混合(物理)
阴极
停留时间(流体动力学)
电化学
催化作用
精炼(冶金)
化学
停留时间分布
流量(数学)
材料科学
化学工程
甲醇
电极
工艺工程
核工程
机械
有机化学
工程类
物理
物理化学
量子力学
岩土工程
作者
Haolin Ye,Xiaoxu Xuan,Mengjie Wang,Jingxuan Sun,Mengqing Yang,Xinyan Zhang,Lijie Guo,Xun Sun
标识
DOI:10.1002/ente.202301142
摘要
The CO 2 electrochemical reduction reaction (CO 2 ERR) is heralded for carbon dioxide and renewable energy utilization. However, complexities in catalyst optimization and reactor structure research hinder its practical application. Herein, rather than traditional catalyst optimization, emphasis is placed on refining the reactor structure to enhance gas–liquid mixing. The goal is to raise the CO 2 concentration in the reaction zone and extend its residence refining CO 2 ERR. Building on prior reactor designs, this work introduces the N‐reactor (the nozzle‐type reactor) with a ring electrode suited for gas–liquid mixing and reaction interplay. Through finite element simulations using the gas–liquid flow model, compared with the S‐reactors (the wide‐straight‐type reactor and the narrow‐straight‐type reactor), the N‐reactor's ring electrode shows a 12.99% CO 2 concentration rise in the electrode zone and a 67.11% surge at the cathode exit. As a consequence, the total concentration of the product methanol is increased by 6.37%, with a maximum concentration increase of 26.96% and a concentration increase of 49.08% at the cathode outlet. These results validate the feasibility of optimizing the reaction from the perspective of gas–liquid mixing flow and provide novel methods and ideas for further optimization of CO 2 ERR, contributing to the practical application of the technology.
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