Journal of Water Resource and Protection

Journal of Water Resource and Protection

ISSN Print: 1945-3094
ISSN Online: 1945-3108
www.scirp.org/Journal/jwarp
E-mail: jwarp@scirp.org
"Removal of Copper Ions from Acid Mine Drainage Wastewater Using Ion Exchange Technique: Factorial Design Analysis"
written by R. W. Gaikwad, R. S. Sapkal, V. S. Sapkal,
published by Journal of Water Resource and Protection, Vol.2 No.11, 2010
has been cited by the following article(s):
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[2] Partially calcined CaCO3 for remediating multi-heavy metals-contaminated groundwater
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[3] Successive alkali diffusion ceramic reactor: Long-term removal of acidity and heavy metals in acid mine drainage
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[4] Microalgas na remediação de drenagem ácida de minas: potenciais e processos integrados
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[5] Acid Mine Drainage Treatment by Potential Carbon Mineralization: A Step Toward a Circular Economy
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[6] Adsorption of Mn (II) Ions from Aqueous Solution: A 24 Factorial Design Approach
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[7] Construction of a hydrogeochemical conceptual model and identification of the groundwater pollution contribution rate in a pyrite mining area
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[8] Bioremediation of Mining Waste and Other Copper-containing Effluents by Biosorption
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[9] Synthesis of high-grade struvite from municipal effluents and application in the remediation of acid mine drainage
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[10] Removal of Copper from Acid Mine Drainage (AMD) or Acid Rock Drainage (ARD)
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[11] Desarrollo de experimentos para la recuperación de cobre desde aguas ácidas de mina, mediante el proceso de microfiltración por membranas basado en una …
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[12] Oxidation of Cyanide and Simultaneous Copper Electrodeposition from Electroplating Wastewater in an Electrochemical Reactor
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[13] Acid Mine Drainage: From Waste to Resources
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[14] Recovery Processes and Utilisation of Valuable Materials from Acid Mine Drainage
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[15] Passive treatment of acid mine drainage using South African coal fly ash in a column reactor
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[16] Removal of Vanadium from Industrial Effluents by Natural Ion Exchanger
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[17] Magnetización de silicatos de calcio nano-estructurados sin modificar y modificados con Fe a utilizar como adsorbentes para la eliminación de contaminantes …
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[18] Adsorption of Cu (II), Ni (II) and Zn (II) ions by nano kaolinite: Thermodynamics and kinetics studies
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[19] Copper removal from acid mine drainage-polluted water using glutaraldehyde-polyethyleneimine modified diatomaceous earth particles
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[20] FACTORIAL DESIGN ANALYSIS FOR THE SORPTION OF CHROMIUM (VI) ION ON MODIFIED CALYX OF GOLD COAST BOMBAX
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[21] Challenges in Recovering Resources from Acid Mine Drainage
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[22] Permeable Reactive Barriers for Heavy Metal Removal
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[23] Synthesis of high capacity adsorbents from low-cost materials, with atomic layer deposition, for mine water treatment
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[24] PERFORMANCE CHARACTERISTICS OF SYNTHETIC ZEOLITE F9 IN TREATING HIGH IRON AND MANGANESE ACID MINE DRAINAGE.
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[25] Activated carbon from molasses efficiency for Cr (VI), Pb (II) and Cu (II) adsorption: A mechanistic study
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[26] Acid mine drainage: Prevention, treatment options, and resource recovery: A review
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[27] 折流板式微生物燃料电池处理含铜废水及其产电性能
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[28] Copper removal using acid activated peanut husk from aqueous solution
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[29] Available online www. jsaer. com
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[30] Adsorption of Trimethyltin, Arsenic (V), Zinc and Copper by Palm Oil Mill Sludge Biochar Prepared by Microwave
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[31] Simultaneous Removal of Chromium and Lead from Water by Sorption on Iraqi Montmorillonite
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[32] Removal of hexavalent chromium from industrial effluents by natural ion exchanger
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[33] Sea shell derived adsorbent and its potential for treating acid mine drainage
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[34] Cu (II) removal from aqueous solutions: A Review
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[35] Geochemical assessment of legacy mine sites: assigning value and seeking new opportunities
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