Claims
- 1. An imaging system for imaging portions of small-animals, comprising:
a plurality of elongated rails, the plurality of elongated rails including a first rail and a second rail, each rail having a proximal end, a spaced distal end, and a longitudinal axis, the proximal end of the first rail positioned proximate a first edge of the second rail intermediate the proximal end and distal end of the second rail, the longitudinal axis of the first rail at an angle with respect to the longitudinal axis of the second rail; a scanhead assembly having a mount, the mount having a scanhead assembly base member that is selectively mounted onto the first rail and is constructed and arranged for movement in a linear bi-directional manner along the longitudinal axis of the first rail; and a small-animal mount assembly having a mount subassembly, the mount subassembly having a mount assembly base member that is selectively mounted onto the second rail and is constructed and arranged for movement in a linear bi-directional manner along the longitudinal axis of the second rail.
- 2. The imaging system of claim 1, wherein the plurality of elongated rails includes a third rail, the proximal end of the third rail positioned proximate a second edge of the second rail intermediate the proximal end and distal end of the second rail, the longitudinal axis of the third rail substantially coaxial to the longitudinal axis of the first rail.
- 3. The imaging system of claim 2, further comprising a needle injection assembly comprising an injections assembly base member that is selectively mounted onto the third rail and is constructed and arranged for movement in a linear bi-directional manner along the longitudinal axis of the third rail.
- 4. The imaging system of claim 1, wherein the scanhead assembly further comprises a scanhead unit having an operative emitting end, the scanhead unit being electrically coupled to a computer.
- 5. The imaging system of claim 4, wherein the mount further comprises:
an elongate upright member connected to and extending from the scanhead assembly base member, the upright member having an exterior surface and a longitudinal axis extending substantially normal to the scanhead assembly base member; a cantilever beam having a first end and a spaced second end, the second end having a sleeve member constructed and arranged for linear bi-directional movement along the exterior surface of the upright member, the sleeve member having a beam lock mechanism for selectively securing the sleeve member at a desired position on the upright member; and a scanhead unit orientation control mechanism connected to a portion of the first end of the beam and a portion of the scanhead unit, the scanhead unit orientation control mechanism constructed and arranged for positioning the emitting end of the scanhead unit in a desired image plane.
- 6. The imaging system of claim 1, wherein the small-animal mount assembly further comprises a table subassembly having a table member, the table member having a top surface, a bottom surface, and defining a table plane.
- 7. The imaging system of claim 6, wherein the mount subassembly further comprises:
a planar platform having an upper surface and a lower surface and defining a first axis parallel to the longitudinal axis of the second rail and a second axis normal to the first axis, the platform further defining a platform plane defined by the first axis and the second axis; and a platform adjustment mechanism constructed and arranged for moving the platform in the platform plane, the platform adjustment mechanism having a platform base and an adjustable armature, the platform base being connected to a portion of a top surface of the mount assembly base member and the armature being connected to a portion of an edge of the platform.
- 8. The imaging system of claim 7, wherein the lower surface of the platform overlies and rests on the top surface of the mount assembly base member.
- 9. The imaging system of claim 8, wherein the upper surface and the lower surface of the platform are coated with a low-friction material.
- 10. The imaging system of claim 8, wherein platform and the top surface of the mount assembly base member are positioned in parallel planes.
- 11. The imaging system of claim 7, wherein the mount subassembly further comprises a table orientation control mechanism selectively positioned onto a portion of the upper surface of the planar platform, the table orientation control mechanism constructed and arranged for adjusting the table plane of the table member.
- 12. The imaging system of claim 11, wherein the orientation control mechanism includes:
a housing having a top and a bottom; and a magnetic lock housed partially within the housing and having a movable magnet, the magnetic lock movable from a retracted, non-engaged, position to an engaged position in which the magnet is brought into attractive contact with the upper surface of the platform.
- 13. The imaging system of claim 11, wherein the orientation control mechanism includes:
a bearing housed within the housing; an upright shaft member engaged to the bearing such that the shaft member can be selectively rotated about an upright axis; and a coarse height mechanism constructed and arranged for selective bi-directional movement of the upright shaft member along the upright axis.
- 14. The imaging system of claim 13, wherein the orientation control mechanism includes:
a brake surface connected to the shaft member; and a rotation control mechanism constructed and arranged for selectively engaging the brake surface.
- 15. The imaging system of claim 14, wherein the orientation control mechanism includes:
a movable cap movably connected to an upper portion of the shaft member; and a fine height control mechanism constructed and arranged for selective bi-directional movement of the movable cap relative to a top of the shaft member along the upright axis.
- 16. The imaging system of claim 15, wherein the orientation control mechanism includes:
a first tilt control mechanism operatively connected to the top of the movable cap, the first tilt control mechanism having a top surface; and a second tilt control mechanism operatively connected to the top surface of the first tilt control mechanism and operatively connected to the bottom surface of the table member, wherein the first tilt control mechanism is constructed and arranged for selectively adjusting and securing the tilt of the table member relative to the y-axis of the table plane, and wherein the second tilt control mechanism is constructed and arranged for selectively adjusting and securing the tilt of the table member relative to the x-axis of the table plane.
- 17. The imaging system of claim 6, wherein the table subassembly includes: a control apparatus; and
at least one ECG control pad, the at least one ECG control pad attached to the top surface of the table member and electrically coupled to the control apparatus, each ECG pad generating, to the control apparatus, an ECG signal representative of a sensed ECG of a portion of the small animal disposed thereon the ECG pad.
- 18. The imaging system of claim 17, wherein the table subassembly further includes
at least one grid of electronic heating elements disposed onto the top surface of the table member.
- 19. The imaging system of claim 18, wherein the table subassembly further includes a thermocouple connected to the top surface of the table member and electrically coupled to the control apparatus, the thermocouple generating, to the control apparatus, a temperature signal representative of the temperature proximate the thermocouple.
- 20. The imaging system of claim 19, wherein the table subassembly further includes a rectal temperature probe electrically coupled to the control apparatus, the rectal temperature probe generating, to the control apparatus, an internal temperature signal representative of the sensed internal temperature of the small animal.
- 21. The imaging system of claim 6, wherein the table subassembly further includes:
a dish having a peripheral wall; a dish support mechanism having an arm member and a fastener, the arm member having an upper portion and a lower portion, the upper portion of the arm member constructed and arranged for selectively clamping onto a portion of the wall of the dish, the lower portion of the arm member defining an elongate slot, wherein, in use, the fastener passes through the slot and selectively secures a portion of the lower portion of the arm member to an edge of the table member.
- 22. The imaging system of claim 6, wherein the table subassembly includes:
a small animal mask shaped and sized for fit onto a portion of the snout of the small animal; and a clamp member secured to a portion of the top surface of the table member, the clamp member constructed and arranged for grasping a portion of the small animal mask.
- 23. The imaging system of claim 3, wherein the needle injection assembly further includes:
an injector subassembly, the injector subassembly having an injector unit that has an elongated needle; and a carriage subassembly connected to the needle injection assembly base member, the injector unit connected to a portion of the carriage subassembly, the carriage subassembly constructed and arranged for positioning the needle in a desired needle plane.
- 24. The imaging system of claim 23, wherein the needle injection assembly includes an articulating armature assembly, wherein the articulating armature assembly includes a plurality of cooperative arm members that has a seat connected to a distal portion of the plurality of cooperative arm members, the injector unit being operatively mounted to the seat, and wherein the articulating armature assembly is constructed and arranged for rotating the injector unit about a distal end of the needle in the desired needle plane to a desired angle of penetration of the needle relative to an upright axis.
- 25. The imaging system of claim 24, wherein the injector subassembly further includes a needle insertion mechanism constructed and arranged for controlling the extension and retraction of the injector unit relative to the seat.
- 26. An imaging system for imaging portions of small-animals, comprising:
a plurality of elongated rails, the plurality of elongated rails including a first rail and a second rail, each rail having a proximal end, a spaced distal end, and a longitudinal axis, the proximal end of the first rail positioned proximate a first edge of the second rail intermediate the proximal end and distal end of the second rail, the longitudinal axis of the first rail at an angle with respect to the longitudinal axis of the second rail; a scanhead assembly selectively mounted onto the first rail and constructed and arranged for movement in a linear bi-directional manner along the longitudinal axis of the first rail; and a small-animal mount assembly selectively mounted onto the second rail and constructed and arranged for movement in a linear bi-directional manner along the longitudinal axis of the second rail.
- 27. The imaging system of claim 26, wherein the plurality of elongated rails includes a third rail, the proximal end of the third rail positioned proximate a second edge of the second rail intermediate the proximal end and distal end of the second rail, the longitudinal axis of the third rail substantially coaxial to the longitudinal axis of the first rail.
- 28. The imaging system of claim 27, further comprising a needle injection assembly selectively mounted onto the third rail and constructed and arranged for movement in a linear bi-directional manner along the longitudinal axis of the third rail.
- 29. An imaging system for imaging portions of small-animals, comprising:
a plurality of elongated rails, the plurality of elongated rails including a first rail, a second rail, and a third rail, each rail having a proximal end, a spaced distal end, and a longitudinal axis, the proximal end of the first rail being positioned proximate a first edge of the second rail intermediate the proximal end and distal end of the second rail, the proximal end of the third rail being positioned proximate a second edge of the second rail intermediate the proximal end and distal end of the second rail, the longitudinal axis of the third rail substantially coaxial to the longitudinal axis of the first rail and the first rail at an angle with respect to the longitudinal axis of the second rail; a scanhead assembly having a scanhead assembly base member that is selectively mounted onto the first rail and is constructed and arranged for movement in a linear bi-directional manner along the longitudinal axis of the first rail; a small-animal mount assembly having a mount assembly base member that is selectively mounted onto the second rail and is constructed and arranged for movement in a linear bi-directional manner along the longitudinal axis of the second rail; and a needle injection assembly having an injection assembly base member that is selectively mounted onto the third rail and is constructed and arranged for movement in a linear bi-directional manner along the longitudinal axis of the third rail.
- 30. The imaging system of claim 29, further comprising at least one moveable stop, each movable stop mounted onto one rail and constructed and arranged for movement in a linear bi-directional manner along the longitudinal axis of the rail, each movable stop having a stop clamping mechanism constructed and arranged for selectively fixing the position of the movable stop relative to the rail.
- 31. The imaging system of claim 30, wherein one movable stop of the at least one moveable stop is mounted to the first rail intermediate the proximal end of the first rail and the scanhead assembly base member mounted thereon the first rail.
- 32. The imaging system of claim 30, wherein one movable stop of the at least one moveable stop is mounted to the first rail intermediate the proximal end of the first rail and the scanhead assembly base member mounted thereon the first rail.
- 33. The imaging system of claim 30, wherein the scanhead assembly further comprises:
a scanhead unit having an operative emitting end; and means for orienting the operative emitting end into a desired image plane.
- 34. The imaging system of claim 30, wherein the small-animal mount assembly further comprises:
a table member defining a table plane; and means for orienting the table member so that the table plane of the table member is positioned in a desired table plane.
- 35. The imaging system of claim 30, wherein the needle injection assembly further comprises:
a needle having a distal end and a longitudinal length; and means for orienting the needle into a desired needle plane.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims priority to and the benefit of U.S. Provisional Application No. 60/417,167, entitled “GUIDED INJECTED RAIL SYSTEM,” (attorney docket No. 00518-0008), filed on Oct. 10, 2002; U.S. Provisional Application No. 60/468,959, entitled “GUIDED INJECTION RAIL SYSTEM,” (attorney docket No. T00518-0008-USP2), filed on May 9, 2003; U.S. Provisional Application No. 60/417,185, entitled “SMALL ANIMAL SURGICAL INTERVENTION PLATFORM,” (attorney docket No. T00518-0009), filed on Oct. 10, 2002; and U.S. Provisional Application No. 60/468,960, entitled “SMALL ANIMAL SURGICAL INTERVENTION APPARATUS,” (attorney docket No. T00518-0009-USP2), filed on May 9, 2003, all of which are incorporated in their entirety in this document by reference.
Provisional Applications (4)
|
Number |
Date |
Country |
|
60417167 |
Oct 2002 |
US |
|
60468959 |
May 2003 |
US |
|
60417185 |
Oct 2002 |
US |
|
60468960 |
May 2003 |
US |