4.7 Article

Simulation of the impacts on a direct hydrogen injection opposed rotary piston engine performance by the injection strategies and equivalence ratios

Journal

RENEWABLE ENERGY
Volume 179, Issue -, Pages 1204-1216

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.renene.2021.07.082

Keywords

Opposed rotary piston engines; Hydrogen fuel; Direction injection; Injection strategy; Combustion characteristics; NOx emissions

Funding

  1. EPSRC Impact Acceleration Account project
  2. Hebei Natural Science Foundation Project [E2019205043]
  3. Key Scientific and Technological Research Projects of Colleges and Universities in Hebei Province [ZD2019076]
  4. Technology Innovation Pre-research Project of Hebei Normal University [L2019K07]

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By studying various hydrogen direct injection strategies, it was found that hydrogen was unevenly distributed in the combustion chambers at high equivalence ratios, leading to low combustion efficiency; the maximum in-cylinder pressure exceeded 8.0 MPa under the equivalence ratio of 0.961, with corresponding heat release rates exceeding 45 J.(degrees CA)(-1); the indicated thermal efficiency was over 38% and increased generally by lowering equivalence ratios, with the maximum efficiency being approximately 42.5%; NOx emission factors reached the maximum value of approximately 35 g (kW h)(-1) under the equivalence ratio of 0.673 conditions; knock tendency was continuously decreased by lowering equivalence ratios.
Opposed rotary piston (ORP) engines can deliver high power density and have few moving parts, being suitable for the power sources of hybrid electric vehicles, range extended electric vehicles, and unmanned aerial vehicles. Hydrogen as a promising alternative fuel is free of carbon emissions during combustion. Hydrogen direct injection avoids the significant power losses of port injection scenarios resulting from the low hydrogen energy density by volume. This paper firstly investigated the ORP engine performance using a 3D numerical simulation method over various hydrogen direct injection strategies (start of hydrogen injection and injection durations). Hydrogen diffusions in combustion chambers, combustion characteristics, engine performance, nitrogen oxides (NOx) emissions, and knock tendency were researched over various hydrogen injection strategies. Hydrogen was unevenly distributed in the combustion chambers for high equivalence ratio scenarios, leading to low combustion efficiency; additionally, the unburned hydrogen was mainly in the cylinder bowls and bottoms. Combustion durations were the shortest within the equivalence ratio range of 0.577-0.865, being approximately 18 degrees crank angle (CA). The maximum in-cylinder pressure was higher than 8.0 MPa over the equivalence ratio of 0.961; and the corresponding heat release rates were higher than 45 J.(degrees CA)(-1). The indicated thermal efficiency was higher than 38%, and it was increased generally by dropping equivalence ratios, with the maximum efficiency being approximately 42.5%. NOx emission factors, approximately 35 g (kW h)(-1), reached the maximum value under the equivalence ratio of 0.673 conditions. Knock tendency was decreased continuously by lowering equivalence ratios. This research made a foundation of improving the engine fuel economy and mitigating NOx emissions for hydrogen direct injection ORP engines. (C) 2021 Elsevier Ltd. All rights reserved.

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