Journal of Water Resource and Protection

Volume 2, Issue 11 (November 2010)

ISSN Print: 1945-3094   ISSN Online: 1945-3108

Google-based Impact Factor: 1.01  Citations  h5-index & Ranking

Removal of Copper Ions from Acid Mine Drainage Wastewater Using Ion Exchange Technique: Factorial Design Analysis

HTML  Download Download as PDF (Size: 414KB)  PP. 984-989  
DOI: 10.4236/jwarp.2010.211117    7,113 Downloads   13,826 Views  Citations

Affiliation(s)

.

ABSTRACT

A factorial experimental design method was used to examine the “Cu2+” removal from acid mine drainage wastewater by ion exchange technique. Ion Exchange technique is preferred because of reduced sludge generation compared to conventional treatment techniques and better decontamination efficiency from highly diluted solutions. Factorial design of experiments is employed to study the effect of four factors pH (3, 5, and 6), flow rate (5, 10, 15 L/hr), resin bed height (20, 40 and 60 cm) and initial concentration of the metal (100, 150 and 200 mgl-1) at three levels. The efficiency of metal removal was determined after 100 min of treatment. Main effects and interaction effects of the four factors were analyzed using statistical techniques. A regression model was recommended and it was found to fit the experimental data very well. The results were analyzed statistically using the Student’s t-test, analysis of variance, F-test and lack of fit to define most important process variables affecting the percentage “Cu2+” removal. In this study , pH was thus found to be the most important variable.

Share and Cite:

Gaikwad, R. , Sapkal, R. and Sapkal, V. (2010) Removal of Copper Ions from Acid Mine Drainage Wastewater Using Ion Exchange Technique: Factorial Design Analysis. Journal of Water Resource and Protection, 2, 984-989. doi: 10.4236/jwarp.2010.211117.

Cited by

[1] Construction of a hydrogeochemical conceptual model and identification of the groundwater pollution contribution rate in a pyrite mining area
Environmental Pollution, 2022
[2] Bioremediation of Mining Waste and Other Copper-containing Effluents by Biosorption
Pinto… - Bioremediation of Toxic …, 2022
[3] Synthesis of high-grade struvite from municipal effluents and application in the remediation of acid mine drainage
2022
[4] Removal of Copper from Acid Mine Drainage (AMD) or Acid Rock Drainage (ARD)
2021
[5] Desarrollo de experimentos para la recuperación de cobre desde aguas ácidas de mina, mediante el proceso de microfiltración por membranas basado en una …
2021
[6] Oxidation of Cyanide and Simultaneous Copper Electrodeposition from Electroplating Wastewater in an Electrochemical Reactor
2021
[7] Acid Mine Drainage: From Waste to Resources
2021
[8] Recovery Processes and Utilisation of Valuable Materials from Acid Mine Drainage
2021
[9] Passive treatment of acid mine drainage using South African coal fly ash in a column reactor
2020
[10] Removal of Vanadium from Industrial Effluents by Natural Ion Exchanger
International Journal of …, 2019
[11] Magnetización de silicatos de calcio nano-estructurados sin modificar y modificados con Fe a utilizar como adsorbentes para la eliminación de contaminantes …
2019
[12] Adsorption of Cu (II), Ni (II) and Zn (II) ions by nano kaolinite: Thermodynamics and kinetics studies
2019
[13] Copper removal from acid mine drainage-polluted water using glutaraldehyde-polyethyleneimine modified diatomaceous earth particles
2018
[14] FACTORIAL DESIGN ANALYSIS FOR THE SORPTION OF CHROMIUM (VI) ION ON MODIFIED CALYX OF GOLD COAST BOMBAX
2018
[15] Challenges in Recovering Resources from Acid Mine Drainage
2017
[16] Permeable Reactive Barriers for Heavy Metal Removal
Sustainable Heavy Metal Remediation, 2017
[17] Synthesis of high capacity adsorbents from low-cost materials, with atomic layer deposition, for mine water treatment
2017
[18] PERFORMANCE CHARACTERISTICS OF SYNTHETIC ZEOLITE F9 IN TREATING HIGH IRON AND MANGANESE ACID MINE DRAINAGE.
Environmental Engineering & Management Journal (EEMJ), 2017
[19] Activated carbon from molasses efficiency for Cr (VI), Pb (II) and Cu (II) adsorption: A mechanistic study
2017
[20] Acid mine drainage: Prevention, treatment options, and resource recovery: A review
Journal of Cleaner Production, 2017
[21] 折流板式微生物燃料电池处理含铜废水及其产电性能
工业水处理, 2016
[22] Copper removal using acid activated peanut husk from aqueous solution
Journal of Sulfur Chemistry, 2016
[23] Available online www. jsaer. com
2016
[24] Adsorption of Trimethyltin, Arsenic (V), Zinc and Copper by Palm Oil Mill Sludge Biochar Prepared by Microwave
2016
[25] Simultaneous Removal of Chromium and Lead from Water by Sorption on Iraqi Montmorillonite
Journal of Environmental Protection, 2015
[26] Removal of hexavalent chromium from industrial effluents by natural ion exchanger
Indian Journal of Chemical Technology, 2014
[27] Sea shell derived adsorbent and its potential for treating acid mine drainage
International Journal of Mineral Processing, 2014
[28] Cu (II) removal from aqueous solutions: A Review
Asian J. of Adv. Basic Sci, 2014
[29] Geochemical assessment of legacy mine sites: assigning value and seeking new opportunities
2013

Copyright © 2024 by authors and Scientific Research Publishing Inc.

Creative Commons License

This work and the related PDF file are licensed under a Creative Commons Attribution 4.0 International License.