eprintid: 18103 rev_number: 2 eprint_status: archive userid: 1 dir: disk0/00/01/81/03 datestamp: 2024-06-04 14:10:13 lastmod: 2024-06-04 14:10:13 status_changed: 2024-06-04 14:01:24 type: article metadata_visibility: show creators_name: Prabhu, L. creators_name: Shenbagaraman, S. creators_name: Anbarasu, A. creators_name: Muniappan, A. creators_name: Suthan, R. creators_name: Veza, I. title: Prediction of the Engine Performance and Emission Characteristics of Glycine Max Biodiesel Blends With Nanoadditives and Hydrogen ispublished: pub keywords: Air pollution; Amino acids; Fossil fuels; Molecules; Nanoparticles; Nitrogen oxides; Soybean oil, Air emissions; Air pollution, NOx, air emission from fossil fuel combustion, alternative energy source, renewable energy; Alternative energy source; Bio-diesel blends; Compression ignition engine; Engine emission; Engine performance; Fossil fuel combustion; Nanoadditives; Renewable energies, Biodiesel note: cited By 6 abstract: This study investigates the Glycine max (soybean oil) biodiesel with hydrogen along with MgO nanoadditives on compression ignition engines. A series of tests were conducted at various loading conditions in a water-cooled, single-cylinder, constant-speed engine. The biodiesel-blended soya oil was used as the primary fuel, and hydrogen was added at a constant volume of 25 LPM. Additionally, MgO nanoparticles were dispersed to the blends at concentrations of 50 ppm. In this study, it was found that the addition of hydrogen to the compression ignition (CI) engine resulted in an increase in combustion performance. In addition, hydrogen and oxygen molecules significantly reduced the exhaust gas temperature and brake-specific fuel consumption of biodiesel samples. An increase in nanoparticle concentration resulted in a reduction in emissions of pollutants such CO2, CO, and HC. Inclusion of the hydrogen in the combustion chamber reduces the carbon content burned. Further, the availability of extra molecules in the MgO aids the fuel to reach higher combustion rates. At higher load conditions, biodiesel blends showed a slight decrease in NOx emissions. Overall, from the findings, it is clear that hydrogen addition and nanoparticles enhanced emission and combustion process, which is attributed due to the increase in hydrogen content in the fuel. Copyright © 2023 by ASME. date: 2023 publisher: American Society of Mechanical Engineers (ASME) official_url: https://www.scopus.com/inward/record.uri?eid=2-s2.0-85167872775&doi=10.1115%2f1.4062380&partnerID=40&md5=7a78d20cacaf256ccd13ce09cdc2844f id_number: 10.1115/1.4062380 full_text_status: none publication: Journal of Energy Resources Technology, Transactions of the ASME volume: 145 number: 11 refereed: TRUE issn: 01950738 citation: Prabhu, L. and Shenbagaraman, S. and Anbarasu, A. and Muniappan, A. and Suthan, R. and Veza, I. (2023) Prediction of the Engine Performance and Emission Characteristics of Glycine Max Biodiesel Blends With Nanoadditives and Hydrogen. Journal of Energy Resources Technology, Transactions of the ASME, 145 (11). ISSN 01950738