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Simulation of CO<sub>2</sub>and H<sub>2</sub>S Removal Using Methanol in Hollow Fiber Membrane Gas Absorber (HFMGA)
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作者 Majid Mahdavian Hossein Atashi +1 位作者 Morteza Zivdar Mahmood Mousavi 《Advances in Chemical Engineering and Science》 2012年第1期50-61,共12页
Application of methanol solvent for physical absorption of CO2 and H2S from CO2/H2S/CH4 mixture in gas–liquid hollow fiber membrane gas absorber (HFMGA) was investigated. A computational mass transfer (CMT) model for... Application of methanol solvent for physical absorption of CO2 and H2S from CO2/H2S/CH4 mixture in gas–liquid hollow fiber membrane gas absorber (HFMGA) was investigated. A computational mass transfer (CMT) model for simulation of HFMGA in the case of simultaneous separation of CO2 and H2S was developed. The membrane gas absorber model explicitly calculates for the rates of mass transfer through the membrane and components concentration profiles. Due to the lack of experimental data in the literature, the model was validated using available individual components’ water absorption data. The numerical predictions were in good agreement with the experimental data. The effects of operating conditions such as liquid velocity, gas velocity, temperature and pressure were analyzed. It is shown that methanol solvent can successfully be used for CO2 and H2S removal in membrane gas absorber. Also it is found that the concentration distribution of CO2 and H2S in the gas phase along the fiber length obeys plug flow model whereas in the methanol absorbent deeply affected by the interface concentration, absorbent velocity and diffusivity. In addition, it is shown that application of membrane gas absorber using methanol absorbents for H2S removal and at higher flow rate is more efficient. Moreover, at operating pressures above 10 atm even at low absorbent rate, H2S concentration depletion is relatively complete while at 1 atm this value is about 30%. This means that removal efficiency decreases with an increase in temperature and it is more important especially for H2S. 展开更多
关键词 Computational Mass Transfer (CMT) membrane gas absorber CO2 and H2S Separation Physical Absorption METHANOL
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氯化氢合成炉点炉防爆膜爆破分析总结
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作者 贺小明 郝建兵 +2 位作者 乔礼友 胡海龙 张柱 《中国氯碱》 CAS 2017年第3期13-14,共2页
介绍了二合一氯化氢副产蒸汽合成炉开车过程、合成炉防爆膜爆破的原因及解决办法。
关键词 合成炉 合成炉防爆膜 降膜吸收器 尾气吸收塔 水力喷射泵
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