Optimization Study of CO2 Gas Absorption with NaOH Absorbent Continuous System in Raschig Ring Packing Column Using Box–Behnken Design

IF 2.1 Q2 ENGINEERING, MULTIDISCIPLINARY Inventions Pub Date : 2023-05-09 DOI:10.3390/inventions8030070
Jakfar, H. Husin, Mohammadi Zaki, Lia Mairiza, Mirna Zulrika, F. Nasution, Ahmadi
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Abstract

Increasing CO2 gas emissions results in climate change by increasing air temperature and worsening environmental problems. It is necessary to control CO2 gas in the air to overcome this. This research aims to optimize the absorption of CO2 gas in the air with 0.1 M NaOH absorbent in the tower of the Raschig ring stuffing material using the response surface methodology (RSM). This research was conducted using a continuous system of three independent variables by varying the contact time (10–80 min), the flow rate of NaOH absorbent (2–5 L/min), and the flow rate of CO2 gas (1–5 L/min). The response variables in this study were the absorption rate (L/min) and mass transfer coefficient, while the air flow rate was constant at 20 L/min. Air and CO2 gas mix before absorption occurs and flow into the Raschig ring packing column so that contact occurs with the NaOH absorbent. Mass transfer of CO2 gas occurs into the NaOH absorbent, resulting in absorption. The results showed that the effect of contact time (min), the flow rate of NaOH absorbent (L/min), and CO2 gas flow rate individually and the interaction on CO2 absorption rate and mass transfer coefficient were very significant at a p-value of 0.05. Chemical absorption of CO2 also occurred due to the reaction between CO2 and OH- to form CO32− and HCO3−, so the pH decreased, and the reaction was a function of pH. Optimization using Design Expert 13 RSM Box–Behnken Design (BBD) yielded optimal conditions at an absorption time of 80 min, NaOH absorbent flow rate of 5 L/min, CO2 gas flow rate of 5 L/min, absorption rate of CO2 gas of 3.97 L/min, and CO2 gas mass transfer coefficient of 1.443 mol/min m2 atm, with the desirability of 0.999 (≈100%).
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基于Box-Behnken设计的拉希环填料塔NaOH连续吸收系统CO2气体的优化研究
二氧化碳气体排放量的增加会导致气温升高和环境问题恶化,从而导致气候变化。有必要控制空气中的CO2气体来克服这一问题。本研究旨在使用响应面法(RSM)优化Raschig环形填料塔中0.1M NaOH吸收剂对空气中CO2气体的吸收。这项研究使用了一个由三个自变量组成的连续系统,通过改变接触时间(10-80分钟)、NaOH吸收剂的流速(2-5 L/min)和CO2气体的流速(1-5 L/min)进行。本研究中的响应变量是吸收速率(L/min)和传质系数,而空气流速恒定在20L/min。在吸收发生之前,空气和CO2气体混合并流入Raschig环形填料柱,从而与NaOH吸收剂发生接触。CO2气体的质量转移发生在NaOH吸收剂中,导致吸收。结果表明,接触时间(min)、NaOH吸收剂流量(L/min)和CO2气体流量对CO2吸收率和传质系数的影响非常显著,p值为0.05。由于CO2和OH-之间的反应形成CO32-和HCO3-,也发生了CO2的化学吸收,因此pH降低,反应是pH的函数。使用Design Expert 13 RSM Box–Behnken Design(BBD)进行优化产生了最佳条件,吸收时间为80分钟,NaOH吸收剂流速为5 L/min,CO2气体流速为5 L/min,CO2气体的吸收速率为3.97L/min,CO2气体的传质系数为1.443mol/minm2atm,可取性为0.999(≈100%)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Inventions
Inventions Engineering-Engineering (all)
CiteScore
4.80
自引率
11.80%
发文量
91
审稿时长
12 weeks
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