Claims
- 1. A positioning device for positioning an object, the positioning device comprising:
a planar motor comprising a first part and a second part and configured to produce a force between the first part and the second part over a long range of movement in at least one direction, the second part being connected to a frame of the positioning device; and a Lorentz actuator configured to produce a force between the first part of the planar motor and the object over a short range of movement in at least one direction, the Lorentz actuator comprising:
a main magnet system attached to one part that is the first part of the planar motor or the object; a subsidiary magnet system attached to the one part; and an electrically conductive element attached to the other of the first part of the planar motor and the object, wherein the main magnet system and the subsidiary magnet system are arranged in a Halbach configuration.
- 2. A positioning device according to claim 1, wherein the subsidiary magnet system comprises two subsidiary magnets; the main magnet system comprises a main magnet, at least a part of which is located between the two subsidiary magnets; the magnetic polarizations of the subsidiary magnets being oriented substantially mutually anti-parallel and substantially perpendicular to the magnetic polarization of the main magnet.
- 3. A positioning device according to claim 1, wherein the main magnet system is comprised of a first main magnet system sub-assembly and a second main magnet system sub-assembly; the subsidiary magnet system is comprised of a first subsidiary magnet system sub-assembly and a second subsidiary magnet system sub-assembly; and at least a part of the electrically conductive element is located between a first magnet assembly, comprised of the first main and subsidiary magnet system sub-assemblies, and a second magnet assembly, comprised of the second main and subsidiary magnet system sub-assemblies.
- 4. A positioning device according to claim 3, wherein each main magnet system sub-assembly comprises a first and a second main magnet oriented such that their magnetic polarizations are substantially mutually anti-parallel.
- 5. A positioning device according to claim 4, wherein each of the subsidiary magnet system sub-assemblies comprises a first, a second and a third subsidiary magnet; and each of the subsidiary magnet system sub-assemblies is arranged such that:
at least a part of the first main magnet is located between the first and second subsidiary magnets; at least a part of the second main magnet is located between the second and the third subsidiary magnets; the first and second subsidiary magnets are oriented such that their magnetic polarizations are substantially mutually anti-parallel and substantially perpendicular to that of the first main magnet; and the second and third subsidiary magnets are oriented such that their magnetic polarizations are substantially mutually anti-parallel and substantially perpendicular to that of the second main magnet.
- 6. A positioning device according to claim 4, wherein the electrically conductive element comprises:
a first part, located between the first main magnets of the first and second main magnet system sub-assemblies; and a second part, located between the second main magnets of the first and second main magnet system sub-assemblies, wherein the electrically conductive element is arranged such that, when it conducts electric current, the direction of the electric currents in the first and second parts are substantially mutually anti-parallel.
- 7. A positioning device according to claims 3, wherein each main magnet system sub-assembly comprises a first, second and a third main magnet, arranged such that at least a part of the second main magnet is located between the first and third main magnets; and the main magnets are oriented such that the magnetic polarization of the second main magnet is substantially anti-parallel to that of the first and the third main magnets.
- 8. A positioning device according to claim 7, wherein each-of the subsidiary magnet system sub-assemblies comprises a first and a second subsidiary magnet; and each of the subsidiary magnet system sub-assemblies is arranged such that:
at least a part of the second main magnet is located between the first and second subsidiary magnets; and the first and second subsidiary magnets are oriented such that their magnetic polarizations are substantially mutually anti-parallel and substantially perpendicular to that of the second main magnet.
- 9. A positioning device according to claim 7, wherein the electrically conductive element comprises:
a first part of a first coil, located between the first main magnets of the first and second main magnet system sub-assemblies; a second part of the first coil and a third part of a second coil, located between the second main magnets of the first and second main magnet system sub-assemblies; and a fourth part of the second coil, located between the third main magnets of the first and second main magnet system sub-assemblies.
- 10. A positioning device according claim 1, wherein the electrically conductive element is connected to the first part of the planar motor and the main magnet system and the subsidiary magnet system are connected to the object.
- 11. A positioning device according to claim 1, wherein the short range of movement is about 10 percent of the total size of the main magnet system and the subsidiary magnet system.
- 12. A positioning device according to claim 1, wherein the short range of movement is about 1 cm and the long range of movement is longer than 30 cm.
- 13. A positioning device according to claim 1, further comprising a back iron adjoining each of the main magnet system and the subsidiary magnet system, wherein the back iron has a varying thickness.
- 14. A positioning device according to claim 13, wherein the back iron is formed of CoFe.
- 15. A positioning device according to claim 2, wherein the subsidiary magnets are smaller than the main magnet.
- 16. A positioning device according to claim 2, wherein each of the subsidiary magnets has a higher coercitive field strength than the main magnet.
- 17. A positioning device according to claim 2, wherein a magnetic remanence of the two subsidiary magnets are equal to each other and smaller than a magnetic remanence of the main magnet.
- 18. A method for positioning an object using a positioning device, the method comprising:
producing a force between a first part of the positioning device and a frame of the positioning device over a long range of movement in at least one direction using a planar motor; and producing a force between a first part of the planar motor and a second part of the positioning device over a short range of movement in at least one direction using a Lorentz actuator, the second part of the positioning device being connected to the object, wherein the Lorentz actuator comprises:
a main magnet system attached to one part of the positioning device that is the first part or the second part; a subsidiary magnet system attached to the one part of the positioning device; and an electrically conductive element attached to the other of the first part and the second part of the positioning device, wherein the main magnet system and the subsidiary magnet system are arranged in a Halbach configuration.
- 19. A method according to claim 18, wherein the short range of movement is about 10 percent of the total size of the main magnet system and the subsidiary magnet system.
- 20. A method according to claim 18, wherein the short range of movement is about 1 cm and the long range of movement is longer than 30 cm.
- 21. A positioning device for positioning an object, the positioning device comprising:
a planar motor configured to produce a force between a first part of the positioning device and a frame of the positioning device over a long range of movement in at least one direction; and a Lorentz actuator configured to produce a force between the first part of the positioning device and a second part of the positioning device over a short range of movement in at least one direction, the second part of the positioning device being connected to the object, the Lorentz actuator comprising:
a main magnet system attached to one part of the positioning device that is the first part or the second part; a subsidiary magnet system attached to the one part of the positioning device; and an electrically conductive element attached to the other of the first part and the second part of the positioning device, wherein the main magnet system and the subsidiary magnet system are arranged in a Halbach configuration.
Priority Claims (1)
Number |
Date |
Country |
Kind |
01307127.9 |
Aug 2001 |
EP |
|
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation of U.S. application Ser. No. 10/222,975, filed Aug. 19, 2002, the entire contents of which are herein incorporated by reference.
Continuations (1)
|
Number |
Date |
Country |
Parent |
10222975 |
Aug 2002 |
US |
Child |
10740576 |
Dec 2003 |
US |