Dissertation > Excellent graduate degree dissertation topics show

One kind of permanent magnetic bearing radial stiffness calculation and analysis of the magnetic field

Author: YangAnQuan
Tutor: HuangMingHui;LiQunMing
School: Central South University
Course: Mechanical and Electronic Engineering
Keywords: magnetic bearing magnetic force numerical calculation stiffness characteristics analysis
CLC: TH133.3
Type: Master's thesis
Year: 2005
Downloads: 477
Quote: 5
Read: Download Dissertation

Abstract


Magnetic bearings can support rotating shaft without physical contact, and therefore have many advantages such as no frication, no wear, no lubricant equipment and long service life. Long considered a promising advancement, they are now moving beyond promise into actual service in such applications as aircraft, electric power generation, high speed and high precision machine tool, petroleum refining and robots. Magnetic bearings with permanent magnet to provide levitation force have lower power consumption, smaller volume, more compact structure and larger load capacity than electromagnetic ones, and thus attract the interest of many bearing researchers.Focused on the radial permanent magnetic bearing (the mated permanent magnetic rings) used in a magnetic bearing system, by the magnetic charge theory, this paper establishes the mutual magnetic force models while their axes are parallel or intersectant. Based on those models, a fast numerical integration method is founded from the angle of the integral’s physical meaning. Then the author uses the VC++6.0 to compile a computer program and realizes the corresponding numerical method. Later, a calculation example is illustrated by using the parameters of the mated magnetic rings that will be used in future bearing experiment device. Finally, the stiffness characteristics are deeply analyzed. The results demonstrate while the same two axial even magnetized permanent magnetic rings are arranged along the same magnetization direction:1) When their axes are parallel and the radial distance between the two axes is little, they can automatically make their axes overlap, and the radial magnetic force linearly increases as the radial distance becomes larger. While the axial distance between the two magnetic rings becomes larger, the radial load capacity will decrease.2) When their axes are intersectant and the angle is small, the direction of the radial magnetic force acting on the levitated magnetic ring will always point to the axis of the fixed magnetic ring, but the magnetic moment on the levitated magnetic ring can be positive or negative when the point ofthe intersection moves along the axis of the fixed magnetic ring. If the magnetic moment is positive, the two rings still can automatically make their axes overlap. However, if the magnetic moment is negative, the levitated ring will further circumrotate.3) The stiffness characteristics analysis shows that the levitated ring is unstable in the axial direction, but it is self-steady in the radial direction. However, its stability in the directions around X-axis or Y-axis is closely related to the distance between the point of intersection and the levitated ring’s lower side. And the analysis also shows that the variation of the radial displacement or the angle displacement around X-axis or Y-axis will change the axial magnetism. Therefore, besides an axial displacement sensor, radial displacement sensors are necessary so as to realize the precise position control on the shaft. The signals from radial displacement sensors should be put into a controller that can control the axial magnetic force.In the last part of this paper, an experiment is given to test the validity of the numerical calculation. The result shows that the calculation is correct.

Related Dissertations

  1. Research of Electromagnetic Tracking Experimental System for Medical Application,TN966
  2. Research and Application of Algorithms for CT Cerebral Perfusion,R811
  3. Vertical-axis Magnetic Levitation Wind Turbine Bearing and Blades,TM315
  4. Distributed Model and Numerical Calculation of Lunar Surface Physical Temperature,P184.5
  5. Numerical Analysis of the Heat-Flow Coupling for Rotor of Supercritical Steam Turbine,TK261
  6. The Mud Mechanism and Disposal Study of Mud Inrush in Katst Tunnel,U455.49
  7. Research on ZhongTiaoShan Tunnel Preliminary Design Risk Assessment,U452.2
  8. The circular flow Tunnel of study of the hydraulic transient problems,TV135
  9. Studies of the Balcony Greening’s Forms’ Effects on the Air Temperature and Relative Humidity of Indoor,TU119
  10. Study on Dynamic Behavior of Gangue Pollutants Transport Coupled Flow and Temperature,X50
  11. Theoretical Research on the Process of Necking for Cartridge Globular Female Die and Finite Element Simulation,TG386
  12. Study of Joint Support and Construction of Large Fracture Room in HS Soft Rock,TD354
  13. Research of the Rotor System of Magnetic Suspension Wind Power Generator,TM315
  14. Investigations on Vibration Characteristics of PM Motors Based on Phase Tuning,TM351
  15. Study on the Compulsator System Based on Magnetic Suspension Flywheel,TM619
  16. Hydraulic Analysis of the Pipe Styles of the Flow Driver in the Sheild Blanket of ITER,TK124
  17. The Study of Root Anchor Foundation Non-Linear Analysis,TU473.2
  18. Analysis on the Aerodynamics and Structural Strength of the Automatic Opening/Closing Mechanism of EMU,U266
  19. Research on Constant- Current Source Biased Magnetic Bearing System,TH133.3
  20. Study on Adhesion Characteristic of Wheel/Rail under Oil Condition,U211.5
  21. Preparation and Properties of iron nanoparticles,TB383.1

CLC: > Industrial Technology > Machinery and Instrument Industry > Mechanical parts and gear > Moving parts > Bearing
© 2012 www.DissertationTopic.Net  Mobile