Numerical Simulation of Steam Reforming of Methanol in Micro-Channel Reactor

Author(s):  
Wenzhi Cui ◽  
Longjian Li ◽  
Tien-Chien Jen ◽  
Qinghua Chen ◽  
Quan Liao

On-board hydrogen generation from hydrocarbon fuels, such as methanol, natural gas, gasoline and diesel, etc., will be technically feasible in the near future for fuel cell powered vehicles. Among all the fuel processing methods, steam reforming is considered as the most widely used method of hydrogen reforming for the lower reactive temperature, pressure and higher hydrogen ratio in reformate. A laminate micro-channel catalytic reactor was designed for the purpose of hydrogen generation from hydrocarbons. The depth of the reaction channel is 0.5 mm, and the length and width are 50 mm and 40 mm, respectively. The same geometry is designed for the heating channels. A metal sheet is placed between reacting and heating channels to separate them. Piling up alternately the two channels is to buildup the laminate microchannel reactor. Numerical simulation has been conducted in one reactive unit, i.e., one reacting channel and one heating channel. The reactant is the solution of methanol and water mixing with a certain ratio. And the reaction heat is provided by hot air flow with a temperature of 600K. A 2D steady model of the reforming reactive processes was developed and solved numerically. The ratio of water and methanol is set to be at 1.3. The conversion rate of methanol was nearly 100% at the outlet of reactor, while the volume ratio of hydrogen is 51.4% with the selectivity of CO2 reaches 49.2%. Detail results showed that the 50 mm long reacting channel could be divided into four different regimes along with the reacting course. In the first regime (0-5mm), methanol in the reactants is almost completely converted and CO is mainly generated in the third one (15-20mm), while reactions in the other two regimes are indiscoverable. The reasons leading to such phenomena are clarified in this paper.

Materials ◽  
2020 ◽  
Vol 13 (24) ◽  
pp. 5601
Author(s):  
Magdalena Mosińska ◽  
Małgorzata I. Szynkowska-Jóźwik ◽  
Paweł Mierczyński

The production of pure hydrogen is one of the most important problems of the modern chemical industry. While high volume production of hydrogen is well under control, finding a cheap method of hydrogen production for small, mobile, or his receivers, such as fuel cells or hybrid cars, is still a problem. Potentially, a promising method for the generation of hydrogen can be oxy–steam-reforming of methanol process. It is a process that takes place at relatively low temperature and atmospheric pressure, which makes it possible to generate hydrogen directly where it is needed. It is a process that takes place at relatively low temperature and atmospheric pressure, which makes it possible to generate hydrogen directly where it is needed. This paper summarizes the current state of knowledge on the catalysts used for the production of hydrogen in the process of the oxy–steam-reforming of methanol (OSRM). The development of innovative energy generation technologies has intensified research related to the design of new catalysts that can be used in methanol-reforming reactions. This review shows the different pathways of the methanol-reforming reaction. The paper presents a comparison of commonly used copper-based catalysts with other catalytic systems for the production of H2 via OSRM reaction. The surface mechanism of the oxy–steam-reforming of methanol and the kinetic model of the OSRM process are discussed.


2008 ◽  
Vol 135 (1-2) ◽  
pp. 113-119 ◽  
Author(s):  
Arunabha Kundu ◽  
Ji Eun Ahn ◽  
Sang-Son Park ◽  
Yong Gun Shul ◽  
Hak Soo Han

2015 ◽  
Vol 273 ◽  
pp. 130-137 ◽  
Author(s):  
A.G. Gribovskiy ◽  
L.L. Makarshin ◽  
D.V. Andreev ◽  
O.P. Klenov ◽  
V.N. Parmon

2004 ◽  
Vol 277 (1-2) ◽  
pp. 83-90 ◽  
Author(s):  
Yong Men ◽  
Hubert Gnaser ◽  
Ralf Zapf ◽  
Volker Hessel ◽  
Christiane Ziegler ◽  
...  

2006 ◽  
Vol 159 (2) ◽  
pp. 1296-1299 ◽  
Author(s):  
Heondo Jeong ◽  
Kweon Ill Kim ◽  
Tae Hwan Kim ◽  
Chang Hyun Ko ◽  
Hwa Choon Park ◽  
...  

Author(s):  
Jung-Hui Wang ◽  
Chuin-Tih Yeh

Washcoating copper catalyst in the micro-channel reactor for steam reforming of methanol (SRM) is advantageous to get high ratio of surface area to volume. Catalyst was coated using brushing method by making slurry with different metal oxides sol as binder (ceria, zirconia and yttria). In the preparation of catalyst slurry, the solid content, ratio of catalyst to binder, pH value and solvent were investigated. The adhesion of catalyst can be compared by estimating the weight loses of washcoating layer after 130W sonication for 30 min. The crystallite, morphology, reduction temperature and chemical environment of catalysts can be characterized by XRD, SEM, TPR and OTPR. The catalyst coated with various metal oxides sol mixing water/ethanol solvent with a specific solid content and catalyst/binder ratio in the neutral solution exhibits a good adherence with the substrate. The performance of fabricated micro-reformer is investigated in the temperature range 150–300 °C. In GHSV = 60,000 h−1, the conversion reaches 80% at 210 °C, and it corresponded to the generating of hydrogen for power output of 2 W assuming a 50% fuel cell operating efficiency. Furthermore, the fabrication of microchannels reactor connecting high temperature PEMFC is investigated.


2006 ◽  
Vol 116 (2) ◽  
pp. 123-132 ◽  
Author(s):  
Xinhai Yu ◽  
Shan-Tung Tu ◽  
Zhengdong Wang ◽  
Yunshi Qi

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