Citation: Cui Hongmei, Huang Xing, Guo Dan, Dai Hao. Progress in the Application of Fly Ash for Wastewater Treatment[J]. Chemistry, ;2020, 83(1): 35-41. shu

Progress in the Application of Fly Ash for Wastewater Treatment

  • Corresponding author: Huang Xing, 745688587@qq.com
  • Received Date: 5 June 2019
    Accepted Date: 20 September 2019

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  • The high value-added comprehensive utilization of fly ash has become one of the most important issues in the field of circular economy and environmental protection. The use of fly ash for water treatment is an active attempt to turn waste into treasure and turn harm into profit. Fly ash has significant application value in membrane filtration, Fenton treatment, photocatalysis and adsorption due to its morphological characteristics, specific surface area, porosity and chemical composition. This paper focuses on the application of fly ash in these aspects, and prospects its application in wastewater treatment.
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    1. [1]

      Ma B, Li Y, Cui S G, et al. Trans. Nonferr. Metal Soc., 2010, 20(12):2331~2335. 

    2. [2]

      Liu J, Dong Y, Dong X, et al. Eur. Ceram. Soc., 2016, 36(4):1059~1071. 

    3. [3]

      Izquierdo M, Moreno N, Font O, et al. Fuel, 2008, 87(10-11):1958~1966. 

    4. [4]

       

    5. [5]

      Xu G, Shi X. Resour. Conserv. Recy., 2018, 136:95~109. 

    6. [6]

       

    7. [7]

       

    8. [8]

      Ebrahimi A, Saffari M, Milani D, et al. J. Clean. Prod., 2017, 156:660~669. 

    9. [9]

       

    10. [10]

       

    11. [11]

      Shaheen S M, Hooda P S, Tsadilas C D. J. Environ. Manag., 2014, 145:249~267. 

    12. [12]

       

    13. [13]

       

    14. [14]

      Yang J, Zhao Y, Zhang S, et al. Fuel Process. Technol., 2017, 167:263~270. 

    15. [15]

       

    16. [16]

       

    17. [17]

      Al-Harahsheh M S, Al Zboon K, Al-Makhadmeh L, et al. J. Environ. Chem. Eng., 2015, 3(3):1669~1677. 

    18. [18]

      Hemalatha T, Ramaswamy A. J. Clean. Prod., 2017, 147:546~559. 

    19. [19]

      Rambau K M, Musyoka N M, Manyala N, et al. J. Environ. Sci. Health A, 2018, 53(12):1115~1122. 

    20. [20]

      Revanasiddappa M, Swamy D S, Vinay K, et al. AIP Conference Proceedings. AIP Publishing, 2018, 1953(1):090070. 

    21. [21]

      Ahmaruzzaman M. Prog. Energy Combust. Sci., 2010, 36(3):327~363. 

    22. [22]

      Mayfield D B, Lewis A S. Proceedings of the 2013 World of Coal Ash (WOCA) Conference, Lexington, KY, USA. 2013, 2013:22~25. 

    23. [23]

      Tolhurst L. World of coal ash (WOCA) conference in Nashville Tennessee, 2015:1~9. 

    24. [24]

      Reddy P A K, Reddy P V L, Kwon E, et al. Environ. Int., 2016, 91:94~103. 

    25. [25]

      Duta A, Visa M. J. Photochem. Photobiol. A, 2015, 306:21~30. 

    26. [26]

       

    27. [27]

       

    28. [28]

      Song J, Wang X, Bu Y, et al. Environ. Sci. Pollut. Res., 2016, 23(22):22793~22802. 

    29. [29]

      S H Chang, Wang K S, Li H C, et al. J. Hazard. Mater., 2009, 172(2-3):1131~1136. 

    30. [30]

      Wang J, Li H J, Cheng Q K, et al. Trans. Tech. Publ., 2014, 955:623~627. 

    31. [31]

      Pouran S R, Raman A A A, Daud W M A W. J. Clean. Prod., 2014, 64:24~35. 

    32. [32]

       

    33. [33]

      Wang N, Chen J, Zhao Q, et al. RSC Adv., 2017, 7(83):52524~52532. 

    34. [34]

       

    35. [35]

       

    36. [36]

      Fan B, Wei G, Hao H, et al. Desalin. Water Treat., 2016, 57(37):17308~17321. 

    37. [37]

      Aka A, Sun C, Hua L, et al. Chemosphere, 2018, 203:327~335. 

    38. [38]

       

    39. [39]

       

    40. [40]

       

    41. [41]

       

    42. [42]

       

    43. [43]

       

    44. [44]

      Jedidi I, Saïdi S, Khmakem S, et al. Arab. J. Chem., 2009, 2(1):31~39. 

    45. [45]

      Liu J, Dong Y, Dong X, et al. J. Eur. Ceram. Soc., 2016, 36(4):1059~1071. 

    46. [46]

      Cao J, Dong X, Li L, et al. J. Eur. Ceram. Soc., 2014, 34(13):3181~3194. 

    47. [47]

      Kim H J, Pant H R, Kim J H, et al. Ceram. Int.,2014, 40(2):3023~3029. 

    48. [48]

      Wang L K, Hung Y T, Shammas N K. Handbook of Environmental Engineering, 2007, 4(1):67~68. 

    49. [49]

      Hosseini Asl S M, Javadian H, Khavarpour M, et al. J. Clean. Prod., 2019, 208:1131~1147. 

    50. [50]

      Li J, Gan J, Wu L, et al. Preparation of Fly ash Based Adsorbents for Removal Active Red X-3B from Dying Wastewater//MATEC Web of Conferences. EDP Sciences, 2016, 67:07004. 

    51. [51]

      Apak R, Tütem E, Hügül M, et al. Water Res., 1998, 32(2):430~440. 

    52. [52]

      Ricou-Hoeffer P, Lecuyer I, Le Cloirec P. Water Res., 2001, 35(4):965~976. 

    53. [53]

      Rao M, Parwate A V, Bhole A G. Waste Manag., 2002, 22(7):821~830. 

    54. [54]

      Rio S, Delebarre A. Fuel, 2003, 82(2):153~159. 

    55. [55]

      Golbad S, Khoshnoud P, Abuzahra N. Int. J. Environ. Sci. Technol., 2016, 14(1):1~8. 

    56. [56]

      Lieberman R N, Green U, Segev G, et al. Fuel, 2015, 153:437~444. 

    57. [57]

       

    58. [58]

      Diamadopoulos E, Ioannidis S, Sakellaropoulos G P. Water Res., 1993, 27(12):1773~1777. 

    59. [59]

       

    60. [60]

      Aksu Z, Yener J. Waste Manag., 2001, 21(8):695~702. 

    61. [61]

       

    62. [62]

      Janoš P, Buchtová H, Rýznarová M. Water Res., 2003, 37(20):4938~4944. 

    63. [63]

      Saakshy A, Singh K, Gupta A B, et al. J. Clean. Prod., 2016, 112(1):1227~1240. 

    64. [64]

      Kushwaha J P, Srivastava V C, Mall I D. Bioresour. Technol., 2010, 101(10):3474~3483. 

    65. [65]

      Andersson K I, Eriksson M, Norgren M. Ind. Eng. Chem. Res., 2012, 51(8):3444~3451. 

    66. [66]

       

    67. [67]

      Alonso-Davila P, Torres-Rivera O L, Leyva-Ramos R, et al. Clean Soil Air Water, 2012, 40(1):45~53. 

    68. [68]

      Mohan S V, Mohan S K.J. Sci. Ind. Res., 2000, 60:410~415. 

    69. [69]

      Raymundo-Pinero E, Cazorla-Amorós D, Linares-Solano A. Carbon, 2003, 41(10):1925~1932. 

    70. [70]

      Tailor R, Shah B, Shah A. J. Chem. Eng. Data, 2012, 57(5):1437~1448. 

    71. [71]

      Seyed M H A, Ghadi A, Baei M S, et al. Fuel, 2018, 217:320~342. 

    72. [72]

       

    73. [73]

      Dash S, Chaudhuri H, Gupta R, et al. J. Environ. Chem. Eng., 2018, 6(5):5897~5905. 

    74. [74]

      Chaudhary N,Balomajumder C, Agrawal B, et al. Sep. Sci. Technol., 2015, 50(5):690~699. 

    75. [75]

       

    76. [76]

       

    77. [77]

       

    78. [78]

       

    79. [79]

       

    80. [80]

       

    81. [81]

      Sočo E, Kalembkiewicz J. J. Environ. Chem. Eng., 2013, 1(3):581~588. 

    82. [82]

      Nascimento M, Soares P S M, de Souza V P. Fuel, 2009, 88(9):1714~1719. 

    83. [83]

      Apiratikul R, Pavasant P. Chem. Eng. J., 2008, 144(2):245~258. 

    84. [84]

      Hui K S, Chao C Y H, Kot S C. J. Hazard. Mater., 2005, 127(1-3):89~101. 

    85. [85]

       

    86. [86]

      Visa M, Isac L, Duta A. Appl. Surf. Sci., 2012, 258(17):6345~6352. 

    87. [87]

      Javadian H, Ghorbani F, Tayebi H A, et al. Arab. J. Chem., 2015, 8(6):837~849. 

    88. [88]

       

    89. [89]

       

    90. [90]

       

    91. [91]

       

    92. [92]

      Fungaro D A, Yamaura M, Craesmeyer G R. Int. Rev. Chem. Eng., 2012, 4(3):353~358. 

    93. [93]

      Noli F, Kapnisti M, Buema G, et al. Appl. Radiat. Isotopes, 2016, 116:102~109. 

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