Title :
Novel digital control topology of a high power resonant DC-DC converter for X-ray high-voltage applications
Author :
Takano, H. ; Hatakeyama, T. ; Gamage, L. ; Sun, J.M. ; Nakaoka, M.
Author_Institution :
Hitachi Med. Corp., Chiba, Japan
Abstract :
This paper describes a 32-bit RISC processor-based digital feedback control scheme for a series-parallel resonant high power DC-DC converter using its high-voltage transformer parasitic LC circuit components which is applied to a medical use X-ray high-voltage generator. In the converter system, I-PD feedback control algorithm with a nonlinear compensator for steady-state voltage regulation characteristics and an input voltage fluctuation compensator are presented in this paper. A practical estimation procedure to obtain the adequate I-PD gains specified by logarithmic interpolation from some regulation points is established under conditions of extremely wide load ranges as the medical use X-ray high-voltage generator. High speed processing hardware for the digital feedback control scheme with 20 kHz sampling frequency are also discussed as well as programming guidelines. Finally, the performances of this application-specific converter and the effectiveness of the proposed gain parameter estimation procedure of the I-PD compensator are demonstrated on the basis of experimental results
Keywords :
DC-DC power convertors; X-ray production; X-ray tubes; biomedical equipment; compensation; diagnostic radiography; digital control; feedback; microcontrollers; power engineering computing; power supplies to apparatus; reduced instruction set computing; resonant power convertors; voltage control; 20 kHz; 32-bit RISC processor-based digital feedback control; I-PD feedback control algorithm; I-PD gains estimation; RISC controller; X-ray high-voltage generator; digital control topology; high power resonant DC-DC converter; high speed processing hardware; high-voltage transformer parasitic LC circuit; input voltage fluctuation compensator; logarithmic interpolation; nonlinear compensator; sampling frequency; series-parallel resonant converter; steady-state voltage regulation; Circuit topology; DC-DC power converters; Digital control; Feedback circuits; Feedback control; Power generation; RLC circuits; Reduced instruction set computing; Resonance; Steady-state;
Conference_Titel :
Power Conversion Conference - Nagaoka 1997., Proceedings of the
Conference_Location :
Nagaoka
Print_ISBN :
0-7803-3823-5
DOI :
10.1109/PCCON.1997.638394