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Process modeling and optimization of vacuum pressure swing adsorption for ethane and ethylene separation using Cu(Qc)2 MOF
被引:5
作者:

Yun, Ji Sub
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Korea Res Inst Chem Technol KRICT, Ctr Low Carbon Chem Proc, Gajeong Ro 141, Daejeon 34114, South Korea
Korea Res Inst Chem Technol KRICT, Chem & Proc Technol Div, Gajeong Ro 141, Daejeon 34114, South Korea Korea Res Inst Chem Technol KRICT, Ctr Low Carbon Chem Proc, Gajeong Ro 141, Daejeon 34114, South Korea

Cho, Kyung Ho
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Korea Res Inst Chem Technol KRICT, Ctr Low Carbon Chem Proc, Gajeong Ro 141, Daejeon 34114, South Korea
Korea Res Inst Chem Technol KRICT, Chem & Proc Technol Div, Gajeong Ro 141, Daejeon 34114, South Korea Korea Res Inst Chem Technol KRICT, Ctr Low Carbon Chem Proc, Gajeong Ro 141, Daejeon 34114, South Korea

Lim, Myung Kyun
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Korea Res Inst Chem Technol KRICT, Ctr Low Carbon Chem Proc, Gajeong Ro 141, Daejeon 34114, South Korea
Korea Res Inst Chem Technol KRICT, Chem & Proc Technol Div, Gajeong Ro 141, Daejeon 34114, South Korea
Hanyang Univ, Dept Chem Engn, 222 Wangsimni Ro, Seoul 133791, South Korea Korea Res Inst Chem Technol KRICT, Ctr Low Carbon Chem Proc, Gajeong Ro 141, Daejeon 34114, South Korea

Yoon, Ji Woong
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Korea Res Inst Chem Technol KRICT, Ctr Low Carbon Chem Proc, Gajeong Ro 141, Daejeon 34114, South Korea
Korea Res Inst Chem Technol KRICT, Chem & Proc Technol Div, Gajeong Ro 141, Daejeon 34114, South Korea Korea Res Inst Chem Technol KRICT, Ctr Low Carbon Chem Proc, Gajeong Ro 141, Daejeon 34114, South Korea

Ferreira, Alexandre
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Univ Porto, Dept Chem Engn, Lab Separat & React Engn Lab Catalysis & Mat LSRE, Rua Dr Roberto Frias S-N, P-4200465 Porto, Portugal Korea Res Inst Chem Technol KRICT, Ctr Low Carbon Chem Proc, Gajeong Ro 141, Daejeon 34114, South Korea

Ribeiro, Ana Mafalda
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Univ Porto, Dept Chem Engn, Lab Separat & React Engn Lab Catalysis & Mat LSRE, Rua Dr Roberto Frias S-N, P-4200465 Porto, Portugal Korea Res Inst Chem Technol KRICT, Ctr Low Carbon Chem Proc, Gajeong Ro 141, Daejeon 34114, South Korea

Carmo, Paulo
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Univ Porto, Dept Chem Engn, Lab Separat & React Engn Lab Catalysis & Mat LSRE, Rua Dr Roberto Frias S-N, P-4200465 Porto, Portugal Korea Res Inst Chem Technol KRICT, Ctr Low Carbon Chem Proc, Gajeong Ro 141, Daejeon 34114, South Korea

Nogueira, Idelfonso B. R.
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Norwegian Univ Sci & Technol NTNU, Dept Chem Engn, N-7491 Trondheim, Norway Korea Res Inst Chem Technol KRICT, Ctr Low Carbon Chem Proc, Gajeong Ro 141, Daejeon 34114, South Korea

Park, Yong-Ki
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Korea Res Inst Chem Technol KRICT, Ctr Low Carbon Chem Proc, Gajeong Ro 141, Daejeon 34114, South Korea
Korea Res Inst Chem Technol KRICT, Chem & Proc Technol Div, Gajeong Ro 141, Daejeon 34114, South Korea Korea Res Inst Chem Technol KRICT, Ctr Low Carbon Chem Proc, Gajeong Ro 141, Daejeon 34114, South Korea

Park, Jaedeuk
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Korea Res Inst Chem Technol KRICT, Ctr Low Carbon Chem Proc, Gajeong Ro 141, Daejeon 34114, South Korea
Korea Res Inst Chem Technol KRICT, Chem & Proc Technol Div, Gajeong Ro 141, Daejeon 34114, South Korea Korea Res Inst Chem Technol KRICT, Ctr Low Carbon Chem Proc, Gajeong Ro 141, Daejeon 34114, South Korea

Song, In-Hyoup
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Korea Res Inst Chem Technol KRICT, Ctr Low Carbon Chem Proc, Gajeong Ro 141, Daejeon 34114, South Korea
Korea Res Inst Chem Technol KRICT, Chem & Proc Technol Div, Gajeong Ro 141, Daejeon 34114, South Korea Korea Res Inst Chem Technol KRICT, Ctr Low Carbon Chem Proc, Gajeong Ro 141, Daejeon 34114, South Korea

Kim, Kiwoong
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Korea Res Inst Chem Technol KRICT, Ctr Low Carbon Chem Proc, Gajeong Ro 141, Daejeon 34114, South Korea
Korea Res Inst Chem Technol KRICT, Chem & Proc Technol Div, Gajeong Ro 141, Daejeon 34114, South Korea Korea Res Inst Chem Technol KRICT, Ctr Low Carbon Chem Proc, Gajeong Ro 141, Daejeon 34114, South Korea

Lee, U-Hwang
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Korea Res Inst Chem Technol KRICT, Ctr Low Carbon Chem Proc, Gajeong Ro 141, Daejeon 34114, South Korea
Korea Res Inst Chem Technol KRICT, Chem & Proc Technol Div, Gajeong Ro 141, Daejeon 34114, South Korea Korea Res Inst Chem Technol KRICT, Ctr Low Carbon Chem Proc, Gajeong Ro 141, Daejeon 34114, South Korea
机构:
[1] Korea Res Inst Chem Technol KRICT, Ctr Low Carbon Chem Proc, Gajeong Ro 141, Daejeon 34114, South Korea
[2] Korea Res Inst Chem Technol KRICT, Chem & Proc Technol Div, Gajeong Ro 141, Daejeon 34114, South Korea
[3] Hanyang Univ, Dept Chem Engn, 222 Wangsimni Ro, Seoul 133791, South Korea
[4] Univ Porto, Dept Chem Engn, Lab Separat & React Engn Lab Catalysis & Mat LSRE, Rua Dr Roberto Frias S-N, P-4200465 Porto, Portugal
[5] Norwegian Univ Sci & Technol NTNU, Dept Chem Engn, N-7491 Trondheim, Norway
关键词:
Process modeling;
Olefin separation;
Adsorption;
Optimization;
Metal organic framework;
METAL-ORGANIC FRAMEWORK;
HIGHLY SELECTIVE SEPARATION;
ETHANE/ETHYLENE;
CAPTURE;
METHANE;
COPPER;
CO2;
D O I:
10.1016/j.seppur.2023.124711
中图分类号:
TQ [化学工业];
学科分类号:
0817 ;
摘要:
The separation of ethylene from ethane/ethylene mixtures is of prime significance, and replacing the energyintensive cryogenic distillation used in the petrochemical industry is challenging. The aim of this study is to separate ethane and ethylene using a vacuum pressure swing adsorption (VPSA) process on a Cu(Qc)2 metal-organic framework (MOF) synthesized as a spheroidal adsorbent. To quantify the adsorption equilibrium, single isotherms of ethane and ethylene were measured at 283 and 298 K up to 5 bar. A Quadratic Langmuir adsorption model was employed to predict equilibrium adsorption. Dynamic adsorption experiments were conducted for a single-component and a binary mixture of different feed compositions and flow rates. The mass-transfer coefficients of ethane and ethylene were estimated to be 0.1 sec-1 and 1.0 sec-1, respectively. Based on these parameters, a two-bed, five-step VPSA mathematical model was developed, and the nominal operating conditions were determined from the length of the unused bed. It showed ethylene purity, recovery, and productivity of 99.68 mol%, 65.28%, and 1.84 mol/kg/hr. Sensitivity analyses of purity and recovery were performed using six critical operating variables. The time and rate of the rinse step had the most significant influence on the results, followed by those of the PU, AD and BLW steps. The particle swarm optimization methodology was applied to optimize the operating variables to maximize ethylene recovery. After optimization, the ethylene purity, recovery, and productivity were attained at 99.60 mol%, 76.57%, and 1.98 mol/kg/hr.
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