Choi Angelo Earvin Sy, Ensano Benny Marie B, Yee Jurng-Jae
Chemical Engineering Department, De La Salle University, 2401 Taft Avenue, Manila 0922, Philippines.
University Core Research Center for Disaster-free and Safe Ocean City Construction, Dong-A University, Busan 49315, Korea.
Int J Environ Res Public Health. 2021 Mar 14;18(6):2986. doi: 10.3390/ijerph18062986.
This case study covers the application of the fuzzy optimization in simultaneously satisfying various constraints that include the compliance of ammonia and nitrate concentrations with stringent environmental standards. Essential components in the multi-criteria decision-making analysis is in the utilization of the Box-Behnken design (BBD) response equations, cost equations and the cumulative uncertainty of response towards the sodium chloride dosage, current density and electrolysis time parameters. The energy consumption in the electrochemical oxidation of ammonia plays an essential role in influencing the total operating cost analysis. The determination of boundary limits based on the global optimum resulted in the complete ammonia removal and USD 64.0 operating cost as its maximum boundary limits and the 40.6% ammonia removal and USD 17.1 as its minimum boundary limits. Based on the fuzzy optimal results, the overall satisfaction level incurred a decrease in adhering with a lower ammonia standard concentration (10 mg/L at 80.3% vs. 1.9 mg/L at 76.1%) due to a higher energy consumption requirement. Global optimal fuzzy results showed to be highly cost efficient (232.5% lower) as compared to using BBD alone. This demonstrates the practicality of fuzzy optimization applications in the electrochemical reactions.
本案例研究涵盖了模糊优化在同时满足各种约束条件中的应用,这些约束条件包括氨和硝酸盐浓度符合严格的环境标准。多准则决策分析的关键要素在于利用Box-Behnken设计(BBD)响应方程、成本方程以及对氯化钠用量、电流密度和电解时间参数的响应累积不确定性。氨的电化学氧化中的能量消耗在影响总运营成本分析方面起着至关重要的作用。基于全局最优确定边界限制,实现了完全去除氨,最高边界限制为运营成本64.0美元,最低边界限制为氨去除率40.6%和运营成本17.1美元。基于模糊优化结果,由于更高的能耗要求,在符合较低氨标准浓度时(10毫克/升时为80.3%,1.9毫克/升时为76.1%)总体满意度水平有所下降。与单独使用BBD相比,全局最优模糊结果显示出更高的成本效益(降低了