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Efficient removal of heavy metals from electroplating wastewater using polymer ligands 被引量:6

Efficient removal of heavy metals from electroplating wastewater using polymer ligands
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摘要 Poly(hydroxamic acid)-poly(amidoxime) che- lating ligands were synthesized from poly(methyl acrylate-co-acrylonitrile) grafted acacia cellulose for removing toxic metal ions from industrial wastewaters. These ligands showed higher adsorption capacity to copper (2.80 mmol. g-l) at pH 6. In addition, sorption capacities to other metal ions such as iron, zinc, chromium, and nickel were also found high at pH 6. The metal ions sorption rate (tl/2) was very fast. The rate of adsorption of copper, iron, zinc, chromium, nickel, cobalt, cadmium and lead were 4, 5, 7, 5, 5, 8, 9 and 11 min, respectively. Therefore, these ligands have an advantage to the metal ions removal using the column technique. We have successfully investigated the known concentration of metal ions using various parameters, which is essential for designing a fixed bed column with ligands. The wastewater from electroplating plants used in this study, having chromium, zinc, nickel, copper and iron, etc. For chromium wastewater, ICP analysis showed that the Cr removal was 99.8% and other metal ions such as Cu, Ni, Fe, Zn, Cd, Pb, Co and Mn removal were 94.7%, 99.2%, 99.9%, 99.9%, 99.5%, 99.9%, 95.6% and 97.6%, respectively. In case of cyanide wastewater, the metal removal, especially Ni and Zn removal were 96.5 and 95.2% at higher initial concentra- tion. For acid/alkali wastewater, metal ions removing for Cd, Cr and Fe were 99.2%, 99.5% and 99.9%, respectively. Overall, these ligands are useful for metal removal by column method from industrial wastewater especially plating wastewater. Poly(hydroxamic acid)-poly(amidoxime) che- lating ligands were synthesized from poly(methyl acrylate-co-acrylonitrile) grafted acacia cellulose for removing toxic metal ions from industrial wastewaters. These ligands showed higher adsorption capacity to copper (2.80 mmol. g-l) at pH 6. In addition, sorption capacities to other metal ions such as iron, zinc, chromium, and nickel were also found high at pH 6. The metal ions sorption rate (tl/2) was very fast. The rate of adsorption of copper, iron, zinc, chromium, nickel, cobalt, cadmium and lead were 4, 5, 7, 5, 5, 8, 9 and 11 min, respectively. Therefore, these ligands have an advantage to the metal ions removal using the column technique. We have successfully investigated the known concentration of metal ions using various parameters, which is essential for designing a fixed bed column with ligands. The wastewater from electroplating plants used in this study, having chromium, zinc, nickel, copper and iron, etc. For chromium wastewater, ICP analysis showed that the Cr removal was 99.8% and other metal ions such as Cu, Ni, Fe, Zn, Cd, Pb, Co and Mn removal were 94.7%, 99.2%, 99.9%, 99.9%, 99.5%, 99.9%, 95.6% and 97.6%, respectively. In case of cyanide wastewater, the metal removal, especially Ni and Zn removal were 96.5 and 95.2% at higher initial concentra- tion. For acid/alkali wastewater, metal ions removing for Cd, Cr and Fe were 99.2%, 99.5% and 99.9%, respectively. Overall, these ligands are useful for metal removal by column method from industrial wastewater especially plating wastewater.
出处 《Frontiers of Environmental Science & Engineering》 SCIE EI CAS CSCD 2016年第2期352-361,共10页 环境科学与工程前沿(英文)
关键词 heavy metals adsorption WASTEWATER chelat-ing ligands plating industry heavy metals, adsorption, wastewater, chelat-ing ligands, plating industry
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参考文献32

  • 1O'Connell D W, Birkinshaw C, O'Dwyer T F. Heavy metal adsorbents prepared from the modification of cellulose: a review. Bioresource Technology, 2008, 99(15): 6709-6724.
  • 2Klemm D, Schmauder H P, Heinze T. Cellulose, Polysaccharides II. Poly-saccharides from Eukaryotes. In: Vandamme S, Steinbuchel E J, eds. Weinheim: Wiley VCH, 2002, 275-320.
  • 3Dahou W, Ghemati D, Oudia A, Aliouche D. Preparation and biological characterization of cellulose graft copolymers. Biochem- ical Engineering Journal, 2010, 48(2): 187 -194.
  • 4Lutfor M R, Mashitah M Y. Synthesis of poly(hydroxamic acid)- poly(amidoxime) chelating ligands for removal of metals from industrial wastewater. E-Journal of Chemistry, 2011, 8(3): 1038- 1043.
  • 5Kadirvelu K, Thamaraiselvi K, Namasivayam C. Removal of heavy metals from industrial wastewaters by adsorption onto activated carbon prepared from an agricultural solid waste. BioresourceTechnology, 2001, 76(1): 6355.
  • 6Wilkins E, Yang Q. Comparison of the heavy metal removal efficiency of bio-ligands and granular activated carbon. Journal of Environmental Science and Health, Part A., 1996, 31 : 2111- 128.
  • 7Vivek Narayanan N, Ganesan M. Use of adsorption using granular activated carbon (GAC) for the enhancement of removal of chromium from synthetic wastewater by electrocoagulation. Journal of Hazardous Materials, 2009, 161(1): 575-580.
  • 8Mrozowski J, Zielinski J. Studies of zinc and lead removal from industrial wastes by electrocoagulation. Environmental Protection Engineering, 1983, 9:77-85.
  • 9Farka J, Mitchell G D. An electrochemical treatment process for heavy metal recovery wastewaters. AIChE Symposium Series, 1985, 243:52-66.
  • 10Ratna Kumar P, Chaudhari S, Khilar K C, Mahajan S P. Removal of arsenic from water by electrocoagulation. Chemosphere, 2004, 55 (9): 1245-1252.

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  • 2ZHOU Jun YANG Feng-lin MENG Fan-gang AN Peng WANG Di.Comparison of membrane fouling during short-term filtration of aerobic granular sludge and activated sludge[J].Journal of Environmental Sciences,2007,19(11):1281-1286. 被引量:18
  • 3P.Venkateswaran,A.Navaneetha Gopalakrishnan,K.Palanivelu.Di(2-ethylhexyl) phosphoric acid-coconut oil supported liquid membrane for the separation of copper ions from copper plating wastewater[J].Journal of Environmental Sciences,2007,19(12):1446-1453. 被引量:7
  • 4CHAUHAN D, JAISWAL M SANKARARAMAKRISHNAN N Removal of cadmium and hexavalent chromium from electroplating waste water using thiocarbamoyl chitosan[J]. Carbohydrate Polymers, 2012, 88 (2): 670-675.
  • 5SHI H C, LI J J, SHI D W, et al. Combined reduction/precipitation, chemical oxidation, and biological aerated filter processes for treatment of electroplating wastewater[J]. Separation Science and Technology, 2015, 50 (15): 2303-2310.
  • 6YAO X L, DENG S B, WU R, et al. Highly efficient removal of hexavalent chromium from electroplating wastewater using aminated wheat straw[J]. RSCAdvances, 2016, 6 (11): 8797-8805.
  • 7PAULINE B, ATLY I. Evaluation of the adsorptive capacity of peanut hull pellets for heavy metals in solution[J]. Advances in Environmental Research, 2000, 4 ( 1 ): 19-29.
  • 8CRETESCU I, SOREANU G, HARJA M. A low-cost sorbent for removal of copper ions from wastewaters based on sawdust/fly ash mixture[J]. International Journal of Environmental Science & Technoloev, 2014, 12 (6): 1-12.
  • 9OGUZ E. Thermodynamic and adsorption on blast furnace slag[J] Science, 2005, 281: 62-67.
  • 10kinetic investigations of PO43- Journal of Colloid and Interface Nehrenheim E, Gustafsson J P. Kinetic sorption modeling ofCu, Ni, Zn, Pb and Cr ions to pine bark and blast furnace slag by using batch experiments[J]. Bioresource Technology, 2008, 99.. 1571-1577.

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