铁基载氧体纤维素化学链解聚试验及分子模拟Experiment and molecular simulation of cellulose during chemical looping depolymerization with iron-based oxygen carriers
郭文倩,蒙亮亮,耿畅,李娜,吴舸,张慧,郭庆杰,白红存
GUO Wenqian,MENG Liangliang,GENG Chang,LI Na,WU Ge,ZHANG Hui,GUO Qingjie,BAI Hongcun
摘要(Abstract):
为探索纤维素在铁基载氧体作用下的化学链解聚机理及过程。通过热重分析试验研究不同升温速率下纤维素的化学链燃烧特性;通过化学反应动力学计算纤维素化学链燃烧过程中的活化能并揭示其动力学机制;利用ReaxFF MD模拟综合技术从微观原子尺度阐释纤维素化学链燃烧过程微观反应网络。热分析结果表明,铁基载氧体的加入可降低纤维素化学链解聚的起始温度,其释放的晶格氧有助于促进纤维素的化学链解聚。纤维素化学链燃烧过程分为3个阶段:挥发分析出燃烧、半焦转化燃烧和焦炭燃烧阶段。反应动力学研究显示,纤维素在热转化过程中不同转化率下的活化能为220~405 kJ/mol,其中第3个阶段的反应活化能最高。ReaxFF MD模拟结果显示,纤维素化学链燃烧过程整体遵循自由基链反应理论。纤维素裂解产生的活性自由基与载氧体释放的晶格氧反应生成2-羟基丙酮等中间体,然后进一步发生自由基反应生成CO_2。最终获得了载氧体作用下纤维素化学链解聚过程中CO_2生成释放的复杂反应网络。
To explore the mechanism and process of chemical looping depolymerization for cellulose in the presence of iron-based oxygen carriers, the characteristics of chemical looping combustion for cellulose at different heating rates were investigated by thermogravimetric analysis tests. The activation energy of cellulose during chemical looping combustion was calculated using chemical reaction kinetics and its kinetic mechanism was revealed. The microscopic reaction network of cellulose during chemical looping combustion was elucidated from the microscopic atomic scale by using ReaxFF MD simulation synthesis technique.The thermal analysis results show that the addition of iron-based oxygen carriers can reduce the onset temperature of cellulose chemical looping depolymerization and that the lattice oxygen released by iron-based oxygen carriers can help promote the chemical looping depolymerization of cellulose. Chemical looping combustion process of cellulose are divided into three different stages: volatile analysis out combustion, semi-coke conversion combustion and coke combustion stages.The kinetic model shows that the activation energy of cellulose in the thermal conversion process at different conversion rates is about 220-405 kJ/mol, with the highest activation energy of the reaction occurring at stage 3. Finally, ReaxFF MD simulations show that the overall chemical looping combustion process of cellulose follows the free radical chain reaction theory. The reactive radicals generated by cellulose cleavage reacted with the lattice oxygen releasing the oxygen carrier form intermediates such as 2-hydroxyacetone, which then under go further radical reactions to produce CO_2. A complex reaction network for the release of CO_2 production during the chemical looping depolymerization of cellulose in the presence of oxygen carriers is finally obtained.
关键词(KeyWords):
化学链燃烧;生物质;纤维素;反应力场分子动力学;反应机制
chemical looping combustion;biomass;cellulose;ReaxFF MD;reaction mechanism
基金项目(Foundation): 国家自然科学基金资助项目(52006110);; 宁夏自然科学基金资助项目(2022AAC01001)
作者(Author):
郭文倩,蒙亮亮,耿畅,李娜,吴舸,张慧,郭庆杰,白红存
GUO Wenqian,MENG Liangliang,GENG Chang,LI Na,WU Ge,ZHANG Hui,GUO Qingjie,BAI Hongcun
DOI: 10.13226/j.issn.1006-6772.RM23011501
参考文献(References):
- [1] WANG M,WAN Y,GUO Q,et al.Brief review on petroleum coke and biomass/coal co-gasification:Syngas production,reactivity characteristics,and synergy behavior[J].Fuel,2021,304:121517.
- [2] DUARAH P,HALDAR D,PATEL A K,et al.A review on global perspectives of sustainable development in bioenergy generation[J].Bioresource Technology,2022,348:126791.
- [3] ZHANG P B,JIN Q.Evolution,status,and trends of exergy research:A systematic analysis during 1997-2020[J].Environmental Science and Pollution Research,2022,29(49):73769-73794.
- [4] LOHANI S P,GURUNG P,GAUTAM B,et al.Current status,prospects,and implications of renewable energy for achieving sustainable development goals in Nepal[J].Sustainable Development,2023,31(1):572-585.
- [5] 毛健雄,郭慧娜,吴玉新.中国煤电低碳转型之路:国外生物质发电政策/技术综述及启示[J].洁净煤技术,2022,28(3):1-11.MAO Jianxiong,GUO Huina,WU Yuxin.Road to low-carbon transformation of coal power in China:A review of biomass cofiring policies and technologies for coal power abroad and its inspiration on biomass utilization[J].Clean Coal Technology,2022,28(3):1-11.
- [6] CHEN W H,LIN B J,LIN Y Y,et al.Progress in biomass torrefaction:Principles,applications and challenges[J].Progress in Energy and Combustion Science,2021,82:100887.
- [7] 周义,张守玉,郎森,等.煤粉炉掺烧生物质发电技术研究进展[J].洁净煤技术,2022,28(6):26-34.ZHOU Yi,ZHANG Shouyu,LANG Sen,et al.Research progress of biomass blending technology in coal pulverizer for power generation[J].Clean Coal Technology,2022,28(6):26-34.
- [8] SANSANIWAL S K R M A T.Global challenges in the sustainable development of biomass gasification:An overview[J].Renewable &Sustainable Energy Reviews,2017,80:23-43.
- [9] ADITIYA H B,CHONG W T,MAHLIA T M I,et al.Second generation bioethanol potential from selected Malaysia′s biodiversity biomasses:A review[J].Waste Management,2016,47:46-61.
- [10] VELVIZHI G,GOSWAMI C,SHETTI N P,et al.Valorisation of lignocellulosic biomass to value-added products:Paving the pathway towards low-carbon footprint[J].Fuel,2022,313:122678.
- [11] KOUL B,YAKOOB M,SHAH M P.Agricultural waste management strategies for environmental sustainability[J].Environmental Research,2022,206:112285.
- [12] CURRAN L,PHAM L,SALE K L,et al.Review of advances in the development of laccases for the valorization of lignin to enable the production of lignocellulosic biofuels and bioproducts[J].Biotechnology Advances,2022,54:107809.
- [13] PERIYASAMY S,KARTHIK V,KUMAR P S,et al.Chemical,physical and biological methods to convert lignocellulosic waste into value-added products:A review[J].Environmental Chemistry Letters,2022,20(2):1129-1152.
- [14] WATERS C L,JANUPALA R R,MALLINSON R G,et al.Staged thermal fractionation for segregation of lignin and cellulose pyrolysis products:An experimental study of residence time and temperature effects[J].Journal of Analytical and Applied Pyrolysis,2017,126:380-389.
- [15] LIU P,ZHUANG H,QIAN Y,et al.Recent advances in mass spectrometric studies on the reaction process of biomass pyrolysis[J].Fuel Processing Technology,2022,237:107473.
- [16] XIAO F,YANG L,HE B,et al.Experimental and theoretical study on the evolution of functional groups in cellulose char during oxidative pyrolysis[J].Fuel,2022,329:125400.
- [17] DUARAH P,HALDAR D,PATEL A K,et al.A review on global perspectives of sustainable development in bioenergy generation[J].Bioresource Technology,2022,348:126791.
- [18] LIU G,WANG H,DEPLAZES S,et al.Ba-Al-decorated iron ore as bifunctional oxygen carrier and HCl sorbent for chemical looping combustion of syngas[J].Combustion and Flame,2021,223:230-242.
- [19] SU M,TIAN X,ZHAO H.Particle-resolved simulation and mo-deling of the conversion rate of coal char in chemical looping with oxygen uncoupling[J].Combustion and Flame,2020,213:331-342.
- [20] TIAN X,SU M,ZHAO H.Kinetics of redox reactions of CuO@TiO2-Al2O3 for chemical looping combustion and chemical looping with oxygen uncoupling[J].Combustion and Flame,2020,213:255-267.
- [21] ABUELGASIM S,WANG W,ABDALAZEEZ A.A brief review for chemical looping combustion as a promising CO2 capture technology:Fundamentals and progress[J].Science of the Total Environment,2021,764:142892.
- [22] 白歆慰,刘金昌,白磊.煤化学链燃烧载氧体研究进展[J].洁净煤技术,2021,27(2):31-44.BAI Xinwei,LIU Jinchang,BAI Lei.Recent advances in oxygen carriers for chemical looping combustion of coal [J].Clean Coal Technology,2021,27(2):31-44.
- [23] MENG L,ZHU Y,ZHU M,et al.Exploring depolymerization mechanism and complex reaction networks of aromatic structures in chemical looping combustion via ReaxFF MD simulations[J].Journal of the Energy Institute,2023,107:101180.
- [24] LIEN C,LEE S,CHANG C,et al.Adult balanoposthitis patients have a higher risk of type 2 diabetes mellitus:A nationwide population-based cohort study[J].Urological Science,2017:DOI:10.1016/j.urols.2017.07.002.
- [25] LIN Y,WANG H T,FANG S W,et al.Chemical looping combustion of lignite using iron ore:C-gas products (CO2,CO,CH4) and NOx emissions[J].Energy,2022,256:124602.
- [26] BU H F,CHEN G P,TIAN X,et al.Chemical looping combustion of coal chars using iron ore of different grades as oxygen carriers[J].Energy & Fuels,2021,35(20):16494-16505.
- [27] ADáNEZ-RUBIO I,PéREZ-ASTRAY A,MENDIARA T,et al.Chemical looping combustion of biomass:CLOU experiments with a Cu-Mn mixed oxide[J].Fuel Processing Technology,2018,172:179-186.
- [28] WANG X,XU T,JIN X,et al.CuO supported on olivine as an oxygen carrier in chemical looping processes with pine sawdust used as fuel[J].Chemical Engineering Journal,2017,330:480-490.
- [29] MENDIARA T,ABAD A,de DIEGO L F,et al.Biomass combustion in a CLC system using an iron ore as an oxygen carrier[J].International Journal of Greenhouse Gas Control,2013,19:322-330.
- [30] SHEN L,WU J,XIAO J,et al.Chemical-looping combustion of biomass in a 10 kWth reactor with iron oxide as an oxygen carrier[J].Energy & Fuels,2009,23(5):2498-2505.
- [31] 张海峰,陈璐,刘先宇,等.基于赤泥载氧体的蓝藻化学链热解和气化特性研究[J].燃料化学学报,2021,49(12):1802-1811.ZHANG Haifeng,CHEN Lu,LIU Xianyu,et al.Characteristics of cyanobacteria pyrolysis and gasification during chemical looping process with red mud oxygen carrier[J].Journal of Fuel Chemistry,2021,49(12):1802-1811.
- [32] LIN Y,MO Y,FANG S,et al.A study on the chemical loopi-ng combustion of sewage sludge:The emission of NOx and its precursors[J].Fuel Processing Technology,2022,231:107260.
- [33] SHEN T,YAN J,ZHU X,et al.Catalytic combustion behaviors of petroleum coke with hematite catalyst in a micro fluidized bed thermogravimetric analysis[J].Chemical Engineering Journal,2021,422:130087.
- [34] PANS M A,GAYáN P,de DIEGO L F,et al.Performance of a low-cost iron ore as an oxygen carrier for chemical looping combustion of gaseous fuels[J].Chemical Engineering Research and Design,2015,93:736-746.
- [35] WANG C P,YAN H,YU Y B,et al.Chemical looping reforming of coal tar vapor on the surface of CaO-modified Fe-based oxygen carrier[J].Energy & Fuels,2020,34(7):8534-8542.
- [36] ISHIHARA A,TSUJINO H,HASHIMOTO T.Effects of the addition of CeO2 on the steam reforming of ethanol using novel carbon-Al2O3 and carbon-ZrO2 composite-supported Co catalysts[J].RSC Advances,2021,11(15):8530-8539.
- [37] WEI G Q,WANG H T,ZHAO W N,et al.Synthesis gas production from chemical looping gasification of lignite by using hematite as oxygen carrier[J].Energy Conversion and Management,2019,185:774-782.
- [38] WANG X,CHEN Z,HU M,et al.Chemical looping combustion of biomass using metal ferrites as oxygen carriers[J].Chemical Engineering Journal,2017,312:252-262.
- [39] UBANDO A T,CHEN W,ASHOKKUMAR V,et al.Iron oxide reduction by torrefied microalgae for CO2 capture and abatement in chemical-looping combustion[J].Energy,2019,186:115903.
- [40] YAO Z,YU S,SU W,et al.Kinetic studies on the pyrolysis of plastic waste using a combination of model-fitting and model-free methods[J].Waste Management & Research,2020,38(S1):77-85.
- [41] YOUSEF S,EIMONTAS J,STRIūGAS N,et al.Pyrolysis kinetic behavior and TG-FTIR-GC-MS analysis of metallised food packaging plastics[J].Fuel,2020,282:118737.
- [42] VAN DUIN A C T,DASGUPTA S,LORANT F,et al.ReaxFF:A reactive force field for hydrocarbons[J].The Journal of Physical Chemistry A,2001,105(41):9396-9409.
- [43] HONG D,GUO X.A reactive molecular dynamics study of CH4 combustion in O2/CO2/H2O environments[J].Fuel Processing Technology,2017,167:416-424.
- [44] BHOI S,BANERJEE T,MOHANTY K.Molecular dynamic simulation of spontaneous combustion and pyrolysis of brown coal using ReaxFF[J].Fuel,2014,136:326-333.
- [45] HONG D,GUO X.Molecular dynamics simulations of Zhundong coal pyrolysis using reactive force field[J].Fuel,2017,210:58-66.
- [46] CHENG X,WANG Q,LI J,et al.ReaxFF molecular dynamics simulations of oxidation of toluene at high temperatures[J].The Journal of Physical Chemistry A,2012,116(40):9811-9818.
- [47] LI G,DING J,ZHANG H,et al.ReaxFF simulations of hydrothermal treatment of lignite and its impact on chemical structures[J].Fuel,2015,154:243-251.
- [48] ZHENG M,WANG Z,LI X X,et al.Initial reaction mechanisms of cellulose pyrolysis revealed by ReaxFF molecular dynamics[J].Fuel,2016,177:130-141.
- [49] UBANDO A T,CHEN W,ASHOKKUMAR V,et al.Kinetics and thermodynamics dataset of iron oxide reduction using torrefied microalgae for chemical looping combustion[J].Data in Brief,2020,29:105261.
- [50] CHEN D,CEN K,ZHUANG X,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.
- [51] XIAO R,YANG W,CONG X,et al.Thermogravimetric analysis and reaction kinetics of lignocellulosic biomass pyrolysis[J].Energy,2020,201:117537.
- [52] ADHAMASH E,PATHAK R,QIAO Q,et al.Gamma-radiated biochar carbon for improved supercapacitor performance[J].RSC Advances,2020,10(50):29910-29917.
- [53] XIE Y,LU Z,MA C,et al.High-performance gas-electricity cogeneration using a direct carbon solid oxide fuel cell fueled by biochar derived from camellia oleifera shells[J].International Journal of Hydrogen Energy,2020,45(53):29322-29330.
- [54] YAO F,WU Q,LEI Y,et al.Thermal decomposition kinetics of natural fibers:Activation energy with dynamic thermogravimetric analysis[J].Polymer Degradation and Stability,2008,93(1):90-98.
- [55] VYAZOVKIN S,BURNHAM A K,CRIADO J M,et al.ICTAC kinetics committee recommendations for performing kinetic computations on thermal analysis data[J].Thermochimica Acta,2011,520(1/2):1-19.
- [56] HASSAN N S,JALIL A A,HITAM C,et al.Biofuels and renewable chemicals production by catalytic pyrolysis of cellulose:A review[J].Environmental Chemistry Letters,2020,18(5):1625-1648.
- [57] KIRKOK S K,KIBET J K,OKANGA F,et al.Mechanistic formation of hazardous molecular heterocyclic amines from high temperature pyrolysis of model biomass materials:Cellulose and tyrosine[J].BMC Chemistry,2019,13(1):126.
- [58] HU X,GUO H Y,GHOLIZADEH M,et al.Pyrolysis of different wood species:Impacts of C/H ratio in feedstock on distribution of pyrolysis products[J].Biomass & Bioenergy,2019,120:28-39.
- [59] XING X J,FAN F Y,SHI S W,et al.Fuel Properties and combustion kinetics of hydrochar prepared by hydrothermal carbonization of corn straw[J].Bioresources,2016,11(4):9190-9204.
- [60] ZHOU A,MA W,RUAN R,et al.Submicron particle formation from co-firing of coal and municipal sewage sludge[J].Journal of Environmental Management,2022,311:114863.
- [61] CHEN D,ZHUANG X,GAN Z,et al.Co-pyrolysis of light bio-oil leached bamboo and heavy bio-oil:Effects of mass ratio,pyrolysis temperature,and residence time on the biochar[J].Chemical Engineering Journal,2022,437:135253.
- [62] SAFAR M,LIN B,CHEN W,et al.Catalytic effects of potassium on biomass pyrolysis,combustion and torrefaction[J].Applied Energy,2019,235:346-355.
- [63] 翟英媚,朱轶铭,杨天华.生物质与油页岩共热解研究进展[J].洁净煤技术,2022,28(6):72-81.ZHAI Yingmei,ZHU Yiming,YANG Tianghua.Research progress on co-pyrolysis of biomass and oil shale[J].Clean Coal Technology,2022,28(6):72-81.
- [64] MAO N,BAI H,GENG C,et al.Insights into the micro-structures and reactive behaviors of coal vitrinite and inertinite macerals with CuFe2O4 in chemical looping combustion[J].Sustainable Energy Technologies and Assessments,2022,52:102164.
- [65] BAI H C,MAO N,WANG R H,et al.Kinetic characteristics and reactive behaviors of HSW vitrinite coal pyrolysis:A comprehensive analysis based on TG-MS experiments,kinetics models and ReaxFF MD simulations[J].Energy Reports,2021,7:1416-1435.
- [66] ZHANG R J,GUO W,SUN Z S,et al.Effects of oxidative torrefaction conditions on the biomass liquid chemical looping reaction from the perspective of thermal behavior and kinetic analysis[J].Fuel,2023,33:125924.
- [67] WU S,ZHANG B,YANG B,et al.Chemical looping gasification characteristics and kinetic analysis of Chlorella and its organic components[J].Carbon Resources Conversion,2022,5(3):211-221.