Simulasi CFD Berbasis Single Particle pada Proses Fast Pyrolysis Biomassa Kulit Kopi Menggunakan Reaktor Screw untuk Optimasi Produksi Gas

Authors

  • Muhammad Ma’arif Al Azizy Universitas Tidar
  • Arif Rahman Saleh Universitas Tidar
  • Raka Mahendra Sulistyo Universitas Tidar

DOI:

https://doi.org/10.61132/mars.v4i1.1469

Keywords:

Fast Pyrolysis, Coffee Husk, Computational Fluid Dynamics (CFD), Screw Reactor, Gas Production

Abstract

Coffee husk is an agro-industrial waste with significant potential to be utilized as a renewable energy source through the fast pyrolysis process. This study aims to analyze and optimize gas production from the fast pyrolysis of coffee husk biomass using a screw reactor through single-particle-based Computational Fluid Dynamics (CFD) simulations. The simulations were conducted by varying the operating temperature at 500°C, 600°C, and 700°C to examine pressure distribution, heat transfer, particle temperature, and the formation of pyrolysis products, namely bio-oil, biogas, and biochar. The modeling was performed using COMSOL Multiphysics 6.2 with a numerical approach to represent thermal phenomena and biomass decomposition reactions during the pyrolysis process. The simulation results indicate that increasing temperature significantly affects the rate of heat transfer and the temperature distribution of coffee husk particles. At 600°C, heat transfer and temperature distribution are more uniform compared to 500°C, although heating at the particle core is not yet fully optimal. The pressure distribution shows a stable flow of pyrolysis gas from the bottom to the top of the reactor. In terms of products, increasing temperature leads to a reduction in biochar and bio-oil formation due to the occurrence of secondary reactions, while biogas production increases. The highest gas production is achieved at 700°C, indicating the most optimal condition for maximizing gas yield from fast pyrolysis. Therefore, single-particle-based CFD simulation can be used as an effective tool to understand pyrolysis mechanisms and optimize process parameters in a screw reactor.

References

Afshar, M., & Mofatteh, S. (2024). Biochar for a sustainable future: Environmentally friendly production and diverse applications. Results in Engineering, 23, 102433. https://doi.org/10.1016/j.rineng.2024.102433

Akhtar, J., & Amin, N. S. A. (2012). A review on operating parameters for optimum liquid oil yield in biomass pyrolysis. Renewable and Sustainable Energy Reviews, 16(7), 5101–5109. https://doi.org/10.1016/j.rser.2012.05.033

Altıkat, A., Alma, M. H., Altıkat, A., Bilgili, M. E., & Altıkat, S. (2024). A comprehensive study of biochar yield and quality concerning pyrolysis conditions: A multifaceted approach. Sustainability, 16(2), 937. https://doi.org/10.3390/su16020937

Boateng, A. A. (2020). Pyrolysis of biomass for fuels and chemicals. Elsevier Science & Technology.

Campuzano, F., Brown, R. C., & Martínez, J. D. (2019). Auger reactors for pyrolysis of biomass and wastes. Renewable and Sustainable Energy Reviews, 102, 372–409. https://doi.org/10.1016/j.rser.2018.12.014

Chen, T., Ku, X., Lin, J., & Ström, H. (2020). CFD-DEM simulation of biomass pyrolysis in fluidized-bed reactor with a multistep kinetic scheme. Energies, 13(20), 5358. https://doi.org/10.3390/en13205358

Hasibuan, R., & Pardede, H. M. (2023). Pengaruh suhu dan waktu pirolisis terhadap karakteristik arang dari tempurung kelapa. Jurnal Teknik Kimia USU, 12(1), 46–53. https://doi.org/10.32734/jtk.v12i1.8534

Lachos-Perez, D., Martins-Vieira, J. C., Missau, J., et al. (2023). Review on biomass pyrolysis with a focus on bio-oil upgrading techniques. Analytica, 4(2), 182–205. https://doi.org/10.3390/analytica4020015

Ramadhan, F., Syuriadi, A., & Sukandi, A. (2024). Pengaruh variasi suhu dan berat biomassa terhadap yield dan kualitas bio-oil menggunakan biomassa sekam padi pada proses pirolisis.

Ranganathan, P., & Gu, S. (2016). Computational fluid dynamics modelling of biomass fast pyrolysis in fluidised bed reactors, focusing different kinetic schemes. Bioresource Technology, 213, 333–341. https://doi.org/10.1016/j.biortech.2016.02.042

Sharma, A., Pareek, V., & Zhang, D. (2015). Biomass pyrolysis—A review of modelling, process parameters and catalytic studies. Renewable and Sustainable Energy Reviews, 50, 1081–1096. https://doi.org/10.1016/j.rser.2015.04.193

Situmorang, Y. A., Zhao, Z., Yoshida, A., Abudula, A., & Guan, G. (2020). Small-scale biomass gasification systems for power generation (<200 kW class): A review. Renewable and Sustainable Energy Reviews, 117, 109486. https://doi.org/10.1016/j.rser.2019.109486

Valizadeh, S., Younesi, H., & Bahramifar, N. (2018). Preparation and characterization of activated carbon from the cones of Iranian pine trees (Pinus eldarica) by chemical activation with H₃PO₄ and its application for removal of sodium dodecylbenzene sulfonate from aqueous solution. Water Conservation Science and Engineering, 3(4), 253–265. https://doi.org/10.1007/s41101-018-0055-5

Wang, L., Liu, Y., & Chen, H. (2020). Single particle model for biomass pyrolysis using computational fluid dynamics approach. Fuel, 176–185.

Yu, X., Hassan, M., Ocone, R., & Makkawi, Y. (2015). A CFD study of biomass pyrolysis in a downer reactor equipped with a novel gas-solid separator—II thermochemical performance and products. Fuel Processing Technology, 133, 51–63. https://doi.org/10.1016/j.fuproc.2015.01.002

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Published

2026-02-09

How to Cite

Muhammad Ma’arif Al Azizy, Arif Rahman Saleh, & Raka Mahendra Sulistyo. (2026). Simulasi CFD Berbasis Single Particle pada Proses Fast Pyrolysis Biomassa Kulit Kopi Menggunakan Reaktor Screw untuk Optimasi Produksi Gas. Mars: Jurnal Teknik Mesin, Industri, Elektro Dan Ilmu Komputer, 4(1), 182–193. https://doi.org/10.61132/mars.v4i1.1469

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