9 research outputs found

    Three-Dimensional Magnetic Field Modeling of a Cylindrical Halbach Array

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    A semi-analytical description of the 3-D magnetic field distribution of a cylindrical quasi-Halbach permanent magnet array is derived. This model avoids the necessity of time-consuming finite element analyses and allows for fast parameterization to investigate the influence of the number of segments on the magnetic flux density distribution. The segmented magnet is used to approximate an ideal radial magnetized ring in a cylindrical quasi-Halbach array. The model is obtained by solving the Maxwell equations using the magnetic scalar potential and describes the magnetic fields by a Fourier series

    Analysis and design of a slotless tubular permanent magnet actuator for high acceleration applications

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    This paper presents the design of a linear actuator for high acceleration applications. In the analysis, a slotless tubular permanent magnet actuator is modeled by means of semianalytical field solutions. Several slotless topologies are modeled and compared to achieve the highest acceleration. A design has been proposed and built, and measurements are conducted to verify the model

    Analysis of 3-D Effects in Segmented Cylindrical Quasi-Halbach Magnet Arrays

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    Three-Dimensional Magnetic Field Modeling of a Cylindrical Halbach Array

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    Modeling of Flux Switching Permanent Magnet Machines With Fourier Analysis

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    Eddy-current losses in laminated and solid steel stator back iron in a small rotary brushless permanent-magnet actuator Citation for published version (APA): Eddy-Current Losses in Laminated and Solid Steel Stator Back Iron in a Small Rotary Brushless Per

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    The ever-increasing necessity to miniaturize smooth torque rotary actuators has placed severe constraints on the current slotless permanent-magnet technology. These constraints are mainly the consequence of the relatively large effective magnetic airgap which limits the achievable magnetic loading and, therefore, the torque density of slotless permanent-magnet rotary actuators. Further, the miniaturization has to be achieved at ever-decreasing costs and, therefore, it would be advantageous to implement solid back irons. However this, even at reduced magnetic loading, still results in considerable eddy-current losses. Therefore, a careful selection of the various actuator dimensions and most appropriate soft magnetic laminated or solid material is a prerequisite for applications that require smooth speed and torque characteristic. This paper will identify the influence of various parameters of the slotless permanent-magnet actuator on the eddy-current loss in the back iron using both 2-D and 3-D finite-element analysis

    Force Calculations in 3-D Cylindrical Structures Using Fourier Analysis and the Maxwell Stress Tensor

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    Analysis of a Novel Magnetization Pattern for 2-DoF Rotary-Linear Actuators

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    Lomonova “Modeling of Flux Switching Permanent Magnet Machines With Fourier Analysis

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    For applications demanding a high torque density and high speed capability, the flux switching permanent magnet machine is an excellent candidate. However, the double salient structure and nonlinear behavior increases the challenge to model the magnetic field distribution and torque output. To date, only the magnetic equivalent circuit (MEC) is employed to model the magnetic field in an analytical manner. However, the MEC method suffers from a coarse discretization and the need for a relative complex adjustment when rotor movement or a parametric sweep is considered. Therefore this paper discusses an alternative technique based on the harmonic or Fourier model which solves these difficulties. Index Terms-Boundary value problem, flux switching, Fourier analysis, permanent magnet machine
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