Removal of lead from polluted waters using ion exchange resin with Ca(NO3)2 for elution

被引:58
作者
Lalmi, Afaf [1 ]
Bouhidel, Kamel-Eddine [1 ]
Sahraoui, Basma [1 ]
Anfif, Chams El Houda [1 ]
机构
[1] Univ Hadj Lakhdar Batna 1, Lab Chem & Environm Chem LCEE, Team Water Chem & Environm, Dept Chem,Fac Matter Sci, Batna 05400, Algeria
关键词
Lead removal; Lead-acid battery; Cation exchange resin; Wastewater treatment; Ca(NO3)(2) resin regeneration; INDUSTRY WASTE-WATER; HEAVY-METAL IONS; BATTERY INDUSTRY; AQUEOUS-SOLUTIONS; ACID-BATTERIES; WASTEWATERS; RECOVERY; PB2+; MINIMIZATION; HEALTH;
D O I
10.1016/j.hydromet.2018.05.009
中图分类号
TF [冶金工业];
学科分类号
0806 ;
摘要
This research aimed at selective removal of Pb++ from polluted waters by cation exchange resin in Ca++ form, and regeneration with a novel process using Ca(NO3)(2). This process brings together remarkable advantages: selectivity, sustainability, economy, safety, simplicity and applicability. The main findings of this study were the selective and efficient removal of Pb++ by a conventional cation exchange resin Purolite C100E, the utilization of Ca(NO3)(2) for regeneration, and the purification treatment of regeneration effluents for Ca(NO3)(2) total recycling. Indeed, the selectivity and the regeneration are explained by the well-established fixation order: Pb++ Ca++ > Cu++ > Mg++ > K+ > H+; Ca(OH)(2) was used to precipitate Pb(OH)(2) and to recover Ca(NO3)(2). The effects of pH, flow rate, resin bed height, Pb++ initial concentration and Ca/Pb++ ratio have been systematically investigated and optimized in a column system. The effect of Ca(NO3)(2) concentrations was also studied for regeneration and optimization. The process efficiency was always higher than 90% for, both, exhaustion and regeneration. The results show the maximum Pb++ removed was observed at pH range from 2.4 to 4.8, and increases with increasing of resin bed height but decreased as flow rate increased and that effective regeneration (90%) was achieved by 2 mol/L of Ca(NO3)(2).
引用
收藏
页码:287 / 293
页数:7
相关论文
共 41 条
[11]   Lead-acid battery use in the development of renewable energy systems in China [J].
Chang, Yu ;
Mao, Xianxian ;
Zhao, Yanfang ;
Feng, Shaoli ;
Chen, Hongyu ;
Finlow, David .
JOURNAL OF POWER SOURCES, 2009, 191 (01) :176-183
[12]   Lead removal by a reusable gel cation exchange resin containing nano-scale zero valent iron [J].
Chanthapon, Nopphorn ;
Sarkar, Sudipta ;
Kidkhunthod, Pinit ;
Padungthon, Surapol .
CHEMICAL ENGINEERING JOURNAL, 2018, 331 :545-555
[13]  
Clifford D., 2011, WATER QUALITY TREATM, p12.1
[14]   Selective removal of the heavy metal ions from waters and industrial wastewaters by ion-exchange method [J].
Dabrowski, A ;
Hubicki, Z ;
Podkoscielny, P ;
Robens, E .
CHEMOSPHERE, 2004, 56 (02) :91-106
[15]  
DUKE LD, 1994, WASTE MANAGE, V14, P49, DOI 10.1016/0956-053X(94)90020-5
[16]   Affinity of potassium-form cation exchange resin for alkaline earth and transition metals [J].
Foster, Jerrine T. T. ;
Hu, Yue ;
Boyer, Treavor H. .
SEPARATION AND PURIFICATION TECHNOLOGY, 2017, 175 :229-237
[17]   Removal of heavy metal ions from wastewaters: A review [J].
Fu, Fenglian ;
Wang, Qi .
JOURNAL OF ENVIRONMENTAL MANAGEMENT, 2011, 92 (03) :407-418
[18]   Removal of Pb2+ from aqueous solutions by a high-efficiency resin [J].
Guo, Hao ;
Ren, Yongzheng ;
Sun, Xueliang ;
Xu, Yadi ;
Li, Xuemei ;
Zhang, Tiancheng ;
Kang, Jianxiong ;
Liu, Dongqi .
APPLIED SURFACE SCIENCE, 2013, 283 :660-667
[19]   Recent progress in development of high performance polymeric membranes and materials for metal plating wastewater treatment: A review [J].
Hosseini, Seyed Saeid ;
Bringas, Eugenio ;
Tan, Nicolas R. ;
Ortiz, Inmaculada ;
Ghahramani, Maral ;
Shahmirzadi, Mohammad Amin Alaei .
JOURNAL OF WATER PROCESS ENGINEERING, 2016, 9 :78-110
[20]   Removal of Pb(II) from aqueous solutions by using clinoptilolite and bentonite as adsorbents [J].
Inglezakis, Vassilis J. ;
Stylianou, Marinos A. ;
Gkantzou, Despoina ;
Loizidou, Maria D. .
DESALINATION, 2007, 210 (1-3) :248-256