[1] 郎盼盼,刘鹏,李艳玲,等.不同木屑类生物质热解动力学与热力学参数研究[J].林产工业,2022,59(7):30-37,52.
[2] Deng J,Zhou Y J,Zhao Y,et al.Catalytic pyrolysis of pine needle biomass over Fe-Co-K catalyst for H2-rich syngas production:influence of catalyst preparation[J].Energy,2022,244:122602.
[3] Akubo K,Nahil M A,Williams P T.Pyrolysis-catalytic steam reforming of agricultural biomass wastes and biomass components for production of hydrogen/syngas[J].Journal of the Energy Institute,2019,92(6):1987-1996.
[4] Zhang B,Zhang L,Yang Z,et al.Hydrogen-rich gas production from wet biomass steam gasification with CaO/MgO[J].International Journal of Hydrogen Energy,2015,40(29):8816-8823.
[5] Arregi A,Amutio M,Lopez G,et al.Evaluation of thermochemical routes for hydrogen production from biomass:a review[J].Energy Conversion and Management,2018,165:696-719.
[6] 王瑾悦,解玉龙.生物质炭的制备及超级电容器性能研究[J].化工新型材料,2023,51(7):240-243,249.
[7] Chen W H,Farooq W,Shahbaz M,et al.Current status of biohydrogen production from lignocellulosic biomass,technical challenges and commercial potential through pyrolysis process[J].Energy,2021,226:120433.
[8] 李虹,李豫云,向明武,等.生物质多孔碳应用于锂硫电池的研究进展[J].化工新型材料,2022,50(9):6-11,20.
[9] Wang S R,Dai G X,Yang H P,et al.Lignocellulosic biomass pyrolysis mechanism:a state-of-the-art review[J].Progress in Energy and Combustion Science,2017,62:33-86.
[10] Collard F X,Blin J.A review on pyrolysis of biomass constituents:mechanisms and composition of the products obtained from the conversion of cellulose,hemicelluloses and lignin[J].Renewable and Sustainable Energy Reviews,2014,38:594-608.
[11] Kan T,Strezov V,Evans T J.Lignocellulosic biomass pyrolysis:a review of product properties and effects of pyrolysis parameters[J].Renewable and Sustainable Energy Reviews,2016,57:1126-1140.
[12] Chen D Y,Cen K H,Zhuang X Z,et al.Insight into biomass pyrolysis mechanism based on cellulose,hemicellulose,and lignin:evolution of volatiles and kinetics,elucidation of reaction pathways,and characterization of gas,biochar and bio-oil[J].Combustion and Flame,2022,242:112142.
[13] Qiu B B,Tao X D,Wang J H,et al.Research progress in the preparation of high-quality liquid fuels and chemicals by catalytic pyrolysis of biomass:a review[J].Energy Conversion and Management,2022,261:115647.
[14] Nishu,Liu R H,Rahman M M,et al.A review on the catalytic pyrolysis of biomass for the bio-oil production with ZSM-5:focus on structure[J].Fuel Processing Technology,2020,199:106301.
[15] Wang S X,Shan R,Gu J,et al.Reactivity and deactivation mechanisms of toluene reforming over waste peat char-supported Fe/Ni/Ca catalyst[J].Fuel,2020,271:117517.
[16] Arregi A,Lopez G,Amutio M,et al.Kinetic study of the catalytic reforming of biomass pyrolysis volatiles over a commercial Ni/Al2O3 catalyst[J].International Journal of Hydrogen Energy,2018,43(27):12023-12033.
[17] Wang Y J,Huang L,Zhang T Y,et al.Hydrogen-rich syngas production from biomass pyrolysis and catalytic reforming using biochar-based catalysts[J].Fuel,2022,313:123006.
[18] Bhoi P R,Ouedraogo A S,Soloiu V,et al.Recent advances on catalysts for improving hydrocarbon compounds in bio-oil of biomass catalytic pyrolysis[J].Renewable and Sustainable Energy Reviews,2020,121:109676.
[19] Rahman M M,Liu R H,Cai J M.Catalytic fast pyrolysis of biomass over zeolites for high quality bio-oil-a review[J].Fuel Processing Technology,2018,180:32-46.
[20] Che Q F,Yang M J,Wang X H,et al.Preparation of mesoporous ZSM-5 catalysts using green templates and their performance in biomass catalytic pyrolysis[J].Bioresource Technology,2019,289:121729.
[21] Gamliel D P,Bollas G M,Valla J A.Bifunctional Ni-ZSM-5 catalysts for the pyrolysis and hydropyrolysis of biomass[J].Energy Technology,2017,5(1):172-182.
[22] Stanton A R,Iisa K,Yung M M,et al.Catalytic fast pyrolysis with metal-modified ZSM-5 catalysts in inert and hydrogen atmospheres[J].Journal of Analytical and Applied Pyrolysis,2018,135:199-208.
[23] Grams J,Ryczkowski R,Chałupka K,et al.Impact of support (MCF,ZrO2,ZSM-5) on the efficiency of Ni catalyst in high-temperature conversion of lignocellulosic biomass to hydrogen-rich gas[J].Materials,2019,12(22):3792.
[24] Milovanović J,Luque R,Tschentscher R,et al.Study on the pyrolysis products of two different hardwood lignins in the presence of NiO contained-zeolites[J].Biomass and Bioenergy,2017,103:29-34.
[25] Xiao N,Zhao R,Liu Y F,et al.Hydrogen production by catalytic steam reforming of waste cooking oil over La-Ni/ZSM-5 catalyst[J].Korean Journal of Chemical Engineering,2023,40(9):2174-2186.
[26] Todorova S,Pârvulescu V,Kadinov G,et al.Metal states in cobalt- and cobalt-vanadium-modified MCM-41 mesoporous silica catalysts and their activity in selective hydrocarbons oxidation[J].Microporous and Mesoporous Materials,2008,113(1-3):22-30.
[27] Wu C F,Wang L Z,Williams P T,et al.Hydrogen production from biomass gasification with Ni/MCM-41 catalysts:influence of Ni content[J].Applied Catalysis B:Environmental,2011,108-109:6-13.
[28] Zhao M,Florin N H,Harris A T.The influence of supported Ni catalysts on the product gas distribution and H2 yield during cellulose pyrolysis[J].Applied Catalysis B:Environmental,2009,92(1-2):185-193.
[29] Grams J,Potrzebowska N,Goscianska J,et al.Mesoporous silicas as supports for Ni catalyst used in cellulose conversion to hydrogen rich gas[J].International Journal of Hydrogen Energy,2016,41(20):8656-8667.
[30] Grams J,Ruppert A M.Development of heterogeneous catalysts for thermo-chemical conversion of lignocellulosic biomass[J].Energies,2017,10(4):545.
[31] Zhang C T,Hu X,Guo H Y,et al.Pyrolysis of poplar,cellulose and lignin:effects of acidity and alkalinity of the metal oxide catalysts[J].Journal of Analytical and Applied Pyrolysis,2018,134:590-605.
[32] Youn M H,Seo J G,Jung J C,et al.Hydrogen production by auto-thermal reforming of ethanol over Ni catalyst supported on ZrO2 prepared by a sol-gel method:effect of H2O/P123 mass ratio in the preparation of ZrO2[J].Catalysis Today,2009,146(1-2):57-62.
[33] Arslan A,Gunduz S,Dogu T.Steam reforming of ethanol with zirconia incorporated mesoporous silicate supported catalysts[J].International Journal of Hydrogen Energy,2014,39(32):18264-18272.
[34] Ryczkowski R,Chałupka K,Kwapiński W,et al.Modification of Ni/ZrO2 catalyst by selected rare earth metals as a promising way for increase in the efficiency of thermocatalytic conversion of lignocellulosic biomass to hydrogen-rich gas[J].Fuel,2020,276:118110.
[35] Thyssen V V,Georgetti F,Assaf E M.Influence of MgO content as an additive on the performance of Ni/MgO-SiO2 catalysts for the steam reforming of glycerol[J].International Journal of Hydrogen Energy,2017,42(27):16979-16990.
[36] Blanco P H,Wu C F,Onwudili J A,et al.Characterization and evaluation of Ni/SiO2 catalysts for hydrogen production and tar reduction from catalytic steam pyrolysis-reforming of refuse derived fuel[J].Applied Catalysis B:Environmental,2013,134-135:238-250.
[37] Cho S H,Lee S S,Jung S,et al.Carbon dioxide-cofeeding pyrolysis of pine sawdust over nickle-based catalyst for hydrogen production[J].Energy Conversion and Management,2019,201:112140.
[38] Lee S Y,Jung S Y,Kwon E E.Catalytic pyrolysis for upgrading silver grass (Miscanthus sinensis) and carbon dioxide into flammable gases[J].Bioresource Technology,2022,365:128153.
[39] Guo W W,Li G N,Zheng Y Q,et al.Influence of La2O3 addition on activity and coke formation over Ni/SiO2 for acetic acid steam reforming[J].International Journal of Hydrogen Energy,2022,47(6):3633-3643.
[40] Weng J J,Cheng Z J,Zhang Y,et al.Online evaluation of catalytic co-pyrolysis of hemicellulose and polypropylene over CaO catalyst[J].Fuel,2023,332:125993.
[41] Li Z S,Cai N S,Huang Y Y,et al.Synthesis,experimental studies,and analysis of a new calcium-based carbon dioxide absorbent[J].Energy & Fuels,2005,19(4):1447-1452.
[42] Yue W C,Ma X Q,Yu Z S,et al.Ni-CaO bifunctional catalyst for biomass catalytic pyrolysis to produce hydrogen-rich gas[J].Journal of Analytical and Applied Pyrolysis,2023,169:105872.
[43] Zhao B F,Yang H J,Zhang H M,et al.Study on hydrogen-rich gas production by biomass catalytic pyrolysis assisted with magnetic field[J].Journal of Analytical and Applied Pyrolysis,2021,157:105227.