<?xml version="1.0" encoding="UTF-8"?>
<xml>
  <records>
    <record>
       <contributors>
          <authors>
             <author>Ribó, L.R.M.</author>
             <author>González, N.</author>
             <author>Mittone, A.</author>
             <author>Nikitina, L.</author>
             <author>Patera, A.P.</author>
          </authors>
       </contributors>
       <titles>
          <title>
             A Novel Flexible Design of the FaXToR End Station at ALBA
          </title>
       </titles>
       <publisher>JACoW Publishing</publisher>
       <pub-location>Geneva, Switzerland</pub-location>
		 <isbn>2673-5520</isbn>
		 <isbn>978-3-95450-250-9</isbn>
		 <electronic-resource-num>10.18429/JACoW-MEDSI2023-WEPPP029</electronic-resource-num>
		 <language>English</language>
		 <pages>190-192</pages>
       <keywords>
          <keyword>detector</keyword>
          <keyword>GUI</keyword>
          <keyword>photon</keyword>
          <keyword>experiment</keyword>
          <keyword>synchrotron</keyword>
       </keywords>
       <work-type>Contribution to a conference proceedings</work-type>
       <dates>
          <year>2024</year>
          <pub-dates>
             <date>2024-07</date>
          </pub-dates>
       </dates>
       <urls>
          <related-urls>
              <url>https://doi.org/10.18429/JACoW-MEDSI2023-WEPPP029</url>
              <url>https://jacow.org/medsi2023/papers/weppp029.pdf</url>
          </related-urls>
       </urls>
       <abstract>
          FaXToR is one of the beamlines currently in con-struction and commissioning phase at ALBA, dedicat-ed to fast hard X-ray imaging. It will offer absorption and phase contrast imaging to users. Possible applica-tions of the beamline include 3D static and dynamic inspections in a wide range of applications. FaXToR aims to provide both white and monochromatic beam of maximum 36x14 mm (HxV) at sample position with a photon energy up to 70 keV. The optical layout of the beamline will tune the beam depending on the specific experimental conditions. Among the required optical elements, there is a multilayer monochromator, the cooled slits, the filtering elements, the intensity moni-tor and the beam absorption elements. The end station will be equipped with a rotary sample stage and a de-tector system table to accommodate a dual detection thus simultaneously scanning the samples with high spatial and temporal resolutions. On top of it, a motor-ized auxiliary table dedicated to complex sample envi-ronment or future upgrades will translate along the total table length, independently from the two detector system bridges. The design and construction process of the beamline will be presented.
       </abstract>
    </record>
  </records>
</xml>
