| dc.contributor.author | Mansour, Charbel | |
| dc.contributor.author | Bou Nader, Wissam | |
| dc.contributor.author | Dumand, Clément | |
| dc.contributor.author | Nemer, Maroun | |
| dc.date.accessioned | 2020-09-25T11:40:48Z | |
| dc.date.available | 2020-09-25T11:40:48Z | |
| dc.date.copyright | 2018 | en_US |
| dc.date.issued | 2020-09-25 | |
| dc.identifier.issn | 0954-4070 | en_US |
| dc.identifier.uri | http://hdl.handle.net/10725/12164 | |
| dc.description.abstract | Considerable efforts have been invested in the automotive industry on electrified powertrains in order to reduce passenger cars’ dependence on fossil fuels. Powertrains electrification resulted in a wide range of mass-production hybrid vehicle models, ranging from micro-hybrid, to mild, full, and battery-extended hybrids such as plug-in and range-extender electric vehicles. Fuel savings of these powertrains strongly rely on the energy management strategy deployed on-board, as well as on the technology used to recover the waste heat energy. This paper investigates the fuel savings potential of a mild hybrid vehicle using an organic Rankine cycle for generating electricity from the engine-coolant circuit. The net mechanical power and electrical power generated from the organic Rankine cycle are determined based on experimental data recorded on a 1.2-L turbocharged engine. The coolant temperature is regulated at 85°C and 105°C depending on the engine load. The R-1234yf organic fluid is used and the Rankine operating pressure has been controlled to maximize the overall system efficiency under technological constraints. The dynamic programming control is used as a global optimal energy management strategy in order to define the best strategy for the engine operation and power-split between the electric and thermal paths of the powertrain. A sensitivity analysis is also performed to find the optimal size of the electric motor while taking into account the additional weight of the organic Rankine cycle system. Results show 2.4% of fuel economy improvement on The Worldwide Harmonized Light Vehicles Test Cycles | en_US |
| dc.language.iso | en | en_US |
| dc.title | Waste heat recovery from engine coolant on mild hybrid vehicle using organic Rankine cycle | en_US |
| dc.type | Article | en_US |
| dc.description.version | Published | en_US |
| dc.author.school | SOE | en_US |
| dc.author.idnumber | 201001655 | en_US |
| dc.author.department | Industrial And Mechanical Engineering | en_US |
| dc.description.embargo | N/A | en_US |
| dc.relation.journal | Proceedings of the Institution of Mechanical Engineers, Part D: Journal of Automobile Engineering | en_US |
| dc.journal.volume | 233 | en_US |
| dc.journal.issue | 10 | en_US |
| dc.article.pages | 2502-2517 | en_US |
| dc.keywords | Mild hybrid, | en_US |
| dc.keywords | Organic Rankine cycle | en_US |
| dc.keywords | Waste heat recovery | en_US |
| dc.keywords | Engine-coolant | en_US |
| dc.keywords | Dynamic programming | en_US |
| dc.identifier.doi | https://doi.org/10.1177/0954407018797819 | en_US |
| dc.identifier.ctation | Mansour, C., Bou Nader, W., Dumand, C., & Nemer, M. (2019). Waste heat recovery from engine coolant on mild hybrid vehicle using organic Rankine cycle. Proceedings of the Institution of Mechanical Engineers, Part D: Journal of Automobile Engineering, 233(10), 2502-2517. | en_US |
| dc.author.email | charbel.mansour@lau.edu.lb | en_US |
| dc.identifier.tou | http://libraries.lau.edu.lb/research/laur/terms-of-use/articles.php | en_US |
| dc.identifier.url | https://journals.sagepub.com/doi/abs/10.1177/0954407018797819 | en_US |
| dc.author.affiliation | Lebanese American University | en_US |