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Articles

Thermogravimetric study and kinetics of banana peel pyrolysis: a comparison of ‘model-free’ methods

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Pages 129-138 | Received 29 Mar 2019, Accepted 17 Jul 2019, Published online: 01 Aug 2019

References

  • Ul Hassan M. Power generation methods. Techniques and economical strategy. Int Tech Sci J. 2014; 1:43–61.
  • Asif M, Muneer T. Energy supply, its demand and security issues for developed and emerging economies. Renew Sustain Energy Rev. 2007;11:1388–1413.
  • Sharma C, Sharma AK, Mullick SC, et al. Assessment of solar thermal power generation potential in India. Renew Sustain Energy Rev. 2015;42:902–912.
  • Li K, Bian H, Liu C, et al. Comparison of geothermal with solar and wind power generation systems. Renew Sustain Energy Rev. 2015;42:1464–1474.
  • Kumar Y, Ringenberg J, Depuru SS, et al. Wind energy: trends and enabling technologies. Renew Sustain Energy Rev. 2016;53:209–224.
  • Martins F, Felgueiras C, Smitková M. Fossil fuel energy consumption in European countries. Energy Procedia. 2018;153:107–111.
  • Day C, Day G. Climate change, fossil fuel prices and depletion: the rationale for a falling export tax. Econ Model. 2017;63:153–160.
  • Giacchino A, Repetto E, Gianotti AG. Hybrid solutions for power generation industry. Energy Procedia. 2018;148:814–821.
  • Pleßmann G, Erdmann M, Hlusiak M, et al. Global energy storage demand for a 100% renewable electricity supply. Energy Procedia. 2014;46:22–31.
  • Makarichi L, Jutidamrongphan W, Techato K. A. The evolution of waste-to-energy incineration: a review. Renew Sustain Energy Rev. 2018;91:812–821.
  • Kothari R, Tyagi VV, Pathak A. Waste-to-energy: a way from renewable energy sources to sustainable development. Renew Sustain Energy Rev. 2010;14:3164–3170.
  • Lam SS, Liew RK, Lim XY, et al. Fruit waste as feedstock for recovery by pyrolysis technique. Int Biodeterior. Biodegrad. 2016;113:325–333.
  • Ali CH, Ahmed A, Simiar AA, et al. Fruit waste to energy through open fermentation. Energy Procedia. 2018;142:904–909.
  • Dhar H, Kumar S, Kumar R. A review on organic waste to energy systems in India. Bioresour Technol. 2017;245:1229–1237.
  • Schaffer S, Proll T, Al Afif R, et al. A mass- and energy balance-based process modelling study for the pyrolysis of cotton stalks with char utilization for sustainable soil enhancement and carbon storage. Biomass Bioenergy. 2019;120:281–290.
  • Fu P, Sun L, Xiang J, et al. Characterization of char from rapid pyrolysis of rice husk. Fuel Process Technol. 2008;89:1096–1105.
  • Gong Z, Wang Z, Wang Z, et al. Study on pyrolysis characteristics of tank oil sludge and pyrolysis char combustion. Chem Eng Res Des. 2018;135:30–36.
  • Mishra RK, Mohanty K. Pyrolysis kinetics and thermal behavior of waste sawdust biomass using thermogravimetric analysis. Bioresour Technol. 2018;251:63–74.
  • Chandrasekaran A, Ramachandran S, Subbiah S. Determination of kinetic parameters in the pyrolysis operation and thermal behavior of Prosopis juliflora using thermogravimetric analysis. Bioresour Technol. 2017;233:413–422.
  • Blaine RL, Kissinger HE. Homer Kissinger and the Kissinger equation. Thermochim Acta. 2012;540:1–6.
  • Lim A, Chin B, Jawad Z, et al. Kinetic analysis of rice husk pyrolysis using Kissinger-Akahira-Sunose (KAS) method. Procedia Eng. 2016;148:1247–1251.
  • Moreno R, Alves N, Gonçalves PS, et al. Thermogravimetric studies of decomposition kinetics of six different IAC Hevea rubber clones using Flynn–Wall–Ozawa approach. Plast Rubber Compos. 2006;35:15–21.
  • Friedman HL. Kinetics of thermal degradation of char-forming plastics from thermogravimetry. Application to a phenolic plastic. J Polym Sci C Polym Symp. 2007;6:183–195.
  • Tao G, Geladi P, Lestander TA, et al. Biomass properties in association with plant species and assortments. II: a synthesis based on literature data for ash elements. Renew Sustain Energy Rev. 2012;16:3507–3522.
  • Fernandes E, Marangoni C, Souza O, et al. Thermochemical characterization of banana leaves as a potential energy source. Energy Convers Manage. 2013;75:603–608.
  • Li R, Liang B, Yang G, et al. Kinetics of the pyrolysis process of phthalonitrile resin. Thermochim Acta. 2018;672:133–141.
  • Heydari M, Rahman M, Gupta R. Kinetic study and thermal decomposition behavior of lignite coal. Int J Chem Eng. 2015; 2015:1–9.
  • Venkatesh M, Ravi P, Tewari SP. Isoconversional kinetic analysis of decomposition of nitroimidazoles: Friedman method vs Flynn-Wall-Ozawa method. J Phys Chem A. 2013;117:10162–10169.
  • Baysal M, Yurum Y. Characterization of bio-oils and bio-char obtained from the pyrolysis of a mixture of Lolium perenne, Festuca ovina, Festuca rubra and Poa pratensis grasses. Biofuels. 2016;7:181–189.
  • Wauton I, Ogbeide SE. Characterization of pyrolytic bio-oil from water hyacinth (Eichhornia crassipes) pyrolysis in a fixed bed reactor. Biofuels. 2016;1–6.doi: https://doi.org/10.1080/17597269.2018.1558838
  • Subramanian S, Reddy Ragula UB. Pyrolysis kinetics of Hibiscus rosa sinensis and Nerium oleander. Biofuels. 2018;7269:1–15.
  • Promdee K, Phihusut D, Monthienvichienchai A, et al. Conversion of Hydrilla verticillata to bio-oil and charcoal using a continuous pyrolysis reactor. Biofuels. 2018;7269:1–9.

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