<node id="583117">
  <nid>583117</nid>
  <type>event</type>
  <uid>
    <user id="27707"><![CDATA[27707]]></user>
  </uid>
  <created>1477423587</created>
  <changed>1477423587</changed>
  <title><![CDATA[PhD Defense by Tan Zu]]></title>
  <body><![CDATA[<p><strong>Ph.D. Thesis Defense</strong></p>

<p>by</p>

<p>Tan, Zu Puayen</p>

<p>(Advisor: Prof. Ben T. Zinn)</p>

<p>&nbsp;</p>

<p><strong>E</strong><strong>XPERIMENTAL </strong><strong>S</strong><strong>TUDY OF </strong><strong>S</strong><strong>PRAY-</strong><strong>F</strong><strong>ORMATION </strong><strong>P</strong><strong>ROCESSES IN</strong></p>

<p><strong>T</strong><strong>WIN-</strong><strong>F</strong><strong>LUID </strong><strong>J</strong><strong>ET-IN-</strong><strong>C</strong><strong>ROSSFLOW</strong></p>

<p><strong>AT </strong><strong>J</strong><strong>ET-</strong><strong>E</strong><strong>NGINE </strong><strong>O</strong><strong>PERATING </strong><strong>C</strong><strong>ONDITIONS</strong></p>

<p>&nbsp;</p>

<p>2:00 PM, Wednesday, November 9, 2016</p>

<p><em>Montgomery Knight Building</em></p>

<p><em>Room 317</em></p>

<p>&nbsp;</p>

<p><strong>ABSTRACT:</strong></p>

<p>&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp; Jet-in-crossflow (JICF) fuel-injection is widely applied in modern jet-engines to provide rapid fuel-atomization and mixing. However, &ldquo;classical&rdquo; JICF places large amounts of fuel into the low-velocity region near the injector wall, which can cause flashback and fuel-coking on the wall. A nascent fuel-injection technique called Twin-Fluid (TF) JICF is being considered as a way to mitigate Classical-JICF&rsquo;s shortcomings. In TF-JICF, air is co-injected around the fuel jet to modify its atomization and penetration characteristics. Designers expect TF-JICF to enhance the fuel&rsquo;s penetration away from the wall (i.e., reduce near-wall fuel concentrations). However, the performance of TF-JICF is currently not well understood, especially at the high pressures found in jet-engines. This dissertation work addresses the knowledge gap by experimentally investigating a TF-JICF where liquid Jet-A fuel was co-injected with pressurized nitrogen into a crossflow of air. The crossflow and injection conditions were varied over wide ranges that cover those conditions reported in the available TF-JICF literature, as well as those expected for jet-engines. The resulting TF-JICF fuel sprays were imaged by shadowgraphy, and their penetrations, dispersions and atomization processes were analyzed.</p>

<p>&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp; For a fixed fuel flow-rate, different levels of air-injection velocities were found to cause different spray characteristics (see figure below). A mild injection of air inhibited the atomization of the initial fuel jet, thus reducing the near-wall fuel concentration and flashback/wall-coking risks. A very strong injection of air &ldquo;propelled&rdquo; the fuel very far away from the wall while also enhancing atomization. On the other hand, medium levels of air-injection were generally non-beneficial towards fuel-injector design. Four TF-JICF regimes were identified (i.e., Classical-JICF, Air-Assist JICF, Airblast JICF and Airblast Spray-in-Crossflow) based on these characteristics and their formation mechanisms.</p>

<p>&nbsp;</p>

<p><strong>The reading committee will include:</strong></p>

<p>Prof. Ben T Zinn (AE)</p>

<p>Prof. Jerry Seitzman (AE)</p>

<p>Prof. Jeff Jagoda (AE)</p>

<p>Dr. Eugene Lubarsky (AE)</p>

<p>Prof. Caroline Genzale (ME)</p>

<p>&nbsp;</p>
]]></body>
  <field_summary_sentence>
    <item>
      <value><![CDATA[EXPERIMENTAL STUDY OF SPRAY-FORMATION PROCESSES IN TWIN-FLUID JET-IN-CROSSFLOW  AT JET-ENGINE OPERATING CONDITIONS]]></value>
    </item>
  </field_summary_sentence>
  <field_summary>
    <item>
      <value><![CDATA[]]></value>
    </item>
  </field_summary>
  <field_time>
    <item>
      <value><![CDATA[2016-11-09T14:00:00-05:00]]></value>
      <value2><![CDATA[2016-11-09T16:00:00-05:00]]></value2>
      <rrule><![CDATA[]]></rrule>
      <timezone><![CDATA[America/New_York]]></timezone>
    </item>
  </field_time>
  <field_fee>
    <item>
      <value><![CDATA[]]></value>
    </item>
  </field_fee>
  <field_extras>
      </field_extras>
  <field_audience>
          <item>
        <value><![CDATA[Public]]></value>
      </item>
      </field_audience>
  <field_media>
      </field_media>
  <field_contact>
    <item>
      <value><![CDATA[]]></value>
    </item>
  </field_contact>
  <field_location>
    <item>
      <value><![CDATA[]]></value>
    </item>
  </field_location>
  <field_sidebar>
    <item>
      <value><![CDATA[]]></value>
    </item>
  </field_sidebar>
  <field_phone>
    <item>
      <value><![CDATA[]]></value>
    </item>
  </field_phone>
  <field_url>
    <item>
      <url><![CDATA[]]></url>
      <title><![CDATA[]]></title>
            <attributes><![CDATA[]]></attributes>
    </item>
  </field_url>
  <field_email>
    <item>
      <email><![CDATA[]]></email>
    </item>
  </field_email>
  <field_boilerplate>
    <item>
      <nid><![CDATA[]]></nid>
    </item>
  </field_boilerplate>
  <links_related>
      </links_related>
  <files>
      </files>
  <og_groups>
          <item>221981</item>
      </og_groups>
  <og_groups_both>
          <item><![CDATA[Graduate Studies]]></item>
      </og_groups_both>
  <field_categories>
          <item>
        <tid>1788</tid>
        <value><![CDATA[Other/Miscellaneous]]></value>
      </item>
      </field_categories>
  <field_keywords>
          <item>
        <tid>100811</tid>
        <value><![CDATA[Phd Defense]]></value>
      </item>
      </field_keywords>
  <field_userdata><![CDATA[]]></field_userdata>
</node>
