<xml>
  <records>
    <record>
       <contributors>
          <authors>
             <author>Al Shehab, M.M.</author>
             <author>Quispe, M.</author>
          </authors>
       </contributors>
       <titles>
          <title>
             Overview of Sesame Water Cooling System  Design & Operation
          </title>
       </titles>
		 <publisher>JACoW Publishing</publisher>
       <pub-location>Geneva, Switzerland</pub-location>
		 <isbn>978-3-95450-207-3</isbn>
		 <electronic-resource-num>10.18429/JACoW-MEDSI2018-TUPH32</electronic-resource-num>
		 <language>English</language>
		 <pages>108-110</pages>
       <pages>TUPH32</pages>
       <keywords>
          <keyword>operation</keyword>
          <keyword>booster</keyword>
          <keyword>cavity</keyword>
          <keyword>dipole</keyword>
          <keyword>storage-ring</keyword>
       </keywords>
       <work-type>Contribution to a conference proceedings</work-type>
       <dates>
          <year>2018</year>
          <pub-dates>
             <date>2018-12</date>
          </pub-dates>
       </dates>
       <urls>
          <related-urls>
              <url>https://doi.org/10.18429/JACoW-MEDSI2018-TUPH32</url>
              <url>http://jacow.org/medsi2018/papers/tuph32.pdf</url>
          </related-urls>
       </urls>
       <abstract>
          SESAME started operation in January 2017. In order to receive heat deposited in various synchrotron devices during operation, a low-conductivity water cooling system was installed. Within this paper the design, construction and operation of the water cooling system will be discussed, Both Hydraulic and Thermal Behavior of the system will be analyzed and discussed with numerical simulation means as well as real operation pressure and temperature data for the purpose of a better understanding of the cooling system
       </abstract>
    </record>
  </records>
</xml>
