| 6,225 | 63 | 60 |
| Downloads | Citas | Reads |
Rational development and utilization of hydrogen energy can promote the transformation and upgrading of Chinese energy structure, as well as the sustainable development of society. To achieve the carbon peak and neutrality targets, biomass hydrogen production technology is considered as a green hydrogen production technology with great development potential. The technology can be divided into thermochemical hydrogen production technology and biological hydrogen production technology. The principles, influencing factors,advantages and disadvantages and research status of hydrogen production technologies involving steam gasification,supercritical water gasification, biomass pyrolysis reforming, light fermentation and dark fermentation are reviewed in this paper. Moreover, the technical barriers and future development obstacles of various hydrogen production technologies are comprehensively analyzed. The research has certain guiding significance for the development of biomass hydrogen production technology.
[1]ZHOU S,DAI F,CHEN Y,et al.Sustainable hydrothermal self-assembly of hafnium-lignosulfonate nanohybrids for highly efficient reductive pgrading of 5-hydroxymethyl furfural[J].Green Chemistry,2019,21(6):1421-1431.
[2]付明,陈凡敏,张媛媛,等.煤加氢催化气化影响因素的实验研究[J].化学世界,2012,53(增刊1):75-76.FU Ming,CHEN Fanmin,ZHANG Yuanyuan,et al.Experimental study on influencing factors of coal hydrogenation catalytic gasification[J].Chemical World,2012,53(Suppl.1):75-76.
[3]潘相敏,林瑞,李昕,等.氢能与燃料电池的研发及商业化进展[J].科技导报,2011,29(27):73-79.PAN Xiangmin,LIN Rui,LI Xin,et al.Development and commercialization of hydrogen energy and fuel cells[J].Science&Technology Review,2011,29(27):73-79.
[4]WANG Y H,LI H T,FENG H M,et al.Simulation study on the PEMFC oxygen starvation based on the coupling algorithm of model predictive control and PID[J].Energy Conversion and Management,2021,249:114851.
[5]WANG Y H,ZHAGN H Y,QI J H,et al.Thermodynamic and exergy analysis of a novel PEMFC-ORC-MHcombined integrated energy system[J/OL].Energy Conversion and Management,2022,264:115709.
[6]潘健民,魏运洋,李永峰,等.氢能的重要性和制氢方法浅析[J].环境保护,2008(18):59-61.PAN Jianmin,WEI Yunyang,LI Yongfeng,et al.The importance of hydrogen energy and the analysis of hydrogen production methods[J].Environmental Protection,2008(18):59-61.
[7]EL-EMAM R S,?ZCAN H.Comprehensive review on the techno-economics of sustainable large-scale clean hydrogen production[M].Journal of Cleaner Production,2019,220:593-609.
[8]NIPATTUMMAKUL N,AHMED I I,KERDSUWAN S,et al.Hydrogen and syngas production from sewage sludge via steam gasification[J].International Journal of Hydrogen Energy,2010,35(21):11738-11745.
[9]AGBOR V B,CICEK N,SPARLING R,et al.Biomass pretreatment:fundamentals toward application[J].Biotechnology Advances,2011,29(6):675-685.
[10]孙立,许敏,孙荣峰.生物质二次裂解生产富氢气体[C].第四届全国氢能学术会议,2011.SUN Li,XU Min,SUN Rongfeng.Biomass secondary cracking to produce hydrogen-rich gas[C].The 4th National Hydrogen Energy Academic Conference,2011.
[11]BARTELS J R,PATE M B,OLSON N K.An economic survey of hydrogen production from conventional and alternative energy sources[J].International Journal of Hydrogen Energy,2010,35(16):8371-8384.
[12]FRANCO C,PINTO F,GULYURTLU I,et al.The study of reactions influencing the biomass steam gasification process[J].Fuel,2003,82:835-842.
[13]FREMAUX S,BEHESHTI S M,GHASSEMI H,et al.An experimental study on hydrogen-rich gas production via steam gasification of biomass in a research-scale fluidized bed[J].Energy Conversion and Management,2015,91:427-432.
[14]NIU Y,HAN F,CHEN Y,et al.Experimental study on steam gasification of pine particles for hydrogen-rich gas[J].Journal of the Energy Institute,2017,90(5):715-724.
[15]ZHANG Z,PANG S.Experimental investigation of biomass devolatilization in steam gasification in a dual fluidised bed gasifier[J].Fuel,2017,188:628-635.
[16]ERKIAGA A,LOPEZ G,AMUTIO M,et al.Influence of operating conditions on the steam gasification of biomass in a conical spouted bed reactor[J].Chemical Engineering Journal,2014,237:259-267.
[17]ERKIAGA A,LOPEZ G,AMUTIO M,et al.Steam gasification of biomass in a conical spouted bed reactor with olivine and γ-alumina as primary catalysts[J].Fuel Processing Technology,2013,116:292-299.
[18]RAPAGNàS,GALLUCCI K,FOSCOLO P U.Olivine,dolomite and ceramic filters in one vessel to produce clean gas from biomass[J].Waste Management,2018,71:792-800.
[19]SCHWEITZER D,GREDINGER A,SCHMID M,et al.Steam gasification of wood pellets,sewage sludge and manure:gasification performance and concentration of impurities[J].Biomass and Bioenergy,2018,111:308-319.
[20]TIAN T,LI Q,HE R,et al.Effects of biochemical composition on hydrogen production by biomass gasification[J].International Journal of Hydrogen Energy,2017,42(31):19723-19732.
[21]WEI L,XU S,ZHANG L,et al.Steam gasification of biomass for hydrogen-rich gas in a free-fall reactor[J].International Journal of Hydrogen Energy,2007,32(1):24-31.
[22]LV P M,XIONG Z H,CHANG J,et al.An experimental study on biomass air-steam gasification in a fluidized bed[J].Bioresource Technology,2004,95(1):95-101.
[23]LUO S,XIAO B,GUO X,et al.Hydrogen-rich gas from catalytic steam gasification of biomass in a fixed bed reactor:Influence of particle size on gasification performance[J].International Journal of Hydrogen Energy,2009,34(3):1260-1264.
[24]CHAN Y H,CHEAH K W,HOW B S,et al.An overview of biomass thermochemical conversion technologies in Malaysia[J].Science of the Total Environment,2019,680:105-123.
[25]LI H,CHEN Z,HUO C,et al.Effect of bioleaching on hydrogen-rich gas production by steam gasification of sewage sludge[J].Energy Conversion and Management,2015,106:1212-1218.
[26]NIU Y,HAN F,CHEN Y,et al.Experimental study on steam gasification of pine particles for hydrogen-rich gas[J].Journal of the Energy Institute,2017,90(5):715-724.
[27]GAI C,GUO Y,LIU T,et al.Hydrogen-rich gas production by steam gasification of hydrochar derived from sewage sludge[J].International Journal of Hydrogen Energy,2016,41(5):3363-3372.
[28]CAO L,YU I K M,XIONG X,et al.Biorenewable hydrogen production through biomass gasification:a review and future prospects[J].Environmental Research,2020,186:109547.
[29]ZHANG B,ZHANG L,YANG Z,et al.Hydrogen-rich gas production from wet biomass steam gasification with Ca O/Mg O[J].International Journal of Hydrogen Energy,2015,40(29):8816-8823.
[30]HAN L,WANG Q,YANG Y,et al.Hydrogen production via Ca O sorption enhanced anaerobic gasification of sawdust in a bubbling fluidized bed[J].International Journal of Hydrogen Energy,2011,36(8):4820-4829.
[31]XIONG X,YU I K M,CAO L,et al.A review of biocharbased catalysts for chemical synthesis,biofuel production,and pollution control[J].Bioresource Technology,2017,246:254-270.
[32]QIU P,DU C,LIU L,et al.Hydrogen and syngas production from catalytic steam gasification of char derived from ion-exchangeable Na-and Ca-loaded coal[J].International Journal of Hydrogen Energy,2018,43(27):12034-12048.
[33]JACEK G,AGNIESZKA R.Development of heterogeneous catalysts for thermo-chemical conversion of lignocellulosic biomass[J].Energies,2017,10(4):545.
[34]SHEN Y,ZHAO P,SHAO Q,et al.In situ catalytic conversion of tar using rice husk char/ash supported nickel-iron catalysts for biomass pyrolytic gasification combined with the mixing-simulation in fluidized-bed gasifier[J].Applied Energy,2015,160:808-819.
[35]GHOLKAR P,SHASTRI Y,TANKSALE A.Catalytic reactive flash volatilisation of microalgae to produce hydrogen or methane-rich syngas[J].Applied Catalysis B:Environmental,2019,251:326-334.
[36]YAN X,LI Y,SUN C,et al.Hydrogen production from absorption-enhanced steam gasification of Enteromorpha prolifera and its char using Ce-doped Ca O material[J].Fuel,2020,287(648/659):119554.
[37]YAN X,LI Y,SUN C,et al.Probing the mechanism of H2production in water gas shift reaction over Ce-modified Ca O:A DFT study[J].Journal of the Energy Institute,2022,101:149-159.
[38]YAN X,LI Y,SUN C,et al.Enhanced H2 production from steam gasification of biomass by red mud-doped Ca-AlCe bi-functional material[J].Applied Energy,2022,312:118737.
[39]WANG F,LI Y,WANG Y,et al.Mechanism insights into sorption enhanced methane steam reforming using Nidoped Ca O for H2 production by DFT study[J].Fuel,2022,319:123849.
[40]ZHAO B,O’CONNOR D,ZHANG J,et al.Effect of pyrolysis temperature,heating rate,and residence time on rapeseed stem derived biochar[J].Journal of Cleaner Production,2018,174:977-987.
[41]AZADI P,FARNOOD R.Review of heterogeneous catalysts for sub-and supercritical water gasification of biomass and wastes[J].International Journal of Hydrogen Energy,2011,36:9529-9541.
[42]SHARMA K.Carbohydrate-to-hydrogen production technologies:a mini-review[J].Renewable and Sustainable Energy Reviews,2019,105:138-143.
[43]NANDA S,RANA R,HUNTER H N,et al.Hydrothermal catalytic processing of waste cooking oil for hydrogenrich syngas production[J].Chemical Engineering Science,2019,195:935-945.
[44]GUO Y,WANG S Z,XU D H,et al.Review of catalytic supercritical water gasification for hydrogen production from biomass[J].Renewable and Sustainable Energy Reviews.2010,14:334-343.
[45]KRUSE A,HENNINGSEN T,SMAG A,et al.Biomass gasification in supercritical water:Influence of the dry matter content and the formation of phenols[J].Industrial and Engineering Chemistry Research,2003,42(16):3711-3717.
[46]LU Y,GUO L,ZHANG X,et al.Thermodynamic modeling and analysis of biomass gasification for hydrogen production in supercritical water[J].Chemical Engineering Journal,2007,131(1/2/3):233-244.
[47]LU Y,GUO L,ZHANG X,et al.Hydrogen production by supercritical water gasification of biomass:Explore the way to maximum hydrogen yield and high carbon gasification efficiency[J].International Journal of Hydrogen Energy,2012,37(4):3177-3185.
[48]GUTIéRREZ ORTIZ F J,CAMPANARIO F J,AGUILERA P G,et al.Hydrogen production from supercritical water reforming of glycerol over Ni/Al2O3-Si O2 catalyst[J].Energy,2015,84:634-642.
[49]DING N,AZARGOHAR R,DALAI A K,et al.Catalytic gasification of cellulose and pinewood to H2 in supercritical water[J].Fuel,2014,118:416-425.
[50]SELVI G?KKAYA D,SAGLAM M,YüKSEL M,et al.Supercritical water gasification of phenol as a model for plant biomass[J].International Journal of Hydrogen Energy,2015,40(34):11133-11139.
[51]GUO D L,WU S B,LIU B,et al.Catalytic effects of Na OH and Na2CO3 additives on alkali lignin pyrolysis and gasification[J].Applied Energy,2012,95:22-30.
[52]GUAN Q,HUANG X,LIU J,et al.Supercritical water gasification of phenol using a Ru/Ce O2 catalyst[J].Chemical Engineering Journal,2016,283:358-365.
[53]CASTELLO D,KRUSE A,FIORI L.Biomass gasification in supercritical and subcritical water:the effect of the reactor material[J].Chemical Engineering Journal,2013,228:535-544.
[54]LAN P,XU Q,ZHOU M,et al.Catalytic steam reforming of fast pyrolysis bio-oil in fixed bed and fluidized bed reactors[J].Chemical Engineering and Technology,2010,33(12):2021-2028.
[55]张晖,刘昕昕,付时雨.生物质制氢技术及其研究进展[J].中国造纸,2019,38(7):68-74.ZHANG Hui,LIU Xinxin,FU Shiyu.Research advances in technology of hydrogen production from biomass[J].China Pulp&Paper,2019,38(7):68-74.
[56]陈冠益,孔韡,徐莹,等.生物质化学制氢技术研究进展[J].浙江大学学报(工学版),2014(7):1318-1328.CHEN Guanyi,KONG Wei,XU Ying,et al.Review of hydrogenproduction from biomass by chemical conversion process[J].Journal of Zhejiang University(Engineering Science),2014(7):1318-1328.
[57]YAO Y,GAO X,LI Z,et al.Photocatalytic reforming for hydrogen evolution:a review[J].Catalysts,2020,10(3):335.
[58]XIAO X,CAO J,MENG X,et al.Synthesis gas production from catalytic gasification of waste biomass using nickel-loaded brown coal char[J].Fuel,2013,103:135-140.
[59]KOIKE M,ISHIKAWA C,LI D,et al.Catalytic performance of manganese-promoted nickel catalysts for the steam reforming of tar from biomass pyrolysis to synthesis gas[J].Fuel,2013,103:122-129.
[60]SHEN Y,CHEN M,SUN T,et al.Catalytic reforming of pyrolysis tar over metallic nickel nanoparticles embedded in pyrochar[J].Fuel,2015,159:570-579.
[61]ARREGI A,LOPEZ G,AMUTIO M,et al.Hydrogen production from biomass by continuous fast pyrolysis and in-line steam reforming[J].RSC Advances,2016,6(31):25975-25985.
[62]EFIKA C E,WU C,WILLIAMS P T.Syngas production from pyrolysis-catalytic steam reforming of waste biomass in a continuous screw kiln reactor[J].Journal of Analytical and Applied Pyrolysis,2012,95:87-95.
[63]CAO J P,SHI P,ZHAO X Y,et al.Catalytic reforming of volatiles and nitrogen compounds from sewage sludge pyrolysis to clean hydrogen and synthetic gas over a nickel catalyst[J].Fuel Processing Technology,2014,123:34-40.
[64]XIAO X,MENG X,LE D D,et al.Two-stage steam gasification of waste biomass in fluidized bed at low temperature:parametric investigations and performance optimization[J].Bioresource Technology,2011,102(2):1975-1981.
[65]CHEN J,SUN J,WANG Y.Catalysts for steam reforming of bio-oil:a review[J].Industrial and Engineering Chemistry Research.American Chemical Society,2017,56:4627-4637.
[66]NABGAN W,TUAN ABDULLAH T A,MAT R,et al.Renewable hydrogen production from bio-oil derivative via catalytic steam reforming:an overview[J].Renewable and Sustainable Energy Reviews,2017,79:347-357.
[67]SONG H,ZHANG L,OZKAN U S.The effect of surface acidic and basic properties on the performance of cobaltbased catalysts for ethanol steam reforming[J].Topics in Catalysis,2012,55:1324-1331.
[68]KAFTAN A,KUSCHE M,LAURIN M,et al.KOH-promoted Pt/Al2O3 catalysts for water gas shift and methanol steam reforming:An operando DRIFTS-MSstudy[J].Applied Catalysis B:Environmental,2017,201:169-181.
[69]MA Z,XIAO R,ZHANG H.Catalytic steam reforming of bio-oil model compounds for hydrogen-rich gas production using bio-char as catalyst[J].International Journal of Hydrogen Energy,2017,42(6):3579-3585.
[70]LIU J Y,SU W N,RICK J,et al.Rational design of ethanol steam reforming catalyst based on analysis of Ni/La2O3metal-support interactions[J].Catalysis Science and Technology,2016,6(10):3449-3456.
[71]SAVUTO E,DI CARLO A,GALLUCCI K,et al.Characterization and performance analysis of an innovative Ni/Mayenite catalyst for the steam reforming of raw syngas[J].Fuel,2017,194:348-356.
[72]MEI Y,WU C,LIU R.Hydrogen production from steam reforming of bio-oil model compound and byproducts elimination[J].International Journal of Hydrogen Energy,2016,41(21):9145-9152.
[73]PARASCANU M M,PUIG-GAMERO M,SOREANU G,et al.Comparison of three Mexican biomasses valorization through combustion and gasification:Environmental and economic analysis[J].Energy,2019,189:116095.
[74]AKHLAGHI N,NAJAFPOUR-DARZI G.A comprehensive review on biological hydrogen production[J].International Journal of Hydrogen Energy,2020,45(43):22492-22512.
[75]DA SILVA V T,MOZER T S,DA COSTA R M D S D,et al.Hydrogen:trends,production and characterization of the main process worldwide[J].International Journal of Hydrogen Energy,2017,42(4):2018-2033.
[76]DAS D,VEZIROGLU T N.Advances in biological hydrogen production processes[J].International Journal of Hydrogen Energy,2008,33(21):6046-6057.
[77]NAGARAJAN D,LEE D J,KONDO A,et al.Recent insights into biohydrogen production by microalgaeFrom biophotolysis to dark fermentation[J].Bioresource Technology,2017,227:373-387.
[78]KIM D H,KIM M S.Hydrogenases for biological hydrogen production[J].Bioresource Technology,2011,102(18):8423-8431.
[79]VOLOSHIN R A,RODIONOVA M V,ZHARMU-KHAMEDOV S K,et al.Review:biofuel production from plant and algal biomass[J].International Journal of Hydrogen Energy,2016,41:17257-17273.
[80]SHOW K Y,LEE D J,TAY J H,et al.Biohydrogen production:current perspectives and the way forward[J].International Journal of Hydrogen Energy,2012,37:15616-15631.
[81]ZHANG X,SHERMAN D M,SHERMANA L A.The uptake hydrogenase in the unicellular diazotrophic cyanobacterium cyanothece sp.strain PCC 7822 protects nitrogenase from oxygen toxicity[J].Journal of Bacteriology,2014,196(4):840-849.
[82]KUMAR G,SIVAGURUNATHAN P,PUGAZHENDHIA,et al.A comprehensive overview on light independent fermentative hydrogen production from wastewater feedstock and possible integrative options[J].Energy Conversion and Management,2017,141:390-402.
[83]BASAK N,DAS D.The prospect of purple non-sulfur(PNS) photosynthetic bacteria for hydrogen production:The present state of the art[J].World Journal of Microbiology and Biotechnology,2007,23(1):31-42.
[84]PARK J Y,KIM B N,KIM Y H,et al.Whole-genome sequence of purple non-sulfur bacteria,Rhodobacter sphaeroides strain MBTLJ-8 with improved CO2reduction capacity[J].Journal of Biotechnology,2018,288:9-14.
[85]WANG J,YIN Y.Progress in microbiology for fermentative hydrogen production from organic wastes[J].Critical Reviews in Environmental Science and Technology,2019,49(10):825-865.
[86]GUWY A J,DINSDALE R M,KIM J R,et al.Fermentative biohydrogen production systems integration[J].Bioresource Technology,2011,102(18):8534-8542.
[87]BUNDHOO M A Z,MOHEE R.Inhibition of dark fermentative bio-hydrogen production:a review[J].International Journal of Hydrogen Energy,2016,41:6713-6733.
[88]CHONG M L,SABARATNAM V,SHIRAI Y,et al.Biohydrogen production from biomass and industrial wastes by dark fermentation[J].International Journal of Hydrogen Energy,2009,34:3277-3287.
[89]SINGH A,RATHORE D.Biohydrogen production:sustainability of current technology and future perspective[R].Springer India,2017:49-67.
[90]ZHANG Y H P.Production of biofuels and biochemicals by in vitro synthetic biosystems:opportunities and challenges[J].Biotechnology Advances:An International Review Journal,2015,33:1467-1483.
[91]ZHANG Y H P,EVANS B R,MIELENZ J R,et al.Highyield hydrogen production from starch and water by a synthetic enzymatic pathway[J].Plos One,2007,2(5):456.
[92]SMITH M T,WILDING K M,HUNT J M,et al.The emerging age of cell-free synthetic biology[J].FEBSLetters,2014,588:2755-2761.
[93]ZHANG Y H P.Simpler is better:high-yield and potential low-cost biofuels production through cell-free synthetic pathway biotransformation (Sy Pa B)[J].ACS Catalysis.2011,1(9):998-1009.
[94]IYER S,KARIG D K,NORRED S E,et al.Multi-input regulation and logic with T7 promoters in cells and cellfree systems[J].Plos One,2013,8(10):e78442.
[95]?UKAJTIS R,HO?OWACZ I,KUCHARSKA K,et al.Hydrogen production from biomass using dark fermentation[J].Renewable and Sustainable Energy Reviews,2018,91:665-694.
[96]LIU I C,WHANG L M,REN W J,et al.The effect of p Hon the production of biohydrogen by clostridia:Thermodynamic and metabolic considerations[J].International Journal of Hydrogen Energy,2011,36(1):439-449.
[97]OLIVEIRA C A,FUESS L T,SOARES L A,et al.Thermophilic biohydrogen production from sugarcane molasses under low p H:metabolic and microbial aspects[J].International Journal of Hydrogen Energy,2020,45(7):4182-4192.
[98]YOKOYAMA H,OHMORI H,WAKI M,et al.Continuous hydrogen production from glucose by using extreme thermophilic anaerobic microflora[J].Journal of Bioscience and Bioengineering,2009,107(1):64-66.
[99]MOHAN S V,CHANDRASEKHAR K,CHIRANJEEVIP,et al.Biohydrogen production from wastewater[J/OL].Biohydrogen,2013:223-257.https://doi.org/10.1016/B978-0-444-59555-3.00010-6.
[100]SHI X,KIM D H,SHIN H S,et al.Effect of temperature on continuous fermentative hydrogen production from Laminaria japonica by anaerobic mixed cultures[J].Bioresource Technology,2013,144:225-231.
[101]SUN Y,HE J,YANG G,et al.A review of the enhancement of bio-hydrogen generation by chemicals addition[J/OL].Catalysts,2019.DOI:10.3390/cata l9040353.
[102]FERNANDES B S,SAAVEDRA N K,MAINTINGUERS I,et al.The effect of biomass immobilization support material and bed porosity on hydrogen production in an upflow anaerobic packed-bed bioreactor[J].Applied Biochemistry and Biotechnology,2013,170(6):1348-1366.
[103]PALOMO-BRIONES R,RAZO-FLORES E,BERNET N,et al.Dark-fermentative biohydrogen pathways and microbial networks in continuous stirred tank reactors:Novel insights on their control[J].Applied Energy,2017,198:77-87.
[104]CHAVES T C,GOIS G N S B,PEITER F S,et al.Biohydrogen production in an AFBR using sugarcane molasses[J].Bioprocess and Biosystems Engineering,2021,44(2):307-316.
[105]SARAPHIROM P,REUNGSANG A.Biological hydrogen production from sweet sorghum syrup by mixed cultures using an anaerobic sequencing batch reactor(ASBR)[J].International Journal of Hydrogen Energy,2011,36:8765-8773.
[106]WON S G,LAU A K.Effects of key operational parameters on biohydrogen production via anaerobic fermentation in a sequencing batch reactor[J].Bioresource Technology,2011,102(13):6876-6883.
[107]CHEN W H,SUNG S,CHEN S Y.Biological hydrogen production in an anaerobic sequencing batch reactor:p Hand cyclic duration effects[J].International Journal of Hydrogen Energy,2009,34(1):227-234.
[108]WANG Z,MA J,TANG C Y,et al.Membrane cleaning in membrane bioreactors:a review[J].Journal of Membrane Science,2014,468:276-307.
[109]KRZEMINSKI P,LEVERETTE L,MALAMIS S,et al.Membrane bioreactors:a review on recent developments in energy reduction,fouling control,novel configurations,LCA and market prospects[J].Journal of Membrane Science,2017,527:207-227.
[110]SEPP?L?J J,PUHAKKA J A,YLI-HARJA O,et al.Fermentative hydrogen production by Clostridium butyricum and Escherichia coli in pure and cocultures[J].International Journal of Hydrogen Energy,2011,36(17):10701-10708.
[111]COFRéO,RAMíREZ M,GóMEZ J M,et al.Pilot scale fed-batch fermentation in a closed loop mixed reactor for the biotransformation of crude glycerol into ethanol and hydrogen by Escherichia coli MG1655[J].Biomass and Bioenergy,2016,91:37-47.
[112]MORSY F M,IBRAHIM S H.Concomitant hydrolysis of sucrose by the long half-life time yeast invertase and hydrogen production by the hydrogen over-producing Escherichia coli HD701[J].Energy,2016,109:412-419.
[113]TAIFOR A F,ZAKARIA M R,MOHD YUSOFF M Z,et al.Elucidating substrate utilization in biohydrogen production from palm oil mill effluent by Escherichia coli[J].International Journal of Hydrogen Energy,2017,42(9):5812-5819.
[114]LAY C H,WU J H,HSIAO C L,et al.Biohydrogen production from soluble condensed molasses fermentation using anaerobic fermentation[J].International Journal of Hydrogen Energy,2010,35(24):13445-13451.
[115]LIN P Y,WHANG L M,WU Y R,et al.Biological hydrogen production of the genus clostridium:metabolic study and mathematical model simulation[J].International Journal of Hydrogen Energy,2007,32(12):1728-1735.
[116]LIU Y,YU P,SONG X,et al.Hydrogen production from cellulose by co-culture of clostridium thermocellum JN4and thermoanaerobacterium thermosaccharolyticum GD17[J].International Journal of Hydrogen Energy,2008,33(12):2927-2933.
[117]JAYASINGHEARACHCHI H S,SARMA P M,LAL B.Biological hydrogen production by extremely thermophilic novel bacterium Thermoanaerobactermathranii A3N isolated from oil producing well[J].International Journal of Hydrogen Energy,2012,37(7):5569-5578.
[118]DAHIYA S,KATAKOJWALA R,RAMAKRISHNA S,et al.Biobased products and life cycle assessment in the context of circular economy and sustainability[J].Materials Circular Economy,2020,2(1).https://doi.org/10.1007/s42824-020-00007-x.
[119]BAKONYI P,NEMESTóTHY N,LANKóJ,et al.Simultaneous biohydrogen production and purification in a double-membrane bioreactor system[J].International Journal of Hydrogen Energy,2015,40(4):1690-1697.
[120]KAZAKOV A N,DUNIKOV D O,MITROKHIN S V.AB5-type intermetallic compounds for biohydrogen purification and storage[J].International Journal of Hydrogen Energy,2016,41(46):21774-21779.
[121]REN N Q,ZHAO L,CHEN C,et al.A review on bioconversion of lignocellulosic biomass to H2:Key challenges and new insights[J].Bioresource Technology,2016,215:92-99.
Basic Information:
DOI:10.19666/j.rlfd.202206134
China Classification Code:TQ116.2
Citation Information:
[1]YIN Zhengyu,FU Chuanlue,HAN Kuihua ,et al.Review on technologies of hydrogen production from biomass[J].Thermal Power Generation,2022,51(11):37-48.DOI:10.19666/j.rlfd.202206134.
Fund Information:
山东省自然科学基金(ZR2021ME118); 江苏省自然科学基金(BK20210113); 山东大学青年学者未来计划人才项目(31380089964175) ~~
2022-09-13
2022-09-13
2022-09-13