<?xml version="1.0" encoding="UTF-8"?><?xml-stylesheet type="text/xsl" href="static/style.xsl"?><OAI-PMH xmlns="http://www.openarchives.org/OAI/2.0/" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xsi:schemaLocation="http://www.openarchives.org/OAI/2.0/ http://www.openarchives.org/OAI/2.0/OAI-PMH.xsd"><responseDate>2026-09-22T01:54:22Z</responseDate><request verb="GetRecord" identifier="oai:digital.library.adelaide.edu.au:2440/58581" metadataPrefix="dim">https://digital.library.adelaide.edu.au/server/oai/request</request><GetRecord><record><header><identifier>oai:digital.library.adelaide.edu.au:2440/58581</identifier><datestamp>2010-08-30T05:20:33Z</datestamp><setSpec>com_2440_14759</setSpec><setSpec>col_2440_14760</setSpec></header><metadata><dim:dim xmlns:dim="http://www.dspace.org/xmlns/dspace/dim" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xmlns:doc="http://www.lyncode.com/xoai" xsi:schemaLocation="http://www.dspace.org/xmlns/dspace/dim http://www.dspace.org/schema/dim.xsd">
   <dim:field mdschema="dc" element="contributor" qualifier="advisor" lang="en">Nathan, Graham</dim:field>
   <dim:field mdschema="dc" element="contributor" qualifier="author" lang="en">Lee, Soon-Kong</dim:field>
   <dim:field mdschema="dc" element="contributor" qualifier="school" lang="en">School of Mechanical Engineering</dim:field>
   <dim:field mdschema="dc" element="date" qualifier="issued" lang="en">2009</dim:field>
   <dim:field mdschema="dc" element="identifier" qualifier="uri">http://hdl.handle.net/2440/58581</dim:field>
   <dim:field mdschema="dc" element="description" qualifier="abstract" lang="en">This thesis reports on the structure of the flow inside a nozzle which produces a naturally oscillating&#xd;
jet flow. The nozzle consists of a short cylindrical chamber with a concentric triangular-inlet&#xd;
orifice at one end and a circular exit lip at the other end. This triangular-jet nozzle was&#xd;
developed from the “fluidic-precessing-jet” (FPJ) nozzle, which has a similar arrangement of&#xd;
components, but has a circular rather than a triangular inlet. For reliably oscillating flow, the&#xd;
FPJ nozzle should have an inlet-to-chamber expansion ratio of at least 5.0, a chamber lengthto-&#xd;
diameter ratio between 2.6 and 2.8, and an exit-lip height of about 0.1 chamber diameters.&#xd;
The triangular-jet nozzle produces a continuously and aperiodically oscillating jet flow which is&#xd;
different from the FPJ flow. The oscillation occurs at smaller inlet-to-chamber expansion ratios&#xd;
(2.1 ≲ D /de₁ ≲ 3.5) and over a wider range of chamber lengths (2.0 ≲ L /D ≲ 2.5). The initial&#xd;
spreading angle of the jet flow is smaller, but is still much larger than that of non-oscillating,&#xd;
axisymmetric turbulent-jet flows. In addition, the external “oscillating-triangular-jet” (OTJ)&#xd;
flow has preferred azimuthal directions which are aligned with the three corners of the orifice.&#xd;
The kinetic-energy-loss coefficient of the OTJ nozzle is much smaller than that of the FPJ nozzle&#xd;
because oscillation occurs at much smaller inlet-to-chamber expansion ratios.&#xd;
For a narrow range of length-to-diameter ratios (1.00 ≲ L/D ≲ 1.25), the triangular-inlet nozzle&#xd;
can also produce a non-oscillating or “stationary deflected triangular jet” (SDTJ) which reattaches&#xd;
asymmetrically to the inside surface of the cylindrical chamber. The SDTJ has a weak&#xd;
tendency to oscillate, which suggests that flow patterns required for self-excited oscillation are&#xd;
already present in the SDTJ flow. Surface-flow visualisation and surface-pressure measurements&#xd;
in the SDTJ nozzle have provided the location of critical points and bifurcation lines on&#xd;
the chamber wall, and from this the topology of the SDTJ flow is deduced. Some details of the&#xd;
flow such as a jet-reattachment node near the chamber exit and a strong swirl adjacent to the&#xd;
inlet orifice are known from previous studies of the FPJ flow, but there are many newly observed&#xd;
features. The most easily identified of these are two sink-focus separation points, one on each&#xd;
side of the reattachment node but closer to the inlet plane. The foci counter rotate and are of&#xd;
unequal size. Reverse flow through the exit plane of the chamber is attracted to the larger focus. The vortex core rising from each focus is entrained by the reattaching-jet (SDTJ) flow and is&#xd;
drawn out of the chamber.&#xd;
A backward-facing pressure probe placed in the OTJ “reattaching-flow” region of chamber wall&#xd;
can be used as a reliable detector of jet-flow oscillation. Cross-correlating the signal from this&#xd;
detector probe with simultaneous static-pressure measurements elsewhere on the chamber wall&#xd;
gives a conditionally-averaged pressure on the wall of the OTJ chamber. The OTJ wall-pressure&#xd;
distribution has the same features as the SDTJ surface-pressure distribution, but it has greater&#xd;
asymmetry about a mirror plane drawn through the chamber axis and the detector probe.&#xd;
An array of three backward-facing pressure probes has been used as an “event detector” for&#xd;
conditionally-sampled (PIV) measurements of non-axial velocity components in cross-sections&#xd;
of the OTJ nozzle. The event-detection scheme responds only to a preselected (counter-clockwise)&#xd;
direction of motion of the oscillating-jet flow. The streamline patterns constructed from&#xd;
the conditionally-sampled measurements confirm the presence of the jet-reattachment node, the&#xd;
swirl and the sink foci identified from the SDTJ surface-flow visualisation.&#xd;
The shear-layer interaction between the jet from the triangular orifice and the swirl (adjacent&#xd;
to the inlet plane) produces strong longitudinal vortices in the ensemble-averaged flow. The&#xd;
jet flow distributes these vortices through the length of the chamber. Vortex cores representing&#xd;
the vortices are reconstructed by tracking streamline foci from one PIV cross-section plane&#xd;
to another. The tracking process includes the connection and termination of vortex cores in&#xd;
a manner which is consistent with the Helmholtz vortex law. In this flow field, the vortex&#xd;
core produced by the swirl and the vortex core rising from the larger sink-focus vortex on the&#xd;
chamber wall are connected to form a loop. The extent to which this vortex loop is contained&#xd;
within the chamber determines whether or not the flow is oscillating.&#xd;
If only a small fraction (e.g. 8%) of the vortex circulation passes through the exit plane of the&#xd;
nozzle, the loop is trapped inside the chamber and the deflected jet oscillates. If the length of the&#xd;
chamber is halved, about 35% of vortex circulation escapes from the nozzle and the oscillation&#xd;
stops.</dim:field>
   <dim:field mdschema="dc" element="description" qualifier="dissertation" lang="en">Thesis (Ph.D.) - University of Adelaide, School of Mechanical Engineering, 2009</dim:field>
   <dim:field mdschema="dc" element="subject" lang="en">Triangular orifice; oscillating jet</dim:field>
   <dim:field mdschema="dc" element="title" lang="en">Study of a naturally oscillating triangular-jet flow.</dim:field>
   <dim:field mdschema="dc" element="type" lang="en">Thesis</dim:field>
   <dim:field mdschema="dc" element="provenance" lang="en">Copyright material removed from digital thesis. See print copy in University of Adelaide Library for full text.</dim:field>open.access</dim:dim></metadata></record></GetRecord></OAI-PMH>