1 Department of Biomedical Engineering, Faculty of Engineering and the Built Environment, State University of Medical and Applied Sciences, Igbo-Eno, Enugu State, Nigeria.
2 Department of Electrical and Electronic Engineering, Faculty of Engineering and the Built Environment, State University of Medical and Applied Sciences, Igbo-Eno, Enugu State, Nigeria.
3 Department of Computer Engineering, Faculty of Engineering and the Built Environment, State University of Medical and Applied Sciences, Igbo-Eno, Enugu State, Nigeria.
4 Department of Civil Engineering, Faculty of Engineering and the Built Environment, State University of Medical and Applied Sciences, Igbo-Eno, Enugu State, Nigeria.
5 Department of Mechanical Engineering, Faculty of Engineering and the Built Environment, State University of Medical and Applied Sciences, Igbo-Eno, Enugu State, Nigeria.
* Corresponding Author
World Journal of Advanced Research and Reviews, 2026, 31(03), 1166–1175
Article DOI: 10.30574/wjarr.2026.31.3.2424
Received on 02 August 2026; revised on 15 September 2026; accepted on 17 September 2026
Castor seed (Ricinus communis) is an oil-rich seed used in southeastern Nigeria for the production of fermented condiments such as ogiri. Because traditional fermentation is carried out under variable processing conditions, quantitative information on the combined effects of fermentation time, temperature and particle size is useful for process control. This study investigated the effects of fermentation time, temperature and particle size on nitrogen evolution during castor-seed fermentation and applied response surface methodology (RSM) to determine an optimum operating condition. Matured castor seeds obtained from Afor-Opi, Nsukka Local Government Area, Enugu State, Nigeria, were boiled, dehulled, oven-dried at 35°C, grated and sieved into particle sizes of 250–1200 µm. Fifty-gram portions were fermented at 25–45°C, with nitrogen evolution monitored at 24-h intervals for up to 120 h. A randomized three-factor design generated 20 experimental combinations. The fitted quadratic model was highly significant (F = 112.55, p < 0.0001) and explained 99.02% of the observed variation in nitrogen evolution (R² = 0.9902). The adjusted and predicted R² values were 0.9814 and 0.9212, respectively, and adequate precision was 41.206. Fermentation time, temperature, particle size, the time–temperature interaction and the quadratic time term were significant model terms. Numerical optimization selected 113.6 h, 43.67°C and 313.33 µm as the preferred combination, with a predicted nitrogen evolution of 0.984% and desirability of 1.000. The result demonstrates that the three operating variables can be jointly controlled to improve the predictability of castor-seed fermentation. Experimental confirmation of the predicted optimum is recommended before scale-up.
Ricinus Communis; Castor Seed; Ogiri; Fermentation; Nitrogen Evolution; Response Surface Methodology; Process Optimization; Particle Size
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Onyeabo Uzoamaka Agatha, Okika Stephen Sunday, Kingsley I. Chibueze, C.O. Ugwoke and Emeka Augustine Chinachi. RESPONSE SURFACE OPTIMIZATION OF FERMENTATION CONDITIONS FOR CASTOR SEED (RICINUS COMMUNIS) BASED ON NITROGEN EVOLUTION. World Journal of Advanced Research and Reviews, 2026, 31(03), 1166–1175. Article DOI: https://doi.org/10.30574/wjarr.2026.31.3.2424