Claims
- 1. An electrophysiology catheter having a proximal end and a distal end, a first generally hollow electrode member at the distal end, the first electrode having a generally cylindrical sidewall and a dome shaped distal end, and a second electrode spaced proximally from the first electrode, and a magnet member at least partially within the hollow electrode member.
- 2. The electrophysiology catheter according to claim 1 wherein the magnet member is a permanent magnet.
- 3. The electrophysiology catheter according to claim 1 wherein the magnet member is a permeable magnet material.
- 4. The electrophysiology catheter according to claim 1 wherein the magnet is sufficient size and strength to align the distal end of the electrophysiology catheter inside the body of a patient with an externally applied magnetic field.
- 5. The electrophysiology catheter according to claim 4 wherein the magnet member is a permanent magnet.
- 6. The electrophysiology catheter according to claim 4 wherein the magnet member is a permeable magnet material.
- 7. The electrophysiology catheter according to claim 1 wherein the magnet is sufficient size and strength to align the distal end of the electrophysiology catheter inside the body of a patient with an externally applied magnetic field of at least 0.1 T.
- 8. The electrophysiology catheter according to claim 7 wherein the magnet member is a permanent magnet.
- 9. The electrophysiology catheter according to claim 7 wherein the magnet member is a permeable magnet material.
- 10. The electrophysiology catheter according to claim 1 wherein the magnet member is substantially entirely within the hollow electrode member.
- 11. The electrophysiology catheter according to claim 1 wherein the first electrode has a plurality of openings in its distal end, and wherein the magnet has a passage therethrough for conducting fluid from the catheter to the distal end of the first electrode where it can exit the first electrode through the plurality of openings in the distal end.
- 12. The electrophysiology catheter according to claim 11 wherein the magnet member is a permanent magnet.
- 13. The electrophysiology catheter according to claim 11 wherein the magnet member is a permeable magnet material.
- 14. An improved electrophysiology catheter of the type having a generally hollow electrode member at its distal end, the first electrode member having a generally cylindrical sidewall and a dome shaped distal end, the improvement comprising a magnet member at least partly within the generally hollow electrode, the magnet of sufficient size and strength to align the first electrode inside a patient's body.
- 15. The electrophysiology catheter according to claim 14 wherein the magnet member is substantially entirely within the hollow electrode member.
- 16. The electrophysiology catheter according to claim 15 wherein the first electrode has a plurality of openings in its distal end, and wherein the magnet has a passage therethrough for conducting fluid from the catheter to the distal end of the first electrode where it can exit the first electrode through the plurality of openings in the distal end.
- 17. The electrophysiology catheter according to claim 15 wherein the magnet member is a permanent magnet.
- 18. The electrophysiology catheter according to claim 15 wherein the magnet member is a permeable magnet material.
- 19. An improved electrophysiology catheter of the type having a generally hollow electrode member at its distal end, the first electrode member having a generally cylindrical sidewall and a dome shaped distal end, the improvement comprising a magnet member at least partly within the generally hollow electrode, the magnet of sufficient size and strength to align the first electrode inside a patient's body with an externally applied magnetic field of at least about 0.1T.
- 20. The electrophysiology catheter according to claim 19 wherein the first electrode has a plurality of openings in its distal end, and wherein the magnet has a passage therethrough for conducting fluid from the catheter to the distal end of the first electrode where it can exit the first electrode through the plurality of openings in the distal end.
- 21. The electrophysiology catheter according to claim 19 wherein the magnet member is substantially entirely within the hollow electrode member.
- 22. The electrophysiology catheter according to claim 21 wherein the magnet member is a permanent magnet.
- 23. The electrophysiology catheter according to claim 21 wherein the magnet member is a permeable magnet material.
- 24. A method of navigating an electrophysiology catheter of the type having a generally hollow electrode member at its distal end, the method comprising providing a magnet member at least partly within the hollow electrode member, and applying a magnetic field from a source magnet outside the body to the magnet member inside the hollow electrode member to orient the distal end of the electrophysiology catheter in a desired direction.
- 25. The method according to claim 24 wherein the magnet member is substantially entirely within the hollow electrode member
- 26. The method according to claim 24 wherein the generally hollow electrode has a plurality of openings in its distal end, and wherein the magnet member has a passage therethrough for conducting fluid from the catheter to the distal end of the first electrode where it can exit the first electrode through the plurality of openings in the distal end, and further comprising the step of ejecting coolant through the openings in the electrode.
- 27. An electrophysiology catheter having proximal end and a distal end, at least one electrode adjacent the distal end, a lead wire extending proximally from the at least one electrode, a magnetically responsive element in the distal end portion of the catheter, the catheter having at least two sections of different flexibility, each section being more flexible than the next most proximal section so that the flexibility of the catheter increases from the proximal end to the distal end.
- 28. The electrophysiology catheter according to claim 1 further comprising a temperature sensor adjacent the distal end of the catheter for sensing the temperature at the distal end of the catheter.
- 29. The electrophysiology catheter according to claim 28 wherein the temperature sensor is mounted on an electrode and senses the temperature of the electrode.
- 30. The electrophysiology catheter according to claim 27 further comprising a sleeve defining an annular space opening adjacent the distal end of the catheter for delivering irrigating fluid to the distal end of the catheter.
- 31. The electrophysiology catheter according to claim 27 wherein the at least one electrode includes an end electrode having a plurality of longitudinally extending grooves, and further comprising an external sleeve defining an annular space terminating at the end electrode, the grooves in the end electrode and the sleeve defining a plurality of channels for ejecting irrigating fluid conducted in the annular space.
- 32. The electrophysiology catheter according to claim 27 further comprising at least one localization coil adjacent the distal end of the catheter, and two lead wires extending proximally from the coil.
- 33. The electrophysiology catheter according to claim 27 wherein the at least one electrode includes a hollow end electrode on the distal end of the catheter, having a plurality of openings therein, and wherein the magnetically responsive element is located at least partially in end electrode and has at least one passage therein for the passage of irrigating fluid to allow irrigating fluid to be delivered from the openings in the end electrode.
- 34. The electrophysiology catheter according to claim 33 wherein the at least one passage in the magnetic element comprises a generally axially extending passage in the magnetically responsive element.
- 35. The electrophysiology catheter according to claim 33 wherein the at least one passage in the magnetic element comprises at least one longitudinally extending groove in the exterior of the magnetically responsive element.
- 36. An improved electrophysiology catheter of the type having a generally hollow electrode member at its distal end, the first electrode member having a generally cylindrical sidewall and a dome shaped distal end, the improvement comprising a magnet member at least partly within the generally hollow electrode, the magnet of sufficient size and strength to align the first electrode inside a patient's body with an externally applied magnetic field, and having an axial bore therethrough, defining a flow path for cooling fluid distally through the central bore, and proximally between the interior of the hollow electrode member and the exterior of portion of the magnet member inside the hollow electrode member.
- 37. The improved electrophysiology catheter according to claim 36 further comprising at least one opening in the hollow electrode member proximal to the distal most portion of the magnet member inside the hollow electrode member.
- 38. An electrophysiology catheter having a proximal and a distal end, a first generally hollow electrode member at the distal end, the first electrode having a generally cylindrical sidewall and a dome shaped distal end, and a plurality of ring electrodes spaced proximally for the first electrode, and a magnet member at least partially within the hollow electrode member.
- 39. The electrophysiology catheter of claim 38 further comprising a temperature sensor attached to the fist electrode to sense the tip temperature.
- 40. The electrophysiology catheter of claim 38 wherein the magnet member substantially fills the space within the first hollow electrode.
- 41. The electrophysiology catheter of claim 40 in which electrical leads extend through a hole in the magnet to the first electrode tip.
- 42. The electrophysiology catheter of claim 38 in which the magnet member is of sufficient size and strength to align the distal end of the electrophysiology catheter inside the body of a patient with an externally applied magnetic filed of at least 0.06 Tesla.
- 43. The electrophysiology catheter of claim 42 in which the magnet is a permanent magnet with energy product greater than 50 megaGaussOrsteads.
- 44. The electrophysiology catheter of claim 38 in which the magnet is of sufficient size and strength to align the distal end of the electrophysiology catheter inside the body of a patient with an externally applied magnetic filed of at least 0.08 Tesla.
- 45. The electrophysiology catheter of claim 38 wherein the first electrode has a plurality of openings, and wherein the magnet has a passage therethrough for conducing fluid from the catheter to the inside of the first electrode, where it can exit the first electrode through the plurality of openings.
- 46. The electrophysiology catheter of claim 38 in which the plurality of openings are on the side wall of the first electrode.
- 47. The electrophysiology catheter of claim 46 having plurality of openings equally spaced around the circumference of the first electrode.
- 48. The electrophysiology catheter of claim 46 in which the distal end of the magnet is proximate the proximal end of the first electrode.
- 49. The electrophysiology catheter of claim 46 in which the distal end of the magnet is a dome shape and the fluid passes between the inside surface of the first electrode and the outside surface of the magnet to openings at the proximal end of the first electrode.
- 50. The electrophysiology catheter of claim 46 in which fluid flow rates of at least 5 ml/min is achieved using an applied fluid pressure of less than 50 pounds per square inch.
- 51. The electrophysiology catheter of claim 8 in which fluid flow rates of at least 5 ml/min is achieved using an applied fluid pressure of less than 15 pounds per square inch.
- 52. The electrophysiology catheter of claim 38 wherein the ring electrodes have longitudinal slots therein to interfere
- 53. An electrophysiology catheter having a proximal and a distal end, a first generally hollow electrode member at the distal end, the first electrode having a generally cylindrical sidewall and a dome shaped distal end, and a plurality of ring electrodes spaced proximally for the first electrode, and a magnet member at least partially within the hollow electrode member.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application is a continuation of U.S. patent application Ser. No. 10/142,252, filed May 9, 2002, which is a continuation-in-part application of U.S. patent application Ser. No. 09/840,311, filed Apr. 23, 2001, now U.S. Pat. No. 6,662,034, issued Dec. 9, 2003, which is a continuation-in-part application of U.S. patent application Ser. No. 09/771,954, filed Jan. 29, 2001, the disclosures of all of which are incorporated herein by reference.
Continuations (1)
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Number |
Date |
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Parent |
10142252 |
May 2002 |
US |
Child |
10865038 |
Jun 2004 |
US |
Continuation in Parts (2)
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Number |
Date |
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Parent |
09840311 |
Apr 2001 |
US |
Child |
10142252 |
May 2002 |
US |
Parent |
09771954 |
Jan 2001 |
US |
Child |
09840311 |
Apr 2001 |
US |