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Kim, D.E.

Paper Title Page
TUPC29 Design and Implementation of Bipolar Power Supply for Corrector Magnet 307
 
  • S.-H. Jeong, D.E. Kim, K.-H. Park
    PAL, Pohang, Kyungbuk
  • B.-K. Kang
    POSTECH, Pohang, Kyungbuk
 
 

This paper presents the corrector magnet power supply for the PLS II. The required current for the magnet was ±30 A with the high stability of ~5ppm and It has high resolution about 1 ppm to accomplish a stable beam orbit correction. This power supply has been implemented by a digital signal processing technology. And it shows the high stability and other good output responses. Various experimental results such as stability, bandwidth and simulation are given in this paper.

 
TUPC75 Intense THz Radiation Generation from a Compact Electron Linac 413
 
  • H.-S. Kang, Y.-G. Jung, C. Kim, H.-G. Kim, K.R. Kim, W.W. Lee, B.R. Park, J. Park, Y.J. Park, Y.G. Son, H.S. Suh, I.H. Yu
    PAL, Pohang, Kyungbuk
  • D.E. Kim, C.M. Yim
    POSTECH, Pohang, Kyungbuk
 
 

A femto-second THz radiation (fs-THz) facility is under commissioning at the Pohang Accelerator Laboratory (PAL), which uses a 60-MeV electron linac that consists of an S-band photocathode RF gun with 1.6 cell cavity, two S-band accelerating structures, and two chicane-type bunch compressors. The linac is designed to generate THz pulse with energy up to 10 μJ by transition radiation from a metal target hit by sub-picosecond electron beam. The linac takes advantage of the advanced technologies such as an inverter-type klystron modulator with stability below 100 ppm and a high precision synchronization timing system with a laser oscillator. The THz radiation energy measured with a Golay cell is 0.5 μJ/pulse from the electron beam with charge of 0.1 nC. We will present the properties of THz radiation as well as the electron beam parameters.