<node id="62262">
  <nid>62262</nid>
  <type>event</type>
  <uid>
    <user id="27388"><![CDATA[27388]]></user>
  </uid>
  <created>1287495085</created>
  <changed>1475891596</changed>
  <title><![CDATA[MSE Ph.D. Defense - Xiaoyuan Lou]]></title>
  <body><![CDATA[<p><strong>Thesis Title:</strong> Stress corrosion cracking and corrosion of
carbon steel in simulated fuel-grade ethanol</p><p><strong>Abstract:</strong></p>



<p>Today, ethanol, as well as other biofuels, has been
increasingly gaining popularity as a major alternative liquid fuel to replace
conventional gasoline for road transportation. One of the key challenges for
the future use of bioethanol is to increase its availability in the market via
an efficient and economic way. However, one major concern in using the existing
gas-pipelines to transport fuel-grade ethanol or blended fuel is the potential
corrosion and stress corrosion cracking (SCC) susceptibility of carbon steel
pipelines in these environments. In this talk, both phenomenological and
mechanistic investigations have been carried out in order to address the
possible degradation phenomena of X-65 pipeline carbon steel in simulated
fuel-grade ethanol (SFGE). Firstly, the susceptibilities of stress corrosion
cracking of this steel in SFGE were studied. Ethanol chemistry of SFGE was
shown to have great impact on the stress corrosion crack initiation/propagation
and the corrosion mode transition. Inclusions in the steel can increase local
plastic strain and act as crack initiation sites. Secondly, the anodic behavior
of carbon steel electrode was investigated in detail under different ethanol
chemistry conditions. General corrosion and pitting susceptibility under
unstressed condition were found to be sensitive to the ethanol chemistry.</p>

<p>Low tendency to passivate and the sensitivity to ethanol
chemistry are the major reasons which drive corrosion process in this system.
Oxygen plays a critical role in controlling the passivity of carbon steel in ethanol.</p>

<p>Thirdly, the detailed study was carried out to understand
the SCC mechanism of carbon steel in SFGE. A film related anodic dissolution
process was identified to be a major driving force during the crack
propagation. Fourthly, more detailed electrochemical impedance spectroscopy
(EIS) studies using phase angle analysis and transmission line simulation
reveal a clearer physical picture of the stress corrosion cracking process in
this environment. Fifthly, the cathodic reactions of carbon steel in SFGE were
also investigated to understand the oxygen and hydrogen reactions. Hydrogen
uptake into the pipeline steel and the conditions of the fractures related to
hydrogen embrittlement were identified and studied.</p>]]></body>
  <field_summary_sentence>
    <item>
      <value><![CDATA[MSE Ph.D. Defense - Xiaoyuan Lou]]></value>
    </item>
  </field_summary_sentence>
  <field_summary>
    <item>
      <value><![CDATA[<p>MSE Ph.D. Defense - Xiaoyuan Lou -IPST Boardroom, Room 521</p>]]></value>
    </item>
  </field_summary>
  <field_time>
    <item>
      <value><![CDATA[2010-10-29T02:30:00-04:00]]></value>
      <value2><![CDATA[2010-10-29T04:35:00-04:00]]></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>
      </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>1238</item>
      </og_groups>
  <og_groups_both>
          <item><![CDATA[School of Materials Science and Engineering]]></item>
      </og_groups_both>
  <field_categories>
      </field_categories>
  <field_keywords>
          <item>
        <tid>10802</tid>
        <value><![CDATA[MSE_Interal_Event]]></value>
      </item>
      </field_keywords>
  <userdata><![CDATA[]]></userdata>
</node>
