个人信息Personal Information
教授
博士生导师
硕士生导师
主要任职:化工学院副院长
其他任职:辽宁省石化行业高效节能分离技术工程实验室副主任
性别:男
毕业院校:天津大学
学位:博士
所在单位:化工学院
学科:化学工程. 膜科学与技术. 水科学与技术
办公地点:大连理工大学西部校区化工实验楼D405
联系方式:Tel:0411-84986291
电子邮箱:xbjiang@dlut.edu.cn
膜分离耦合CO2电催化加氢制甲酸工艺的设计及模拟
点击次数:
发表时间:2022-10-06
发表刊物:Huagong Xuebao/CIESC Journal
卷号:72
期号:9
页面范围:4740-4749
ISSN号:0438-1157
摘要:The impact of CO2 on the climate is getting more and more serious. Converting it into formic acid can simultaneously realize resource utilization and carbon emission reduction. The current research of CO2 hydrogenation to formic acid is mainly to find high-performance catalysts, and process design is also indispensable for the industrialization of formic acid, but the process design of CO2 electrocatalytic hydrogenation to formic acid has not been reported yet. Using natural gas whose main components are H2 and CO2 to produce hydrogen pressure swing adsorption desorption gas as raw materials, a process of gas membrane separation coupled with CO2 electrocatalytic hydrogenation to produce 30000 t of formic acid per year was designed and simulated in Unisim Design process simulation software. Then the sensitivity analysis method was used to optimize the membrane electrode area, cathode potential, H2 membrane area, CO2 membrane area, distillation column pressure and reflux ratio. The unit cost of formic acid under the optimal scheme is 6.37 CNY/kg, which is 31.88% higher than the traditional Kemiral-Leonard (KL) process, but the proposed process can reduce 33300 t CO2 per year, which has important environmental significance. Finally, through cost analysis, three effective solutions are proposed from the three aspects of reactor life, cost and electricity price, which can reduce the production cost of formic acid to that of the traditional KL process. © 2021, Editorial Board of CIESC Journal. All right reserved.
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