Claims
- 1. A magnetic levitation system comprising:a vehicle body; a permanent-magnet-excited geometry operatively attached to said vehicle body for providing levitation forces upon said vehicle body, wherein said geometry is stable against displacements from equilibrium in a first plane but is unstable against displacements in a second plane; and an inductive track system for providing stabilization against displacements in said second plane, wherein said inductive track system comprises: a first Halbach array having a first magnetic field and a second Halbach array having a second magnetic field, wherein said first Halbach array and said second Halbach array are magnetically connected together and structurally connected to said vehicle body to form a first pair of Halbach arrays, wherein said first Halbach array comprises magnet configurations positioned with respect to said second Halbach array and said second Halbach array comprises magnet configurations positioned with respect to said first Halbach array such that a first magnetic flux component of said first magnetic field and a first magnetic flux component of said second magnetic field substantially cancel at a first plane between said first Halbach array and said second Halbach array, and a second magnetic flux component of said first magnetic field and a second magnetic flux component of said second magnetic field substantially add at said first Diane; a track of windings fixedly attached to a stationary support, wherein said track of windings is located between said first pair of Halbach arrays; and a propulsion mechanism for moving said first pair of Halbach arrays along said track, wherein when said first pair of Halbach arrays move along said track and said first plane is not located at said track, a current is induced in said windings and a restoring force is exerted on said first pair of Halbach arrays.
- 2. The magnetic levitation system of claim 1, wherein said first plane is substantially a vertical plane, wherein said second plane is substantially a horizontal plane.
- 3. The magnetic levitation system of claim 1, wherein said inductive track system is configured to overcome centrifugal forces when said vehicle body encounters a transient horizontal force.
- 4. The magnetic levitation system of claim 1, wherein said inductive track system is configured as the stator of a linear induction-motor drive and braking system.
- 5. The magnetic levitation system of claim 1, wherein said permanent-magnet-excited geometry comprises first pole assemblies with iron poles excited by permanent-magnet material, wherein said first pole assemblies are attached to said vehicle body.
- 6. The magnetic levitation system of claim 5, wherein said permanent-magnet-excited geometry further comprises second pole assemblies attached to a said stationary support, wherein said second pole assemblies comprise permanent magnet material, wherein said first pole assemblies and said second pole assemblies are configured to magnetically attract each other.
- 7. The magnetic levitation system of claim 6, further comprising means for damping vertical oscillations in said second pole assemblies.
- 8. The magnetic levitation system of claim 7, wherein said means for damping vertical oscillations comprises a sheet of material covering said second pole assemblies, wherein said sheet of material is selected from the group consisting of a thin aluminum sheet copper, and stainless steel.
- 9. The magnetic levitation system of claim 1, further comprising at least one electromagnet attached to said vehicle body, wherein said track of windings is configured to operate as a linear induction motor assembly.
- 10. A magnetic levitation system, comprising:a vehicle body; a permanent-magnet-excited geometry operatively attached to said vehicle body for providing levitation forces upon said vehicle body, wherein said geometry is stable against substantially vertical displacements from equilibrium but is unstable against substantially horizontal displacements; and an inductive track system attached to said vehicle body, wherein said inductive track system provides stabilization against said substantially horizontal displacements and provides centering forces, wherein said inductive track system comprises: a pair of Halbach arrays comprising a first Halbach array and a second Halbach array, wherein said pair of Halbach arrays are fixedly attached to said vehicle body; a track of windings fixedly attached to a stationary support, wherein said first Halbach array is located on a first side of said tack and wherein said second Halbach array is located on a second side of said track opposite from said first side, such that when said pair of Halbach arrays are under propulsion and they deviate from a magnetic cancellation plane located between said pair of Halbach arrays, currents are generated within said track of windings that induce a restoring force on said pair of Halbach arrays.
- 11. A method for operating a magnetic levitation system comprising;providing a vehicle body; providing a permanent-magnet-excited geometry operatively attached to said vehicle body, wherein said geometry is stable against displacements from equilibrium in a first plane but is unstable against displacements in a second plane; providing levitation forces upon said vehicle body using said permanent-magnet-excited geometry: and providing stabilization against displacements in said second plane and providing centering forces, wherein the step of providing stabilization is carried out with an inductive track system attached to said vehicle body, wherein said inductive track system comprises: a first Halbach array having a first magnetic field and a second Halbach array having a second magnetic field, wherein said first Halbach array and said second Halbach array are magnetically connected together and structurally connected to said vehicle body to form a first pair of Halbach arrays, wherein said first Halbach array comprises magnet configurations positioned with respect to said second Halbach array and said second Halbach array comprises magnet configurations positioned with respect to said first Halbach ray such that a first magnetic flux component of said first magnetic field and a first magnetic flux component of said second magnetic field substantially cancel at a first plane between said first Halbach array and said second Halbach array, and a second magnetic flux component of said first magnetic field and a second magnetic flux component of said second magnetic field substantially add at said first plane; a track of windings fixedly attached to a stationary support, wherein said track of windings is located between said first pair of Halbach arrays; and a propulsion mechanism for moving said first pair of Halbach arrays along said track, wherein when said first pair of Halbach arrays move along said track and said first plane is not located at said track, a current is induced in said windings and a restoring force is exerted on said first pair of Halbach arrays.
- 12. The method claim 11, wherein said first plane is substantially a vertical plane, wherein said second plane is substantially a horizontal plane.
- 13. The method of claim 11, wherein said inductive track system is configured to substantially overcome centrifugal forces when said vehicle body encounters a transient horizontal force.
- 14. The method claim 11, wherein said inductive track system is configured as the stator of a linear induction-motor drive and braking system.
- 15. The method of claim 11, wherein said permanent-magnet-excited geometry comprises first pole assemblies with iron poles excited by permanent-magnet material, wherein said first pole assemblies are attached to said vehicle body.
Government Interests
The United States Government has rights in this invention pursuant to Contract No. W-7405-ENG-48 between the United States Department of Energy and the University of California for the operation of Lawrence Livermore National Laboratory.
US Referenced Citations (12)
Foreign Referenced Citations (2)
Number |
Date |
Country |
250289 |
Nov 1976 |
DE |
4-88810 |
Mar 1992 |
JP |