Claims
- 1. A diagnostic probe suitable for insertion into a blood vessel comprising:
an elongate stem including a proximal end portion and a distal end portion terminating in a coil and having at least a segment thereof biased away from the rotational axis of the probe and having a torque response of no more than about 0.4 ozf in.; a transducer mounted to the coil; a connector at the proximal end portion of the stem; and at least one conductor connecting the transducer to the connector.
- 2. The diagnostic probe of claim 1 wherein an elongate shaping mandrel extends through the coil.
- 3. The diagnostic probe of claim 1 wherein the coil is rotatable relative to the proximal end portion of the stem and the probe further comprises a rotatable actuation shaft extending through the proximal end portion of the stem and operably associated with the coil.
- 4. The diagnostic probe of claim 3 further comprising an actuator adapted for coupling to the proximal end portion of the stem and including a motor operably coupled to the actuation shaft.
- 5. The diagnostic probe of claim 3 wherein the proximal end portion of the stem defines a sheath slidable on the actuation shaft and operably coupled to the coil for allowing the axial reciprocal movement of the coil.
- 6. The diagnostic probe of claim 1 wherein the coil is biased at an angle between about 10° to 90° relative to the longitudinal axis of the stem.
- 7. The diagnostic probe of claim 6 wherein the coil is biased at an angle between about 40° to 60° relative to the longitudinal axis of the stem.
- 8. The diagnostic probe of claim 6 wherein the coil is biased away from the longitudinal axis of the stem.
- 9. The diagnostic probe of claim 6 wherein the coil is biased towards the longitudinal axis of the stem.
- 10. The diagnostic probe of claim 1 wherein the stem includes a mid portion between the proximal end portion and the coil and the flexural rigidity ratio between the proximal end portion and the mid portion and the coil is about 1 to 4,400 to 13,000, respectively.
- 11. The diagnostic probe of claim 1 further comprising a sensor mounted to the coil adjacent to the transducer for measuring an impedance against the blood vessel.
- 12. The diagnostic probe of claim 1 wherein the transducer is adapted to have a measurement response time between about 10 to 100 msec.
- 13. The diagnostic probe of claim 1 wherein the probe is adapted to be withdrawn longitudinally through the blood vessel at a rate of 0.3 to 10 mm/sec.
- 14. The diagnostic probe of claim 1 wherein the probe is adapted to rotate about a longitudinal axis defined by the elongate stem at a rate of between 1 to 100 rpm.
- 15. A device for sensing the profile of a hollow body organ, comprising:
a hollow guidewire having a relaxed bent configuration defining an angle between about 10° to 90° relative to a longitudinal axis of the guidewire, and a contracted configuration; and a sensor connected to the guidewire and moveable therewith, the sensor being displaceable laterally relative to the longitudinal axis of the guidewire when the guidewire is in the relaxed configuration.
- 16. The device of claim 15 further comprising a catheter having a longitudinal axis wherein the hollow guidewire is slidingly disposable therewithin.
- 17. The device of claim 16 wherein the guidewire has the relaxed bent configuration when disposed externally of the catheter and the contracted configuration when disposed internally of the catheter.
- 18. The device of claim 15 wherein the guidewire is bent at an angle between about 40° to 60° relative to the longitudinal axis of the guidewire.
- 19. A diagnostic probe suitable for insertion into a blood vessel comprising a stem including a proximal end portion, a distal end portion and a mid portion therebetween, the ratio of the flexural rigidity of the distal end portion relative to the mid portion and the proximal end portion in the range of 1:(4 to 4,400):(110 to 13,000), respectively.
- 20. The diagnostic probe of claim 19 wherein the ratio of the flexural rigidity of the distal end portion relative to the mid portion and the proximal end portion is 1:4:110, respectively.
- 21. The diagnostic probe of claim 19 wherein the ratio of the flexural rigidity of the distal end portion relative to the mid portion and the proximal end portion is 1:400:1200, respectively.
- 22. The diagnostic probe of claim 19 wherein the ratio of the flexural rigidity of the distal end portion relative to the mid portion and the proximal end portion is 1:4,400:13,000, respectively.
- 23. A system for determining the profile of a hollow body organ comprising:
an elongate stem including a proximal end portion having a connector mounted thereto and a distal end portion having a detector mounted thereto, wherein at least a segment of the distal end portion is biased away from a rotational axis of the stem; a conductor extending through the stem between the detector and the connector; and a processor in communication with the connector.
- 24. The system of claim 23 wherein the detector comprises a transducer.
- 25. The system of claim 23 wherein the connector comprises a plurality of spaced-apart bands of conductive material extending along the proximal end portion of the stem and separated therefrom by a plurality of bands of insulative material.
- 26. The system of claim 25 wherein the stem includes an outer surface and the respective bands of conductive and insulative material are flush with the outer surface of the stem.
- 27. The system of claim 23 further comprising at least one actuator attachable to the proximal end portion of the stem and adapted to provide rotational, axial, or both rotational and axial movement to the stem.
- 28. The system of claim 27 wherein the actuator comprises at least one motor coupled to the stem for providing a torquing force for rotating the stem about the rotational axis.
- 29. The system of claim 27 wherein the actuator comprises a thumbscrew.
- 30. The system of claim 28 wherein the actuator is adapted to rotate about a longitudinal axis defined by the elongate stem at a rate of between 1 to 100 rpm.
- 31. The system of claim 28 wherein a rotatable shaft extends at least partially through the actuator between the motor and the proximal end portion which is operably coupled to the shaft for rotation therewith.
- 32. The system of claim 31 wherein the proximal end portion defines a sheath which is slidable axially in response to the activation of the shaft and is operably coupled to the distal end portion for allowing the axial movement of the distal end portion.
- 33. The system of claim 27 wherein the actuator includes at least one additional motor coupled to the stem for providing an axial force for moving the stem axially.
- 34. The system of claim 33 wherein the actuator is adapted to proximally withdraw the stem at a rate of 0.3 to 10 mm/sec.
- 35. The system of claim 23 further comprising a rotatable chuck member having a proximal end which is adapted to be in communication with the processor, the chuck member defining a lumen at least partially therethrough for receiving the proximal end portion of the stem.
- 36. The system of claim 35 further comprising an intervening connector having a first end and a second end with a length therebetween, wherein the first end is adapted for attachment to the proximal end of the chuck member and the second end is adapted to be in communication with the processor, and wherein the length is adapted to transmit a rotational movement to the stem.
- 37. The system of claim 23 further comprising an intervening connector having a first end and a second end with a length therebetween, wherein the first end is adapted for attachment to the proximal end portion of the stem and the second end is adapted to be in communication with the processor, and wherein the length is adapted to transmit a rotational movement to the stem.
- 38. The system of claim 23 further comprising an amplifier in electrical communication with the proximal end portion of the stem, the amplifier being adapted to rotate about the rotational axis of the stem while amplifying signals received from the detector.
- 39. The system of claim 23 further comprising a controller for controlling the rotational and axial movement of the stem, the controller being in electrical communication with the processor and the connector.
- 40. The system of claim 23 further comprising a pod which is adapted to be uniformly heated or cooled to a predetermined temperature for calibrating the system, the pod being further adapted to receive the detector during the calibration.
- 41. The system of claim 23 wherein the processor comprises a computer.
- 42. The system of claim 23 wherein the processor is in electrical communication with the connector.
- 43. The system of claim 23 wherein the processor is in optical communication with the connector.
- 44. The system of claim 23 further comprising a sensor mounted to the coil adjacent to the detector for measuring an impedance against the hollow body organ.
- 45. The system of claim 23 wherein the detector is adapted to have a measurement response time between about 10 to 100 msec.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation-in-part of U.S. patent application Ser. No. 09/904,212, filed on Jul. 12, 2001.
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
09904212 |
Jul 2001 |
US |
Child |
10146014 |
May 2002 |
US |