02 Synchrotron Light Sources and FELs
T26 Photon Beam Lines and Components
Paper Title Page
WEPRO057 Effect of the Electron Beam Emittance on the ILSF Radiation of Sources and Beamline Design 2075
 
  • A. Gholampour, S. Amiri, H. Ghasem, H. Khosroabadi, J. Rahighi
    ILSF, Tehran, Iran
  • H. Ghasem, M. Lamehi Rashti, J. Rahighi
    IPM, Tehran, Iran
 
  At the Iranian Light Source Facility (ILSF), two different storage ring options are being studied. The designs differ in emittance. In the first option the calculated emittance is 3.278 nm-rad whereas for the second option emittance is 0.937 nm-rad. In this paper the electron beam emittance effects on the source radiation properties from bending magnet, wiggler and undulator, X-ray optics and the beamline design are carefully studied. The present calculations demonstrate that in the case of 0.937 nm-rad brilliance of undulator is increased by a factor of about 5. For bending magnet, flux is reduced almost 1 order of magnitude for hard x-ray regime. Because of smaller size of the source for undulator at the case of 0.937 nm-rad, we can achieve to a smaller spot size and higher resolution with easier focusing systems and usual kind of monochromator than the emittance of 3.278 nm-rad and for the bending magnet hard x-ray beamline, size of the mirrors reduced 30% in the 0.937 nm-rad emittance case, so its result is shorter mirror, low cost and perhaps more challengeable heat load.  
DOI • reference for this paper ※ https://doi.org/10.18429/JACoW-IPAC2014-WEPRO057  
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WEPRO058 Photoemission Electron Microscopy Branch of Spectromicroscopy Beamline of the Iranian Light Source Facility 2078
 
  • S. Amiri, H. Ghasem, A. Gholampour, H. Khosroabadi, J. Rahighi
    ILSF, Tehran, Iran
  • H. Ghasem, M. Lamehi Rashti
    IPM, Tehran, Iran
 
  The Spectromicroscopy beamline is one of the day one beamlines of the Iranian Light Source Facility project in the field of soft x-ray spectroscopy. This beamline is designed to cover the 90-2500eV energy range with about 8000 resolving power, and the minimum spot size of about 10×4 micrometer 2 at sample position. Brilliance, flux and photon size and divergence in the whole range of energy has been calculated for a 4.3m linear undulator using SPECTRA code. This undulator has 1015 ph/s(0.1% B.W.) photon flux at 96 eV energy & 400 mA electron current. A circular pinhole with maximum diameter size of 2.52mm has been inserted in a distance of 10m from the source to pass 95% radiated. Primary layout of this branch includes a collimating mirror, a varied included-angle plane grating monochromator, and a KB bendable elliptical cylinder mirror. The ray tracing calculation by using computational software SHADOW has been done to determine and optimize of the important optical parameters. Three plane gratings with different uniform line density (700, 900, 1200 lines/mm) have been used to cover the whole energy range with the resolving power of 0.75-0.8×104 depending on the photon energy.  
DOI • reference for this paper ※ https://doi.org/10.18429/JACoW-IPAC2014-WEPRO058  
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WEPRO059 Analysis and Design of a New Kirkpatrick-Baez Mirror System for Microbeams 2081
 
  • K.H. Gil, H. J. Choi, J.Y. Huang, M.H. Jung, J.H. Lim
    PAL, Pohang, Kyungbuk, Republic of Korea
 
  Funding: This research is part of the results of the Basic Science Research Program performed by the support of the NRF of Korea funded by the Korean Ministry of Education (2013R1A1A2012390).
In this research, a new K-B mirror system was developed for focusing a microbeam to 1 μm x 1 μm at the 4B beamline of the Pohang Light Source-II. The new K-B mirror system consists of a pair of assemblage having three mechanisms that adjust the position, pitch, and curvature of each vertically and horizontally focusing mirrors and stages that support both the assemblages to enable translations along two orthogonal axes and rotation on the horizontal plane. Both the pitch- and curvature-adjusting mechanisms were designed as flexural mechanisms driven by their respective single actuators to minimize the movement of the mirror center even when the pitch or the curvature of each mirror was adjusted. The K-B mirror system with these features will be robust against possible disturbances and will help promote easy and simple mirror adjustment. This paper describes the whole design of the new K-B mirror system in detail and the structural analysis results of the pitch- and the curvature-adjusting mechanisms, and reports the operation principle of the curvature-adjusting mechanism.
 
DOI • reference for this paper ※ https://doi.org/10.18429/JACoW-IPAC2014-WEPRO059  
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WEPRO094 Synchrotron Radiation Test Validations of European XFEL MCP-based Detectors at DORIS Beamline BW1 2180
 
  • E. Syresin, A.Yu. Grebentsov, A.V. Shabunov, N.I. Zamiatin
    JINR, Dubna, Moscow Region, Russia
  • R. Basta, T. Fiala, P. Hedbavny
    Vakuum Praha, Prague, Czech Republic
  • O.I. Brovko
    JINR/VBLHEP, Moscow, Russia
  • W. Freund, J. Grünert, H. Sinn
    XFEL. EU, Hamburg, Germany
  • D. Novikov, M.V. Yurkov
    DESY, Hamburg, Germany
 
  Radiation detectors based onμchannel plates (MCP) are planned for installation at the European XFEL. Main purpose of these detectors is searching a signature of lasing and further fine tuning of the FEL process. Detectors operate in a wide dynamic range from the level of spontaneous emission to the saturation level (between a few nJ and 25 mJ), and in a wide wavelength range from 0.05 nm to 0.4 nm for SASE1 and SASE2, and from 0.4 nm to 4.43 nm for SASE3. The SR tests validation of the MCP-based detector applied for XFEL lines SASE1 and SASE2 were performed at the DORIS beamline BW1 at SR with photon energy of 8.5-12.4 keV. The absolute measurements of a photon pulse energy for hard X-ray radiation were performed with application of MCP and photodiode detectors. Pulse-to-pulse photon energy measurements with MCPs and silicon photo detector were done with 192 ns and 96 ns repetition intervals. The SR beam imaging measurement at X-ray irradiation was performed at test validation experiments.  
DOI • reference for this paper ※ https://doi.org/10.18429/JACoW-IPAC2014-WEPRO094  
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