scholarly journals Optimization of Air Gap for Axial Flux Machine

2020 ◽  
pp. 351-353
Author(s):  
Vignesh C J ◽  
Vivekanandan S ◽  
Kamalkumar V ◽  
Balamurugan K

The analyses the axial flux permanent magnet generator (AFPMG) dual stator single rotor structure. For the valuation of analytical results, the electromagnetic design of AFPMG is done and compared with various air gaps to flux density and power density. In the axial flux design air gap to flux density is improvement for different air gap are analyzed. This machine is gauge with certain criteria such as the cost, the copper loss, the eddy current losses and the flux density.

2013 ◽  
Vol 416-417 ◽  
pp. 133-138
Author(s):  
Nan Nan Zhao ◽  
Qian Yang ◽  
Ming Hui Zhang ◽  
Wei Guo Liu

In this paper, the cogging torque, airgap flux density, back-emf, and losses of a surface-mounted and a hybrid magnetization interior brushless machines with the same stator, airgap width, armature core length, material, permanent magnet consumption, speed and copper loss are compared. The analysis reveals that the loss in rotor back iron of interior motor is higher than that in surface-mounted motor due to the skin effect while the eddy current losses in sleeve and magnets of surface-mounted motor are significant, causing the total losses of surface-mounted motor are higher than that of interior motor.


2021 ◽  
Vol 7 ◽  
pp. 508-514
Author(s):  
Wenhui Li ◽  
Dazhi Wang ◽  
Deshan Kong ◽  
Sihan Wang ◽  
Zhong Hua

2013 ◽  
Vol 392 ◽  
pp. 285-289
Author(s):  
Guo Ping Ding ◽  
Bin Gao

Active magnetic bearings open-loop instability makes the features of dynamic magnetic field crucial to the control performance. We presented a nonlinear calculation of AMBs dynamic magnetic field by FEM. Firstly, we constructed a AMBs dynamic field FEM model considering the magnets nonlinear permeability; Secondly, we applied a harmonic current to the coils through 160 load steps and a zero magnetic potential boundary condition; Finally the field was solved and magnetic flux lines, air gap flux density and eddy current density were retrieved and analyzed. Because of the nonlinearity of eddy current, air gap flux density is not standard harmonic and lags behind the source current,and as magnetizing energy equalizes eddy current losses, air gap flux density approaches harmonic.


Author(s):  
P. E. Allaire ◽  
M. E. F. Kasarda ◽  
L. K. Fujita

Rotor power losses in magnetic bearings cannot be accurately calculated at this time because of the complexity of the magnetic field distribution and several other effects. The losses are due to eddy currents, hysteresis, and windage. This paper presents measured results in radial magnetic bearing configurations with 8 pole and 16 pole stators and two laminated rotors. Two different air gaps were tested. The rotor power losses were determined by measuring the rundown speed of the rotor after the rotor was spun up to speeds of approximately 30,000 rpm, DN = 2,670,000 mm-rpm, in atmospheric air. The kinetic energy of the rotor is converted to heat by magnetic and air drag power loss mechanisms during the run down. Given past publications and the opinions of researchers in the field, the results were quite unexpected. The measured power losses were found to be nearly independent of the number of poles in the bearing. Also, the overall measured rotor power loss increased significantly as the magnetic flux density increased and also increased significantly as the air gap thickness decreased. A method of separating the hysteresis, eddy current and windage losses is presented. Eddy current effects were found to be the most important loss mechanism in the data analysis, for large clearance bearings. Hysteresis and windage effects did not change much from one configuration to the other.


Author(s):  
P. M. Lindh ◽  
J. Montonen ◽  
H. Jussila ◽  
J. Pvrhoncn ◽  
W. Jara ◽  
...  

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