Pengembangan Desain Alat Pirolisis Tipe Fast Pyrolysis dengan Reaktor Screw Bertingkat untuk Pengolahan Kulit Kopi

Authors

  • Fajar Wisnu Ari Bowo Universitas Tidar
  • Arif Rahman Saleh Universitas Tidar
  • Sigit Mujiarto Universitas Tidar

DOI:

https://doi.org/10.61132/mars.v4i1.1489

Keywords:

Coffee Husk, Fast Pyrolysis, FEA, Reactor, Screw

Abstract

Pyrolysis is a biomass conversion method into fuel through heating at high temperatures under oxygen-limited conditions. The main factors influencing the pyrolysis process include temperature, residence time, pressure, particle size, reactor design, and the type of pyrolysis employed. This study aims to design an auger-type fast pyrolysis system based on previous research. The design and modeling of the fast pyrolysis equipment were carried out using Autodesk Inventor 2021 software. Based on the calculation and design results, a fast pyrolysis reactor with a multi-stage configuration and a capacity of 5.2 kg was developed. The system consists of a three-stage reactor made of Stainless Steel 304. The reactor is equipped with a screw conveyor for material transport, which is driven by an electric motor. Biomass heating inside the reactor is provided by a clamp heater with an electrical power requirement of 611 W, while biomass cooling is performed using a condenser with a cooling water capacity of 15.586 liters. Based on the structural simulation results, the maximum von Mises stress obtained was 35.4 MPa, the maximum displacement was 0.0528 mm, and the safety factor was 6.07 under loading conditions including an internal reactor pressure of 0.32 MPa, a torsional moment of 1,130 kg·mm, and an operating temperature of 700 °C. These values are within the allowable limits of the material, indicating that the designed reactor is structurally safe and feasible for use.

References

Afriyanti, Y., Sasana, H., & Jalunggono, G. (2020). Analisis faktor-faktor yang mempengaruhi konsumsi energi terbarukan di Indonesia. Jurnal Pengembangan Administrasi, 2. https://doi.org/10.24912/jpa.v2i4.9319

Aprilia Lestari, V., & Priambodo, T. B. (2020). Kajian komposisi lignin dan selulosa dari limbah kayu sisa dekortikasi rami dan cangkang kulit kopi untuk proses gasifikasi downdraft. Jurnal Energi dan Lingkungan (Enerlink), 16(1), 1–8. https://doi.org/10.29122/jel.v16i1.4572

Arzaq, V. K. (2024). Analisis computational fluid dynamics (CFD) pirolisis cepat kulit kopi menggunakan reaktor tipe screw.

ASTM International. (2011). ASTM A240/A240M: Standard specification for chromium and chromium-nickel stainless steel plate, sheet, and strip for pressure vessels and general applications. ASTM International.

Darmawan, Y. P. (2024). Karakterisasi dan analisis unjuk kerja reaktor fast pyrolysis kapasitas 5 kg/batch.

Garg, S., Nayyar, A., Buradi, A., Shadangi, K. P., Sharma, P., Bora, B. J., Jain, A., & Shah, M. A. (2023). A novel investigation using thermal modeling and optimization of waste pyrolysis reactor using finite element analysis and response surface methodology. Scientific Reports, 13(1). https://doi.org/10.1038/s41598-023-37793-8

Hazizi, K., & Ghaleeh, M. (2023). Design and analysis of a typical vertical pressure vessel using ASME code and FEA technique. Preprints. https://doi.org/10.20944/preprints202305.1449.v2

Jerzak, W., Acha, E., & Li, B. (2024). Comprehensive review of biomass pyrolysis: Conventional and advanced technologies, reactor designs, product compositions and yields, and techno-economic analysis. Energies, 17(20), 5082. https://doi.org/10.3390/en17205082

Lahope, G. (2024). Implementasi kebijakan energi nasional (KEN) Indonesia menuju target bauran energi baru terbarukan (EBT) 23% tahun 2025. Jurnal Darma Agung. https://doi.org/10.46930/ojsuda.v32i1.3945

Lathifudin, A. (2024). Desain dan rekayasa fast pyrolysis tipe screw kapasitas 5 kg/batch.

Michailos, S., Parker, D., & Webb, C. (2017). Comprehensive design of a fast pyrolysis reactor for waste utilization. International Journal of Renewable Energy Research, 7(4). https://doi.org/10.20508/ijrer.v7i4.6184.g7201

Novita, S. A., Santosa, S., Nofialdi, N., Andasuryani, A., & Fudholi, A. (2021). Parameter operasional pirolisis biomassa: Artikel review. Agroteknika, 4(1), 53–67. https://doi.org/10.32530/agroteknika.v4i1.105

Openibo, A. O., Adefuye, O. A., Kuku, R. O., Raji, N. A., & Adegbuyi, P. A. O. (2023). Design analysis and construction of a biodiesel processing plant. Global Journal of Engineering and Technology Advances, 17(2), 141–153. https://doi.org/10.30574/gjeta.2023.17.2.0236

Rasaq, W. A., Golonka, M., Scholz, M., & Białowiec, A. (2021). Opportunities and challenges of high-pressure fast pyrolysis of biomass: A review. Energies, 14(17), 5426. https://doi.org/10.3390/en14175426

Simanjuntak, J. P., Silaban, R., & Putra, A. N. (2024). Teknologi pirolisis biomassa: Energi terbarukan. ECHA Progres: Lembaga Pengembangan Profesionalisme SDM.

Sularso, & Suga, K. (2004). Dasar perancangan dan pemilihan elemen mesin. PT Pradnya Paramita.

Wardhana, D. I., Ruriani, E., & Nafi, A. (2019). Karakteristik kulit kopi robusta hasil samping pengolahan metode kering dari perkebunan kopi rakyat di Jawa Timur. Agritrop: Jurnal Ilmu-Ilmu Pertanian, 17(2), 214. https://doi.org/10.32528/agritrop.v17i2.2569

Zhao, R., Guo, L., Gao, W., Xiao, X., & Liu, Y. (2022). Structure optimization design of screw conveyor based on EDEM. Journal of Physics: Conference Series, 2200(1), 012002. https://doi.org/10.1088/1742-6596/2200/1/012002

Zhu, X., Shen, T., Bollas, G., & Shen, L. (2021). Design and operation of a multi-stage reactor system for chemical looping combustion process. Fuel Processing Technology, 215, 106748. https://doi.org/10.1016/j.fuproc.2021.106748

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Published

2026-02-16

How to Cite

Fajar Wisnu Ari Bowo, Arif Rahman Saleh, & Sigit Mujiarto. (2026). Pengembangan Desain Alat Pirolisis Tipe Fast Pyrolysis dengan Reaktor Screw Bertingkat untuk Pengolahan Kulit Kopi . Mars: Jurnal Teknik Mesin, Industri, Elektro Dan Ilmu Komputer, 4(1), 203–211. https://doi.org/10.61132/mars.v4i1.1489

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