Ammonium sorption and regeneration using Mg-modified zeolites: A study on the interferences of competing ions from aquaculture effluent

吸附 沸石 流出物 丝光沸石 化学 离子交换 离子 无机化学 核化学 环境工程 催化作用 有机化学 吸附 工程类
作者
Aaron Koe Zhen Yao,Lim Wei Jiun,Loh Chian Yong,Ying Shi Chang,Ooi Boon Seng
出处
期刊:Journal of water process engineering [Elsevier BV]
卷期号:48: 102909-102909 被引量:13
标识
DOI:10.1016/j.jwpe.2022.102909
摘要

Aquaculture effluents consist of dilute nutrients such as ammonium (NH 4 + ) is harmful to the environment and toxic to aquatic species. This research investigated the practicality of modified zeolites for aquaculture effluent treatment and ammonium recovery. Zeolites (Mordenite and Zeolite-Y) were modified by calcination and/or chemical modification with MgCl 2 solution resulting in H-zeolites and Mg-zeolites, respectively. The presence of competing cations (Na + , Mg 2+ , Ca 2+ , and K + ) provides an obstacle for the ion exchange process between zeolites and NH 4 + . Mg-modified zeolites can handle the interference of competing cations better than H-modified zeolites with the trend for cation selectivity for Mg-mordenite is K + > Na + > > NH 4 + > Ca 2+ > Mg 2+ . The optimum zeolite dosage for both Mg-modified zeolites was 9 g/L. Both Mg-modified zeolites showed better fit of Freundlich isotherm and pseudo-second order kinetic model. By conducting thermodynamic studies, the NH 4 + sorption for both Mg-modified zeolites were found out to be an exothermic process. Mg-zeolite Y showed better NH 4 + removal efficiency compared to Mg-mordenite for real aquaculture effluent treatment. This showed that Mg-zeolite Y exhibited higher NH 4 + selectivity and was more practical in handling the complex aquaculture effluent. A two-step sorption process using 9 g/L Mg-zeolite Y was proposed which led to an increased NH 4 + removal efficiency of 64.18%. A 10-cycles regeneration study concluded that Mg-zeolite Y have good reusability potential. A simple cost analysis showed an 89% reduction in cost by comparing between fresh zeolites every cycle and reusing both zeolites and regeneration solution for 10 cycles. • Zeolites with Mg modification results in higher NH 4 + selectivity in the presence of individual competitive cations • Mg-zeolite Y exhibits good NH 4 + selectivity while Mg-mordenite shows no NH 4 + sorption treating real fish farm effluent. • A two-step sorption method is employed to overcome the hindrance of competitive cations. • Direct sorption of zeolites on untreated real aquaculture effluent is feasible. • Mg-zeolite Y and regeneration solution is proven reusable up to 10 cycles while maintaining good NH 4 + removal efficiency.
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