Highly Efficient Transformation of Tar Model Compounds into Hydrogen by a Ni-Co Alloy Nanocatalyst During Tar Steam Reforming

被引:15
作者
Chen, Junjie [1 ]
Liu, Yongxiao [1 ]
Chen, Zhengrui [1 ]
Yue, Junrong [2 ]
Tian, Yu [1 ]
Zheng, Chengzhi [3 ]
Zhang, Jun [1 ]
机构
[1] Harbin Inst Technol, Natl Engn Res Ctr Safe Disposal & Resources Recove, Sch Environm, State Key Lab Urban Water Resource & Environm, Harbin 150090, Peoples R China
[2] Chinese Acad Sci, State Key Lab Multiphase Complex Syst, Inst Proc Engn, Beijing 100190, Peoples R China
[3] Guangdong Yuehai Water Investment Co Ltd, Shenzhen 518021, Peoples R China
基金
中国国家自然科学基金; 国家重点研发计划;
关键词
biochar; nanocatalyst; tar catalytic reforming; hydrogen production; antideactivation; SITU CATALYTIC CONVERSION; BIOMASS TAR; SYNTHESIS GAS; PYROLYSIS; TOLUENE; GASIFICATION; CRACKING; REMOVAL; ACID; OLIVINE;
D O I
10.1021/acs.est.3c08857
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Hydrogen (H-2) production from coal and biomass gasification was considered a long-term and viable way to solve energy crises and global warming. Tar, generated as a hazardous byproduct, limited its large-scale applications by clogging and corroding gasification equipment. Although catalytic steam reforming technology was used to convert tar into H-2, catalyst deactivation restricted its applicability. A novel nanocatalyst was first synthesized by the modified sol-gel method using activated biochar as the support, nickel (Ni) as the active component, and cobalt (Co) as the promoter for converting tar into H-2. The results indicated that a high H-2 yield of 263.84 g H-2/kg TMCs (Tar Model Compounds) and TMC conversion of almost 100% were obtained over 6% Ni-4% Co/char, with more than 30% increase in hydrogen yield compared to traditional catalysts. Moreover, 6% Ni-4% Co/char exhibited excellent resistance to carbon deposition by removing the nucleation sites for graphite formation, forming stable Ni-Co alloy, and promoting the char gasification reaction; resistance to oxidation deactivation due to the high oxygen affinity of Co and reduction of the oxidized nickel by H-2 and CO; resistance to sintering deactivation by strengthened interaction between Ni and Co, high specific surface area (920.61 m(2)/g), and high dispersion (7.3%) of Ni nanoparticles. This work provided a novel nanocatalyst with significant potential for long-term practical applications in the in situ conversion of tar into H-2 during steam reforming.
引用
收藏
页码:3540 / 3551
页数:12
相关论文
共 86 条
[1]   Catalyst design for dry reforming of methane: Analysis review [J].
Aramouni, Nicolas Abdel Karim ;
Touma, Jad G. ;
Abu Tarboush, Belal ;
Zeaiter, Joseph ;
Ahmad, Mohammad N. .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2018, 82 :2570-2585
[2]   Recent progress in the development of catalysts for steam reforming of biomass tar model reaction [J].
Ashok, Jangam ;
Dewangan, Nikita ;
Das, Sonali ;
Hongmanorom, Plaifa ;
Wai, Ming Hui ;
Tomishige, Keiichi ;
Kawi, Sibudjing .
FUEL PROCESSING TECHNOLOGY, 2020, 199
[3]   Ethanol steam reforming over Co-based catalysts: Investigation of cobalt coordination environment under reaction conditions [J].
Bayram, Burcu ;
Soykal, I. Ilgaz ;
von Deak, Dieter ;
Miller, Jeffrey T. ;
Ozkan, Umit S. .
JOURNAL OF CATALYSIS, 2011, 284 (01) :77-89
[4]   Catalytic steam reforming of the aqueous fraction of bio-oil using Ni-Ce/Mg-Al catalysts [J].
Bimbela, F. ;
Abrego, J. ;
Puerta, R. ;
Garcia, L. ;
Arauzo, J. .
APPLIED CATALYSIS B-ENVIRONMENTAL, 2017, 209 :346-357
[5]   Proxy-based accelerated discovery of Fischer-Tropsch catalysts [J].
Boldrin, Paul ;
Gallagher, James R. ;
Combes, Gary B. ;
Enache, Dan I. ;
James, David ;
Ellis, Peter R. ;
Kelly, Gordon ;
Claridge, John B. ;
Rosseinsky, Matthew J. .
CHEMICAL SCIENCE, 2015, 6 (02) :935-944
[6]   Performance of biochar as a catalyst for tar steam reforming: Effect of the porous structure [J].
Buentello-Montoya, David ;
Zhang, Xiaolei ;
Li, Jun ;
Ranade, Vivek ;
Marques, Simao ;
Geron, Marco .
APPLIED ENERGY, 2020, 259
[7]   Green hydrogen production based on the co-combustion of wood biomass and porous media [J].
Dai, Hongchao ;
Dai, Huaming .
APPLIED ENERGY, 2022, 324
[8]   Impact of microbial inoculum storage on dark fermentative H2 production [J].
Dauptain, K. ;
Schneider, A. ;
Noguer, M. ;
Fontanille, P. ;
Escudie, R. ;
Carrere, H. ;
Trably, E. .
BIORESOURCE TECHNOLOGY, 2021, 319
[9]   Hydrogen production from algal biomass via steam gasification [J].
Duman, Gozde ;
Uddin, Md Azhar ;
Yanik, Jale .
BIORESOURCE TECHNOLOGY, 2014, 166 :24-30
[10]   H2-rich syngas production through mixed residual biomass and HDPE waste via integrated catalytic gasification and tar cracking plus bio-char upgrading [J].
Esfahani, Reza Alipour Moghadam ;
Osmieri, Luigi ;
Specchia, Stefania ;
Yusup, Suzana ;
Tavasoli, Ahmad ;
Zamaniyan, Akbar .
CHEMICAL ENGINEERING JOURNAL, 2017, 308 :578-587