Repository logo
 

Study of the Effects of Trapped Compression Ratio on the Heavy Fuel Operation of a Spark Ignition Unmanned Aerial Vehicle Engine

aut.relation.journalAircraft Engineering and Aerospace Technologyen_NZ
dark.contributor.authorHooper, Pen_NZ
dc.contributor.authorHooper, P
dc.date.accessioned2025-01-29T21:57:21Z
dc.date.available2025-01-29T21:57:21Z
dc.date.copyright2022-09-02en_NZ
dc.date.issued2022-09-02en_NZ
dc.description.abstractPurpose This paper aims to present experimental experience of heavy fuelling of a spark ignition crankcase scavenged two-stroke cycle unmanned aerial vehicle (UAV) engine, particularly focusing on the effects of compression ratio variation, and to cross-correlate with the results of fluid dynamic modelling of the engine and fuels used. Design/methodology/approach One-dimensional modelling of the engine has been conducted using WAVE software supported by experimental dynamometer testing of a spark ignition UAV engine to construct a validated computational model using gasoline and kerosene JET A-1 fuels. Findings The investigation into the effects of compression ratio variation via fluid dynamic simulation and experimental testing has allowed an assessment of the approach for improving heavy fuel operation of UAV engines using auxiliary transfer port fuel injection. The power level achieved with reduced compression ratio heavy fuel operation is equal to 15.35 kW at 6,500 revolutions per minute compared to 16.27 kW from the standard gasoline engine or a reduction of 5.7%. Practical implications The studied engine is specifically designed for UAV applications. The validation of the computational models to explore the effects of compression ratio and heavy fuel injection on the solution and cost is supported by experimental tests. Originality/value The application of auxiliary port fuel injection of heavy fuel and associated compression ratio optimisation offers an alternative approach to achieve the safety and logistical challenges of the single fuel policy for UAVs. The application of WAVE to simulate crankcase scavenged two-stroke cycle engines has been applied in very few cases. This study shows further exploratory work in that context.
dc.identifier.citationHooper, P. (2023), "Study of the effects of trapped compression ratio on the heavy fuel operation of a spark ignition unmanned aerial vehicle engine", Aircraft Engineering and Aerospace Technology, Vol. 95 No. 4, pp. 580-593. https://doi.org/10.1108/AEAT-07-2021-0220
dc.identifier.doi10.1108/AEAT-07-2021-0220en_NZ
dc.identifier.issn0002-2667en_NZ
dc.identifier.urihttp://hdl.handle.net/10292/18512
dc.publisherEmeralden_NZ
dc.relation.urihttps://www.emerald.com/insight/content/doi/10.1108/aeat-07-2021-0220/full/html
dc.rights© 2022, Emerald Publishing Limited. This AAM is provided for your own personal use only. It may not be used for resale, reprinting, systematic distribution, emailing, or for any other commercial purpose without the permission of the publisher'.
dc.rights.accessrightsOpenAccessen_NZ
dc.titleStudy of the Effects of Trapped Compression Ratio on the Heavy Fuel Operation of a Spark Ignition Unmanned Aerial Vehicle Engineen_NZ
dc.typeJournal Article
pubs.elements-id476317
pubs.organisational-data/AUT
pubs.organisational-data/AUT/Faculty of Design & Creative Technologies
pubs.organisational-data/AUT/Faculty of Design & Creative Technologies/School of Engineering, Computer & Mathematical Sciences
pubs.organisational-data/AUT/PBRF
pubs.organisational-data/AUT/PBRF/PBRF Design and Creative Technologies
pubs.organisational-data/AUT/PBRF/PBRF Design and Creative Technologies/PBRF ECMS

Files

Original bundle

Now showing 1 - 1 of 1
Loading...
Thumbnail Image
Name:
Journal Paper AEAT - Trapped Compression ratio variation effects on a spark ignition heavy fuel UAV engine (AEAT Template) - Accepted Paper archive from AEAT.PDF
Size:
5.56 MB
Format:
Adobe Portable Document Format
Description:
Journal article