IP Library › Granted Patent US 12,734,329
Granted Patent B2
US 12,734,329 · App. 18/500,917 · Granted Sep 15, 2026

Grooved catheter with recessed irrigation holes

Inventors: Tzachi Levy (Irvine, CA); Meir Bar-Tal (Haifa, IL)
Assignee: Biosense Webster (Israel) Ltd.
A61M25/007A61B18/1492A61B2018/00577A61B2218/002
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Quick Facts
Patent No.
US 12,734,329
App. No.
18/500,917
Granted
Sep 15, 2026
Kind
B2
Abstract

Medical devices and methods of use thereof are disclosed. The medical device can include an elongated catheter body defining a longitudinal axis and a distal tip electrode coupled to a distal end of the elongated catheter body. The distal tip electrode can have an outer surface, a cavity, a proximal end, a distal end, and a wall having a plurality of apertures connecting the outer surface and the cavity, with apertures arranged in a grid. The wall of the distal tip electrode can have a plurality of longitudinal grooves and a plurality of circumferential grooves formed therein so that each longitudinal groove extends generally parallel to the longitudinal axis and has at least two apertures positioned with a respective longitudinal groove and each circumferential groove intersects with at least one of the longitudinal grooves to define an aperture at such intersection.

Claims (43)

1 . A medical device, comprising:

an elongated catheter body defining a longitudinal axis;

a distal tip electrode coupled to a distal end of the elongated catheter body, the distal tip electrode having an outer surface, a cavity, a proximal end, a distal end, and a wall having a plurality of holes connecting the outer surface and the cavity, the holes arranged in a grid having columns generally parallel to the longitudinal axis and rows generally perpendicular to the longitudinal axis;

a plurality of longitudinal grooves formed in the outer surface of the distal tip electrode so that each longitudinal groove extends generally parallel to the longitudinal axis, each of the plurality of longitudinal grooves having at least two holes of the plurality of holes positioned within a respective longitudinal groove; and

a first plurality of circumferential grooves formed in the outer surface of the distal tip electrode so that each circumferential groove intersects with at least one of the longitudinal grooves to define a hole at such intersection.

2 . The medical device of claim 1 , further comprising one or more sensing elements disposed on the distal end of the distal tip electrode, each of the one or more sensing elements positioned in between two adjacent longitudinal grooves.

3 . The medical device of claim 1 , each of the plurality of holes recessed from the outer surface of the distal tip electrode by a distance D.

4 . The medical device of claim 3 , wherein the distance D is between approximately 0.05 mm and approximately 0.2 mm.

5 . The medical device of claim 1 , wherein a first portion of the plurality of holes are oriented at a proximal angle with respect to the longitudinal axis, the first portion positioned on a row proximate the proximal end of the distal tip electrode.

6 . The medical device of claim 1 , wherein a second portion of the plurality of holes are oriented at a distal angle with respect to the longitudinal axis, the second portion positioned on a row proximate the distal end of the distal tip electrode.

7 . The medical device of claim 1 , the holes configured to direct an irrigation fluid.

8 . The medical device of claim 1 , at least one of the first plurality of circumferential grooves having at least two holes of respective non-adjacent columns positioned within a respective circumferential groove of the first plurality of circumferential grooves.

9 . The medical device of claim 1 , the plurality of longitudinal grooves having four holes of the plurality of holes positioned within the respective longitudinal groove.

10 . The medical device of claim 1 , the plurality of longitudinal grooves and the first plurality of circumferential grooves forming a grid-pattern on the wall of the distal tip electrode.

11 . The medical device of claim 1 , further comprising:

a fluid-directing assembly having an axial channel that is in fluid communication with the cavity of the distal tip electrode and thereby the plurality of holes; and

a blocking terminus fixed within the cavity of the distal tip electrode that is configured to block a flow of fluid along the longitudinal axis, direct the flow of fluid through at least one trans-axial channel that is transverse to the axial channel, and direct the flow of fluid through the plurality of holes.

12 . The medical device of claim 11 ,

the distal tip electrode comprises at least one electrode coupled to an energy source to apply an ablative current to a tissue;

the fluid-directing assembly is in fluid communication with an irrigation pump that delivers irrigation fluid to the fluid-directing assembly; and

in response to increasing power to the at least one electrode to approximately 90 W, increasing an irrigation flow rate of the irrigation pump.

13 . A medical device, comprising:

an elongated catheter body defining a longitudinal axis;

a distal tip coupled to a distal end of the elongated catheter body, the distal tip having an outer surface, a cavity, a proximal end, a distal end, and a wall comprising an end portion and a sidewall portion, the sidewall portion of the wall having a plurality of holes connected to the outer surface and the cavity;

the distal tip comprises at least one electrode coupled to an energy source to apply an ablative current to a tissue inside a body of a patient;

a first plurality of grooves formed in the outer surface of the distal tip, each of the first plurality of grooves formed in a first orientation with respect to the longitudinal axis;

a second plurality of grooves formed in the outer surface of the distal tip, the second plurality of grooves formed in a second orientation with respect to the longitudinal axis;

each of the first plurality of grooves and the second plurality of grooves having at least two respective holes of the plurality of holes positioned within a respective groove;

a fluid-directing assembly having an axial channel that is in fluid communication with the cavity of the distal tip and thereby the plurality of holes; and

a blocking terminus fixed within the cavity of the distal tip that is configured to block a flow of fluid along the longitudinal axis, direct the flow of fluid through at least one trans-axial channel that is transverse to the axial channel, and direct the flow of fluid through the plurality of holes.

14 . The medical device of claim 13 , the first plurality of grooves and the second plurality of grooves each forming diagonal grooves with respect to the longitudinal axis in the wall of the distal tip.

15 . The medical device of claim 13 , the first plurality of grooves and the second plurality of grooves arranged in a mesh pattern of grooves in the wall of the distal tip.

16 . The medical device of claim 13 , the first plurality of grooves and the second plurality of grooves arranged in a randomized pattern in the wall of the distal tip.

17 . The medical device of claim 13 ,

the fluid-directing assembly is in fluid communication with an irrigation pump that delivers irrigation fluid to the fluid-directing assembly; and

in response to increasing power to the at least one electrode to approximately 90 W, increasing an irrigation flow rate of the irrigation pump.

18 . The medical device of claim 13 , wherein a first portion of the plurality of holes are oriented at a proximal angle with respect to the longitudinal axis, the first portion positioned on a row proximate the proximal end of the distal tip.

19 . The medical device of claim 13 , wherein a second portion of the plurality of holes are oriented at a distal angle with respect to the longitudinal axis, the second portion positioned on a row proximate the distal end of the distal tip.

20 . A method of directing irrigation fluid from a medical probe, comprising:

providing a probe having an elongated catheter body defining a longitudinal axis, a distal tip coupled to a distal end of the elongated catheter body, the distal tip having an outer surface, a cavity, a proximal end, a distal end, a wall having a plurality of holes connecting the outer surface and the cavity, the holes arranged in a grid having columns generally parallel to the longitudinal axis and rows generally perpendicular to the longitudinal axis, a plurality of longitudinal grooves and a plurality of circumferential grooves formed in the outer surface, the distal tip comprising at least one electrode that is coupled to an energy source to apply an ablative current to a tissue, and a fluid-directing assembly having an axial channel that is in fluid communication with the cavity of the distal tip and thereby the plurality of holes;

providing irrigation fluid into an axial channel of the fluid-directing assembly;

directing the irrigation fluid from the axial channel through one or more trans-axial channels perpendicular to the axial channel through the cavity of the electrode and into the tissue through the plurality of holes; and

directing the irrigation fluid from the plurality of holes and through the plurality of longitudinal grooves and the plurality of circumferential grooves.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 11, 2024
From: LEVY, TZACHI; BAR-TAL, MEIR
To: BIOSENSE WEBSTER (ISRAEL) LTD.
Reel/Frame 066104/0570 →
Continuity (2)
Provisional Application 63387130 · Dec 13, 2022
Related Publication 20240189545A1 · Jun 13, 2024
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