We develop analytical models for predicting the magnetic field distribution in Halbach magnetized machines. They are formulated in polar coordinates and account for the relative recoil permeability of the magnets. They are applicable to both internal and external rotor permanent-magnet machines with either an iron-cored or air-cored stator and/or rotor. We compare predicted results with those obtained by finite-element analyses and measurements. We show that the air-gap flux density varies significantly with the pole number and that an optimal combination of the magnet thickness and the pole number exists for maximum air-gap flux density, while the back iron can enhance the air-gap field and electromagnetic torque when the radial thickness ...
The ever increasing necessity to improve torque density while simultaneously maintaining high effici...
This paper derives the closed form 3-D analytical torque equations for an ideal radial Halbach rotor...
This paper estimates the magnetic flux density components in the slotless single-sided axial flux pe...
This paper presents a general analytical method for predicting the magnetic fields of different Halb...
This paper compares the air-gap field distribution, cogging torque, back-electromotive-force wavefor...
A semi-analytical description of the 3-D magnetic field distribution of a cylindrical quasi-Halbach ...
Permanent magnet machines having Halbach Array exhibit a number of attractive features. Therefore, t...
This paper proposes and investigates an analytical method for assessing the risk of potential, irrev...
To improve the performance of permanent magnet (PM) machines, quasi-Halbach PM arrays are used to in...
Using the analytical formulas derived in Part I for predicting the magnetic field distribution, thru...
This paper describes the effects of changing the magnet shape of permanent magnets (PMs) in a Halbac...
To improve the performance of permanent magnet (PM) machines, quasi-Halbach PM arrays are used to in...
The detailed magnetic field distribution of a permanent magnet electric motor is very important for ...
The ever increasing necessity to improve torque density while simultaneously maintaining high effici...
This paper derives the closed form 3-D analytical torque equations for an ideal radial Halbach rotor...
This paper estimates the magnetic flux density components in the slotless single-sided axial flux pe...
This paper presents a general analytical method for predicting the magnetic fields of different Halb...
This paper compares the air-gap field distribution, cogging torque, back-electromotive-force wavefor...
A semi-analytical description of the 3-D magnetic field distribution of a cylindrical quasi-Halbach ...
Permanent magnet machines having Halbach Array exhibit a number of attractive features. Therefore, t...
This paper proposes and investigates an analytical method for assessing the risk of potential, irrev...
To improve the performance of permanent magnet (PM) machines, quasi-Halbach PM arrays are used to in...
Using the analytical formulas derived in Part I for predicting the magnetic field distribution, thru...
This paper describes the effects of changing the magnet shape of permanent magnets (PMs) in a Halbac...
To improve the performance of permanent magnet (PM) machines, quasi-Halbach PM arrays are used to in...
The detailed magnetic field distribution of a permanent magnet electric motor is very important for ...
The ever increasing necessity to improve torque density while simultaneously maintaining high effici...
This paper derives the closed form 3-D analytical torque equations for an ideal radial Halbach rotor...
This paper estimates the magnetic flux density components in the slotless single-sided axial flux pe...