DocumentCode
3559785
Title
Adaptive Pole-Zero Position (APZP) Technique of Regulated Power Supply for Improving SNR
Author
Hsieh, Chun-Yu ; Chen, Ke-Horng
Author_Institution
Nat. Chiao Tung Univ., Hsinchu
Volume
23
Issue
6
fYear
2008
Firstpage
2949
Lastpage
2963
Abstract
This paper proposes an adaptive pole-zero position (APZP) technique to achieve excellent transient response of dc--dc converters. The APZP technique triggers the two-step nonlinear control mechanism to speed up the transient response at the beginning of load variations. Before the output voltage is regulated back to its voltage level, the APZP technique merely functions as a linear control method to regulate output voltage in order to ensure the stability of the system. Fast transient response time, low output ripples, and stable transient operation are achieved at the same time by the proposed APZP technique. Experimental results in the UMC 0.18- mum process show that the transient undershoot/overshoot voltage and the recovery time do not exceed 48 mV and 10 mus , respectively. Compared with conventional design without any fast transient technique, the performances of overshoot voltage and recovery time are enhanced by 37.2% and 77.8%. With the APZP technique, the performance of dc--dc converters is improved significantly.
Keywords
DC-DC power convertors; adaptive control; nonlinear control systems; poles and zeros; position control; stability; transient response; voltage control; SNR; UMC process; adaptive pole-zero position technique; dc-dc converters; linear control method; load variations; output voltage regulation; power supply; size 0.18 mum; transient response; transient undershoot/overshoot voltage; two-step nonlinear control mechanism; Capacitors; Control systems; Dynamic voltage scaling; Load management; Power supplies; Signal to noise ratio; Stability; Time factors; Transient response; Voltage control; Adaptive frequency control; current-mode dc--dc converter; fast transient response; load transient; on-chip compensation;
fLanguage
English
Journal_Title
Power Electronics, IEEE Transactions on
Publisher
ieee
ISSN
0885-8993
Type
jour
DOI
10.1109/TPEL.2008.2003014
Filename
4712528
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