Claims
- 1. A balanced microdevice comprising a substrate, at least one comb drive assembly having first and second comb drive members, the first comb drive member being mounted on the substrate and the second comb drive member overlying the substrate, at least one spring member having a first end portion coupled to the substrate and a second end portion coupled to the second comb drive member, the first comb drive member having a plurality of spaced-apart first comb drive fingers and the second comb drive member having a plurality of spaced-apart second comb drive fingers, the second comb drive member being movable between a first position in which the first and second comb drive fingers are not substantially fully interdigitated and a second position in which the first and second comb drive fingers are substantially fully interdigitated, a counterbalance carried by the substrate and coupled to the second comb drive member for inhibiting undesirable movement of the second comb drive member in response to externally applied accelerations to the microdevice.
- 2. The microdevice of claim 1 wherein the at least one comb drive assembly includes a plurality of the comb drive assemblies, the counterbalance being coupled to the second comb drive members of each of the comb drive assemblies.
- 3. The microdevice of claim 1 wherein the at least one comb drive assembly forms a rotary electrostatic microactuator that is fan-shaped in plan and has a base and a radial extremity, the second comb drive member being rotatable about an axis of rotation disposed adjacent the base.
- 4. The microdevice of claim 3 further comprising a movable member coupled to the second comb drive member and rotatable by the second comb drive member about the axis of rotation, the counterbalance including a weight coupled to the second comb drive member between the base and the radial extremity of the rotary electrostatic microactuator.
- 5. The microdevice of claim 1 wherein the second comb drive member is part of a movable structure rotatable about an axis of rotation, the movable structure extending radially outwardly from the axis of rotation and having the shape of a truncated sector of a circle when viewed in plan, the axis of rotation intersecting the plane of the substrate at a location spaced radially inwardly from the movable structure.
- 6. The microdevice of claim 5 wherein the counterbalance includes at least one additional comb drive assembly having such first and second comb drive members and a link for coupling the second comb drive member of the at least one additional comb drive assembly to the second comb drive member of the at least one first-named comb drive assembly for inhibiting undesirable movements of the second comb drive member of the at least one first-named comb drive assembly in response to externally applied accelerations to the microdevice.
- 7. The microdevice of claim 6 wherein the second comb drive member of the at least one additional comb drive assembly is part of an additional movable structure rotatable about an additional axis of rotation, the additional movable structure extending radially outwardly from the additional axis of rotation and having the shape of a truncated sector of a circle when viewed in plan, the additional axis of rotation intersecting the plane of the substrate at a location spaced radially inwardly from the additional movable structure.
- 8. The microdevice of claim 1 wherein the counterbalance includes at least one additional comb drive assembly having such first and second comb drive members and a link for coupling the second comb drive member of the at least one additional comb drive assembly to the second comb drive member of the at least one first-named comb drive assembly for inhibiting undesirable movements of the second comb drive member of the at least one first-named comb drive assembly in response to externally applied accelerations to the microdevice.
- 9. The microdevice of claim 1 wherein the at least one comb drive assembly forms a linear electrostatic microactuator.
- 10. The microdevice of claim 9 wherein the counterbalance includes an optical element and a lever assembly for coupling the optical element to the second comb drive member.
- 11. The microdevice of claim 10 wherein the lever assembly includes an anchor mounted on the substrate and a lever arm pivotably carried by the anchor, the lever arm having a first end portion coupled to the second comb drive member and a second end portion coupled to the optical element whereby movement of the first end portion by the second comb drive member in a first direction causes the optical element to move in a second direction substantially opposite to the first direction.
- 12. The microdevice of claim 11 wherein lever arm pivots about a pivot point and wherein the second comb drive member and the optical element are part of a movable framework having a center of mass substantially coincident with the pivot point.
- 13. A microdevice comprising a substrate, an element, an electrostatic microactuator carried by the substrate and a coupler for connecting the electrostatic microactuator to the element for moving the element in a direction of travel relative to the substrate, the electrostatic microactuator being mechanically balanced in the direction of travel relative to the element to inhibit undesirable movements of the element in the direction of travel in response to externally applied accelerations to the microdevice.
- 14. A microdevice as in claim 13 wherein the electrostatic microactuator is a linear electrostatic microactuator.
- 15. A microdevice as in claim 13 wherein the electrostatic microactuator is a rotary electrostatic microactuator.
- 16. A microdevice as in claim 15 wherein the rotary electrostatic microactuator rotates about an axis of rotation and has a movable portion and wherein the element and the movable portion of the rotary electrostatic microactuator have a center of mass that is substantially coincident with the axis of rotation.
- 17. A microdevice as in claim 13 wherein the element is a lens.
- 18. A microdevice as in claim 13 wherein the element is a mirror.
- 19. A microdevice comprising a substrate, an element, an electrostatic microactuator carried by the substrate and a coupler for connecting the electrostatic microactuator to the element for moving the element in a direction of travel relative to the substrate, counterbalancing means carried by the substrate and coupled to the electrostatic microactuator for mechanically balancing the electrostatic microactuator in the direction of travel relative to the element to inhibit undesirable movements of the element in the direction of travel in response to externally applied accelerations to the microdevice.
- 20. A microdevice as in claim 19 wherein the electrostatic microactuator is a rotary electrostatic microactuator.
- 21. A microdevice as in claim 20 wherein the rotary electrostatic microactuator extends in a plane and rotates about an axis of rotation extending perpendicularly of the plane and outside the confines of the microactuator.
- 22. A microdevice as in claim 21 wherein the rotary electrostatic microactuator rotates about the axis of rotation, the counterbalancing means including an additional rotary electrostatic microactuator extending in the plane and rotating about an additional axis of rotation and a link for coupling the additional rotary electrostatic microactuator to the first-named rotary electrostatic microactuator so that the additional rotary electrostatic microactuator mechanically balances the first-named rotary electrostatic microactuator in the direction of travel.
- 23. A microdevice as in claim 22 wherein the first-named rotary electrostatic microactuator rotates about the axis of rotation in a first direction when the additional rotary electrostatic microactuator rotates about the additional axis of rotation in a second direction that is opposite to the first direction.
- 24. A microdevice comprising a substrate, an element, first and second electrostatic microactuators carried by the substrate and a link carried by the substrate and connected to the first and second electrostatic microactuators for counterbalancing the first and second electrostatic microactuators relative to each other.
- 25. A microdevice as in claim 24 wherein at least one of the first and second electrostatic microactuators is a rotary electrostatic microactuator.
- 26. A microdevice as in claim 24 wherein each of the first and second electrostatic microactuators is rotary electrostatic microactuator.
- 27. A rotary electrostatic microactuator comprising a substrate extending substantially in a plane, at least one comb drive assembly carried by the substrate and having a first comb drive member mounted on the substrate and a second comb drive member, the first comb drive member being provided with a plurality of first comb drive fingers and the second comb drive member being provided with a plurality of second comb drive fingers, first and second spaced-apart springs, each of the first and second springs having a first end portion coupled to the substrate and a second end portion coupled to the second comb drive member for suspending the second comb drive member over the substrate, the second comb drive member being part of a movable structure that is rotatable about an axis of rotation between a first position in which the first and second comb drive fingers are not substantially fully interdigitated and a second position in which the first and second comb drive fingers are substantially fully interdigitated, the movable structure extending radially outwardly from the axis of rotation and having a shape of a truncated sector of a circle when viewed in plan, the axis of rotation intersecting the plane of the substrate at a location spaced radially inwardly from the movable structure.
- 28. A microactuator as in claim 27 wherein the at least one comb drive assembly is disposed between the first and second springs.
- 29. The microactuator of claim 27 wherein the first and second comb drive fingers are each arcuate in shape.
- 30. The microactuator of claim 29 wherein the first comb drive member has a midpoint in the space between each adjacent pair of the first comb drive fingers, the second comb drive member being movable between a first position in which each second comb drive finger is not substantially fully interdigitated with an adjacent pair of first comb drive fingers and a second position in which each such second comb drive finger is substantially fully interdigitated with such adjacent pair of first comb drive fingers, each of the second comb drive fingers being offset relative to the midpoint between the adjacent pair of first comb drive fingers when in the first position and being substantially centered on such midpoint when in the second position.
- 31. A microactuator as in claim 27 wherein each of the second comb drive fingers is joined to the second elongate member at a second oblique angle.
- 32. A microactuator as in claim 31 wherein each of the first comb drive fingers is joined to the first elongate member at a first oblique angle.
- 33. A microactuator as in claim 32 wherein the first and second oblique angles are equal.
- 34. A rotary electrostatic microactuator comprising a substrate extending substantially in a plane, a plurality of comb drive assemblies carried by the substrate, each of the comb drive assemblies having a first comb drive member mounted on the substrate and a second comb drive member, each of the first and second comb drive members being provided with arcuate comb drive fingers, first and second spaced-apart springs, each of the first and second springs having a first end portion coupled to the substrate and a second end portion coupled to at least one of the second comb drive members for suspending the second comb drive members over the substrate, the second comb drive members being part of a movable structure that is rotatable about an axis of rotation between a first position in which the comb drive fingers of the first and second comb drive members are not substantially fully interdigitated and a second position in which the comb drive fingers of the first and second comb drive members are substantially fully interdigitated, the movable structure extending radially outwardly from the axis of rotation and having a shape of a truncated sector of a circle when viewed in plan, the axis of rotation intersecting the plane of the substrate at a location spaced radially inwardly from the movable structure.
- 35. The rotary microactuator of claim 34 wherein the movable structure subtends an angle of 90° or less about the axis of rotation.
- 36. The rotary microactuator of claim 34 wherein each of the first and second springs have inner and outer radial portions, the inner radial portions being coupled to the substrate.
- 37. The rotary microactuator of claim 34 wherein the arcuate comb drive fingers have a radius commencing substantially at the axis of rotation.
- 38. The rotary microactuator of claim 34 wherein each of the first and second comb drive members has an elongate truss, each of the arcuate comb drive fingers having a first portion coupled to the truss and a second portion extending from the first portion, the first portion having a first width and the second portion having a second width less than the first width whereby the second portions of the arcuate comb drive fingers of the second comb drive member sequentially interdigitate along the truss between adjacent first portions of the arcuate comb drive fingers of the first comb drive member during movement of the movable structure to the second position.
- 39. The rotary microactuator of claim 34 wherein the arcuate comb drive fingers of the second comb drive member vary in length so as to sequentially interdigitate along the second comb drive member during movement of the movable structure to the second position.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] The application claims priority to U.S. provisional patent application Ser. No. 60/167,951 filed Nov. 29, 1999; U.S. provisional patent application Ser. No. 60/174,562 filed Jan. 5, 2000; U.S. provisional patent application Ser. No. 60/227,933 filed Aug. 25, 2000 and U.S. provisional patent application Ser. No. 60/234,042 filed Sep. 20, 2000.
Provisional Applications (4)
|
Number |
Date |
Country |
|
60167951 |
Nov 1999 |
US |
|
60174562 |
Jan 2000 |
US |
|
60227933 |
Aug 2000 |
US |
|
60234042 |
Sep 2000 |
US |