Effect of nozzle geometry on mixing characteristics of turbulent free orifice jets

dc.contributor.authorAfriyie, Yaw Yeboah
dc.contributor.examiningcommitteeWang, Bing-Chen (Mechanical Engineering) Yuan, Qiuyan (Civil Engineering)en_US
dc.contributor.supervisorTachie, Mark F. (Mechanical Engineering)en_US
dc.date.accessioned2017-04-05T18:52:13Z
dc.date.available2017-04-05T18:52:13Z
dc.date.issued2017
dc.degree.disciplineMechanical Engineeringen_US
dc.degree.levelMaster of Science (M.Sc.)en_US
dc.description.abstractAn experimental investigation was conducted using particle image velocimetry to study the effect of nozzle geometry on turbulent free orifice jets. The nozzle geometries studied include the round, cross, flower, star, rectangular and elliptical nozzles (aspect ratio 2). The spread rate of the rectangular nozzle was 61% greater than the square nozzle while the elliptical nozzle was 45% greater than the round nozzle using the conventional half velocity width. The superior mixing capacity of the rectangular and elliptical nozzles is attributed to the axis-switching mechanism. Evaluation of the energy budget showed a higher level of production of turbulence and convection of the mean flow for the rectangular nozzle compared with the round nozzle. Two-point auto-correlation function revealed larger structures in the non-circular nozzles and in particular the rectangular nozzle. The Kolmogorov and Taylor microscales however, did not show any significant dependency on nozzle geometry.en_US
dc.description.noteOctober 2017en_US
dc.identifier.urihttp://hdl.handle.net/1993/32192
dc.language.isoengen_US
dc.rightsopen accessen_US
dc.subjectPIVen_US
dc.subjectOrifice nozzleen_US
dc.subjectMixingen_US
dc.subjectFree jeten_US
dc.subjectNozzle geometry effecten_US
dc.titleEffect of nozzle geometry on mixing characteristics of turbulent free orifice jetsen_US
dc.typemaster thesisen_US
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