Application of Zeolite-X as a Nanostructured Catalyst for Biodiesel Production from a Ternary Oil Blend
Authors
Department of Chemical Engineering, Federal University of Petroleum Resources Effurun, Delta State, Nigeria (Nigeria)
Department of Chemical Engineering, Federal University of Petroleum Resources Effurun, Delta State, Nigeria (Nigeria)
Article Information
DOI: 10.51584/IJRIAS.2026.11050131
Subject Category: Renawable Energy
Volume/Issue: 11/5 | Page No: 1557-1573
Publication Timeline
Submitted: 2026-05-11
Accepted: 2026-05-16
Published: 2026-06-05
Abstract
The rising demand for sustainable and eco-friendly energy sources has intensified research into biodiesel production using efficient catalysts and diverse feedstocks. This study examines the application of zeolite-X, a nanostructured catalyst, for the production of biodiesel from a ternary blend of neem seed oil, palm kernel oil, and waste cooking oil. Zeolite-X was characterized through Scanning Electron Microscopy (SEM) and Fourier-Transform Infrared Spectroscopy (FTIR) to validate its structure and properties. The esterification process was conducted to lower the free fatty acid content to below 1% to prevent soap formation. Biodiesel was synthesized from this mixture via the transesterification process using methanol, catalyzed by zeolite-X. The process was optimized through response surface methodology (central composite design). The physicochemical parameters of the ternary oil blend are as follows: acid value, 17.43 mgKOH/g; free fatty acid, 8.715%; viscosity, 69.8 mPa.s; and saponification value of 135.329 mgKOH/g. The optimal parameters are at a methanol-to-oil ratio of 5.5:1, a reaction temperature of 60°C, a reaction duration of 105 minutes, and a catalyst loading of 7%. Gas Chromatography-Mass Spectrometry (GC-MS) was employed to analyse the fatty acid composition of the optimized biodiesel. The biodiesel's key physicochemical properties were evaluated and found to comply with or approximate ASTM standards: density of 0.8712 g/ml (ASTM standard: 0.88 g/ml), the kinematic viscosity of 4.27 mm²/s (ASTM range: 1.9-6.0 mm²/s), acid value of 0.947 mgKOH/g, free fatty acid content of 0.4735% (ASTM limit: <0.5%), flashpoint of 129°C (ASTM range: 100-170°C), and calorific value of 40.41 MJ/kg (ASTM standard: >35 MJ/kg). This study illustrates that Zeolite-X serves as an efficient nanocatalyst for biodiesel synthesis, presenting a viable pathway for sustainable energy derived from blended renewable oils with favourable fuel characteristics.
Keywords
Transesterification, Sustainable, Greenhouse, Energy
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References
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