Claims
- 1. An imaging system for acquiring imaging data generated by an object positioned about a lateral axis to form a SPECT image, said system comprising:first and second gamma ray detectors; a first pair of rings, oriented substantially perpendicular to and approximately centered on the lateral axis; means for coupling said first detector to said first pair of rings, with the first detector pointed toward the lateral axis and disposed between said rings; an arc shaped groove in each of said first pair of rings being substantially parallel to a circumference of the rings; mean for coupling said second detector to said arc shaped groove; and means for moving said second detector along said arc shaped groove to vary the angular displacement, relative to the lateral axis, between said first and second detectors to predetermined magnitude.
- 2. An imaging system for acquiring imaging data generated by an object positioned about a lateral axis, said system comprising:first and second detectors each having a collimator surface oriented perpendicular to the direction said detectors are pointing; a first ring oriented substantially perpendicular to and approximately centered on the lateral axis; a first cantilever support coupled to said ring having said first detector mounted thereon; an arc shaped groove on said ring said groove being substantially parallel to the circumference of said ring; a second cantilever support having said second detector mounted thereon; one or more guide rollers rotatably attached to said second cantilever support and engaged to said groove; a shaft rotatably attached to said second cantilever support; a gear fixedly attached to said shaft and engaged to said ring; a motor controllingly coupled to said shaft, whereby the operation of said motor by moving said second cantilever support along said groove varies the orientation, relative to the lateral axis and in said plane, of the collimator surfaces of said first and second detectors between a first position where said collimator surfaces are parallel and a second position where said collimator surfaces are perpendicular.
- 3. The system of claim 2 further comprising:a radial motion mechanism coupling said first cantilever support to said first ring said radial motion mechanism comprising a first base plate attached to said first ring; a first slotted guide bar fixedly attached to said first base plate; one or more guide rollers rotatably attached to said first cantilever support and engaged to said first slotted guide bar; a swivel nut attached to said first cantilever support through a bracket; a first lead screw rotatably coupled to said swivel nut, said first lead screw rotatably mounted in a plurality of bearing blocks, said bearing blocks fixedly attached to said first base plate; a trailer gear fixedly attached to said first lead screw; a coupling gear fixedly attached to said first lead screw; a lead drive gear controllingly coupled to said trailer gear through a coupling chain; a drive motor controlling by coupled to said lead drive gear; whereby through the action of said drive motor said first detector may be moved toward and away from the lateral axis.
- 4. The system of claim 3 further comprising:a second ring substantially parallel to said first ring with said detectors lying between said rings; a third cantilever support coupling said first detector to said second ring; a second radial motion mechanism coupling said third cantilever support to said second ring, said second radial motion mechanism comprising a second base plate fixedly attached to said second ring; a second slotted guide bar fixedly attached to said second base plate; one or more guide rollers rotatably attached to said third cantilever support and engaged to said second slotted guide bar; a swivel nut fixedly attached to said first cantilever support; a second lead screw rotatably coupled to said swivel nut, said second lead screw rotatably mounted in a plurality of bearing blocks, said bearing blocks fixedly attached to said second base plate; a coupling gear fixedly attached to said second lead screw; a coupling chain coupling said coupling gear of said first radial motion mechanism and said coupling gear of said second radial motion mechanism; whereby said first radial motion mechanism and said second radial motion mechanism may be operated in tandem to move said first detector toward and away from the lateral axis.
- 5. The system of claim 2 further comprisinga radial motion mechanism coupling said second cantilever support to said first ring said radial motion mechanism comprising a first base plate attached to said first ring; a first slotted guide bar fixedly attached to said first base plate; one or more guide rollers rotatably attached to said second cantilever support and engaged to said first slotted guide bar; a swivel nut attached to said first cantilever support through a bracket; a first lead screw rotatably coupled to said swivel nut, said first lead screw rotatably mounted in a plurality of bearing blocks, said bearing blocks fixedly attached to said first base plate; a trailer gear fixedly attached to said first lead screw; a coupling gear fixedly attached to said first lead screw; a lead drive gear controllingly coupled to said trailer gear through a coupling chain; a drive motor controlling by coupled to said lead drive gear; whereby through the action of said drive motor said second detector may be moved toward and away from the lateral axis.
- 6. The system of claim 5 further comprising:a second ring substantially parallel to said first ring with said detectors lying between said rings; a third cantilever support coupling said second detector to said second ring; a second radial motion mechanism coupling said third cantilever support to said second ring said radial motion mechanism comprising a second base plate fixedly attached to said second ring; a second slotted guide bar fixedly attached to said second base plate; one or more guide rollers rotatably attached to said third cantilever support and engaged to said second slotted guide bar; a swivel nut fixedly attached to said first cantilever support; a second lead screw rotatably coupled to said swivel nut, said second lead screw rotatably mounted in a plurality of bearing blocks, said bearing blocks fixedly attached to said second base plate; a coupling gear fixedly attached to said second lead screw; a coupling chain coupling said coupling gear of said first radial motion mechanism and said coupling gear of said second radial motion mechanism; whereby said first radial motion mechanism and said second radial motion mechanism may be operated in tandem to move said second detector toward and away from the lateral axis.
- 7. An imaging system for acquiring imaging data generated by an object positioned about a lateral axis to form a SPECT image, said system comprising:a main gantry body having left and right upright cylindrical walls each having an inner surface and an outer surface, said walls including a plurality of guide rollers rotatably attached to the inner surface of the walls at spaced apart radial positions; first and second gamma ray detector; a first pair of rings located between said walls and oriented substantially perpendicular to and approximately centered on the lateral axis, each of said first pair of rings including a main cylindrical body having an inner face and an outer face, an outer radial flange integral with and perpendicular to an upper portion of said outer face and disposed towards and adjacent said gantry walls, and an L-shaped inner flange having a first member defining an upper radial support surface, said first member being integral with and perpendicular to a middle portion of said inner face, said L-shaped flange having a second member integral with and perpendicular to said first member and having one end proximate said lateral axis and having an integral upper lip extending above said radial support surface at the opposite end of the second member, wherein said outer flange defines a radial abutment undersurface for engaging said rollers attached to said walls of the main gantry body, and wherein said second member of said L-shaped inner flange and said inner face of said main cylindrical body define an inner radial groove therebetween; a second pair of rings located between said walls and oriented substantially perpendicular to and approximately centered on the lateral axis, each of said second pair of rings having an inner face, an outer face, a side wall face, and a radial groove formed in the side wall face between the inner and outer face, wherein each of said rings includes a plurality of guide rollers rotatably mounted within the groove and extending slightly beyond said grooves, said rollers radially spaced apart from each other around an inner surface of the groove for positioning each of said second rings upon said upper radial support surface of said first member of said L-shaped inner flange of each of said first pair of rings so that said second pair of rings is disposed between said first pair of rings and is rotatable along said radial support surface and is prevented from falling off to said surface by said upper lip of the second member of the L-shaped flange; means for coupling said first and second detectors to said first and second pairs of rings respectively, with the first and second detectors pointed toward the lateral axis and disposed between said rings, said coupling means including means for moving the first and second detectors respectively toward and away from the lateral axis; and means for independently rotating said first and second detectors along a circular path approximately centered at said lateral axis.
- 8. An imaging system as claimed in claim 7 wherein said independent by rotating means includes a motor operatively coupled to first and second drive shafts, a pair of first and second drive gears fixedly attached to said first and second shafts, at least one pair of first and second idler gears operatively coupling said first and second drive gears to said first and second pairs of rings, and a braking means coupled to said second drive shaft;wherein when said braking means is disengaged, the operation of the motor rotates said first and second shafts to thereby rotate said drive gears, said idler gears, and said rings and said detectors coupled thereto in a circular path approximately centered on the lateral axis, and wherein when said braking means is engaged, operation of said motor rotates only said first shaft so that rotation occurs only for said first gears and said first pair of rings to thereby adjust the angular displacement, relative to the lateral axis, between said first and second detectors to a predetermined magnitude.
- 9. An imaging system as claimed in claim 7 further comprising a plurality of adjustment blocks movably mounted to said gantry body walls and spaced radially apart from each other, each of said blocks having a guide roller rotatably fixed to the block and adapted to be positioned within the inner radial groove of said first pair of rings, wherein said adjustment blocks may be moved radially within said gantry walls substantially parallel to said lateral axis to thereby vary a lateral displacement of said first pair of rings from said gantry walls.
- 10. An imaging system, comprising:a pair of rotatable members rotatable about and substantially centered on a lateral axis; a first radiation detector fixedly coupled between the pair of rotatable members; and a second radiation detector movably coupled to the pair of rotatable members so as to allow an angular displacement between the first and second detectors about the lateral axis to be varied.
- 11. An imaging system according to claim 10, wherein the angular displacement can be varied from an acute angle to approximately 180 degrees.
- 12. An imaging system according to claim 10, wherein the angular displacement can be varied from approximately 90 degrees to approximately 180 degrees.
- 13. An imaging system according to claim 10, wherein the pair of rotatable members comprises a pair of ring gears.
- 14. An imaging system for acquiring image data of an object, said system comprising:a gantry; at least one rotatable support ring coupled to the gantry; and first and second gamma ray detectors attached, respectively, fixedly and movably to the at least one rotatable support ring so as to allow the angular displacement between the detectors about a lateral axis to be varied, such that the imaging system is capable of performing a plurality of singe-photon emission computed tomography (SPECT) scans of the object, and such that each SPECT scan can be performed with the angular displacement between the detectors set to any one of a plurality of predetermined magnitudes.
- 15. An imaging system according to claim 14, wherein the plurality of predetermined magnitudes comprises approximately 90 degrees and approximately 180 degrees.
- 16. An imaging system according to claim 14, wherein the plurality of predetermined magnitudes comprises an angle less than 90 degrees.
- 17. An imaging system according to claim 14, wherein each of the first and second gamma ray detectors includes a substantially planar surface, and wherein the imaging system further comprises first and second extended collimators mounted to the first and second detectors, respectively, each of the first and second extended collimators having a collimator surface extending substantially beyond the planar surface of the corresponding detector.
- 18. An imaging system according to claim 14, wherein each of the first and second detectors comprises a beveled edge for reducing mechanical interference between the first and second detectors when the first and second detectors are oriented substantially perpendicular to each other.
- 19. An imaging system according to claim 14, wherein each of the first and second detectors includes a substantially planar surface, and wherein the imaging system further comprises first and second extended collimators mounted to the first and second detectors, respectively, each of the first and second extended collimators having a collimator surface extending substantially beyond the planar surface of the corresponding detector.
- 20. An imaging system according to claim 14, wherein the detectors are movable along a substantially circular path to vary the angular displacement between the detectors.
- 21. An imaging system according to claim 20, wherein the circular path is centered substantially on the lateral axis, and wherein the object is positioned substantially about the lateral axis.
- 22. An imaging system according to claim 20, wherein the circular path is centered substantially about the lateral axis and the object is positioned along the lateral axis, the imaging system further comprising:means for rotating the first and second detectors through the circular path to a plurality of angular stops to acquire the image data; and means for varying the relative position of the object with respect to the first and second detectors, vertically and horizontally with respect to the lateral axis, to substantially minimize the distance between the object and the first and second detectors to each of the plurality of angular stops.
- 23. A gamma camera imaging system for acquiring image data of an object, said system comprising:a gantry; at least one rotatable support ring coupled to the gantry; and first and second gamma ray detectors attached, respectively, fixedly and movably to the at least one rotatable support ring such that the second detector is movable along a circular path so as to allow the angular displacement between the detectors to be adjusted to substantially any magnitude in a range from approximately 90 degrees to 180 degrees.
- 24. A gamma camera imaging system according to claim 23, wherein the circular path is centered on a lateral axis, and wherein the object is positioned substantially about the lateral axis.
- 25. A gamma camera imaging system according to claim 23, wherein each of the first and second gamma ray detectors includes a substantially planar detector surface, and wherein the imaging system further comprises first and second extended collimators mounted to the first and second detectors, respectively, each of the first and second extended collimators having a collimator surface extending substantially beyond the detector surface of the corresponding detector.
- 26. A gamma camera imaging system according to claim 23, wherein the circular path is centered substantially about a lateral axis, the imaging system further comprising:means for rotating the first and second detectors through the circular path to a plurality of angular stops to acquire the image data; and means for varying the relative position of the object with respect to the first and second detectors in a plane perpendicular to the lateral axis to substantially minimize the distance between the object and the first and second detectors at each of the plurality of angular stops.
- 27. A gamma camera imaging system according to claim 23, further comprising first and second support arms mounted to the gantry, the first and second gamma ray detectors being mounted on the first and second support arms, respectively.
- 28. A gamma camera imaging system according to claim 27 wherein the first and second gamma ray detectors are fixedly mounted to the first and second support arms, respectively.
- 29. A gamma camera imaging system for acquiring image data of an object, said system comprising:a gantry; at least one rotatable support ring coupled to the gantry; and first and second gamma ray detectors attached, respectively, fixedly and movably to the at least one rotatable support ring so as to allow the second detector to be movable along a circular path to vary the angular displacement between the detectors from an acute angle to approximately 180 degrees.
- 30. A gamma camera imaging system according to claim 29, wherein the circular path is centered on a lateral axis, and wherein the object is disposed substantially about the lateral axis.
- 31. A gamma camera imaging system according to claim 29, wherein the circular path is centered substantially about a lateral axis and the object is positioned along the lateral axis, the imaging system further comprising:means for rotating the first and second detectors through the circular path to a plurality of angular stops to acquire the image data; and means for varying the relative position of the object with respect to the first and second detectors, vertically and horizontally with respect to the lateral axis, to substantially minimize the distance between the object and the first and second detectors at each of the plurality of angular stops.
- 32. An imaging system, comprising:a gantry; a pair of rotatable members rotatable about and substantially centered on a lateral axis, the rotatable members mechanically coupled to the gantry; a first gamma ray detector fixedly coupled to and disposed between the pair of rotatable members; and a second gamma ray detector movably coupled to and disposed between the pair of rotatable members so as to allow an angular displacement between the first and second detectors about the lateral axis to be varied; wherein each of the first and second gamma ray detectors includes a substantially planar surface, and wherein the imaging system further comprises first and second extended collimators mounted to the first and second detectors, respectively, each of the first and second extended collimators having a collimator surface extending substantially beyond the planar surface of the corresponding detector.
- 33. In an imaging system including a plurality of detectors rotatable about a lateral axis, a method of acquiring image data of an object, wherein the object has a non-circular cross-section at a region of interest of the object, the method comprising: setting an angular displacement between the detectors to one of a plurality of predetermined magnitudes; with the detectors positioned at an angular position about the lateral axis, determining a position of the object relative to the detectors, in which the distance between the object and each of the detectors is a predetermined distance; and using the position determined in said determining to compute a plurality of positions of the object relative to the detectors that maintain the predetermined distance between the object and the detectors for each of a plurality of angular positions of the detectors about the lateral axis.
- 34. A method according to claim 33, wherein the predetermined distance is a minimum distance.
- 35. A method according to claim 33, further comprising:positioning the detectors at each of the plurality of angular positions about the lateral axis; and at each of the plurality of angular positions, configuring the imaging system in the one of the plurality of computed positions of the object relative to the detectors which maintains the predetermined distance between the object and the detectors at said angular position.
- 36. A method of acquiring data to form a SPECT image, the method comprising the steps of:positioning a table supporting a patient along a lateral axis; positioning only first and second detectors, each detector having a substantially planar collimator surface, to point the detectors toward the lateral axis and to orient the detectors at a fixed relative angular displacement about the lateral axis in a range from approximately 180 degrees to approximately 90 degrees, with the collimator surfaces oriented to acquire image data and oriented substantially perpendicular to a plane that is perpendicular to the lateral axis; moving the table to reduce the distance between the body of the patient and the first and second detectors; storing an indication of the position of the table in which the distance between the patient and each of the first and second detectors is reduced to approximately a predetermined distance; utilizing the indication to calculate a plurality of table positions that substantially maintain the predetermined distance between the detectors and the patient for each of a like plurality of angular positions of the detectors; rotating the detectors to the plurality of angular positions; and moving the table to the one of the table positions that substantially maintains the predetermined distance between the patient and the detectors when the detectors are rotated to each of the plurality of angular positions.
- 37. A method according to claim 36, wherein the predetermined distance is a minimum distance.
Parent Case Info
This application is a continuation of U.S. Reissue Patent No. RE 37,474 E, filed on Aug. 21, 1997 and reissued on Dec. 18, 2001, which is a reissue patent of U.S. Pat. No. 5,444,252, filed on Nov. 18, 1993 and issued on Aug. 22, 1995, which is a continuation-in-part of U.S. Pat. No. 6,184,530, filed on May 23, 1991 and issued on Feb. 6, 2001.
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Divisions (1)
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08/154239 |
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09/685983 |
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Continuations (1)
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08/916985 |
Aug 1997 |
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08/154239 |
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Continuation in Parts (1)
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07/704759 |
May 1991 |
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08/916985 |
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Reissues (1)
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08/154239 |
Nov 1993 |
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09/685983 |
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