4.7 Article

Modeling and parametric study of the performance-emissions trade-off of a hydrogen Wankel rotary engine

期刊

FUEL
卷 318, 期 -, 页码 -

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.fuel.2022.123662

关键词

Hydrogen Wankel rotary engines; 1-D modeling and simulation; Intake port closing timing and exhaust port; opening timing; Performance and emissions

资金

  1. National Natural Science Foundation of China [51976003]
  2. Beijing Lab of New Energy Vehicles [JF005015201901, JF005015201801]

向作者/读者索取更多资源

This study investigates the effects of intake port closing (IPC) timing and exhaust port opening (EPO) timing on the performance and emissions of a hydrogen Wankel rotary engine (WRE) using a one-dimensional model. The simulation results show that leakage and crevice reduce the indicated mean effective pressure, while crevice has a smaller impact on volumetric efficiency compared to leakage. Advancing the IPC increases in-cylinder mass and indicated mean effective pressure, but also leads to higher relative NOx emissions. In contrast, the effects of EPO timing on performance and emissions are reversed.
The use of hydrogen energy is considered an essential research direction for carbon neutrality. Hydrogen Wankel rotary engines (WREs) are of increasing interest to researchers due to their excellent power and emissions characteristics. For WREs, the intake and exhaust phases significantly influence performance and emissions. This study focuses on the implementation of a one-dimensional (1-D) model of a hydrogen WRE, and studies the effects of intake port closing (IPC) timing and exhaust port opening (EPO) timing on the performance and emissions. The 1-D model is implemented in the AVL BOOST modeling environment and verified with experimental data at different excess air ratios (lambda). The effects of leakage and crevice are also considered in the modeling process. The simulation results demonstrated that the indicated mean effective pressure (IMEP) decreased by approximately 14% due to leakage and crevice compared with the ideal model. The volumetric efficiency (VE) reduction caused by the crevice was less than the leakage effect. Meanwhile, VE improved with the increasing lambda . As the IPC advanced, the gas reflux was reduced, which increased the in-cylinder mass and IMEP. However, the relative NOx emissions increased due to the higher temperature. The variation caused by EPO timing in performance and emissions was reversed. The VE first increased and then decreased with the delayed EPO timing. This paper provides a viable solution with more practical guidance for optimizing the performance and emissions of hydrogen WRE.

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