Microwave-assisted catalytic gasification of mixed plastics and corn stover for low tar, hydrogen-rich syngas production

被引:0
|
作者
Abedin, Ashraf [1 ,2 ]
Bai, Xinwei [1 ,2 ]
Muley, Pranjali [1 ,2 ]
机构
[1] Natl Energy Technol Lab, 3610 Collins Ferry Rd, Morgantown, WV 26507 USA
[2] Leidos Res Support Team, 3610 Collins Ferry Rd, Morgantown, WV 26507 USA
关键词
FLUIDIZED-BED; BIOMASS GASIFICATION; AIR GASIFICATION; PYROLYSIS; COAL; CARBON; POLYPROPYLENE; CONVERSION; OLIVINE; METHANE;
D O I
10.1016/j.ijhydene.2024.06.176
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The challenge for efficient management of post-consumer plastic and biomass waste has grown over the past few decades due to their dramatic increases. In comparison to conventional gasification, microwave-assisted cogasification of plastics and corn stover offers many benefits, including increased H2 yield and gas components compared to unfavorable char/tar. Nonetheless, for future commercialization of the process and ease of product separation, further reduction of the undesirable tar is necessary, which can be achieved over the catalytic route. In this work, we studied the catalytic effect of magnetite for microwave-assisted co-gasification of corn stover and plastic to make syngas with higher H2 and lower tar selectivity over non-catalytic conditions. A 1:1:1 ratio of plastic-corn stover-magnetite was used to evaluate the reaction parameters such as temperature, space velocity, heating media, and catalytic cycles under gasification conditions. In comparison with the microwave noncatalytic route, a 100% increase in the total H2 yield with 76% higher H2 production efficiency (mmol/kWh) was achieved in the presence of the magnetite catalyst, while reducing the overall tar formation from 9% to 2%. When magnetite was reduced in situ during the reaction, it coupled with microwave and delivered oxygen radicals that cracked down plastic and corn stover intermediates generated from the synergistic effect under microwave heating. Soon after the oxygen transfer process initiated, magnetite reached its final oxidation state consisting of microwave-active Fe and Fe3C phases that continued coupling with microwaves along with the generated graphitic carbon to maintain the heat necessary to further reduce the generated tar and make additional gaseous products, as confirmed by XRD, Raman, and TGA analyses.
引用
收藏
页码:69 / 83
页数:15
相关论文
共 50 条
  • [21] Experimental investigations of hydrogen production from CO catalytic conversion of tar rich syngas by biomass gasification
    Chianese, Simeone
    Fail, Silvester
    Binder, Matthias
    Rauch, Reinhard
    Hofbauer, Hermann
    Molino, Antonio
    Blasi, Alessandro
    Musmarra, Dino
    [J]. CATALYSIS TODAY, 2016, 277 : 182 - 191
  • [22] Hydrogen-rich gas production from biomass catalytic gasification
    Lv, PM
    Chang, J
    Wang, TJ
    Fu, Y
    Chen, Y
    Zhu, JX
    [J]. ENERGY & FUELS, 2004, 18 (01) : 228 - 233
  • [23] Microwave-assisted chemical looping gasification of plastics for H2-rich gas production
    Fu, Wenming
    Zhang, Yaning
    Cao, Weitao
    Zhao, Wenke
    Li, Bingxi
    [J]. Chemical Engineering Journal, 2024, 499
  • [24] Improved hydrogen production via thermophilic fermentation of corn stover by microwave-assisted acid pretreatment
    Liu, Chun-zhao
    Cheng, Xi-yu
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2010, 35 (17) : 8945 - 8952
  • [25] Hydrogen-rich Syngas Production via Catalytic Gasification of Sewage Sludge and Wheat Straw Using Corn Stalk Char-supported Catalysts
    Shang, Shuang
    Guo, Chaoqiang
    Lan, Kui
    Li, Zeshan
    He, Weitao
    Qin, Zhenhua
    Li, Jianfen
    [J]. BIORESOURCES, 2020, 15 (02): : 4294 - 4313
  • [26] Hydrogen-Rich Syngas Production from Gasification of Sewage Sludge: Catalonia Case
    Untoria, Sandra
    Rouboa, Abel
    Monteiro, Eliseu
    [J]. ENERGIES, 2024, 17 (06)
  • [27] A PILOT-PLANT FOR THE STUDY OF THE PRODUCTION OF HYDROGEN-RICH SYNGAS BY GASIFICATION OF BIOMASS
    LUCCHESI, A
    MASCHIO, G
    RIZZO, C
    STOPPATO, G
    [J]. RESEARCH IN THERMOCHEMICAL BIOMASS CONVERSION, 1988, : 642 - 654
  • [28] Plasma steam gasification of surgical mask waste for hydrogen-rich syngas production
    Yousef, Samy
    Tamosiunas, Andrius
    Aikas, Mindaugas
    Uscila, Rolandas
    Gimzauskaite, Dovile
    Zakarauskas, Kestutis
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2024, 49 : 1375 - 1386
  • [29] Numerical and experimental investigation of hydrogen-rich syngas production via biomass gasification
    Aydin, Ebubekir Siddik
    Yucel, Ozgun
    Sadikoglu, Hasan
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2018, 43 (02) : 1105 - 1115
  • [30] Steam-gasification of biomass with CaO as catalyst for hydrogen-rich syngas production
    Zhou, Liang
    Yang, Zhiyong
    Tang, Anjiang
    Huang, Hongsheng
    Wei, Deju
    Yu, Erlei
    Lu, Wei
    [J]. JOURNAL OF THE ENERGY INSTITUTE, 2019, 92 (06) : 1641 - 1646