Strategies for the Intensification of CO2 Valorization in the One-Step Dimethyl Ether Synthesis Process

被引:29
作者
Ateka, Ainara [1 ]
Erena, Javier [1 ]
Bilbao, Javier [1 ]
Aguayo, Andres T. [1 ]
机构
[1] Univ Basque Country, Dept Chem Engn, POB 644, Bilbao 48080, Spain
关键词
COMPRESSION-IGNITION ENGINES; HYDROXY SODALITE MEMBRANES; FISCHER-TROPSCH SYNTHESIS; SITU WATER REMOVAL; HYBRID CATALYSTS; CARBON-DIOXIDE; CUO-ZNO-MNO/SAPO-18; CATALYST; ALTERNATIVE FUEL; DME PRODUCTION; ACID FUNCTION;
D O I
10.1021/acs.iecr.9b05749
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
The intensification of CO2 valorization has been theoretically studied in the direct synthesis of dimethyl ether (DME) carried out in a packed-bed reactor by means of two strategies pursuing the attenuation of the thermodynamic limitations of the process. Thus, the recycling of the nonconverted reactants, and the use of H2O perm-selective membranes, with different sweeping strategies has been studied. Special attention has been paid to improving the yield of DME and the conversion of CO2, seeking for a good balance between both objectives. The study has been conducted using the kinetic model previously established for a CuO-ZnO-MnO/SAPO-18 catalyst. Quantifying the deactivation kinetics in the kinetic model has allowed us to ascertain that both strategies contribute to attenuating deactivation. With a recirculation factor of 0.97, for a CO2/COx ratio in the feed of 0.25, at 275 degrees C and 30 bar, a CO2 conversion of 70% and a DME yield of 60% are achieved. Using in the simulation a membrane with a H2O permeability of 1 x 10(-7) mol s(-1) m(2) Pa-1 and a H2O/H-2 selectivity of 4, feasible with H-SOD type zeolite membranes, increases CO2 conversion up to 3.5-5% with regard to that obtained in a packed-bed reactor, and the upgrade in DME yield stands out, reaching an improvement of 25% for the hydrogenation of pure CO2, regardless of the sweeping strategy used (parallel or countercurrent mode, or the use of pure H-2 or H-2 + CO + CO2).
引用
收藏
页码:713 / 722
页数:10
相关论文
共 68 条
[61]   Dimethyl ether (DME) as an alternative fuel [J].
Semelsberger, Troy A. ;
Borup, Rodney L. ;
Greene, Howard L. .
JOURNAL OF POWER SOURCES, 2006, 156 (02) :497-511
[62]   Thermodynamic Analysis of Chemical and Phase Equilibria in CO2 Hydrogenation to Methanol, Dimethyl Ether, and Higher Alcohols [J].
Stangeland, Kristian ;
Li, Hailong ;
Yu, Zhixin .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2018, 57 (11) :4081-4094
[63]   Direct synthesis of dimethyl ether from carbon-monoxide-rich synthesis gas: Influence of dehydration catalysts and operating conditions [J].
Stiefel, Miriam ;
Ahmad, Ruaa ;
Arnold, Ulrich ;
Doering, Manfred .
FUEL PROCESSING TECHNOLOGY, 2011, 92 (08) :1466-1474
[64]   Catalysis Chemistry of Dimethyl Ether Synthesis [J].
Sun, Jian ;
Yang, Guohui ;
Yoneyama, Yoshiharu ;
Tsubaki, Noritatsu .
ACS CATALYSIS, 2014, 4 (10) :3346-3356
[65]   Direct synthesis of dimethyl ether from CO2 hydrogenation over novel hybrid catalysts containing a Cu-ZnO-ZrO2 catalyst admixed with WOx/Al2O3 catalysts: Effects of pore size of Al2O3 support and W loading content [J].
Suwannapichat, Yossapon ;
Numpilai, Thanapa ;
Chanlek, Narong ;
Faungnawakij, Kajornsak ;
Chareonpanich, Metta ;
Limtrakul, Jumras ;
Witoon, Thongthai .
ENERGY CONVERSION AND MANAGEMENT, 2018, 159 :20-29
[66]   Robust nickel cluster@Mes-HZSM-5 composite nanostructure with enhanced catalytic activity in the DTG reaction [J].
Wen, Zhiyong ;
Li, Zhimin ;
Ge, Qingjie ;
Zhou, Yang ;
Sun, Jian ;
Abroshan, Hadi ;
Li, Gao .
JOURNAL OF CATALYSIS, 2018, 363 :26-33
[67]   Direct synthesis of dimethyl ether from CO2 and H2 over novel bifunctional catalysts containing CuO-ZnO-ZrO2 catalyst admixed with WOx/ZrO2 catalysts [J].
Witoon, Thongthai ;
Kidkhunthod, Pinit ;
Chareonpanich, Metta ;
Limtrakul, Jumras .
CHEMICAL ENGINEERING JOURNAL, 2018, 348 :713-722
[68]   Highly efficient synthesis of dimethyl ether directly from biomass-derived gas over Li-modified Cu-ZnO-Al2O3/HZSM-5 hybrid catalyst [J].
Zuo, Hongmei ;
Mao, Dongsen ;
Guo, Xiaoming ;
Yu, Jun .
RENEWABLE ENERGY, 2018, 116 :38-47