DocumentCode
159142
Title
Parametric, self-segmenting mesh generation tool for the steady state thermal estimation of induction machines
Author
Bednar, C.M. ; Mayor, J. Rhett ; Semidey, S. Andrew
Author_Institution
Woodruff Sch. of Mech. Eng., Georiga Inst. of Technol., Atlanta, GA, USA
fYear
2014
fDate
8-10 April 2014
Firstpage
1
Lastpage
6
Abstract
The purpose of this work is to create an automated, parametric, self-segmenting mesh generation tool to be used within a finite difference (FD) model for the estimation of temperature gradients in induction machines (IM). Rectangular, prismatic, and curved features, typically incorporated in conventional rotor bar geometries, are difficult to mesh in polar coordinates in the R-O plane. New segmentation algorithms are required to address the modeling of these complex geometries in polar space. The segmentation study shows an appropriate radial step size of 0.5% of the air gap radius for the nodal mesh elements. This step size balances area accuracy to within 1% whilst maintaining computational speed. A 2D half slot comparison between the FD and FEA temperature distribution results in a maximum temperature difference and maximum percentage error of 1.4°C and 0.60% respectively.
Keywords
asynchronous machines; finite difference methods; finite element analysis; state estimation; FEA temperature distribution; finite difference model; induction machine; nodal mesh elements; parametric mesh generation tool; polar coordinate; rotor bar geometry; segmentation algorithm; self-segmenting mesh generation tool; steady state thermal estimation; temperature gradient estimation; Thermal modeling; electric machine; induction machine; mesh generation; segmentation;
fLanguage
English
Publisher
iet
Conference_Titel
Power Electronics, Machines and Drives (PEMD 2014), 7th IET International Conference on
Conference_Location
Manchester
Electronic_ISBN
978-1-84919-815-8
Type
conf
DOI
10.1049/cp.2014.0404
Filename
6836911
Link To Document