(27), 16542–16552.
  • 37. Fergusson, J. E. 1990. Heavy elements: chemistry, environmental impact and health effects, Oxford, Pergamon Press.
  • 38. Ferreira, R.A., Duarte, J.G., Vergine, P., Antunes, C.D., Freire, F. and Martins-Dias, S. 2014. Phragmites sp. physiological changes in a constructed wetland treating an effluent contaminated with a diazo dye (DR81). Environmental Science and Pollution Research, 21(16), 9626–9643.
  • 39. Fibbi, D., Doumett, S., Colzi, I., Coppini, E., Pucci, S., Gonnelli, C., Lepri, L. and Del Bubba, M. 2011. Total and hexavalent chromium removal in a subsurface horizontal flow (h-SSF) constructed wetland operating as post-treatment of textile wastewater for water reuse. Water Science and Technology, 64(4), 826–831.
  • 40. Fibbi, D., Doumett, S., Lepri, L., Checchini, L., Gonnelli, C., Coppini, E. and Del Bubba, M. 2012. Distribution and mass balance of hexavalent and trivalent chromium in a subsurface, horizontal flow (SF-h) constructed wetland operating as post-treatment of textile wastewater for water reuse. Journal of hazardous materials, 199, 209–216.
  • 41. Foladori, P., Ortigara, A.R.C., Ruaben, J. and Andreottola, G. 2012. Influence of high organic loads during the summer period on the performance of hybrid constructed wetlands (VSSF+ HSSF) treating domestic wastewater in the Alps region. Water Science and Technology, 65(5), 890–897.
  • 42. Fu, F. & Wang, Q. 2011. Removal of heavy metal ions from wastewaters: a review. Journal of environmental management, 92(3), 407–418.
  • 43. Fu, G., Zhang, J., Chen, W. and Chen, Z. 2013. Medium clogging and the dynamics of organic matter accumulation in constructed wetlands. Ecological engineering, 60, 393–398
  • 44. Goyal, S., Sharma, G. and Bhardwaj, K.K. 2009. Decolorization of synthetic dye (Methyl Red) wastewater using constructed wetlands having upflow and downflow loading formate. Rasayan J Chem, 2(2), 329–331.
  • 45. Haddaji, D., Ghrabi-Gammar, Z., Hamed, K.B. and Bousselmi, L. 2019. A recirculating horizontal flow constructed wetland for the treatment of synthetic azo dye at high concentrations. Environmental Science and Pollution Research, 26(13), 13489–13501.
  • 46. Håkanson, L. 2006. The relationship between salinity, suspended particulate matter and water clarity in aquatic systems. Ecological research, 21(1), 75–90.
  • 47. Haygarth, P.M., Bilotta, G.S., Bol, R., Brazier, R.E., Butler, P.J., Freer, J., Gimbert, L.J., Granger, S.J., Krueger, T., Macleod, C.J.A. and Naden, P. 2006. Processes affecting transfer of sediment and colloids, with associated phosphorus, from intensively farmed grasslands: an overview of key issues. Hydrological Processes, 20(20), 4407–4413.
  • 48. Hossain, L., Sarker, S.K. and Khan, M.S. 2018. Evaluation of present and future wastewater impacts of textile dyeing industries in Bangladesh. Environmental Development, 26, 23–33.
  • 49. Holkar, C.R., Jadhav, A.J., Pinjari, D.V., Mahamuni, N.M. and Pandit, A.B. 2016. A critical review on textile wastewater treatments: possible approaches. Journal of environmental management, 182, 351–366.
  • 50. Hussain, Z., Arslan, M., Malik, M.H., Mohsin, M., Iqbal, S. and Afzal, M. 2018a. Integrated perspectives on the use of bacterial endophytes in horizontal flow constructed wetlands for the treatment of liquid textile effluent: phytoremediumtion advances in the field. Journal of environmental management, 224, 387–395.
  • 51. Hussain, Z., Arslan, M., Malik, M.H., Mohsin, M., Iqbal, S. and Afzal, M. 2018b. Treatment of the textile industry effluent in a pilot-scale vertical flow constructed wetland system augmented with bacterial endophytes. Science of the Total Environment, 645, 966–973.
  • 52. Hussain, Z., Arslan, M., Shabir, G., Malik, M.H., Mohsin, M., Iqbal, S. and Afzal, M. 2019. Remediumtion of textile bleaching effluent by bacterial augmented horizontal flow and vertical flow constructed wetlands: a comparison at pilot scale. Science of the Total Environment, 685, 370–379.
  • 53. Hussein, A. and Scholz, M. 2018. Treatment of artificial wastewater containing two azo textile dyes by vertical-flow constructed wetlands. Environmental Science and Pollution Research, 25(7), 6870–6889.
  • 54. Hussein, A. and Scholz, M. 2017. Dye wastewater treatment by vertical-flow constructed wetlands. Ecological Engineering, 101, 28–38.
  • 55. Hussein, A.M.F. 2017. Azo Textile Dyes Wastewater Treatment with Constructed Wetlands Design and Operation of Experimental Vertical-Flow Constructed Wetlands Applied for the Treatment of Azo Textile Dyes (With/Without Artificial Wastewater). Ph.D. Thesis. University of Salford (United Kingdom).
  • 56. Islam, M.M., Mahmud, K., Faruk, O. and Billah, M.S. 2011. Textile dyeing industries in Bangladesh for sustainable development. International Journal of Environmental Science and Development, 2(6), p.428.
  • 57. Jayabalan, J.B., Amirthalingam, S., Sekar, S., Santhanam, N.K. and Manoharan, S. 2020, May. Treatment of textile effluent using sub surface flow constructed wetlands. In AIP Conference Proceedings (Vol. 2240, No. 1, p. 130001). AIP Publishing LLC.
  • 58. Jayalakshmi, R., Soundaranayaki, K. and Kannan, M.S. 2022. Removal of Methylene Blue dye from textile wastewater using vertical flow constructed wetland. Materials Today: Proceedings.
  • 59. Jin, X.C., Liu, G.Q., Xu, Z.H. and Tao, W.Y. 2007. Decolorization of a dye industry effluent by Aspergillus fumigatus XC6. Applied microbiology and biotechnology, 74(1), 239–243.
  • 60. Joseph S., J., Ramasamy, V., and Kandasamy, K. 2019. Treatment of textile wastewater using vertical flow constructed wetland with planted alternanthera sessilis and zea mays. International Journal of Approximate Reasoning, 7, 731–741.
  • 61. Kabra, A.N., Khandare, R.V. and Govindwar, S.P. 2013. Development of a bioreactor for remediumtion of textile effluent and dye mixture: a plant–bacterial synergistic strategy. Water Research, 47(3), 1035–1048.
  • 62. Kadlec, R. H. & Knight, R. L. 1996. Treatment Wetlands, Florida, CRC Press.
  • 63. Kadlec, R.H. and Wallace, S. 2008. Treatment wetlands. CRC press.
  • 64. Kayombo, S.T.S.A., Mbwette, T.S.A., Katima, J.H.Y., Ladegaard, N. and Jørgensen, S.E. 2005. Waste stabilization ponds and constructed wetlands design manual. UNEP-IETC with the Danish International Development Agency (Danida), 1–59.
  • 65. Keskinkan, O. & Lugal Göksu, M. 2007. Assessment of the dye removal capability of submersed aquatic plants in a laboratory-scale wetland system using anova. Brazilian Journal of Chemical Engineering, 24(2), 193–202.
  • 66. Khandare, R.V., Kabra, A.N., Kadam, A.A. and Govindwar, S.P. 2013. Treatment of dye containing wastewaters by a developed lab scale phytoreactor and enhancement of its efficacy by bacterial augmentation. International Biodeterioration & Biodegradation, 78, 89–97.
  • 67. Khehra, M.S., Saini, H.S., Sharma, D.K., Chadha, B.S. and Chimni, S.S. 2005. Decolorization of various azo dyes by bacterial consortium. Dyes and pigments, 67(1), 55–61.
  • 68. Kirandeep, K., Arvinder, K. and Rajvir, K. 2015. Cytogenotoxicity of Azo dye acid blue-113 (ab-113) to Channa punctatus (Bloch). Journal of Environmental Research and Development, 9(3), p.547.
  • 69. Knowles, P., Dotro, G., Nivala, J. and García, J. 2011. Clogging in subsurface-flow treatment wetlands: occurrence and contributing factors. Ecological engineering, 37(2), 99–112.
  • 70. Kyambadde, J. 2005. Optimizing processes for biological nitrogen removal in Nakivubo wetland, Uganda. AlbaNova univercity centre.
  • 71. Kumar, V. and Chopra, A.K. 2012. Monitoring of Physico-chemical and Microbiological Characteristics of Municipal Wastewater at Treatment Plant, Haridwar City(Uttarakhand) India. Journal of Environmental Science and Technology, 5(2), 109–118.
  • 72. Kumar Yeruva, D., Ranadheer, P., Kiran Kumar, A. and Venkata Mohan, S. 2019. Tri-phasic engineered wetland system for effective treatment of azo dye-based wastewater. npj Clean Water, 2(1), 1–8.
  • 73. Kurniadie, D., Wijaya, D., Widayat, D.,and Umiyati, U. 2020. Constructed wetlands to treat textile industry wastewater using phragmites karka. Pollution Research, 39(3), 600–605
  • 74. Lakherwal, D. 2014. Adsorption of heavy metals: a review. International Journal of Environmental Research and Development, 4(1), 41–48.
  • 75. Lavrova, S. and Koumanova, B. 2013. Nutrients and organic matter removal in a vertical-flow constructed wetland. Applied Bioremediation-Active and Passive Approaches, 69–99.
  • 76. Lee, C. G., Fletcher, T. D. & Sun, G. 2009. Nitrogen removal in constructed wetland systems. Engineering in Life Sciences, 9(1), 11–22.
  • 77. Lee, D.J., Kang, S.W., Park, J.H., Kim, S.H., Choi, I.W., Hwang, T.H., Lim, B.J., Jung, S.J., Park, H.N., Cho, J.S. and Seo, D.C. 2015. Enhancement of nutrient removal in a hybrid constructed wetland utilizing an electric fan air blower with renewable energy of solar and wind power. Journal of Chemistry, 2015.
  • 78. Lehl, H.K., Ong, S.A., Ho, L.N., Wong, Y.S., Naemah, F., Oon, YL, Oon, YS and Thung, WE, 2019. Decolourization and mineralization of acid red 27 metabolites by using multiple zoned aerobic and anaerobic constructed wetland reactor. Desalin. Water Treat, 160, 81–93.
  • 79. Li, J., Luo, G., He, L., Xu, J. and Lyu, J. 2018. Analytical approaches for determining chemical oxygen demand in water bodies: a review. Critical Reviews in Analytical Chemistry, 48(1), 47–65.
  • 80. Liu, J., Zhang, X.-H., You, S.-H., Wu, Q.-X. & Zhou, K.-N. 2015. Function of Leersia hexandra Swartz in constructed wetlands for Cr (VI) decontamination: a comparative study of planted and unplanted mesocosms. Ecological Engineering, 81, 70–75.
  • 81. Likens, G.E. ed. 2010. Biogeochemistry of inland waters. Academic press.
  • 82. Manios, T., Stentiford, E. & Millner, P. 2003. Removal of total suspended solids from wastewater in constructed horizontal flow subsurface wetlands. Journal of Environmental Science and Health, Part A, 38(6), 1073–1085.
  • 83. Matagi, S., Swai, D. & Mugabe, R. 1998. A review of heavy metal removal mechanisms in wetlands. Afr. J. Trop. Hydrobiol. Fish., 8(1), 13–25.
  • 84. Martin, M. 2011. Our Toxic World A guide to hazardous substances in our everyday lives. Journal of Resources, Energy and Development, 8(2), 189–190.
  • 85. Masi, F., Rizzo, A., Bresciani, R., Martinuzzi, N., Wallace, S.D., Van Oirschot, D., Macor, F., Rossini, T., Fornaroli, R. and Mezzanotte, V. 2019. Lessons learnt from a pilot study on residual dye removal by an aerated treatment wetland. Science of the Total Environment, 648, 144–152.
  • 86. Mazumder, D. 2013. Scope of BOD, nitrogen and phosphorous removal through plant-soil interaction in the wetland. International Journal of Environmental and Ecological Engineering, 7(2), 104–113.
  • 87. Mbuligwe, S.E. 2005. Comparative treatment of dye-rich wastewater in engineered wetland systems (EWSs) vegetated with different plants. Water Research, 39(2–3), 271–280.
  • 88. Meng, P., Pei, H., Hu, W., Shao, Y. & Li, Z. 2014. How to increase microbial degradation in constructed wetlands: influencing factors and improvement measures. Bioresource technology, 157, 316–326.
  • 89. Mengzhi, C., Yingying, T., Xianpo, L. & Zhaoxiang, Y. 2009. Study on the heavy metals removal efficiencies of constructed wetlands with different substrates. Journal of water Resource and Protection,1, 22–28.
  • 90. Mietto, A., Politeo, M., Breschigliaro, S. & Borin, M. 2015. Temperature influence on nitrogen removal in a hybrid constructed wetland system in Northern Italy. Ecological Engineering, 75, 291–302.
  • 91. Mittal, Y., Dash, S., Srivastava, P., Mishra, P.M., Aminabhavi, T.M. and Yadav, A.K. 2022. Azo dye containing wastewater treatment in earthen membrane based unplanted two chambered constructed wetlands-microbial fuel cells: A new design for enhanced performance. Chemical Engineering Journal, 427, 131856.
  • 92. Mustafa, A. 2010. Nutrient removal with integrated constructed wetlands: microbial ecology and treatment performance evaluation of full-scale integrated constructed wetlands. doctoral dissertation, Edinburgh, UK.
  • 93. Nawab, B., Esser, K.B., Jenssen, P.D., Nyborg, I.L. and Baig, S.A. 2018. Technical viability of constructed wetland for treatment of dye wastewater in Gadoon Industrial Estate, Khyber Pakhtunkhwa, Pakistan. Wetlands, 38(6), 1097–1105.
  • 94. Nawaz, N., Ali, S., Shabir, G., Rizwan, M., Shakoor, M.B., Shahid, M.J., Afzal, M., Arslan, M., Hashem, A., Abd_Allah, E.F. and Alyemeni, M.N. 2020. Bacterial augmented floating treatment wetlands for efficient treatment of synthetic textile dye wastewater. Sustainability, 12(9), p.3731.
  • 95. Nilratnisakorn, S., Thiravetyan, P. and Nakbanpote, W. 2009. A constructed wetland model for synthetic reactive dye wastewater treatment by narrow-leaved cattails (Typha angustifolia Linn.). Water Science and Technology, 60(6), 1565–1574.
  • 96. Noonpui, S. and Thiravetyan, P. 2011. Treatment of reactive azo dye from textile wastewater by burhead (Echinodorus cordifolius L.) in constructed wetland: effect of molecular size. Journal of Environmental Science and Health Part A, 46(7), 709–714.
  • 97. O’neill, C., Lopez, A., Esteves, S., Hawkes, F.R., Hawkes, D.L. and Wilcox, S. 2000. Azo-dye degradation in an anaerobic-aerobic treatment system operating on simulated textile effluent. Applied microbiology and biotechnology, 53(2), 249–254.
  • 98. Ojstršek, A., Fakin, D. and Vrhovšek, D. 2007. Residual dyebath purification using a system of constructed wetland. Dyes and pigments, 74(3), 503–507.
  • 99. Ong, S.A., Uchiyama, K., Inadama, D. and Yamagiwa, K. 2009. Simultaneous removal of color, organic compounds and nutrients in azo dye-containing wastewater using up-flow constructed wetland. Journal of Hazardous Materials, 165(1–3), 696–703.
  • 100. Ong, S.A., Uchiyama, K., Inadama, D., Ishida, Y. and Yamagiwa, K. 2010. Treatment of azo dye Acid Orange 7 containing wastewater using up-flow constructed wetland with and without supplementary aeration. Bioresource technology, 101(23), 9049–9057.
  • 101. Ong, S.A., Ho, L.N., Wong, Y.S., Dugil, D.L. and Samad, H.A.F.I.Z.A.H. 2011. Semi-batch operated constructed wetlands planted with Phragmites australis for treatment of dyeing wastewater. Journal of Engineering Science and Technology, 6(5), 623–631.
  • 102. Oon, Y.L., Ong, S.A., Ho, L.N., Wong, Y.S., Daha-lan, F.A., Oon, Y.S., Lehl, H.K., Thung, W.E. and Nordin, N. 2018. Up-flow constructed wetland-microbial fuel cell for azo dye, saline, nitrate remediumtion and bioelectricity generation: From waste to energy approach. Bioresource technology, 266, 97–108.
  • 103. Oon, Y.L., Ong, S.A., Ho, L.N., Wong, Y.S., Dahalan, F.A., Oon, Y.S., Teoh, T.P., Lehl, H.K. and Thung, W.E. 2020. Constructed wetland–microbial fuel cell for azo dyes degradation and energy recovery: Influence of molecular structure, kinetics, mechanisms and degradation pathways. Science of The Total Environment, 720, 137370.
  • 104. Oyaro, N., Juddy, O., Murago, E. N. & Gitonga, E. 2007. The contents of Pb, Cu, Zn and Cd in meat in Nairobi, Kenya. International journal of food, agriculture and environment, 5(3–4), 119–121.
  • 105. Patel, D., Bapodra, S.L., Madamwar, D. and Desai, C. 2021. Electroactive bacterial community augmentation enhances the performance of a pilot scale constructed wetland microbial fuel cell for treatment of textile dye wastewater. Bioresource Technology, 332, 125088.
  • 106. Pervez, A., Headley, A.D. and Terzis, E. 1999, November. The treatment of azo dyes using reedbed treatment systems. In Wetlands & Remediumtion: An International Conference 187–194.
  • 107. Pielesz, A., Baranowska, I., Rybak, A. & Włochowicz, A. 2002. Detection and determination of aromatic amines as products of reductive splitting from selected azo dyes. Ecotoxicology and environmental safety, 53(1), 42–47.
  • 108. Postolache, O.A., Girao, P.S., Pereira, J.D. and Ramos, H.M.G. 2007. Multibeam optical system and neural processing for turbidity measurement. IEEE Sensors Journal, 7(5), 677–684.
  • 109. Priya, S.G. and Brighu, U. 2013. Comparison of different types of media for nutrient removal efficiency in vertical upflow constructed wetlands. International Journal of Environmental Engineering and Management, 4(5).
  • 110. Rahmadyanti, E. and Audina, O. 2020. The performance of hybrid constructed wetland system for treating the batik wastewater. Journal of Ecological Engineering, 21(3).
  • 111. Rahmadyanti, E., Wiyono, A. and Firmansyah, G.A. 2020. Integrated system of biofilter and constructed wetland for sustainable batik industry. GEOMATE Journal, 18(70), 138–148.
  • 112. Rathour, R., Patel, D., Shaikh, S. and Desai, C. 2019. Eco-electrogenic treatment of dyestuff wastewater using constructed wetland-microbial fuel cell system with an evaluation of electrode-enriched microbial community structures. Bioresource technology, 285, 121349.
  • 113. Reddy, K.R., Kadlec, R.H., Flaig, E. and Gale, P.M. 1999. Phosphorus retention in streams and wetlands: a review. Critical reviews in environmental science and technology, 29(1), 83–146.
  • 114. Riva, V., Mapelli, F., Syranidou, E., Crotti, E., Choukrallah, R., Kalogerakis, N. and Borin, S. 2019. Root bacteria recruited by Phragmites australis in constructed wetlands have the potential to enhance azo-dye phytodepuration. Microorganisms, 7(10), 384.
  • 115. Ruddon, R.W. 2007. Cancer biology. Oxford University Press.
  • 116. Saba, B., Jabeen, M., Mahmood, T. and Aziz, I. 2014. Treatment comparison efficiency of microbial amended agro-waste biochar constructed wetlands for reactive black textile dye. International Proceedings of Chemical, Biological and Environmental Engineering, 65, 13–16.
  • 117. Saeed, T. & Sun, G. 2012. A review on nitrogen and organics removal mechanisms in subsurface flow constructed wetlands: dependency on environmental parameters, operating conditions and supporting media. Journal of environmental management, 112, 429–448.
  • 118. Saeed, T. and Sun, G. 2013. A lab-scale study of constructed wetlands with sugarcane bagasse and sand medium for the treatment of textile wastewater. Bioresource technology, 128, 438–447.
  • 119. Saharimoghaddam, N., Massoudinejad, M. and Ghaderpoori, M. 2019. Removal of pollutants (COD, TSS, and NO3−) from textile effluent using Gambusia fish and Phragmites australis in constructed wetlands. Environmental geochemistry and health, 41(3), 1433–1444.
  • 120. Sahu, O. 2014. Reduction of heavy metals from waste water by wetland. International Letters of Natural Sciences, 7, 35–43.
  • 121. Saket, P., Mittal, Y., Bala, K., Joshi, A. and Yadav, A.K. 2022. Innovative constructed wetland coupled with microbial fuel cell for enhancing diazo dye degradation with simultaneous electricity generation. Bioresource Technology, 345, 126490.
  • 122. Sethulekshmi, S. and Chakraborty, S. 2021. Textile wastewater treatment using horizontal flow constructed wetland and effect of length of flow in operation efficiency. Journal of Environmental Chemical Engineering, 9(6), 106379.
  • 123. Sharma, G. and Brighu, U. 2014. Performance analysis of vertical up-flow constructed wetlands for secondary treated effluent. APCBEE procedia, 10, 110–114.
  • 124. Shaw, E.A. and Richardson, J.S. 2001. Direct and indirect effects of sediment pulse duration on stream invertebrate assemblages and rainbow trout (Oncorhynchus mykiss) growth and survival. Canadian Journal of Fisheries and Aquatic Sciences, 58(11), 2213–2221.
  • 125. Shehzadi, M., Afzal, M., Khan, M.U., Islam, E., Mobin, A., Anwar, S. and Khan, Q.M. 2014. Enhanced degradation of textile effluent in constructed wetland system using Typha domingensis and textile effluent-degrading endophytic bacteria. Water research, 58, 152–159.
  • 126. Shenoy, A., Bansal, V. and Shukla, B.K. 2022. Treatability of effluent from small scale dye shop using water hyacinth. Materials Today: Proceedings.
  • 127. Shenoy, A., Shukla, B.K. and Bansal, V. 2022. Sustainable design of textile industry effluent treatment plant with constructed wetland. Materials Today: Proceedings.
  • 128. Sheoran, A. and Sheoran, V. 2006. Heavy metal removal mechanism of acid mine drainage in wetlands: a critical review. Minerals engineering, 19(2), 105–116.
  • 129. Sinicrope, T. L., Langis, R., Gersberg, R. M., Busnardo, M. J. & Zedler, J. B. 1992. Metal removal by wetland mesocosms subjected to different hydroperiods. Ecological Engineering, 1(4), 309–322.
  • 130. Sivakumar, D., Shankar, D., Prathima, A.V. and Valarmathi, M. 2013. Constructed wetland treatment of textile industry wastewater using aquatic macrophytes. International journal of environmental sciences, 3(4), 1223.
  • 131. Schaechter, M. 2009. Encyclopedia of microbiology, Oxford, UK, Elesvier.
  • 132. Scholz, M. 2011. Wetland Systems, Storm Water Management Control, London, Springer.
  • 133. Scholz, M. 2015. Wetland systems to control urban runoff. Elsevier.
  • 134. Scholz, M., Xu, J. & Dodson, H.I. 2001. Comparison of filter media, plant communities and microbiology within constructed wetlands treating wastewater containing heavy metals. Journal of Chemical Technology and Biotechnology, 76(8), 827–835.
  • 135. Songliu, L., Hongying, H., Yingxue, S. & Jia, Y. 2009. Effect of carbon source on the denitrification in constructed wetlands. Environmental sciences, 21(8), 1036–1043
  • 136. Sonu, K., Sogani, M., Syed, Z., Rajvanshi, J. and Sengupta, N. 2022. Effectiveness of rice husk in the removal of methyl orange dye in Constructed Wetland-Microbial Fuel Cell. Bioresource Technology Reports, 20, 101223.
  • 137. Stefanakis, A.I. and Tsihrintzis, V.A. 2012. Effects of loading, resting period, temperature, porous media, vegetation and aeration on performance of pilot-scale vertical flow constructed wetlands. Chemical engineering journal, 181, 416–430.
  • 138. Stefanakis, A., Akratos, C.S. and Tsihrintzis, V.A. 2014. Vertical flow constructed wetlands: eco-engineering systems for wastewater and sludge treatment. Newnes.
  • 139. Sukumaran, D. 2013. Phytoremediation of heavy metals from industrial effluent using constructed wetland technology. Applied Ecology and Environmental Sciences, 1(5), 92–97.
  • 140. Sumner, M.E. ed. 1999. Handbook of soil science. CRC press.
  • 141. Tara, N., Arslan, M., Hussain, Z., Iqbal, M., Khan, Q.M. and Afzal, M. 2019a. On-site performance of floating treatment wetland macrocosms augmented with dye-degrading bacteria for the remediation of textile industry wastewater. Journal of cleaner production, 217, 541–548.
  • 142. Tara, N., Iqbal, M., Mahmood Khan, Q. and Afzal, M. 2019b. Bioaugmentation of floating treatment wetlands for the remediation of textile effluent. Water And Environment Journal, 33(1), 124–134.
  • 143. Tee, H.C., Lim, P.E., Seng, C.E., Nawi, M.A.M. and Adnan, R. 2015. Enhancement of azo dye Acid Orange 7 removal in newly developed horizontal subsurface-flow constructed wetland. Journal of environmental management, 147, 349–355.
  • 144. Tousignant, E., Fankhauser, O. and Hurd, S. 1999. Guidance manual for the design, construction and operations of constructed wetlands for rural applications in Ontario.
  • 145. USEPA, 2000. A Handbook of Constructed Wetlands: A Guide to Creating Wetlands for: Agricultural Wastewater, Domestic Wastewater, Coal Mine Drainage Stormwater in the Mid – Atlantic Region: Volume 1: General Considerations. United States Environmental Protection Agency, EPA report number 843B00005, ISBN 0-16-052999-9. Washington, D.C.
  • 146. Van Der Zee, F. P. 2002. Anaerobic azo dye reduction. doctoral dissertation, Wageningen University.
  • 147. Vohla, C., Kõiv, M., Bavor, H.J., Chazarenc, F. and Mander, Ü. 2011. Filter materials for phosphorus removal from wastewater in treatment wetlands— A review. Ecological engineering, 37(1), 70–89.
  • 148. Vymazal, J. 1998. Removal mechanisms and types of constructed wetlands. Constructed wetlands for wastewater treatment in Europe, 17–66.
  • 149. Vymazal, J., Greenway, M., Tonderski, K., Brix, H. and Mander, Ü. 2006. Constructed wetlands for wastewater treatment. Wetlands and natural resource management, 69–96.
  • 150. Vymazal, J. 2007. Removal of nutrients in various types of constructed wetlands. Science of the total environment, 380(1–3), 48–65.
  • 151. Vymazal, J. 2008. Constructed Wetlands for Wastewater Treatment: A Review. Proceedings of Taal 2007: The 12th World Lake Conference.
  • 152. Vymazal, J. and Kröpfelová, L. 2009. Removal of nitrogen in constructed wetlands with horizontal sub-sureface flow: a review. Wetlands, 29(4), 1114–1124.
  • 153. Vymazal, J. 2013. The use of hybrid constructed wetlands for wastewater treatment with special attention to nitrogen removal: a review of a recent development. Water research, 47(14), 4795–4811.
  • 154. Vymazal, J. 2014. Constructed wetlands for treatment of industrial wastewaters: a review. Ecological Engineering, 73(724–751).
  • 155. Winkler, M.-K., Le, Q. H. & Volcke, E. I. 2015. Influence of partial denitrification and mixotrophic growth of NOB on microbial distribution in aerobic granular sludge. Environmental Science & Technology, 49(18), 11003–11010.
  • 156. Winter, M. and Kickuth, R. 1989. Elimination of sulphur compounds from wastewater by the root zone process – I. Performance of a large-scale purification plant at a textile finishing industry. Water Research, 23(5), 535–546.
  • 157. Yadav, A.K., Dash, P., Mohanty, A., Abbassi, R. and Mishra, B.K. 2012. Performance assessment of innovative constructed wetland-microbial fuel cell for electricity production and dye removal. Ecological Engineering, 47, 126–131.
  • 158. Yalcuk, A. and Dogdu, G. 2014. Treatment of azo dye Acid Yellow 2G by using lab-scale vertical-flow intermittent feeding constructed wetlands. J Selcuk Univ Nat Appl Sci, 355–368.
  • 159. Yaseen, D.A. and Scholz, M. 2019. Textile dye wastewater characteristics and constituents of synthetic effluents: a critical review. International journal of environmental science and technology, 16(2), 1193–1226.
  • 160. Ye, J., Wang, L., Li, D., Han, W. and Ye, C. 2012. Vertical oxygen distribution trend and oxygen source analysis for vertical-flow constructed wetlands treating domestic wastewater. Ecological Engineering, 41, 8–12.
  • 161. Zeb, B. S., Mahmood, Q., Jadoon, S., Pervez, A., Irshad, M., Bilal, M. & Bhatti, Z. A. 2013. Combined industrial wastewater treatment in anaerobic bioreactor posttreated in constructed wetland. BioMed research international, 2013.
  • 162. Zhang, T., Stansbury, J.S. and Branigan, J. 2013. Development of a field test method for Total Suspended Solids analysis.
  • 163. Zhou, X. and Xiang, X. 2013. Effect of different plants on azo-dye wastewater bio-decolorization. Procedia Environmental Sciences, 18, 540–546.
Uwagi
Opracowanie rekordu ze środków MEiN, umowa nr SONP/SP/546092/2022 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2022-2023).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-54e82e46-a089-4e9a-bf1f-508517f7a2dd
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