吸附
沸石
流出物
铵
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
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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