Comparative Evaluation of Biodiesel Yield, Fuel Properties and Oxidative Stability of Waste Cooking Oil and Selected Niger Delta Plant Oils

Omuluche Collins O.

Department of Pure and Industrial Chemistry, University of Port Harcourt, Choba, Nigeria.

Ogbaji Henderson O.

Department of Genetics and Biotechnology, Faculty of Biological Sciences, University of Calabar, Calabar, Cross River State, Nigeria.

Usiabulu Godsday I.

World Bank Centre for Excellence, Centre for Oilfield Chemicals, University of Port Harcourt, Choba, Nigeria.

Cookey Cookey I.

Department of Chemical Engineering, Rivers State University, Port Harcourt, Nigeria.

Oji Chihurumnanya O.

Department of Chemistry, Federal University of Technology Owerri (FUTO), Owerri, Nigeria.

Okpoji Awajiiroijana U. *

Department of Pure and Industrial Chemistry, University of Port Harcourt, Choba, Nigeria.

Isaac Ukeme O.

Department of Chemical Engineering Technology, Federal Polytechnic Oko, Anambra State, Nigeria.

Edodi Iyam O.

Department of Science Laboratory Technology, University of Calabar, Calabar, Nigeria.

Garuba Muhammed H.

Department of Chemistry and Industrial Chemistry, Kwara State University (KWASU), Malete, Nigeria.

*Author to whom correspondence should be addressed.


Abstract

Background: Biodiesel production from waste and locally available plant oils may support renewable fuel development while valorising lipid resources.

Aim: This study comparatively evaluated biodiesel yield, fuel properties and oxidative stability of biodiesel produced from waste cooking oil, coconut oil, palm kernel oil and African oil bean seed oil.

Materials and Methods: Biodiesel was produced by alkaline-catalysed transesterification. Yield, density, kinematic viscosity, acid value, flash point, cetane number, moisture content, calorific value, cold flow properties, oxidative stability and storage stability were evaluated using the stated ASTM, EN, AOAC and AOCS procedures. Data were analysed by one-way ANOVA at p < 0.05.

Results: Biodiesel yield ranged from 88.7 ± 1.7% for African oil bean seed oil to 95.8 ± 1.1% for palm kernel oil. Density ranged from 0.869 ± 0.003 to 0.887 ± 0.004 g/cm³, while kinematic viscosity ranged from 4.06 ± 0.08 to 4.82 ± 0.12 mm²/s. Palm kernel oil biodiesel recorded the highest cetane number (62.8 ± 1.2), calorific value (41.3 ± 0.5 MJ/kg) and induction period (10.54 ± 0.24 h). Waste cooking oil biodiesel had the lowest induction period (6.94 ± 0.20 h) but retained acceptable measured fuel properties. Palm kernel and coconut oil biodiesel met the stated EN 14214 oxidative-stability threshold.

Conclusion: The evaluated feedstocks produced biodiesel with distinct yield, fuel-quality and stability profiles, with palm kernel oil showing the strongest overall performance and waste cooking oil remaining a viable waste-derived feedstock.

Keywords: Biodiesel, waste cooking oil, palm kernel oil, coconut oil, African oil bean seed oil, oxidative stability, renewable energy


How to Cite

Collins O., Omuluche, Ogbaji Henderson O., Usiabulu Godsday I., Cookey Cookey I., Oji Chihurumnanya O., Okpoji Awajiiroijana U., Isaac Ukeme O., Edodi Iyam O., and Garuba Muhammed H. 2026. “Comparative Evaluation of Biodiesel Yield, Fuel Properties and Oxidative Stability of Waste Cooking Oil and Selected Niger Delta Plant Oils”. Journal of Energy Research and Reviews 18 (9):12-23. https://doi.org/10.9734/jenrr/2026/v18i9534.

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