DocumentCode :
159222
Title :
Parametric, self-segmenting steady state thermal estimation for switched reluctance 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 :
This work focuses on the creation of a thermal model used for the estimation of the temperature distribution within ideal switched reluctance machine (SRM) design candidates. The estimation is performed using a hybrid finite difference (FD) and thermal circuit approach. Separate frame and shaft thermal transport models using thermal circuit account for axial heat transfer. Empirical Nusselt correlations for laminar shear flow, laminar flow with vortices, and turbulent flow (based on rotor speed) are used to estimate the convective heat transfer coefficient in the air gap. The results from the shaft thermal transport validation were a maximum temperature error of 6.86 °C and 4.10%. A 3D comparison between the FD and finite element analysis (FEA) temperature distribution in the frame, stator, and rotor of the machine was conducted. The FD thermal model slightly overestimated the temperature when compared to a 3D FEA with an error of 3.8 °C and 3.78% respectively. The FD thermal model was able to predict the maximum temperature to within 10.80 °C when compared to data collected from an experimental SRM.
Keywords :
air gaps; convection; finite difference methods; finite element analysis; heat transfer; laminar flow; reluctance machines; rotors; shear flow; temperature distribution; turbulence; 3D FEA; FD model; SRM design candidates; air gap; axial heat transfer; convective heat transfer coefficient; empirical Nusselt correlations; finite element analysis; frame; frame models; hybrid finite difference; laminar flow with vortices; laminar shear flow; parametric estimation; rotor speed; self-segmenting steady state thermal estimation; shaft thermal transport models; stator; temperature distribution; thermal circuit approach; turbulent flow; Thermal modelling; electric machine; switched reluctance;
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.2014.0405
Filename :
6836951
Link To Document :
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