IP Library Patent Application 17155968
Patent Application
App. No. 17/155,968

ELONGATED SURGICAL MANIPULATOR WITH BODY POSITION AND DISTAL FORCE SENSING

Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US None
App. No.
17/155,968
Abstract

An elongated surgical manipulator apparatus and method of operating enables determination of the shape of a flexible portion of the elongated surgical manipulator and/or the location of an arbitrary point thereon, as well as a measure of a contact force exerted on a distal portion of the manipulator. A plurality of fiber optics are operatively coupled with the manipulator, each of the fiber optics including a plurality of fiber Bragg gratings for determination of the shape and/or position. Each of the fiber optics further includes a fiber optic strain gauge such as a Bragg grating or a Fabry-Perot resonator at a distal portion of the elongated surgical manipulator that is isolated from the strain associated with the bending of the manipulator. The fiber optic strain gauges at the distal portion may thus be used to detect a force vector (magnitude and direction) imposed on the distal portion.

Claims (42)

1 - 16 . (canceled)

17 . A shape sensing manipulator, comprising:

a proximal portion;

a flexing portion distal the proximal portion

a distal portion extending from said flexing portion; and

one or more fiber optics extending through at least said flexing portion, and terminating in said distal portion, wherein the one or more fiber optics includes a plurality of optical fiber strain sensors operatively disposed in the flexible portion and configured and arranged to sense the shape of at least the flexing portion of the manipulator.

18 . The shape sensing manipulator of claim 17 , wherein the plurality of optical fiber strain sensors are fiber Bragg gratings disposed along a length of the flexing portion, and each of the plurality of fiber Bragg gratings configured and arranged to sense a localized shape of said flexing portion.

19 . The position sensing manipulator of claim 17 , the one or more fiber optics further includes at least one temperature sensor operatively coupled with said distal portion; and

wherein said at least one temperature sensor includes a fiber Bragg grating.

20 . The shape sensing manipulator of claim 17 further including

an electromagnetic source adapted for connection with said one or more fiber optics, the electromagnetic source configured and arranged to deliver electromagnetic radiation to the plurality of optical fiber strain sensors;

a receiver operatively coupled to said one or more fiber optics for detection of electromagnetic radiation reflected from the plurality of optical fiber strain sensors; and

a microprocessor operatively coupled with said electromagnetic source and said receiver, the microprocessor configured and arranged to control said electromagnetic source and said receiver.

21 . The shape sensing manipulator of claim 20 , wherein the plurality of optical fiber strain sensors are fiber Bragg gratings, and each of the fiber Bragg gratings are configured and arranged to reflect a distinct central wavelength in an unstrained state; and

the microprocessor is further configured and arranged to analyze the electromagnetic radiation received by the receiver and to identify the state of each of the fiber Bragg gratings along each of the one or more fiber optics by wavelength division multiplexing.

22 . The shape sensing manipulator of claim 20 , wherein the receiver is an optical frequency-domain reflectometer, and the electromagnetic source is further configured and arranged to operate as a swept wavelength source

23 . The shape sensing manipulator of claim 22 , wherein the plurality of optical fiber strain sensors are fiber Bragg gratings, and each of the fiber Bragg gratings is spaced a unique distance from a reflector operatively coupled with the fiber optic, each of the fiber Bragg gratings combines with the reflector to form an interferometer with a unique optical-path difference, each of the interferometers are configured and arranged in response to interrogation from the electromagnetic source to modulate the reflected components of each grating with a unique frequency that is directly dependent on the path difference.

24 . The shape sensing manipulator of claim 17 , wherein the distal portion includes a yoke portion, and the one or more fiber optics are operatively coupled to the yoke portion; and

the shape sensing manipulator further includes a steering mechanism operatively coupled with said yoke portion and extending through said flexing portion, the steering mechanism configured and arranged for manipulation of said flexing portion.

25 . A position sensing manipulator, comprising:

a base;

a flexing portion extending from said base and defining a longitudinal axis, wherein the flexing portion comprises an elongate flexible body between the base and a distal portion;

the distal portion extending from said flexing portion;

a plurality of fiber Bragg gratings disposed in said flexing portion for determination of a shape of said flexing portion and a location of said distal portion; and

wherein said plurality of fiber Bragg gratings are operatively coupled to one or more fiber optics routed along a length of said flexing portion and parallel to a longitudinal axis of the flexing portion, said one or more fiber optics being arranged so that said plurality of fiber Bragg gratings are positioned into groups of three or more fiber Bragg gratings substantially centered at a corresponding location along said longitudinal axis.

26 . The position sensing manipulator of claim 25 , further including at least one temperature sensor operatively coupled with said distal portion.

27 . The position sensing manipulator of claim 26 , wherein said at least one temperature sensor includes a fiber Bragg grating.

28 . The position sensing manipulator of claim 25 , wherein the plurality of fiber Bragg gratings include a spacing configured to facilitate shape determination of the flexing portion.

29 . The position sensing manipulator of claim 25 , further including

an electromagnetic source adapted for connection with a distal end of the one or more fiber optics, the electromagnetic source configured and arranged to deliver electromagnetic radiation to the plurality of fiber Bragg gratings;

a receiver operatively coupled to the one or more fiber optics for detection of electromagnetic radiation reflected from the plurality of fiber Bragg gratings; and

a microprocessor operatively coupled with said electromagnetic source and said receiver, the microprocessor configured and arranged to control said electromagnetic source and said receiver.

30 . The shape sensing manipulator of claim 29 , wherein each of the fiber Bragg gratings are configured and arranged to reflect a distinct central wavelength in an unstrained state; and

the microprocessor is further configured and arranged to analyze the electromagnetic radiation received by the receiver and to identify the state of each of the fiber Bragg gratings by wavelength division multiplexing.

31 . The shape sensing manipulator of claim 30 , wherein the receiver is an optical frequency-domain reflectometer, and the electromagnetic source is further configured and arranged to operate as a swept wavelength source.

32 . A catheter for use in a medical procedure comprising:

an elongate body configured to be introduced into a patient during the medical procedure, the elongate body including a flexing portion and a deformable distal portion;

means for determining a shape of said flexing portion; and

a fiber optic extending through at least a portion of the elongated body, where the means for determining the shape are coupled along a length of the fiber optic.

33 . The catheter for use in a medical procedure of claim 32 , wherein the fiber optic is routed multiple times along a length of said elongate body, and the means for determining a shape of said flexing portion are arranged in triplets, each of said triplets being substantially centered at a corresponding location along said longitudinal axis.

34 . The catheter for use in a medical procedure of claim 32 , further including at least one temperature sensor operatively coupled with said deformable distal portion; and

wherein said at least one temperature sensor includes a fiber Bragg grating.

Assignments (4)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 24, 2022
From: LEO, GIOVANNI
To: ENDOSENSE SA
Reel/Frame 059388/0538 →
CHANGE OF NAME Recorded Mar 24, 2022
From: ENDOSENSE SA
To: ST. JUDE MEDICAL GVA SÀRL
Reel/Frame 059388/0588 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 24, 2022
From: ST. JUDE MEDICAL GVA SÀRL
To: ST. JUDE MEDICAL LUXEMBOURG HOLDING S.À.R.L.
Reel/Frame 059388/0628 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 24, 2022
From: ST. JUDE MEDICAL LUXEMBOURG HOLDING S.À R.L.
To: ST JUDE MEDICAL INTERNATIONAL HOLDING S.À R.L.
Reel/Frame 059388/0688 →