Disturbance-free BIST for loop characterization of DC-DC Buck Converters

abstract: Modern Complex electronic system include multiple power domains and drastically varying power consumption patterns, requiring the use of multiple power conversion and regulation units. High frequency switching converters have been gaining prominence in the DC-DC converter market due to the...

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Other Authors: Bakliwal, Priyanka (Author)
Format: Dissertation
Language:English
Published: 2015
Subjects:
Online Access:http://hdl.handle.net/2286/R.I.30029
id ndltd-asu.edu-item-30029
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spelling ndltd-asu.edu-item-300292018-06-22T03:06:22Z Disturbance-free BIST for loop characterization of DC-DC Buck Converters abstract: Modern Complex electronic system include multiple power domains and drastically varying power consumption patterns, requiring the use of multiple power conversion and regulation units. High frequency switching converters have been gaining prominence in the DC-DC converter market due to their high efficiency. Unfortunately, they are all subject to higher process variations jeopardizing stable operation of the power supply. This research mainly focus on the technique to track changes in the dynamic loop characteristics of the DC-DC converters without disturbing the normal mode of operation using a white noise based excitation and correlation. White noise excitation is generated via pseudo random disturbance at reference and PWM input of the converter with the test signal being spread over a wide bandwidth, below the converter noise and ripple floor. Test signal analysis is achieved by correlating the pseudo-random input sequence with the output response and thereby accumulating the desired behavior over time and pulling it above the noise floor of the measurement set-up. An off-the shelf power converter, LM27402 is used as the DUT for the experimental verification. Experimental results show that the proposed technique can estimate converter's natural frequency and Q-factor within ±2.5% and ±0.7% error margin respectively, over changes in load inductance and capacitance. Dissertation/Thesis Bakliwal, Priyanka (Author) Ozev, Sule (Advisor) Bakkaloglu, Bertan (Committee member) Kitchen, Jennifer (Committee member) Arizona State University (Publisher) Engineering eng 53 pages Masters Thesis Electrical Engineering 2015 Masters Thesis http://hdl.handle.net/2286/R.I.30029 http://rightsstatements.org/vocab/InC/1.0/ All Rights Reserved 2015
collection NDLTD
language English
format Dissertation
sources NDLTD
topic Engineering
spellingShingle Engineering
Disturbance-free BIST for loop characterization of DC-DC Buck Converters
description abstract: Modern Complex electronic system include multiple power domains and drastically varying power consumption patterns, requiring the use of multiple power conversion and regulation units. High frequency switching converters have been gaining prominence in the DC-DC converter market due to their high efficiency. Unfortunately, they are all subject to higher process variations jeopardizing stable operation of the power supply. This research mainly focus on the technique to track changes in the dynamic loop characteristics of the DC-DC converters without disturbing the normal mode of operation using a white noise based excitation and correlation. White noise excitation is generated via pseudo random disturbance at reference and PWM input of the converter with the test signal being spread over a wide bandwidth, below the converter noise and ripple floor. Test signal analysis is achieved by correlating the pseudo-random input sequence with the output response and thereby accumulating the desired behavior over time and pulling it above the noise floor of the measurement set-up. An off-the shelf power converter, LM27402 is used as the DUT for the experimental verification. Experimental results show that the proposed technique can estimate converter's natural frequency and Q-factor within ±2.5% and ±0.7% error margin respectively, over changes in load inductance and capacitance. === Dissertation/Thesis === Masters Thesis Electrical Engineering 2015
author2 Bakliwal, Priyanka (Author)
author_facet Bakliwal, Priyanka (Author)
title Disturbance-free BIST for loop characterization of DC-DC Buck Converters
title_short Disturbance-free BIST for loop characterization of DC-DC Buck Converters
title_full Disturbance-free BIST for loop characterization of DC-DC Buck Converters
title_fullStr Disturbance-free BIST for loop characterization of DC-DC Buck Converters
title_full_unstemmed Disturbance-free BIST for loop characterization of DC-DC Buck Converters
title_sort disturbance-free bist for loop characterization of dc-dc buck converters
publishDate 2015
url http://hdl.handle.net/2286/R.I.30029
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