Claims
- 1. Endoscopic examining apparatus for examining the interior of a body cavity, comprising:
a probe movable through said body cavity; a coil assembly including a plurality of coils carried by said probe; and a control system for controlling the coils in said assembly to sense and indicate the location and orientation of said probe within said body cavity, and also to image selected areas within said body cavity.
- 2. The apparatus according to claim 1, wherein said coil assembly includes separate a set of imaging coils and a separate set of tracking coils; and wherein said control system controls said tracking coils to sense and indicate the location and orientation of said probe within said body cavity and also controls said imaging coils to image selected areas within said body cavity.
- 3. The apparatus according to claim 2, wherein each of said sets of coils includes at least two orthogonal coils.
- 4. The apparatus according to claim 2, wherein each of said sets of coils includes at least two pairs of orthogonal coils.
- 5. The apparatus according to claim 2, wherein said set of imaging coils includes two pairs of orthogonal coils extending longitudinally of the probe to provide radial sensitivity to the probe, and at least one additional coil extending transversally at the tip of the probe to provide a forward imaging capability to the probe.
- 6. The apparatus according to claim 2, wherein said set of tracking coils includes two pairs of orthogonal coils extending longitudinally of the probe, and a third pair of orthogonal coils extending transversely of the probe to provide three-dimensional sensitivity to the tracking coils.
- 7. The apparatus according to claim 2, wherein each of said tracking coils has a larger number of turns than each of said imaging coils.
- 8. The apparatus according to claim 2, wherein each of said tracking coils is coaxial with one of said imaging coils.
- 9. The apparatus according to claim 2, wherein:
said apparatus is an MRI apparatus having gradient coils for generating gradient electromagnetic fields in an imaging space occupied by the probe within the body cavity; said imaging coils are controlled by said control system for imaging said imaging space; and said tracking coils are controlled by said control system to sense the instantaneous electromagnetic field within said imaging space and, thereby, to indicate the location and orientation of the probe within said body cavity.
- 10. The apparatus according to claim 1, wherein said probe is of a hollow construction and defines a continuous passageway therethrough.
- 11. The apparatus according to claim 1, wherein said coils are carried by at least one planar dielectric substrate which is formed into an annular configuration.
- 12. The apparatus according to claim 11, wherein said dielectric substrate is flexible and is flexed into a cylindrical configuration.
- 13. The apparatus according to claim 1, wherein said coil assembly includes a single set of coils; and wherein said control system includes a tracking sub-system, an imaging sub-system, and a switching circuit for selectively utilizing said single set of coils for sensing and indicating the location and orientation of said probe within said body cavity, and also for imaging selected areas within said body cavity.
- 14. MRI apparatus for examining the interior of a body cavity, comprising:
means for providing a main magnetic field through the body cavity to be examined; a plurality of gradient coils for generating gradient electromagnetic fields within said body cavity; a probe movable through said body cavity and carrying a coil assembly including a plurality of tracking and imaging coils; and a control system for controlling said gradient coils to generate said gradient electromagnetic field and for controlling said coil assembly to sense and indicate the location and orientation of said probe within said body cavity and also to image selected areas within said body cavity.
- 15. The MRI apparatus according to claim 14, wherein said coil assembly includes a set of imaging coils, and a separate set of tracking coils; and wherein said control system controls said tracking coils to sense and indicate the location and orientation of said probe within said body cavity, and controls said imaging coils to image selected areas within said body cavity.
- 16. 13. The MRI apparatus according to claim 15, wherein each of said sets of coils carried by said probe includes at least two orthogonal coils.
- 17. The MRI apparatus according to claim 15, wherein each of said sets of coils carried by said probe includes at least two pairs of orthogonal coils.
- 18. The MRI apparatus according to claim 15, wherein said set of imaging coils carried by said probe includes two pairs of orthogonal coils extending longitudinally of the probe to provide radial sensitivity to the probe, and at least one additional coil extending transversally at the tip of the probe to provide a forward imaging capability to the probe.
- 19. The MRI apparatus according to claim 15, wherein said set of tracking coils carried by said probe includes two pairs of orthogonal coils extending longitudinally of the probe, and a third pair of orthogonal coils extending transversely of the probe to provide three-dimensional sensitivity to the tracking coils.
- 20. The MRI apparatus according to claim 15, wherein said probe and said sets of tracking coils and imaging coils carried thereby, are of a hollow construction and define a continuous passageway therethrough.
- 21. The MRI apparatus according to claim 15, wherein each of said tracking coils has a larger number of turns than each of said imaging coils.
- 22. The MRI apparatus according to claim 15, wherein each of said tracking coils is coaxial with one of said imaging coils.
- 23. The MRI apparatus according to claim 15, wherein said tracking and imaging coils are carried by at least one planar dielectric substrate which is formed into an annular configuration.
- 24. The MRI apparatus according to claim 23, wherein said dielectric substrate is flexible and is flexed into a cylindrical configuration.
- 25. A probe movable within a body cavity for examining the interior of selected areas thereof; said probe comprising:
a set of tracking coils constructed and oriented on said probe to sense the location and orientation of the probe when moved within the body cavity; and a set of imaging coils constructed and oriented to image selected areas within the body cavity.
- 26. The probe according to claim 25, wherein each of said sets of coils includes at least two orthogonal coils.
- 27. The probe according to claim 25, wherein each of said sets of coils includes at least two pairs of orthogonal coils.
- 28. The probe according to claim 25, wherein said set of imaging coils includes two pairs of orthogonal coils extending longitudinally of the probe to provide radial sensitivity to the probe, and at least one additional coil extending transversally at the tip of the probe to provide a forward imaging capability to the probe.
- 29. The probe according to claim 25, wherein said set of tracking coils includes two pairs of orthogonal coils extending longitudinally of the probe, and a third pair of orthogonal coils extending transversely of the probe to provide three-dimensional sensitivity to the tracking coils.
- 30. The probe according to claim 25, wherein said probe is of a hollow construction and defines a continuous passageway therethrough for insertion of a guidewire, for injection of a contrast material, for removal of a tissue sample, or for other purpose.
- 31. The probe according to claim 25, wherein each of said tracking coils has a larger number of turns than each of said imaging coils.
- 32. The probe according to claim 25, wherein each of said tracking coils is coaxial with one of said imaging coils.
- 33. The probe according to claim 25, wherein said tracking and imaging coils are carried by at least one, planar, dielectric substrate which is formed into an annular configuration.
- 34. The probe according to claim 33 wherein said dielectric substrate is flexible and is flexed into a cylindrical configuration.
- 35. A method of making an electrical coil assembly, comprising:
depositing on a planar dielectric substrate a plurality of electrically-conductive deposits in the shape of electrical coils extending parallel to each other along one orthogonal axis of the substrate and spaced from each other along the other orthogonal axis of the substrate; forming said planar dielectric substrate into an annular shape; and joining the opposite edges of the substrate to each other; said plurality of electrically-conductive deposits being configured and located on said planar dielectric substrate such that when said planar dielectric substrate is formed into said annular shape and its opposite ends joined to each other, said plurality of electrically-conductive deposits defining at least two orthogonal electrical coils.
- 36. The method according to claim 35, wherein at least a third orthogonal electrical coil is applied to said electrical coil assembly after the planar dielectric substrate has been formed into said annular shape and its opposite edges joined to each other.
- 37. The method according to claim 35, wherein at least a third orthogonal electrical coil is included in said electrical coil assembly by depositing on said planar dielectric substrate a further electrically-conductive deposit having at least one conductive line extending along said other orthogonal axis of the substrate laterally of said plurality of electrically-conductive deposits; said further electrically-conductive deposit being configured and located so as to define said third orthogonal electrical coil when the planar dielectric substrate has been formed into said annular shape and its opposite ends joined to each other.
- 38. The method according to claim 37, wherein said plurality of electrically-conductive deposits are located and configured on said planar dielectric substrate such as to define two pairs of orthogonal electrical coils.
- 39. The method according to claim 38, wherein said further electrically-conductive deposit is deposited on said planar dielectric substrate on each side of the plurality of electrically-conductive deposits, such as to define a third pair of orthogonal electrical coils straddling the opposite sides of said two pairs of orthogonal electrical coils.
- 40. The method according to claim 35, wherein said planar dielectric substrate is flexible and is flexed into said annular shape.
- 41. The method according to claim 35, for use in making a probe for examining selected areas of a body cavity, wherein said plurality of electrically-conductive deposits are configured and located on said planar dielectric substrate such that when said substrate is formed into said annular shape with its opposite edges joined together, said plurality of electrically-conductive deposits define two sets of said orthogonal electrical coils, one set being configured for use as tracking coils for sensing the location and orientation of the probe within a body cavity, the other set configured for use as imaging coils for imaging selected areas within the body cavity.
- 42. The method according to claim 41, wherein said tracking coils have a larger number of turns than said imaging coils.
- 43. The method according to claim 41, wherein each of said tracking coils is coaxial with one of said imaging coils.
- 44. The method according to claim 41, wherein said electrically-conductive deposits defining said tracking coils are deposited on the same side of said planar dielectric substrate as the electrically-conductive deposits defining said imaging coils.
- 45. The method according to claim 41, wherein said electrically-conductive deposits defining said tracking coils are deposited on the opposite side of said planar dielectric substrate as the electrically-conductive deposits defining said imaging coils.
- 46. The method according to claim 41, wherein said electrically-conductive deposits defining said tracking coils and the electrically-conductive deposits defining said imaging coils are deposited on two layers of said planar dielectric substrate.
RELATED APPLICATIONS
[0001] The present application includes the subject matter, and claims the priority dates, of Provisional Application No. 60/367,481 filed Mar. 27,2002, and Provisional Application No. 60/368,561, filed Apr. 1, 2002, the contents which provisional applications are incorporated herein by reference. The present application is also a continuation-in-part of U.S. patent application Ser. No. 09/762,953, which issued as U.S. Pat. No. 6,516,213 on Feb. 4, 2003, and incorporates herein by reference the entire disclosure of that patent application.
Provisional Applications (2)
|
Number |
Date |
Country |
|
60367481 |
Mar 2002 |
US |
|
60368561 |
Apr 2002 |
US |
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09762953 |
Feb 2001 |
US |
Child |
10394190 |
Mar 2003 |
US |