Medical device with multi-core fiber for optical sensing

US11445937B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-11445937-B2
Application numberUS-201715400655-A
CountryUS
Kind codeB2
Filing dateJan 6, 2017
Priority dateJan 7, 2016
Publication dateSep 20, 2022
Grant dateSep 20, 2022

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  4. Key dates

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  5. First independent claim

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  6. CPC / IPC classifications

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  7. Citations and related patents

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Abstract

Official abstract text for this publication.

A medical device, system, and method having a flexible shaft and a multi-core fiber within the flexible shaft. The multi-core fiber includes a plurality of optical cores dedicated for shape sensing sensors, and a plurality of optical cores dedicated for force sensing sensors. A medical device flexing structure assembly can comprise a multi-core fiber comprising a plurality of cores, and a flexing structure comprising at least one slot. Each of the plurality of cores can comprise a fiber Bragg grating, and the flexing structure can be configured to bend in response to a force imparted on the flexing structure.

First claim

Opening claim text (preview).

What is claimed is: 1. A medical device flexing structure assembly, comprising: a multi-core fiber comprising a plurality of cores and a distal end, wherein each of the cores extends from a proximal end to a distal portion of the multi-core fiber; a flexing structure comprising at least one slot and a central axis, wherein the flexing structure is configured to bend in response to an external force; and an electrode adjacent a distal end of the flexing structure, wherein the electrode comprises a longitudinally extending inner wall and a distal end wall perpendicular to the inner wall, wherein the inner wall and the distal end wall defines a cavity, wherein each of the plurality of cores comprises a fiber Bragg grating, wherein the distal end of the multi-core fiber is disposed within the cavity and in contact with the distal end wall of the electrode along the central axis, wherein the multi-core fiber is held in tension with the electrode; wherein at least one of the fiber Bragg gratings of the plurality of cores is disposed within the cavity and spaced from the distal end wall of the electrode along the central axis, and wherein the flexing structure is configured to bend in response to a force imparted on the flexing structure. 2. The medical device according to claim 1 , wherein the plurality of cores comprises four cores. 3. The medical device according to claim 2 , wherein one of the four cores is configured for temperature compensation. 4. The medical device according to claim 1 , wherein at least one of the plurality of cores is configured for shape sensing. 5. The medical device according to claim 1 , wherein at least one of the plurality of cores is configured for sensing the force imparted on the flexing structure. 6. The medical device according to claim 1 , wherein the inner cavity is configured to fill with a flowed irrigant, wherein the multi-core fiber disposed within the cavity is configured to be immersed within the flowed irrigant. 7. A surgical catheter, comprising: a catheter tip assembly coupled to a distal end of a catheter body, wherein the catheter tip assembly comprises a catheter tip, a flexing structure and a multi-core fiber, wherein the catheter tip comprises a longitudinally extending inner wall and a distal end wall perpendicular to the inner wall, wherein the inner wall and the distal end wall defines a cavity, wherein the multi-core fiber comprises a plurality of cores and a distal end, wherein at least one of the plurality of cores comprises a fiber Bragg grating, and wherein each of the cores of the plurality of cores extends from a proximal end to a distal portion of the multi-core fiber, and wherein a proximal end of the catheter tip is coupled to a distal end of the flexing structure, wherein a distal portion of the multi-core fiber passes through an interior portion of the flexing structure, wherein the distal end of the multi-core fiber is disposed within the cavity of the catheter tip and the distal end of the multi-core fiber is in contact with the distal end wall of the catheter tip, wherein the fiber Bragg grating is disposed within the cavity and is spaced from the distal end of the inner wall of the cavity along the central axis, and wherein the flexing structure is configured to bend in response to a force imparted on the catheter tip. 8. The surgical catheter of claim 7 , wherein the catheter tip comprises a plurality of irrigation ports. 9. The surgical catheter of claim 7 , wherein each of the plurality of cores comprises at least one fiber Bragg grating. 10. The surgical catheter of claim 9 , wherein each of the plurality of cores comprises a plurality of fiber Bragg gratings. 11. A surgical catheter, comprising: a catheter tip assembly coupled to a distal end of a catheter body, wherein the catheter tip assembly comprises an electrode, a ferrule, and a multi-core fiber, wherein the electrode comprises a longitudinally extending inner wall and a distal end wall perpendicular to the inner wall, and wherein the multi-core fiber comprises a plurality of cores and a distal end, wherein each of the plurality of cores extends from a proximal end to a distal portion of the multi-core fiber, wherein at least one of the plurality of cores comprises a fiber Bragg grating, and wherein a proximal end of the electrode is coupled to a distal end of the ferrule, wherein a distal portion of the multi-core fiber passes through an interior portion of the ferrule, wherein the distal end of the multi-core fiber is disposed within the electrode and is in contact with a surface of the distal end wall of the electrode, wherein the fiber Bragg grating is disposed within the electrode and is spaced apart from the distal end wall of the electrode, and wherein the electrode is configured to bend in response to a force imparted on the catheter tip. 12. The surgical catheter of claim 11 , wherein the electrode is configured to be compressed axially. 13. The surgical catheter of claim 11 , wherein the electrode is configured to swivel angularly. 14. The surgical catheter of claim 11 , wherein the catheter tip assembly further comprises an encasement tube surrounding a distal portion of the multi-core fiber. 15. The surgical catheter of claim 14 , wherein the multi-core fiber and the encasement tube are have a length/diameter ratio that is configured to be short enough that bucking is precluded under axial compression. 16. The surgical catheter of claim 15 , wherein the encasement tube comprises a thin wall at a first axial position of the encasement member and a thick wall at a second axial position of the encasement member. 17. The surgical catheter of claim 11 , wherein at least one of the plurality of cores is configured for shape sensing. 18. The surgical catheter of claim 11 , wherein at least one of the plurality of cores is configured for temperature compensation. 19. The surgical catheter of claim 11 , wherein the electrode comprises at least one deformation mechanism. 20. The surgical catheter of claim 19 , wherein the deformation mechanism is configured to allow the electrode to deform with a spring constant.

Assignees

Inventors

Classifications

  • Bioelectrical parameters, e.g. ECG, EEG · CPC title

  • with movable mechanical means, e.g. pull wires · CPC title

  • using shape-sensors, e.g. fiber shape sensors with Bragg gratings · CPC title

  • Deformable electrodes · CPC title

  • with feedback, i.e. closed loop control · CPC title

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What does patent US11445937B2 cover?
A medical device, system, and method having a flexible shaft and a multi-core fiber within the flexible shaft. The multi-core fiber includes a plurality of optical cores dedicated for shape sensing sensors, and a plurality of optical cores dedicated for force sensing sensors. A medical device flexing structure assembly can comprise a multi-core fiber comprising a plurality of cores, and a flexi…
Who is the assignee on this patent?
St Jude Medical Int Holding Sarl
What technology area does this patent fall under?
Primary CPC classification G01K7/02. Mapped technology areas include Physics.
When was this patent published?
Publication date Tue Sep 20 2022 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 2 related publications on this page (citations in our corpus or others sharing the same primary CPC).