Reuse of manganese sulfate as raw material by recovery from pesticide's wastewater using nanofiltration and electro-electrodialysis: process simulation and analysis from actual data

被引:3
作者
Mejia Marchena, Ricardo [1 ]
Maturana Cordoba, Aymer [1 ,2 ]
Gomez Ceron, Diego [3 ]
Quintero Monroy, Christian [3 ]
Arismendy Montes, Luis [3 ]
Cardenas Perez, Carlos [3 ]
机构
[1] Univ Norte, Inst Estudios Hidraul & Ambientales IDEHA, Km 5 Via Puerto Colombia, Barranquilla, Colombia
[2] Univ Norte, Inst Desarrollo Sostenible IDS, Dept Ingn Civil & Ambiental, Km 5 Via Puerto Colombia, Barranquilla, Colombia
[3] Univ Norte, Grp Invest Robot & Sistemas Inteligentes, Dept Ingn Elect & Elect, Km 5 Via Puerto Colombia, Barranquilla, Colombia
关键词
Aspen Plus; fungicide; metal recovery; pesticide; waste valorization; water reuse; SPENT BATTERIES; LEACH LIQUORS; ZINC RECOVERY; MEMBRANE; SEPARATION; REMOVAL; ACID; EXTRACTION; SLUDGE; PURIFICATION;
D O I
10.2166/wst.2020.179
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Reuse of wastewater, as well as recovery of valuable, toxic or harmful products in industrial discharges, still represents an important issue, not only because it reduces the effect on receiving water bodies, but also because of the economic resources it represents for industry itself. In this research,in situregeneration of Mn(2)SO(4)is evaluated, for its reuse as the main raw material in the original process of a fungicide plant. The regeneration is evaluated by selective recovery of Mn2+, Zn(2+)and SO(4)(=)present in the wastewater produced by the industrial plant, and utilizing nanofiltration, electro-electrodialysis and chemical precipitation as separation alternatives. Each alternative was designed and evaluated technically and economically through simulations in Aspen Plus(R), with data and information of the real process supplied by the company. Because zinc concentration is relatively low, its selective recovery was not attractive. The resulting Mn(2)SO(4)solution and treated water quality in conventional alternatives were significantly poor with high costs. In contrast, nanofiltration and electro-electrodialysis alternatives generate water and by-products of higher quality and reuse potential with significantly lower costs. However, their viability depends on the membrane performance. The results were satisfactory, but future experimental studies are required to optimize the alternatives and define the correct pretreatment process.
引用
收藏
页码:315 / 329
页数:15
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