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The physicochemical properties of liquid biofuel derived from the pyrolysis of low-quality rubber waste
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Metadata
Document Title
The physicochemical properties of liquid biofuel derived from the pyrolysis of low-quality rubber waste
Author
Moonsin P.
Name from Authors Collection
Affiliations
Program of Chemistry, Faculty of Science, Ubon Ratchathani Rajabhat University, Mueang District, Ubon Ratchathani, 34000, Thailand; Biomass Energy Research Laboratory, Center of Excellence on Alternative Energy, Research and Development Institution, Sakon Nakhon Rajabhat University, Mueang District, Sakon Nakhon, 47000, Thailand; Program of Chemistry, Faculty of Science and Technology, Sakon Nakhon Rajabhat University, Mueang District, Sakon Nakhon, 47000, Thailand; Innovation in Chemistry for Community Research Unit, Faculty of Science and Technology, Sakon Nakhon Rajabhat University, Mueang District, Sakon Nakhon, 47000, Thailand; Appropriated Technology Center, Faculty of Science and Technology, Sakon Nakhon Rajabhat University, Mueang District, Sakon Nakhon, 47000, Thailand; National Energy Technology Center (ENTEC), 114 Thailand Science Park, Phahonyothin Road, Klong Luang, Pathumthani, 12120, Thailand; Department of Material Science and Engineering, School of Molecular Science & Engineering, Vidyasirimedhi Institute of Science and Technology, Wangchan, Rayong, 21210, Thailand
Type
Article
Source Title
Case Studies in Chemical and Environmental Engineering
ISSN
26660164
Year
2025
Volume
11
Open Access
All Open Access; Gold Open Access; Green Open Access
Publisher
Elsevier Ltd
DOI
10.1016/j.cscee.2024.101085
Abstract
This research explores the potential of low-quality rubber waste as a feedstock for liquid biofuel production via pyrolysis, achieving a conversion rate of 65–70 %. The study presents a comprehensive analysis of waste rubber pyrolysis oil (WRPO) using FT-IR, 1H and 13C NMR, and GC-MS techniques to identify its chemical composition and fuel properties. FT-IR analysis reveals a complex mixture of saturated and unsaturated hydrocarbons, aromatic rings, and oxygenated compounds, while NMR analysis confirms the diverse chemical structure of WRPO. GC-MS identifies key compounds, including D-Limonene, Dimethyl phthalate, Methyl hexadecanoate, and Oleic acid methyl ester, with 18.49 % saturated hydrocarbons and 81.51 % unsaturated hydrocarbons. The TGA results show that WRPO exhibits evaporation and thermal decomposition characteristics similar to B10 diesel, with evaporation beginning below 40 °C and complete decomposition at 300 °C, highlighting its potential as an efficient and environmentally friendly biofuel. Fuel property testing reveals WRPO has a kinematic viscosity of 1.47 cSt, a density of 785 kg/m3, and favorable low pour and cloud points (<−5 °C), making it suitable for cold climates. However, WRPO has a lower heating value of 9675 kcal/kg compared to B10 diesel (11083 kcal/kg) and a high acid number of 4.24 mg KOH/g, which may lead to oxidation and corrosion. In conclusion, WRPO shows considerable promise as a biofuel but would benefit from blending with higher-energy fuels, such as B10 diesel, palm oil biodiesel, or waste cooking oil biodiesel, to improve its stability, combustion efficiency, and heating value. This blending strategy enhances WRPO's potential for sustainable biofuel production and engine use. © 2024 The Authors
Keyword
Biomass energy | Liquid biofuel | Low-quality rubber waste | physicochemical properties | Pyrolysis
Industrial Classification
License
CC BY-NC-ND
Rights
Authors
Publication Source
Scopus