Dimethyl ether low-temperature catalytic oxidation over Rh/Al2O3 in a stagnation-flow reactor

被引:0
作者
Alghamdi, Nawaf M. [1 ]
Sarathy, S. Mani [1 ,2 ]
机构
[1] King Abdullah Univ Sci & Technol KAUST, Clean Combust Res Ctr, Thuwal 23955, Saudi Arabia
[2] King Abdullah Univ Sci & Technol KAUST, KAUST Catalysis Ctr, Thuwal 23955, Saudi Arabia
关键词
Kinetics; Dimethyl ether; Oxidation; Partial oxidation; Rhodium; Stagnation-flow; METHANE PARTIAL OXIDATION; HYDROGEN-PRODUCTION; COMBUSTION; KINETICS; DECOMPOSITION; RH; PD; MECHANISM;
D O I
10.1016/j.fuel.2022.127302
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Dimethyl ether (DME) is a promising fuel for use in low-temperature portable hydrogen production, domestic applications, or diesel engines. It burns with less emissions than conventional fuels and has properties similar to LPG in terms of storage and transport, rendering it effective in many strategies for combating climate change. In this study we investigated the partial and total oxidation of DME over 5 wt% Rh/Al2O3 at low temperatures (215 to 320 degrees C), relevant to portable and domestic energy applications as well as the after-treatment systems of DME-powered engines. We captured the effects of temperature, flow rate, and inlet feed composition on the reactivity. For partial oxidation, we utilized the stagnation-flow reactor geometry to isolate the oxidation zone from the reforming zone. We discuss the reaction order with respect to DME and O2 and provide activation energy values under kinetics control. We also provide data where internal and external mass transfer limitations are present to examine the diffusive-convective transport near the catalyst surface, not easily done in three-dimensional en-vironments such as packed beds. The experimental data we provide here pave the way for accurate kinetic modeling of DME partial and total oxidation on Rh/Al2O3, for reactor design and optimization as well as rational catalyst design.
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页数:7
相关论文
共 35 条
[1]   Low-temperature CO oxidation over Rh/Al2O3 in a stagnation-flow reactor [J].
Alghamdi, Nawaf M. ;
Gautam, Ribhu ;
Gascon, Jorge ;
Vlachos, Dionisios G. ;
Sarathy, S. Mani .
REACTION CHEMISTRY & ENGINEERING, 2022, 7 (12) :2497-2507
[2]  
[Anonymous], 2021, Emissions Gap Report 2021: The Heat Is On - A World of Climate Promises Not Yet Delivered
[3]   A review on the valorization of CO2. Focusing on the thermodynamics and catalyst design studies of the direct synthesis of dimethyl ether [J].
Ateka, A. ;
Rodriguez-Vega, P. ;
Erena, J. ;
Aguayo, A. T. ;
Bilbao, J. .
FUEL PROCESSING TECHNOLOGY, 2022, 233
[4]  
Bartholomew CH, 2006, FUNDAMENTALS OF INDUSTRIAL CATALYTIC PROCESSES, 2ND EDITION, P1, DOI 10.1002/9780471730071
[5]   KINETICS OF GASIFICATION OF CARBON DEPOSITED ON NICKEL CATALYSTS [J].
BERNARDO, CA ;
TRIMM, DL .
CARBON, 1979, 17 (02) :115-120
[6]   Ethanol steam reforming over Pt/Al2O3 and Rh/Al2O3 catalysts: The effect of impurities on selectivity and catalyst deactivation [J].
Bilal, Muhammad ;
Jackson, S. David .
APPLIED CATALYSIS A-GENERAL, 2017, 529 :98-107
[7]   Effect of Ba and K addition and controlled spatial deposition of Rh in Rh/Al2O3 catalysts for CO2 hydrogenation [J].
Buechel, Robert ;
Baiker, Alfons ;
Pratsinis, Sotiris E. .
APPLIED CATALYSIS A-GENERAL, 2014, 477 :93-101
[8]   Spatial profiles in partial oxidation of methane and dimethyl ether in an autothermal reactor over rhodium catalysts [J].
Chakrabarti, Reetam ;
Kruger, Jacob S. ;
Hermann, Richard J. ;
Blass, Samuel D. ;
Schmidt, Lanny D. .
APPLIED CATALYSIS A-GENERAL, 2014, 483 :97-102
[9]   Kinetic Modeling of Autothermal Reforming of Dimethyl Ether [J].
Creaser, Derek ;
Nilsson, Marita ;
Pettersson, Lars J. ;
Dawody, Jazaer .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2010, 49 (20) :9712-9719
[10]  
Crippa M., 2019, Fossil CO2 and GHG emissions of all world countries - 2019 Report, DOI [10.2760/687800, JRC117610, DOI 10.2760/687800]