[1]

Aniza R, Chen WH, Lin YY, Tran KQ, Chang JS, et al. 2021. Independent parallel pyrolysis kinetics of extracted proteins and lipids as well as model carbohydrates in microalgae. Applied Energy 300:117372

doi: 10.1016/j.apenergy.2021.117372
[2]

Aboelela D, Saleh H, Attia AM, Elhenawy Y, Majozi T, et al. 2023. Recent advances in biomass pyrolysis processes for bioenergy production: optimization of operating conditions. Sustainability 15:11238

doi: 10.3390/su151411238
[3]

Yuen JQ, Fung T, Ziegler AD. 2017. Carbon stocks in bamboo ecosystems worldwide: Estimates and uncertainties. Forest Ecology and Management 393:113−138

doi: 10.1016/j.foreco.2017.01.017
[4]

Bahari SA, Krause A. 2016. Utilizing Malaysian bamboo for use in thermoplastic composites. Journal of Cleaner Production 110:16−24

doi: 10.1016/j.jclepro.2015.03.052
[5]

Li C, Li L, Yellezuome D, Cai J, Liu R, et al. 2023. Physicochemical investigation and thermogravimetric analysis of bamboo and poplar wood residues and tire rubber waste: kinetic and thermodynamic analyses. Industrial Crops and Products 206:117715

doi: 10.1016/j.indcrop.2023.117715
[6]

Abioye KJ, Falua KJ, Rezaee M, Zamiri MA, Zou F, et al. 2025. Global insights into biomass pyrolysis mechanisms: a scientometric and mechanistic approach. Results in Engineering 28:107123

doi: 10.1016/j.rineng.2025.107123
[7]

Lin Y, Ye R, Lu Z, Ge Y, Xiao H, et al. 2025. Ca-catalyzed co-pyrolysis behavior of biomass and waste plastics: a ReaxFF molecular dynamics simulation and experiments study. Journal of the Energy Institute 122:102225

doi: 10.1016/j.joei.2025.102225
[8]

Shan Ahamed T, Anto S, Mathimani T, Brindhadevi K, Pugazhendhi A. 2021. Upgrading of bio-oil from thermochemical conversion of various biomass – mechanism, challenges and opportunities. Fuel 287:119329

doi: 10.1016/j.fuel.2020.119329
[9]

Singh M, Salaudeen SA, Gilroyed BH, Al-Salem SM, Dutta A. 2023. A review on co-pyrolysis of biomass with plastics and tires: recent progress, catalyst development, and scaling up potential. Biomass Conversion and Biorefinery 13:8747−8771

doi: 10.1007/s13399-021-01818-x
[10]

Liu P, Jiang Z, Zeng Y, Wang Y, Zeng C, et al. 2024. Microwave-enhanced pyrolysis of bamboo for furfural-rich bio-oil production over WS2 catalyst. Industrial Crops and Products 216:118768

doi: 10.1016/j.indcrop.2024.118768
[11]

Jiang H, Shao JA, Zhu Y, Yu J, Cheng W, et al. 2023. Production mechanism of high-quality carbon black from high-temperature pyrolysis of waste tire. Journal of Hazardous Materials 443:130350

doi: 10.1016/j.jhazmat.2022.130350
[12]

Gao N, Wang F, Quan C, Santamaria L, Lopez G, et al. 2022. Tire pyrolysis char: processes, properties, upgrading and applications. Progress in Energy and Combustion Science 93:101022

doi: 10.1016/j.pecs.2022.101022
[13]

Zhang G, Chen F, Zhang Y, Zhao L, Chen J, et al. 2021. Properties and utilization of waste tire pyrolysis oil: a mini review. Fuel Processing Technology 211:106582

doi: 10.1016/j.fuproc.2020.106582
[14]

Czarna-Juszkiewicz D, Kunecki P, Cader J, Wdowin M. 2023. Review in waste tire management − potential applications in mitigating environmental pollution. Materials 16:5771

doi: 10.3390/ma16175771
[15]

Kandasamy J, Gökalp I. 2015. Pyrolysis, combustion, and steam gasification of various types of scrap tires for energy recovery. Energy & Fuels 29:346−354

doi: 10.1021/ef502283s
[16]

Lewandowski WM, Januszewicz K, Kosakowski W. 2019. Efficiency and proportions of waste tyre pyrolysis products depending on the reactor type − a review. Journal of Analytical and Applied Pyrolysis 140:25−53

doi: 10.1016/j.jaap.2019.03.018
[17]

Uyumaz A, Aydoğan B, Solmaz H, Yılmaz E, Yeşim Hopa D, et al. 2019. Production of waste tyre oil and experimental investigation on combustion, engine performance and exhaust emissions. Journal of the Energy Institute 92:1406−1418

doi: 10.1016/j.joei.2018.09.001
[18]

Narani SS, Abbaspour M, Mir Mohammad Hosseini SM, Aflaki E, Nejad FM. 2020. Sustainable reuse of waste tire textile fibers (WTTFs) as reinforcement materials for expansive soils: with a special focus on landfill liners/covers. Journal of Cleaner Production 247:119151

doi: 10.1016/j.jclepro.2019.119151
[19]

Niu M, Sun R, Ding K, Gu H, Cui X, et al. 2022. Synergistic effect on thermal behavior and product characteristics during co-pyrolysis of biomass and waste tire: influence of biomass species and waste blending ratios. Energy 240:122808

doi: 10.1016/j.energy.2021.122808
[20]

Ramarad S, Khalid M, Ratnam CT, Chuah AL, Rashmi W. 2015. Waste tire rubber in polymer blends: a review on the evolution, properties and future. Progress in Materials Science 72:100−140

doi: 10.1016/j.pmatsci.2015.02.004
[21]

Hassan H, Lim JK, Hameed BH. 2016. Recent progress on biomass co-pyrolysis conversion into high-quality bio-oil. Bioresource Technology 221:645−655

doi: 10.1016/j.biortech.2016.09.026
[22]

Wang J, Zhong Z, Ding K, Zhang B, Deng A, et al. 2017. Co-pyrolysis of bamboo residual with waste tire over dual catalytic stage of CaO and co-modified HZSM-5. Energy 133:90−98

doi: 10.1016/j.energy.2017.05.146
[23]

Wang L, Chai M, Liu R, Cai J. 2018. Synergetic effects during co-pyrolysis of biomass and waste tire: a study on product distribution and reaction kinetics. Bioresource Technology 268:363−370

doi: 10.1016/j.biortech.2018.07.153
[24]

Azizi K, Moshfegh Haghighi A, Keshavarz Moraveji M, Olazar M, Lopez G. 2019. Co-pyrolysis of binary and ternary mixtures of microalgae, wood and waste tires through TGA. Renewable Energy 142:264−271

doi: 10.1016/j.renene.2019.04.116
[25]

Kumar A, Yan B, Tao J, Li J, Kumari L, et al. 2022. Co-pyrolysis of de-oiled microalgal biomass residue and waste tires: deeper insights from thermal kinetics, behaviors, drivers, bio-oils, bio-chars, and in-situ evolved gases analyses. Chemical Engineering Journal 446:137160

doi: 10.1016/j.cej.2022.137160
[26]

Farooq MZ, Zeeshan M, Iqbal S, Ahmed N, Shah SAY. 2018. Influence of waste tire addition on wheat straw pyrolysis yield and oil quality. Energy 144:200−206

doi: 10.1016/j.energy.2017.12.026
[27]

Guo Q, Zhang Z, Zhao L, Wang X, Hu Y. 2023. Release and evolution mechanism of oxygen-containing compounds and aromatics during the co-pyrolysis of waste tire and bamboo sawdust/rice husk by Py-GC/MS. Journal of Analytical and Applied Pyrolysis 170:105923

doi: 10.1016/j.jaap.2023.105923
[28]

Wang J, Zhong Z, Ding K, Li M, Hao N, et al. 2019. Catalytic fast co-pyrolysis of bamboo sawdust and waste tire using a tandem reactor with cascade bubbling fluidized bed and fixed bed system. Energy Conversion and Management 180:60−71

doi: 10.1016/j.enconman.2018.10.056
[29]

Wang Y, Dai L, Fan L, Duan D, Liu Y, et al. 2017. Microwave-assisted catalytic fast co-pyrolysis of bamboo sawdust and waste tire for bio-oil production. Journal of Analytical and Applied Pyrolysis 123:224−228

doi: 10.1016/j.jaap.2016.11.025
[30]

Deng N, Ye Y, Yao X, Ren Z, Zhang Q, et al. 2025. Synergistic co-pyrolysis characteristics of waste tire and moso bamboo: mechanisms and kinetics. Chemical Engineering Journal 525:170225

doi: 10.1016/j.cej.2025.170225
[31]

Kumar A, Kumari L, Ali Laghari A, Rong H, Ali Jamro I, et al. 2024. Exploring the integrated potential of pyrolysis and low-temperature wet torrefaction for typical medical waste valorization: a multifaceted approach leveraging online TG-FTIR-MS, 2D-COS, iso-conversional kinetics, and reaction mechanisms. Chemical Engineering Journal 499:156464

doi: 10.1016/j.cej.2024.156464
[32]

Garcia-Maraver A, Perez-Jimenez JA, Serrano-Bernardo F, Zamorano M. 2015. Determination and comparison of combustion kinetics parameters of agricultural biomass from olive trees. Renewable Energy 83:897−904

doi: 10.1016/j.renene.2015.05.049
[33]

Diblasi C. 2008. Modeling chemical and physical processes of wood and biomass pyrolysis. Progress in Energy and Combustion Science 34:47−90

doi: 10.1016/j.pecs.2006.12.001
[34]

GB/T 28731-2012: Proximate Analysis of Solid Biofuels. Standardization Administration of the People's Republic of China. https://openstd.samr.gov.cn/bzgk/gb/newGbInfo?hcno=E2D830152F09E47F4F6F7FF84555C30B

[35]

CJ/T 313-2009: Sampling and analysis methods for domestic waste. Standardization Administration of the People's Republic of China. https://std.samr.gov.cn/hb/search/stdHBDetailed?id=8B1827F1BFD7BB19E05397BE0A0AB44A

[36]

CJ/T 96-2013: General detecting methods for the chemical characteristics of domestic refuse. Standardization Administration of the People's Republic of China. https://std.samr.gov.cn/hb/search/stdHBDetailed?id=8B1827F19576BB19E05397BE0A0AB44A

[37]

Mishra RK, Chinnam S, Mohanty K. 2025. Kinetic behaviour and fast pyrolysis of Tamarindus indica seeds using Py-GC–MS. Bioresource Technology Reports 29:102014

doi: 10.1016/j.biteb.2024.102014
[38]

Kissinger HE. 1957. Reaction kinetics in differential thermal analysis. Analytical Chemistry 29:1702−1706

doi: 10.1021/ac60131a045
[39]

Akahira T, Sunose T. 1971. Method of determining activation deterioration constant of electrical insulating materials. Research Reports of Chiba Institute of Technology (Science and Technology) 16:22−31

[40]

Flynn JH, Wall LA. 1966. A quick, direct method for the determination of activation energy from thermogravimetric data. Journal of Polymer Science Part B: Polymer Letters 4:323−328

doi: 10.1002/pol.1966.110040504
[41]

Ozawa T. 1965. A New method of analyzing thermogravimetric data. Bulletin of the Chemical Society of Japan 38:1881−1886

doi: 10.1246/bcsj.38.1881
[42]

Friedman HL. 1964. Kinetics of thermal degradation of char-forming plastics from thermogravimetry. Application to a phenolic plastic. Journal of Polymer Science Part C: Polymer Symposia 6:183−195

doi: 10.1002/polc.5070060121
[43]

Mishra RK, Chinnam S, Sharma A. 2024. Catalytic co-pyrolysis behaviour and kinetics study of waste lignocellulosic non-edible seeds and Covid-19 plastic over Al2O3 catalyst. Bioresource Technology Reports 27:101899

doi: 10.1016/j.biteb.2024.101899
[44]

Heydari M, Rahman M, Gupta R. 2015. Kinetic study and thermal decomposition behavior of lignite coal. International Journal of Chemical Engineering 2015:481739

doi: 10.1155/2015/481739
[45]

Criado JM, Ortega A. 1985. The accuracy of equation approximating the integral of the Arrhenius equation to perform the kinetic analysis of solid state reactions. International Journal of Chemical Kinetics 17:1365−1373

doi: 10.1002/kin.550171212
[46]

Coats AW, Redfern JP. 1964. Kinetic parameters from thermogravimetric data. Nature 201:68−69

doi: 10.1038/201068a0
[47]

Söyler N, Ceylan S. 2021. Thermokinetic analysis and product characterization of waste tire-hazelnut shell co-pyrolysis: TG-FTIR and fixed bed reactor study. Journal of Environmental Chemical Engineering 9:106165

doi: 10.1016/j.jece.2021.106165
[48]

Kumar A, Ali Jamro I, Rong H, Kumari L, Ali Laghari A, et al. 2024. Assessing bioenergy prospects of algal biomass and yard waste using an integrated hydrothermal carbonization and pyrolysis (HTC–PY): a detailed emission–to–ash characterization via diverse hyphenated analytical techniques and modelling strategies. Chemical Engineering Journal 492:152335

doi: 10.1016/j.cej.2024.152335
[49]

Chen H, Wang J, Rocha LA, Zhang H, Zhang S, et al. 2024. Insights into the char-production mechanism during co-pyrolysis of biomass and plastic wastes. Energy 312:133642

doi: 10.1016/j.energy.2024.133642
[50]

Weng S. 2010. Fourier Transform Infrared Spectroscopy Analysis. Beijing: Chemical Industry Press. https://search.worldcat.org/title/862660505

[51]

Pinto O, Romero R, Carrier M, Appelt J, Segura C. 2018. Fast pyrolysis of tannins from pine bark as a renewable source of catechols. Journal of Analytical and Applied Pyrolysis 136:69−76

doi: 10.1016/j.jaap.2018.10.022
[52]

Xu F, Wang B, Yang D, Hao J, Qiao Y, et al. 2018. Thermal degradation of typical plastics under high heating rate conditions by TG-FTIR: pyrolysis behaviors and kinetic analysis. Energy Conversion and Management 171:1106−1115

doi: 10.1016/j.enconman.2018.06.047
[53]

Park KB, Kim JS. 2023. Pyrolysis products from various types of plastics using TG-FTIR at different reaction temperatures. Journal of Analytical and Applied Pyrolysis 171:105983

doi: 10.1016/j.jaap.2023.105983
[54]

Kumar A, Ali Jamro I, Wang J, Ullah A, Kumari L, et al. 2024. Co-pyrolysis of microalgae residue and sewage sludge: an in-depth characterization of kinetics, drivers, and gas-oil-char behaviors. Journal of Analytical and Applied Pyrolysis 179:106438

doi: 10.1016/j.jaap.2024.106438
[55]

Kumar A, Ali Jamro I, Yan B, Cheng Z, Tao J, et al. 2023. Pyrolysis of de-fatted microalgae residue: a study on thermal-kinetics, products' optimization, and neural network modelling. Fuel 334:126752

doi: 10.1016/j.fuel.2022.126752