Please use this identifier to cite or link to this item: http://hdl.handle.net/10603/343165
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dc.coverage.spatialActive control of high speed jets using air tabs
dc.date.accessioned2021-10-05T11:22:26Z-
dc.date.available2021-10-05T11:22:26Z-
dc.identifier.urihttp://hdl.handle.net/10603/343165-
dc.description.abstractAn improved jet mixing would be of great interest in the field of aerospace engineering, in order to achieve better mixing properties in the combustion chamber and for reduction in acoustic emission. There are two distinct approaches available for the attainment of jet mixing enhancement, namely, active control and passive control. Even though the conventional solid tab, which is a passive control technique, enhances the jet mixing effectively, it also results in total pressure loss or thrust loss and increased drag. The total pressure loss and increased drag would directly affect the overall performance of an aircraft engine. Therefore, the present investigation is focused on active control of high speed jets by air tab technique, which is expected to give better jet mixing enhancement with minimum total pressure loss. Experiments and numerical simulations have been carried out in order to investigate the effect of air tab jets at different Mach numbers on the mixing and spreading characteristics of high speed jets. Air tabs are fluidic jet streams with significant momentum, injected into the primary jet at or downstream of the nozzle exit. A simple convergent nozzle was used for generating primary jet and two constant diameter tubes were used for creating fluidic jet streams, which are termed air tabs. In the present investigation, experiments were conducted with 45° and 90° air tabs inclined with respect to the primary jet centreline (X). The primary jet Mach numbers (MP) considered for the experiments as well as numerical simulations were 0.4, 0.6 and 0.8. A wide range of air tab jet Mach numbers (Mc) were considered for each Mach number of the primary jet (MP), at an interval of 0.1. The air tab jet Mach number (Mc) was varied from 0.3 to 1.0 (for primary jet Mach number 0.4), 0.5 to 1.2 (for primary jet Mach number 0.6) and 0.7 to 1.4 (for primary jet Mach number 0.8) at an interval of 0.1 newline
dc.format.extentp.185-195
dc.languageEnglish
dc.relationp.185-195
dc.rightsuniversity
dc.titleActive control of high speed jets using air tabs
dc.title.alternative
dc.creator.researcherArunprasad R
dc.subject.keyword
dc.subject.keywordhigh speed jets
dc.subject.keywordair tabs
dc.description.note
dc.contributor.guideThanigaiarasu S
dc.publisher.placeChennai
dc.publisher.universityAnna University
dc.publisher.institutionFaculty of Mechanical Engineering
dc.date.registeredn.d.
dc.date.completed2020
dc.date.awarded2020
dc.format.dimensionsxxv,196p
dc.format.accompanyingmaterialNone
dc.source.universityUniversity
dc.type.degreePh.D.
Appears in Departments:Faculty of Mechanical Engineering

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01_title.pdfAttached File25.31 kBAdobe PDFView/Open
02_certificates.pdf185.94 kBAdobe PDFView/Open
03_vivaproceedings.pdf237.26 kBAdobe PDFView/Open
04-bonafidecertificate.pdf225.24 kBAdobe PDFView/Open
05_abstracts.pdf27.96 kBAdobe PDFView/Open
06_acknowledgements.pdf242.42 kBAdobe PDFView/Open
07_contents.pdf101.28 kBAdobe PDFView/Open
08_listoftables.pdf6.06 kBAdobe PDFView/Open
09_listoffigures.pdf146.96 kBAdobe PDFView/Open
10_listofabbreviations.pdf62.99 kBAdobe PDFView/Open
11_chapter1.pdf166.97 kBAdobe PDFView/Open
12_chapter2.pdf285.65 kBAdobe PDFView/Open
13_chapter3.pdf778.34 kBAdobe PDFView/Open
14_chapter4.pdf2.66 MBAdobe PDFView/Open
15_conclusion.pdf79.46 kBAdobe PDFView/Open
16_appendices.pdf42.48 kBAdobe PDFView/Open
17_references.pdf219.4 kBAdobe PDFView/Open
18_listofpublications.pdf66.25 kBAdobe PDFView/Open
80_recommendation.pdf72.24 kBAdobe PDFView/Open


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