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CeO2添加比例对Fe基催化剂催化纤维素气化制氢的影响
引用本文:赵雨佳,邹俊,胡俊豪,杨海平,杨光,陈汉平.CeO2添加比例对Fe基催化剂催化纤维素气化制氢的影响[J].农业工程学报,2020,36(20):269-274.
作者姓名:赵雨佳  邹俊  胡俊豪  杨海平  杨光  陈汉平
作者单位:华中科技大学 能源与动力工程学院,煤燃烧国家重点实验室,武汉 430074;华中科技大学 中欧清洁与可再生能源学院,武汉 430074;华中科技大学 能源与动力工程学院,煤燃烧国家重点实验室,武汉 430074
基金项目:国家重点研发计划项目(2018YFB1501403);国家自然科学基金项目(51906082);中国博士后科学基金资助项目(2019M662617)。
摘    要:为研究CeO2添加对生物质催化气化制氢特性的影响,该研究采用分级气化系统分析了不同CeO2/Fe2O3比例(Ce∶Fe摩尔比为0∶1、3∶7、5∶5、7∶3、1∶0)双金属催化剂对纤维素水蒸气催化重整制氢气体产物产量、组成以及催化剂的结构演变特性的影响。结果表明,CeO2/Fe2O3催化剂在制氢反应中的催化性能明显优于纯CeO2或Fe2O3催化剂,当Ce∶Fe摩尔比为3∶7时,在800℃下氢气的最大产率为21.63 mmol/g(以纤维素计,下同);当温度大于等于800℃时,催化剂氧化还原反应后可生成CeFeO3,且CeFeO3的存在对纤维素水蒸气气化过程有促进作用。CeO2的引入提高了催化剂的氧化性能和稳定性,提高了使用寿命。该研究对生物质气化机制的深入理解具有一定的指导意义。

关 键 词:氢气  纤维素  生物质  CeO2/Fe2O3  催化气化
收稿时间:2020/4/20 0:00:00
修稿时间:2020/9/26 0:00:00

Effects of CeO2 addition ratio on hydrogen production during cellulose gasification catalyzed by Fe-based catalysts
Zhao Yuji,Zou Jun,Hu Junhao,Yang Haiping,Yang Guang,Chen Hanping.Effects of CeO2 addition ratio on hydrogen production during cellulose gasification catalyzed by Fe-based catalysts[J].Transactions of the Chinese Society of Agricultural Engineering,2020,36(20):269-274.
Authors:Zhao Yuji  Zou Jun  Hu Junhao  Yang Haiping  Yang Guang  Chen Hanping
Institution:1. State Key Laboratory of Coal Combustion, School of Energy and Power Engineering, Huazhong University of Science & Technology, Wuhan 430074, China; 2. China-EU Institute for Clean and Renewable Energy, Huazhong University of Science & Technology, Wuhan 430074, China
Abstract:Abstract: Biomass energy is currently the fourth largest energy source in the world. Biomass steam gasification at high temperature is also one of the most promising methods of hydrogen production. However, there are some problems, such as high release content of alkali and alkaline earth metal, high tar content, deactivation of catalysts, and low hydrogen content in the conversion process of biomass. These shortcomings have prevented the application of biomass gasification in modern energy and chemical industries. In the process of gasification, the catalyst usually plays an important role in tar conversion and hydrogen production. The iron-based catalysts well perform in the process of thermochemical conversion, where the CeO2 is a very effective catalyst additive, indicating significantly improve the thermal stability of iron-based catalysts. When the proportion of CeO2 in CeO2/Fe2O3 bimetallic Catalyst is high, CeFeO3 with perovskite structure can be synthesized. It has also been proved that CeFeO3 has a high oxygen-carrying capacity, strong oxygen transferability, fast reaction rate, and high photocatalytic activity. This study focused on the effect of Ce addition on the catalytic performance of iron-based catalysts and the syngas in the process of biomass gasification. A co-precipitation method was used to prepare the CeO2/Fe2O3 bimetallic catalysts with different ratios. The cellulose was selected as biomass sample, in order to simplify the impact of high content of alkali and alkaline earth metals in biomass. The specific experiments were carried out in a two-stage fixed-bed gasification reactor. The distribution of gas products, gas yield, structure characteristics, the stability of catalyst were analyzed with variant approaches at different Ce:Fe molar ratios, temperatures and cycles. The optimal molar ratio of CeO2/Fe2O3 bimetallic catalysts was found, further to reveal the effect mechanism of Ce addition on biomass gasification with the iron-based catalyst. The results showed that the catalytic performance of CeO2/Fe2O3 catalyst was much better than that of pure CeO2 or Fe2O3. It infers that the addition of Ce and Fe had a synergistic effect on the volatile conversion and hydrogen production. When the molar ratio of CeO2/Fe2O3 catalyst was 3:7, the maximum yield of the H2 was 21.63 mmol/g cellulose at 800°C, while the total gas yield reached 92.21%. The CeFeO3 product can be generated at 800°C or higher temperature after the redox reactions without forming CeO2/Fe2O3 clathrate. The existence of CeFeO3 enhanced the process of biomass gasification with steam. After 3 cycles, the yield of each gas tended to be stable, while the catalytic activity of CeO2/Fe2O3 bimetallic catalyst did not decrease significantly. Due to the high capacity and oxygen mobility, the introduction of CeO2 can be used to improve the oxidation performance of iron-based catalysts, while to promote the oxidation of possible carbon deposits on the catalyst surface. Therefore, an enhancement effect can be achieved in an inner-looping chemical gasification and the stability of CeO2/Fe2O3 catalyst. This finding can provide a promising guidance for the in-depth understanding of biomass gasification mechanism. Some experiments are under the way to analyze the characteristics of catalyst reduction, surface micro-topography, and carbon deposition. A composite catalyst was recommended in the further research to combine perovskite-type oxygen carriers and carbon dioxide adsorption. It is also necessary to explore its catalytic characteristics in the internal cycle chemical chain gasification and influence on the biomass gasification process.
Keywords:hydrogen  cellulose  biomass  CeO2/Fe2O3  catalytic gasification
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