Shi Kaiqi, Yan Jiefeng, Menéndez J Angel, Luo Xiang, Yang Gang, Chen Yipei, Lester Edward, Wu Tao
Key Laboratory for Carbonaceous Wastes Processing and Process Intensification Research of Zhejiang Province, The University of Nottingham Ningbo China, Ningbo, China.
College of Science & Technology, Ningbo University, Ningbo, China.
Front Chem. 2020 Jan 24;8:3. doi: 10.3389/fchem.2020.00003. eCollection 2020.
This study focuses on the use of a microwave reactor that combines biomass pyrolysis, at mild temperature, with catalytic reforming of the pyrolytic gas, using activated carbon, for generating hydrogen-rich synthesis gas. The traditional pyrolysis of biomass coupled with the reforming of its pyrolytic yields were also conducted using an electrically heated reactor. The bio-oil attained from conventional pyrolysis was higher in comparison to the yield from microwave pyrolysis. The reforming of the pyrolytic gas fraction led to reductions in bio-oil yield to <3.0 wt%, with a simultaneous increase in gaseous yields. An increase in the syngas and H selectivity was discovered with the reforming process such that the use of microwave pyrolysis with activated carbon reforming produced 85 vol% synthesis gas fraction containing 55 vol% H in comparison to the 74 vol% syngas fraction with 30 vol% H obtained without the reforming. Cracking reactions were improved with microwave heating, while deoxidation and dehydrogenation reactions were enhanced by activated carbon, which creates a reduction environment. Consequently, these reactions generated H-rich syngas formation. The approach implemented in this study revealed higher H, syngas yield and that the overall LHV of products has huge potential in the transformation of biomass into high-value synthesis gas.
本研究聚焦于一种微波反应器的应用,该反应器在温和温度下将生物质热解与热解气的催化重整相结合,使用活性炭来生成富氢合成气。还使用电加热反应器对生物质的传统热解及其热解产物的重整进行了研究。与微波热解的产率相比,传统热解获得的生物油产率更高。热解气馏分的重整导致生物油产率降至<3.0 wt%,同时气体产率增加。发现重整过程中合成气和H选择性增加,因此与未进行重整时获得的含30 vol% H的74 vol%合成气馏分相比,使用微波热解与活性炭重整产生了含55 vol% H的85 vol%合成气馏分。微波加热改善了裂解反应,而活性炭增强了脱氧和脱氢反应,活性炭创造了一个还原环境。因此,这些反应生成了富氢合成气。本研究中实施的方法显示出更高的H、合成气产率,并且产物的整体低位发热量在将生物质转化为高价值合成气方面具有巨大潜力。