Author:
Kongprawes Grittima,Wongsawaeng Doonyapong,Ngaosuwan Kanokwan,Kiatkittipong Worapon,Assabumrungrat Suttichai
Abstract
AbstractPartially hydrogenated fatty acid methyl ester (H-FAME) is conventionally produced through partial hydrogenation under high pressure and elevated temperature in the presence of a catalyst. Herein, a novel green, catalyst-free, non-thermal and atmospheric pressure dielectric barrier discharge (DBD) plasma was employed instead of a conventional method to hydrogenate palm FAME. H-FAME became more saturated with the conversion of C18:2 and C18:3 of 47.4 and 100%, respectively, at 100 W input power, 1 mm gas-filled gap size and 80% H2 in the mixed gas at room temperature for 5 h, causing a reduction of the iodine value from 50.2 to 43.5. Oxidation stability increased from 12.8 to 20 h while a cloud point changed from 13.5 to 16 °C. Interestingly, DBD plasma hydrogenation resulted in no trans-fatty acid formation which provided a positive effect on the cloud point. This green DBD plasma system showed a superior performance to a conventional catalytic reaction. It is an alternative method that is safe from explosion due to the mild operating condition, as well as being highly environmentally friendly by reducing waste and energy utilization from the regeneration process required for a catalytic process. This novel green plasma hydrogenation technique could also be applied to other liquid-based processes.
Funder
Royal Golden Jubilee Ph.D. Scholarship
Agricultural Research Development Agency
National Science and Technology Development Agency
Publisher
Springer Science and Business Media LLC
Reference54 articles.
1. Corro, G. et al. Biodiesel and fossil-fuel diesel soot oxidation activities of Ag/CeO2 catalyst. Fuel 250, 17–26 (2019).
2. Veera Raghavulu, K. et al. Effect on performance and emission of canola oil and snake gourd oil biodiesel blended in fossil diesel-biodiesel blend. Mater. Today Proc. 37, 1091–1095 (2020).
3. Rajalingam, A., Jani, S. P., Kumar, A. & Khan, M. A. Production methods of biodiesel. J. Chem. Pharm. Res. 8, 170–173 (2016).
4. Patel, N. K. & Shah, S. N. In Food, Energy, and Water (ed Satinder Ahuja) 277–307 (Elsevier, 2015).
5. Wongsawaeng, D. et al. Simple and effective technology for sustainable biodiesel production using high-power household fruit blender. J. Clean. Prod. 237, 117842 (2019).
Cited by
17 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献