Claims
- 1. A collimator for collimating a beam of energy emitted from a focal spot of a beam source, comprising:a plurality of slits, each slit including, a uniform width varied from each of the widths of the remaining slits, and a curved side profile sharing a common axis of curvature so that each slit provides a cross-section of the emitted beam of energy with a substantially uniform width when the common axis of curvature substantially intersects the focal spot; wherein the collimator is curved about a rotation axis substantially normal to the common axis of curvature, such that rotating the collimator about the rotation axis will sequentially position the slits to collimate the emitted beam.
- 2. A collimator assembly including a collimator according to claim 1 and further comprising means for selecting a slit by rotating the collimator about the rotation axis.
- 3. A collimator assembly according to claim 2, wherein the means for selecting comprises:a selection motor having a rotatable shaft; and a gear mechanism coupling the motor shaft to the collimator for rotating the collimator about the rotation axis upon rotation of the shaft.
- 4. A collimator assembly according to claim 3, wherein the gear mechanism comprises:a drive gear fixed to the shaft of the motor; and a driven gear fixed to the collimator and meshed with the drive gear.
- 5. A collimator assembly according to claim 4, wherein the gear mechanism further comprises means for absorbing shock between the meshed gears.
- 6. A collimator assembly according to claim 5, wherein the means for absorbing shock comprises resilient material seated in a circumferential groove of at least one of the gears.
- 7. A collimator assembly according to claim 6, wherein the resilient material is in the form of a continuous ring.
- 8. A collimator assembly according to claim 7, wherein a radial cross-section of the ring is greater than a depth of the groove so that the resilient ring extends radially outwardly from the groove to between a circumferential surface of the gear and tips of teeth of the gear to substantially prevent teeth of the other gear from contacting the circumferential surface.
- 9. A collimator assembly according to claim 4, wherein one of the drive and driven gears includes a plurality of apertures corresponding to the plurality of slits of the collimator and the assembly further comprises an index pin for insertion into the aperture corresponding to a selected slit for fine tuning the position of the collimator after selection of the slit.
- 10. A collimator assembly according to claim 9, wherein the index pin includes a tapered insertion tip.
- 11. A computer tomography scanner including a collimator assembly according to claim 3, and further including:a beam source having a focal spot for emitting an x-ray beam through the collimator assembly; a controller for actuating the selection motor of the collimator assembly; and an array of x-ray detectors for receiving the collimated x-ray beam from the collimator assembly.
- 12. A collimator assembly according to claim 2, further comprising means for shifting the collimator in a direction normal to the elongated slits of the collimator for alignment with a shifting focal spot of a beam source so that a selected slit of the collimator will collimate a beam of energy emitted from the focal spot.
- 13. A collimator assembly according to claim 12, wherein the means for shifting comprises:an alignment motor having a rotatable shaft; a cam mechanism for translating the rotation of the shaft into shifting of the collimator in a direction normal to the elongated slits of the collimator.
- 14. A collimator assembly according to claim 13, wherein the cam mechanism comprises:a cam fixed to the motor shaft for rotation therewith; and a follower rotatably and slidingly received on the motor shaft and operatively contacting the cam for sliding movement of the follower on the shaft in response to rotation of the cam, said follower operatively arranged with respect to the collimator such that sliding movement of the follower on the shaft causes shifting of the collimator in a direction normal to the elongated slits of the collimator upon.
- 15. A collimator assembly according to claim 14, wherein the cam mechanism further includes:at least one flexible contact plate secured to the collimator and having an end extending outwardly from the collimator parallel to the elongated slits of the collimator, and at least one protrusion extending from the follower for contacting the end of the contact plate.
- 16. A collimator assembly according to claim 13, wherein the means for shifting further comprises a spring biasing the collimator against the cam mechanism in a direction normal to the elongated slits of the collimator.
- 17. A computer tomography scanner including a collimator assembly according to claim 13, and further including:a beam source having a focal spot for emitting an x-ray beam through the collimator assembly; a detector for providing signals indicative of shifting of the focal spot; a controller for receiving the signals from the detector and connected to the alignment motor of the collimator assembly for actuating the alignment motor upon shifting of the focal spot; and an array of x-ray detectors for receiving the collimated x-ray beam from the collimator assembly.
- 18. A collimator assembly comprising:a collimator including a plurality of slits of varied widths for collimating a beam of energy emitted from a focal spot of a beam source, wherein moving the collimator in a predetermined manner sequentially positions the slits to collimate the emitted beam; a gear coupled to the collimator and adapted to move the collimator in the predetermined manner upon being rotated, said gear including a circumferential groove; a selection motor for rotating the gear; and resilient material received in the circumferential groove of the gear, wherein the gear includes a plurality of apertures corresponding to the plurality of slits of the collimator and the assembly further comprises an index pin for insertion into one of the apertures for fine tuning the position of the collimator after rotation of the gear.
- 19. A collimator assembly comprising:a collimator including a plurality of slits of varied widths for collimating a beam of energy emitted from a focal spot of a beam source, wherein moving the collimator in a predetermined manner sequentially positions the slits to collimate the emitted beam; a gear coupled to the collimator and adapted to move the collimator in the predetermined manner upon being rotated, said gear including a plurality of apertures corresponding to the plurality of slits of the collimator; a motor for rotating the gear; and an index pin for insertion into one of the apertures for fine tuning the position of the collimator after rotation of the gear.
- 20. A collimator assembly according to claim 19, wherein the predetermined manner comprises rotating the collimator.
- 21. A computer tomography scanner including a collimator assembly according to claim 19, and further including:a beam source having a focal spot for emitting an x-ray beam through the collimator assembly; a controller for actuating the selection motor of the collimator assembly; and an array of x-ray detectors for receiving the collimated x-ray beam from the collimator assembly.
- 22. A collimator assembly comprising:an alignment motor having a rotatable shaft; a cam fixed to the motor shaft for rotation therewith; a follower rotatably and slidingly received on the motor shaft and operatively contacting the cam for linear movement of the follower along the shaft upon rotation of the cam; and a collimator including at least one elongated slit for collimating a beam of energy emitted from a focal spot of a beam source, the collimator operatively arranged with respect to the follower for movement of the collimator in a direction normal to the elongated slit upon movement of the follower.
- 23. A collimator assembly according to claim 22, further comprising:at least one flexible contact plate secured to the collimator and having an end extending outwardly from the collimator parallel to the elongated slit of the collimator, and at least one protrusion extending from the follower for contacting the end of the contact plate.
- 24. A collimator assembly according to claim 22, further comprising a spring biasing the collimator against the follower in a direction normal to the elongated slits of the collimator.
- 25. A computer tomography scanner including a collimator assembly according to claim 22, and further including:a beam source having a focal spot for emitting an x-ray beam through the collimator assembly; a detector for providing signals indicative of shifting of the focal spot; a controller receiving the signals from the detector and connected to the alignment motor of the collimator assembly for actuating the alignment motor upon shifting of the focal spot; and an array of x-ray detectors for receiving the collimated x-ray beam from the collimator assembly.
Parent Case Info
This application claims benefit of Prov. No. 60/221,739 filed Jul. 31, 2000.
US Referenced Citations (12)
Provisional Applications (1)
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Number |
Date |
Country |
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60/221739 |
Jul 2000 |
US |