Thermal Efficiency and Emissions of a Commercial Vehicle Hybrid-Dedicated Diesel Engine With Miller/Atkinson Cycle and High Compression Ratio: An Experimental StudySource: Journal of Energy Resources Technology, Part A: Sustainable and Renewable Energy:;2026:;volume( 002 ):;issue:008DOI: 10.1115/1.4072122Publisher: The American Society of Mechanical Engineers (ASME)
Abstract: Abstract. To address energy security and global environmental challenges, this study conducted bench tests to enhance the thermal efficiency of commercial vehicle hybrid-dedicated diesel engines, developing powertrain systems with high fuel economy and competitive total cost of ownership. Focusing on key conditions for thermal efficiency optimization, this study employed the Miller/Atkinson cycle and high compression ratio configurations. Through experimental and thermodynamic analyses, the study investigated how effective compression ratio (ECR) influences combustion processes and emission characteristics, proposing a technical route to improve thermal efficiency under limited peak cylinder pressure. Experimental results demonstrated that ECR modifications effectively regulate the in-cylinder thermal environment, with reduced temperature and pressure providing margin for advancing the start of injection, thereby minimizing combustion losses. Without a significant increase in nitrogen oxide emissions relative to the baseline, the late intake valve closing strategy, combined with a high geometric compression ratio, significantly reduced soot emissions at low load. Compared to the baseline, large soot particles are reduced by over 85%. The increased expansion ratio improved thermal-work conversion efficiency while reducing pumping losses, resulting in an approximately 1.2% increase in the maximum theoretical thermal efficiency. The maximum brake thermal efficiency of the optimized diesel engine increased by 2.5%, and the minimum brake specific fuel consumption (BSFC) dropped from 192.6 g/(kW · h) to 187.5 g/(kW · h). Furthermore, the BSFC under low-load conditions was significantly reduced by over 10 g/(kW · h).
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| contributor author | Wang, Rui | |
| contributor author | Wang, Xiaosa | |
| contributor author | Lin, Zhiqiang | |
| contributor author | Wang, Hu | |
| contributor author | Wang, Xiaohui | |
| contributor author | Lu, Yao | |
| date accessioned | 2026-08-23T07:45:12Z | |
| date available | 2026-08-23T07:45:12Z | |
| date copyright | 2026/08/01 | |
| date issued | 2026 | |
| identifier issn | 2997-0253 | |
| identifier other | jerta-26-1106.pdf | |
| identifier uri | http://yetl.yabesh.ir/yetl1/handle/yetl/4315548 | |
| description abstract | Abstract. To address energy security and global environmental challenges, this study conducted bench tests to enhance the thermal efficiency of commercial vehicle hybrid-dedicated diesel engines, developing powertrain systems with high fuel economy and competitive total cost of ownership. Focusing on key conditions for thermal efficiency optimization, this study employed the Miller/Atkinson cycle and high compression ratio configurations. Through experimental and thermodynamic analyses, the study investigated how effective compression ratio (ECR) influences combustion processes and emission characteristics, proposing a technical route to improve thermal efficiency under limited peak cylinder pressure. Experimental results demonstrated that ECR modifications effectively regulate the in-cylinder thermal environment, with reduced temperature and pressure providing margin for advancing the start of injection, thereby minimizing combustion losses. Without a significant increase in nitrogen oxide emissions relative to the baseline, the late intake valve closing strategy, combined with a high geometric compression ratio, significantly reduced soot emissions at low load. Compared to the baseline, large soot particles are reduced by over 85%. The increased expansion ratio improved thermal-work conversion efficiency while reducing pumping losses, resulting in an approximately 1.2% increase in the maximum theoretical thermal efficiency. The maximum brake thermal efficiency of the optimized diesel engine increased by 2.5%, and the minimum brake specific fuel consumption (BSFC) dropped from 192.6 g/(kW · h) to 187.5 g/(kW · h). Furthermore, the BSFC under low-load conditions was significantly reduced by over 10 g/(kW · h). | |
| publisher | The American Society of Mechanical Engineers (ASME) | |
| title | Thermal Efficiency and Emissions of a Commercial Vehicle Hybrid-Dedicated Diesel Engine With Miller/Atkinson Cycle and High Compression Ratio: An Experimental Study | |
| type | Journal Paper | |
| journal volume | 2 | |
| journal issue | 8 | |
| journal title | Journal of Energy Resources Technology, Part A: Sustainable and Renewable Energy | |
| identifier doi | 10.1115/1.4072122 | |
| tree | Journal of Energy Resources Technology, Part A: Sustainable and Renewable Energy:;2026:;volume( 002 ):;issue:008 | |
| contenttype | Fulltext |