DocumentCode :
1223653
Title :
Volumetric optimal design of passive integrated power electronics module (IPEM) for distributed power system (DPS) front-end DC/DC converter
Author :
Chen, Rengang ; Canales, Francisco ; Yang, Bo ; Van Wyk, Jacobus Daniel
Author_Institution :
Bradley Dept. of Electr. & Comput. Eng., State Univ., Blacksburg, VA, USA
Volume :
41
Issue :
1
fYear :
2005
Firstpage :
9
Lastpage :
17
Abstract :
In most power electronics converters, the overall footprint and profile of the whole system are in large part determined by the footprint and profile of the passive components and the interconnections between them. Planar magnetics, integrated magnetics, and passive integration have been topics of research for the past few years to reduce the count, footprint, and profile of the passive components and, hence, increase the power density of the whole converter. This becomes especially prominent in distributed power system (DPS) front-end converters, as the trend is moving from the 2U (1U=1.75 in) standard toward the 1U standard. Chen, Strydom, and van Wyk presented an integration technology, which combines the planar magnetics, integrated magnetics, and passive integration techniques, to integrate all the high-frequency passive components in a DPS front-end dc/dc converter into a single passive integrated power electronics module (IPEM) to reduce the size and volume of the overall system. To optimally design the passive IPEM, an ac loss model and a thermal model are needed. Based on these models, the volumetric optimal design algorithm is presented. To evaluate the performance of the optimally designed passive IPEM, a passive IPEM prototype is constructed and tested. Comparisons are made between the passive IPEM and the discrete components from viewpoints of volume, profile, efficiency, and thermal management. The optimal design is verified by experimental results.
Keywords :
DC-DC power convertors; design engineering; distributed power generation; IPEM; ac loss model; distributed power system; front end DC-DC converter; integrated magnetics; integrated power electronics module; passive component; planar magnetics; power density; power electronic converter; volumetric optimal design algorithm; Algorithm design and analysis; DC-DC power converters; Magnetics; Power electronics; Power system interconnection; Power system modeling; Power systems; Prototypes; Testing; Thermal management;
fLanguage :
English
Journal_Title :
Industry Applications, IEEE Transactions on
Publisher :
ieee
ISSN :
0093-9994
Type :
jour
DOI :
10.1109/TIA.2004.841026
Filename :
1388655
Link To Document :
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