Understanding pre-chamber combustion performance in a closed-cycle model of a novel rotary engine

2022-01-0480

03/29/2022

Event
WCX SAE World Congress Experience
Authors Abstract
Content
A closed-cycle computational model of a non-Wankel rotary engine was thoroughly investigated to achieve optimal efficiencies, in a multitude of loading conditions relevant to automotive and aeronautical applications. Computational fluid dynamics (CFD) modeling was conducted in CONVERGE CFD, targeting the operation of a single pre-chamber and downstream main chamber engine system, roughly from -100 crank angle degrees (CAD) after top dead center (aTDC) to 100 CAD aTDC. In the developed framework, optimization studies involved main decision variables, including the engine compression ratio, the injector position within the pre-chamber, injector nozzle hole count and nozzle hole diameters. Traditional and split injection strategies for the introduction of n-heptane fuel into the pre-chamber were evaluated by varying spray-related parameters including the total injected mass, injection pressure, start of injection(s), and injection duration(s). The main performance metrics used to evaluate the combustion performance include (1) pre-chamber, main chamber and overall combustion efficiency and (2) closed cycle average load performance determined by a relative indicated mean effective pressure metric. Additionally, the injected fuel phase state (liquid vs vaporized) and wall film thickness, if present, were used as performance metrics to determine fuel-air mixing success. Pre-chamber and main chamber maximum pressures were limited to 120 bar and injection pressures were kept at or below 1000 bar. As a result of this study, the best-performing cases demonstrated an overall combustion efficiency surpassed 90 %, in both mid-load and high load operating conditions.
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Citation
Nikiforakis, I., Guleria, G., Koraiem, M., Assanis, D. et al., "Understanding pre-chamber combustion performance in a closed-cycle model of a novel rotary engine," SAE Technical Paper 2022-01-0480, 2022, .
Additional Details
Publisher
Published
Mar 29, 2022
Product Code
2022-01-0480
Content Type
Technical Paper
Language
English