Superabsorbent recycling for process water recovery

被引:1
|
作者
Joseph-Soly, Sophia [1 ]
Asamoah, Richmond [1 ]
Addai-Mensah, Jonas [1 ,2 ]
机构
[1] Univ South Australia, Future Ind Inst, Mawson Lakes, SA 5095, Australia
[2] Namibia Univ Sci & Technol, Dept Min & Proc Engn, Windhoek, Namibia
来源
关键词
Dewatering; Superabsorbent polymers; pH induced regeneration; Water recovery; Tailings management; SWELLING BEHAVIOR; TAILINGS; FLOCCULATION; COMPOSITES; CHEMISTRY; GEL;
D O I
10.1016/j.ceja.2021.100085
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The high process water content of many mineral tailings warrants development and application of new and cost-effective dewatering methods, involving high-capacity and regenerable water-absorbing polymers. The stimuli responsive nature of Superabsorbent (SAB) polymers enables them to release absorbed water upon changing process conditions (e.g., temperature and pH), allowing superabsorbent polymers recycling towards improving dewatering process economics. To understand the effect of process conditions and ore type coupled with cost effectiveness of superabsorbent dewatering system, this study investigates recovery of the absorbed water by pH induced superabsorbent regeneration. The superabsorbent, sodium polyacrylate, absorbed water from hydrophilic saprolitic laterite and hydrophobic chalcopyrite slurries prior to the investigations. Specifically, the effect of pH of absorbed water, SAB dosage and acid type (CH3COOH, HCl) and dosage on the SAB's water recovery behaviour was studied. The SAB dosage of 2 g/100 g slurry and HCl dosage of 2 g/100 g absorbed water were conducive for maximum water recovery (similar to 95%) from both slurries while their pH and mineralogy had no noticeable effect on the SAB dewatering process. The overall performance, based of maximum recovered water, of CH3COOH in the SAB dewatering system was lower than HCl, however, relatively higher water recovery (similar to 70 wt.%) was observed for Ch(3)COOH under slightly acidic solution conditions (similar to pH 4) compared with HCl (similar to 45 wt.% water recovery). The findings aid to the development of improved, cost-effective management of both, hydrophobic and hydrophilic waste tailings.
引用
收藏
页数:7
相关论文
共 50 条
  • [1] Water Integration for Recycling and Recovery in Process Industry
    Klemes, Jiri Jaromir
    Lam, Hon Loong
    Foo, Dominic Chwan Yee
    SECURITY OF INDUSTRIAL WATER SUPPLY AND MANAGEMENT, 2010, : 1 - +
  • [2] Process water recycling
    Pit and Quarry, 1982, 74 (08): : 58 - 59
  • [3] A Process for Advanced Recycling of Water Originating from Mining Operations, with Metal Recovery
    Shadrunova, I. V.
    Orekhova, N. N.
    MINE WATER AND THE ENVIRONMENT, 2015, 34 (04) : 478 - 484
  • [4] Cost-effective water recovery and recycling of effluent using the combiFix electrolysis process
    Langefeld, E.
    Galvanotechnik, 1999, 90 (08): : 2283 - 2290
  • [5] Energy Recovery from Garden and Park Waste by Hydrothermal Carbonization with Process Water Recycling
    Ipiales, Ricardo Paul
    Pimentel-Betancurt, Diana
    Diaz, Elena
    de la Rubia, Angeles
    Rodriguez, Juan J.
    Mohedano, Angel F.
    ACS SUSTAINABLE CHEMISTRY & ENGINEERING, 2024, 12 (13) : 5229 - 5240
  • [6] Recycling process water in sulfide flotation, Part A: Effect of calcium and sulfate on sphalerite recovery
    F. Ikumapayi
    M. Makitalo
    B. Johansson
    K. Hanumantha Rao
    Mining, Metallurgy & Exploration, 2012, 29 : 183 - 191
  • [7] Recycling process water in sulfide flotation, Part A: Effect of calcium and sulfate on sphalerite recovery
    Ikumapayi, F.
    Makitalo, M.
    Johansson, B.
    Rao, K. Hanumantha
    MINERALS & METALLURGICAL PROCESSING, 2012, 29 (04) : 183 - 191
  • [8] Recycling process water in sulfide flotation, Part A: Effect of calcium and sulfate on sphalerite recovery
    Ikumapayi, F.
    Makitalo, M.
    Johansson, B.
    Rao, K. Hanumantha
    Minerals and Metallurgical Processing, 2012, 29 (04): : 183 - 191
  • [9] Process water: Recycling process water through particle separation
    不详
    FILTRATION & SEPARATION, 2008, 45 (10): : 26 - 27
  • [10] Recovery and recycling of process gases: What are the options?
    Bailey, Chris
    SOLID STATE TECHNOLOGY, 2018, 61 (08) : 17 - 20