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Related Experiment Videos

Diagnostic front end for BESSY II.

W B Peatman1, K Holldack

  • 1BESSY GmbH, Lentzeallee 100, D-14195 Berlin, Germany.

Journal of Synchrotron Radiation
|July 21, 2004
PubMed
Summary

A new diagnostic front end for BESSY II

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Area of Science:

  • Synchrotron Radiation Physics
  • Particle Accelerator Technology
  • Beamline Instrumentation

Background:

  • BESSY II requires advanced diagnostics for insertion-device and dipole-beamline front ends.
  • Understanding source characteristics is crucial for optimizing synchrotron radiation applications.

Purpose of the Study:

  • To design and test a diagnostic front end for dipole radiation at BESSY II.
  • To provide comprehensive characterization of synchrotron radiation source properties.

Main Methods:

  • Development of a diagnostic front end incorporating a pinhole array imaging system.
  • Implementation of a double-blade system for vertical center of gravity determination.
  • Utilization of a Bragg-Fresnel multilayer system for high-precision source imaging.

Main Results:

  • The designed diagnostic front end successfully integrates multiple imaging and measurement systems.
  • The system enables precise determination of synchrotron radiation fan characteristics.
  • High-resolution imaging of source size and shape is achievable.

Conclusions:

  • The tested diagnostic front end is effective for characterizing dipole radiation at BESSY II.
  • This system contributes to a complete understanding of source properties.
  • The integrated diagnostics enhance the utility of synchrotron radiation facilities.

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