DocumentCode
1209479
Title
Numerical analysis of the coupled circuit and cooling holes for an electromagnetic shaker
Author
Peng, Ming-Tsan ; Flack, Tim J.
Author_Institution
Dept. of Eng., Univ. of Cambridge, UK
Volume
41
Issue
1
fYear
2005
Firstpage
47
Lastpage
54
Abstract
This paper presents a time-stepping shaker modeling scheme. The new method improves the accuracy of analysis of armature-position-dependent inductances and force factors, analysis of axial variation of current density in copper plates (short-circuited turns), and analysis of cooling holes in the magnetic circuit. Linear movement modeling allows armature position to be precisely included in the shaker analysis. A more accurate calculation of eddy currents in the coupled circuit is in particular crucial for the shaker analysis in a mid-or high-frequency operation range. Large currents in a shaker, including eddy currents, incur large Joule losses, which in turn require the use of a cooling system to keep temperature at bay. Sizable cooling holes have influence on the saturation state of iron poles, and hence have to be properly taken into account.
Keywords
current density; eddy currents; electromagnetic coupling; electromagnetic devices; finite element analysis; inductance; magnetic circuits; magnetic cooling; Joule losses; armature position; armature-position-dependent inductances; axial variation; cooling holes; copper plates; coupled circuit; current density; eddy currents; electromagnetic shaker; finite element analysis; force factors; iron poles; linear movement modeling; magnetic circuit; saturation state; shaker analysis; short-circuited turns; time-stepping shaker modeling scheme; Cooling; Copper; Coupling circuits; Current density; Eddy currents; Electromagnetic coupling; Electromagnetic forces; Magnetic analysis; Magnetic circuits; Numerical analysis;
fLanguage
English
Journal_Title
Magnetics, IEEE Transactions on
Publisher
ieee
ISSN
0018-9464
Type
jour
DOI
10.1109/TMAG.2004.840181
Filename
1381505
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