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Methanol steam reforming microreactor with novel 3D-Printed porous stainless steel support as catalyst support

机译:具有新型3D印刷多孔不锈钢支撑件作为催化剂载体的微反应器

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In order to study the methanol steam reforming performance of the 3D-printed porous support for hydrogen production, three dimensional (3D) printing technology was proposed to fabricate porous stainless steel supports with body-centered cubic structure (BCCS) and face-centered cubic structure (FCCS). Catalyst loading strength of the 3D-printed porous stainless steel supports was studied. Moreover, methanol steam reforming performance of different 3D-printed porous supports for hydrogen production was experimentally investigated by changing reaction parameters. The results show that the 3D-printed porous stainless steel supports with BCCS and FCCS exhibit better catalyst loading strength, and can be used in the microreactor for methanol steam reforming for hydrogen production. Compared with 90 pores per inch (PPI) Fe-based foam support, 3D-printed porous stainless steel supports with FCCS and BCCS show the similar methanol steam reforming performance for hydrogen production in the condition of 6500 mL/(g.h) gas hourly space velocity (GHSV) with 360 degrees C reaction temperature. This work provides a new idea for the structural design and fabrication of the porous support for methanol steam reforming microreactor for hydrogen production. (C) 2020 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:为了研究用于氢生产的3D印刷多孔载体的甲醇蒸汽重整性能,提出了三维(3D)印刷技术,用于制造具有体为中心的立方结构(BCC)和面向中心的立方结构的多孔不锈钢支撑件(FCCS)。研究了3D印刷多孔不锈钢支撑件的催化剂负载强度。此外,通过改变反应参数,通过改变反应参数实验研究不同3D印刷多孔载体的甲醇蒸汽重整性的不同3D印刷多孔载体的性能。结果表明,3D印刷多孔不锈钢载体用BCC和FCCS表现出更好的催化剂负载强度,并且可用于甲醇蒸汽重整的MicroreActor用于氢气产生。与每英寸90孔(PPI)Fe的泡沫载体相比,3D印刷多孔不锈钢支撑件与FCCS和BCCS显示出类似的甲醇蒸汽重整性能,用于6500ml /(GH)气体时空速的条件下(GHSV)反应360℃。这项工作为甲醇蒸汽重整微反应器进行了结构设计和制造的新思路,用于氢气产生。 (c)2020氢能源出版物LLC。 elsevier有限公司出版。保留所有权利。

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