Research Article

Performance Optimization of a Locally Developed Charcoal Briquette Machine Using Response Surface Methodology

Authors

  • Izuchukwu F. Okpala Department of Mechanical Engineering, Chukwuemeka Odumegwu Ojukwu University, Uli, Nigeria
  • Ifeanyichukwu U. Onyenanu Department of Mechanical Engineering, Chukwuemeka Odumegwu Ojukwu University, Uli, Nigeria

    iu.onyenanu@coou.edu.ng

  • Vincent C. Ezechukwu Department of Mechanical Engineering, Chukwuemeka Odumegwu Ojukwu University, Uli, Nigeria
  • Chukwunwendu E. Ilochonwu Engineering Design Services Division, Scientific Equipment Development Institute, Enugu, Nigeria

Abstract

This study focuses on optimizing the performance of a charcoal briquette machine using Response Surface Methodology (RSM). Charcoal briquettes represent a sustainable energy alternative with significant potential for addressing energy challenges, particularly in developing regions. A custom-designed screw extruder briquetting machine was fabricated and evaluated under varying operational parameters. Using Central Composite Design, the research investigated the influence of machine speed (50-200 RPM), die diameter (30-50 mm), and compression pressure (15-30 MPa) on machine efficiency and throughput. Analysis of variance revealed that machine speed significantly affected both performance metrics, while the interaction between speed and compression pressure proved significant for machine efficiency. The quadratic models developed demonstrated high predictive capability with R² values of 0.9601 and 0.9548 for efficiency and throughput, respectively. Finite Element Analysis validated the structural integrity of the machine design under operational stresses. Optimal operating conditions were identified at 79.46 RPM machine speed, 41.88 mm die diameter, and 20.62 MPa compression pressure, yielding 84.75% efficiency and 235.77 kg/hr throughput. These findings provide valuable insights into the design and operation of briquetting machinery, contributing to the advancement of sustainable biomass utilization technologies.

Keywords:

Charcoal Charcoal Briquette Charcoal Briquette Machine Response Surface Methodology

Article information

Journal

Scientific Journal of Engineering, and Technology

Volume (Issue)

2(1), (2025)

Pages

55-66

Published

23-04-2025

How to Cite

Okpala, I. F., Onyenanu, I. U., Ezechukwu, V. C., & Ilochonwu, C. E. (2025). Performance Optimization of a Locally Developed Charcoal Briquette Machine Using Response Surface Methodology. Scientific Journal of Engineering, and Technology, 2(1), 55-66. https://doi.org/10.69739/sjet.v2i1.486

References

Abakr, Y. A., & Abasaeed, A. E. (2006). Experimental evaluation of a conical-screw briquetting machine for the briquetting of carbonized cotton stalks in Sudan. Journal of Engineering Science and Technology, 1(2), 212–220.

Ajayi, A. B., & Osumune, J. I. (2013). Design of Sawdust Briquette Machine. Innovative Systems Design and Engineering, 4(10), 51–58.

Chilakpu, K. O. (2015). Renewable energy sources. Its benefits, potentials and challenges in Nigeria. Renewable Energy, 5(9). https://core.ac.uk/download/pdf/234668116.pdf

Chisha, K. (2023). Marketing potential and factors leading to the acceptability of faecal sludge briquettes in low-income areas of Lusaka: A case of Kamanga compound. [PhD Thesis, The University of Zambia]. https://dspace.unza.zm/handle/123456789/8023

El-Sayed, S. A., & Elsaid Mohamed, M. K. (2018). Mechanical properties and characteristics of wheat straw and pellets. Energy & Environment, 29(7), 1224–1246. https://doi.org/10.1177/0958305X18772414

Ezechukwu, V. C., Oghenekaro, P. O., Onyenanu, I. U., Ayadinuno, G., & Agwaziam, J. O. (2025). Mathematical Modeling and Optimization of Plantain Chip Drying: A Parametric Study on Air Frying Conditions. IPS Journal of Engineering and Technology, 1(1), 42–52. https://doi.org/10.54117/ijet.v1i1.13

Gila, L. M., Abioye, A. M., & Mohammed, J. (2022). Optimization of briquettes produced from carbonized coconut shell and oil palm empty fruit bunch blends using response surface methodology. Nigerian Journal of Tropical Engineering, 16(1), 79-90. https://doi.org/10.59081/njte.16.1.008

Inuma, F. M., Mohammed, J., & Bawa, M. A. (2023). Production and optimization of briquettes from sugarcane bagasse using blends of waste paper and clay as binders. Journal of Applied Sciences and Environmental Management, 27(3), 571–577. https://doi.org/10.4314/jasem.v27i3.22

Kipngetich, P., Kiplimo, R., Tanui, J. K., & Chisale, P. C. (2022). Optimization of combustion parameters of carbonized rice husk briquettes in a fixed bed using RSM technique. Renewable Energy, 198, 61–74. https://doi.org/10.1016/j.renene.2022.07.130

Križan, P., Šooš, L., & Matúš, M. (2010). Optimisation of briquetting machine pressing chamber geometry. Machine Design. -ISSN, 1259(2010).

Madukasi, A. H., Onyenanu, I. U., Oghenekaro, P. O., Nzenwa, C. C., & Madu, K. E. (2025). Optimization of the Drying Parameters for Plantain Chips using a Locally Made Tray Dryer: A Study on Drying Efficiency and Drying Rate Modeling using RSM. Journal of Food Technology & Nutrition Sciences, 7(2), 1-10. https://doi.org/10.47363/JFTNS/2025(7)206

Mitchual, S. J., Frimpong-Mensah, K., & Darkwa, N. A. (2013). Effect of species, particle size and compacting pressure on relaxed density and compressive strength of fuel briquettes. International Journal of Energy and Environmental Engineering, 4(1), 30. https://doi.org/10.1186/2251-6832-4-30

Montgomery, D. C. (2017). Design and analysis of experiments. John wiley & sons.

Muazu, R. I., & Stegemann, J. A. (2015). Effects of operating variables on durability of fuel briquettes from rice husks and corn cobs. Fuel Processing Technology, 133, 137–145.

Nuhu, P., Bukari, D., & Banye, E. Z. (2022). Driving improved cooking technology uptake in Ghana: An analysis of costs and benefits. Energy for Sustainable Development, 66, 26–43.

Odejobi, O. J., Ajala, O. O., & Osuolale, F. N. (2024). Review on the potential of using agricultural, municipal solid, and industrial wastes as substrates for biogas production in Nigeria. Biomass Conversion and Biorefinery, 14(2), 1567–1579. https://doi.org/10.1007/s13399-022-02613-y

Onyenanu, I. U., Ogbogu, M. C., & Nwadiuto, C. J. (2024). Performance optimization of an improved biomass gasifier charcoal stove using response surface method (RSM). International Journal of Engineering Research & Technology (IJERT), 13(08). https://doi.org/10.17577/IJERTV13IS080031

Okafor, K. C., Oparaku, O. U., Achumba, I. E., Ezeh, G. N., & Chilakpu, K. O. (2015). R-SGEMS: A novel green energy management system for renewable energy utility.

Oliver, I., Ifeanyichukwu, O., & Adubasim Angela, C. (2015). Application of Artificial photosynthesis in harnessing Solar Energy for the production of sustainable and Reliable Energy in Nigeria.

Onyenanu, I. U., Ande, J. I., & Ezechukwu, V. C. (2024). Enhancing Energy Efficiency in Locally Developed Steam Boilers: A Response Surface Methodology Approach. Research Journal in Civil, Industrial and Mechanical Engineering, 1(1), 58–72. https://doi.org/10.61424/rjcime.v1i1.153

Onyenanu, I. U., Nwadiuto, C. J., Okeke, chisom V., & Okafor, A. M. (2024). Development of a Mathematical Model for Palm Fruit Digester Design: Integrating Dimensional Analysis and Process Optimization. International Journal of Applied and Natural Sciences, 2(2), 15–26. https://doi.org/10.61424/ijans.v2i2.144

Onyenanu, Ifeanyichukwu & Okeke, O & Nwobu, C & Akubuenyi, J & Mgbemeje, A & Okeke, I. (2023). Development of an Enhanced Biomass Gasifier Charcoal Stove. International Journal of Innovative Science and Research Technology, 8. 686-694. https://doi.org/10.1126/science.1106881

Organization, W. H., Programme, U. U. N. E., & Health, W. O. for A. (2022). One health joint plan of action (2022–2026): Working together for the health of humans, animals, plants, and the environment. World Health Organization.

Owusu, P. A., & Asumadu-Sarkodie, S. (2016). A review of renewable energy sources, sustainability issues, and climate change mitigation. Cogent Engineering, 3(1), 1167990. https://doi.org/10.1080/23311916.2016.1167990

Pawaree, N., Phokha, S., & Phukapak, C. (2024). Multi-response optimization of charcoal briquettes process for green economy using a novel TOPSIS linear programming and genetic algorithms based on response surface methodology. Results in Engineering, 22, 102226. https://doi.org/10.1016/j.rineng.2024.102226

Saeed, A. A. H., Yub Harun, N., Bilad, M. R., Afzal, M. T., Parvez, A. M., Roslan, F. A. S., Abdul Rahim, S., Vinayagam, V. D., & Afolabi, H. K. (2021). Moisture content impact on the properties of briquette produced from rice husk waste. Sustainability, 13(6), 3069.

Sinha, S. N., & Nag, P. K. (2011). Air pollution from solid fuels. Encyclopedia of Environmental Health, 1, 46–52.

Somsuk, N., Srithongkul, K., Wessapan, T., & Teekasap, S. (2008). Design and Fabricate a Low-Cost Charcoal Briquette Machine for Small and Micro Community Enterprises. Proceedings of the 1st International Conference of the Council of Deans of Architecture School Thailand (CDAST 2008), Phitsanulok, Thailand (pp. 23–25).

Sunardi, S., Djuanda, D., & Mandra, M. A. S. (2019). Characteristics of charcoal briquettes from agricultural waste with compaction pressure and particle size variation as an alternative fuel. International Energy Journal, 19(3), 139–148.

Thabuot, M., Pagketanang, T., Panyacharoen, K., Mongkut, P., & Wongwicha, P. (2015). Effect of applied pressure and binder proportion on the fuel properties of holey bio-briquettes. Energy Procedia, 79, 890–895.

Downloads

Views

8

Downloads

3