Design Optimization of High-Voltage Pulse Transformer for High-Power Pulsed Application

고출력 펄스응용을 위한 고전압 펄스변압기 최적설계

  • 장성덕 (포항공과대학교 가속기연구소) ;
  • 강흥식 (포항공과대학교 가속기연구소) ;
  • 박성주 (포항공과대학교 가속기연구소) ;
  • 한영진 (포항공과대학교 가속기연구소) ;
  • 조무현 (포항공과대학교 가속기연구소) ;
  • 남궁원 (포항공과대학교 가속기연구소)
  • Published : 2008.07.16

Abstract

A conventional linear accelerator system requires a flat-topped pulse with less than ${\pm}$ 0.5% ripple to meet the beam energy spread requirements and to improve pulse efficiency of RF systems. A pulse transformer is one of main determinants on the output pulse voltage shape. The pulse transformer was investigated and analyzed with the pulse response characteristics using a simplified equivalent circuit model. The damping factor ${\sigma}$ must be >0.86 to limit the overshoot to less than 0.5% during the flat-top phase. The low leakage inductance and distributed capacitance are often limiting factors to obtain a fast rise time. These parameters are largely controlled by the physical geometry and winding configuration of the transformer. A rise time can be improved by reducing the number of turns, but it produces larger pulse droop and requires a larger core size. By tradeoffs among these parameters, the high-voltage pulse transformer with a pulse width of 10 ${\mu}s$, a rise time of 0.84 ${\mu}s$, and a pulse droop of 2.9% has been designed and fabricated to drive a klystron which has an output voltage of 284 kV, 30-MW peak and 60-kW average RF output power. This paper describes design optimization of a high-voltage pulse transformer for high-power pulsed applications. The experimental results were analyzed and compared with the design. The design and optimal tuning parameter of the system was identified using the model simulation.

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