REVIEW ARTICLE

A review on co-pyrolysis of agriculture biomass and disposable medical face mask waste for green fuel production: recent advances and thermo-kinetic models

  • Melvin X. J. Wee 1 ,
  • Bridgid L. F. Chin , 1,2 ,
  • Agus Saptoro 1 ,
  • Chung L. Yiin 3,4 ,
  • Jiuan J. Chew 5 ,
  • Jaka Sunarso 5 ,
  • Suzana Yusup 6 ,
  • Abhishek Sharma 7,8
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  • 1. Department of Chemical and Energy Engineering, Faculty of Engineering and Science, Curtin University Malaysia, CDT 250, Miri 98009, Malaysia
  • 2. Energy and Environment Research Cluster, Faculty of Engineering and Science, Curtin University Malaysia, CDT 250, Miri 98009, Malaysia
  • 3. Department of Chemical Engineering and Energy Sustainability, Faculty of Engineering, Universiti Malaysia Sarawak (UNIMAS), Kota Samarahan 94300, Malaysia
  • 4. Institute of Sustainable and Renewable Energy (ISuRE), Universiti Malaysia Sarawak (UNIMAS), Kota Samarahan 94300, Malaysia
  • 5. Research Centre for Sustainable Technologies, Faculty of Engineering, Computing and Science, Swinburne University of Technology, Kuching 93350, Malaysia
  • 6. Generation Unit (Fuel Technology & Combustion), Tenaga Nasional Berhad (TNB) Research Sdn Bhd, Kajang 43000, Malaysia
  • 7. Department of Chemical Engineering, Manipal University Jaipur, Jaipur 303007, India
  • 8. Chemical & Environmental Engineering, School of Engineering, RMIT University, Melbourne, Victoria 3000, Australia
bridgidchin@curtin.edu.my, bridgidchin@gmail.com

Received date: 16 Apr 2022

Accepted date: 08 Aug 2022

Published date: 15 Sep 2023

Copyright

2023 Higher Education Press

Abstract

The Association of Southeast Asian Nations is blessed with agricultural resources, and with the growing population, it will continue to prosper, which follows the abundance of agricultural biomass. Lignocellulosic biomass attracted researchers’ interest in extracting bio-oil from these wastes. However, the resulting bio-oil has low heating values and undesirable physical properties. Hence, co-pyrolysis with plastic or polymer wastes is adopted to improve the yield and quality of the bio-oil. Furthermore, with the spread of the novel coronavirus, the surge of single-use plastic waste such as disposable medical face mask, can potentially set back the previous plastic waste reduction measures. Therefore, studies of existing technologies and techniques are referred in exploring the potential of disposable medical face mask waste as a candidate for co-pyrolysis with biomass. Process parameters, utilisation of catalysts and technologies are key factors in improving and optimising the process to achieve commercial standard of liquid fuel. Catalytic co-pyrolysis involves a series of complex mechanisms, which cannot be explained using simple iso-conversional models. Hence, advanced conversional models are introduced, followed by the evolutionary models and predictive models, which can solve the non-linear catalytic co-pyrolysis reaction kinetics. The outlook and challenges for the topic are discussed in detail.

Cite this article

Melvin X. J. Wee , Bridgid L. F. Chin , Agus Saptoro , Chung L. Yiin , Jiuan J. Chew , Jaka Sunarso , Suzana Yusup , Abhishek Sharma . A review on co-pyrolysis of agriculture biomass and disposable medical face mask waste for green fuel production: recent advances and thermo-kinetic models[J]. Frontiers of Chemical Science and Engineering, 2023 , 17(9) : 1141 -1161 . DOI: 10.1007/s11705-022-2230-7

Acknowledgements

The authors would like to acknowledge the technical support from Curtin University Malaysia, Swinburne University of Technology, Universiti Teknologi PETRONAS (UTP), and Manipal University Jaipur. Besides that, M.X.J. Wee would like to acknowledge the full funding support from the Curtin Malaysia Postgraduate Research Studentship (CMPRS) for the PhD study.
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