IP Library Granted Patent US 11,510,835
Granted Patent B2
US 11,510,835 · App. 17/105,309 · Granted Nov 29, 2022

Stabilization and manipulation of a delivery system for a percutaneous procedure

Inventors: Nadav Yellin (Even Yehuda, IL); Samuel M. Shaolian (Newport Beach, CA); Matan Gedulter (Givat Ella, IL); Boaz Schwarz (Tel Aviv, IL); Tsahi Grimberg (Kfar Saba, IL)
Assignee: Valcare, Inc.
A61G13/101A61B34/70A61B90/50A61B2090/508A61B2090/571A61M25/0113
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Quick Facts
Patent No.
US 11,510,835
App. No.
17/105,309
Granted
Nov 29, 2022
Kind
B2
Abstract

Disclose herein are embodiments related to a delivery system for performing a minimally invasive procedure, the system including one or more station legs configured to attach to an operating surface and a cross-beam connected to the one or more station legs and running from 0° to 45° relative to a top of the operating surface, wherein a distance between the operating surface and the cross-beam is adjustable. Additionally, an embodiment may have a first arm connected to the cross-beam, a second arm connected to the first arm, and an axial member connected to the second arm, the axial member comprising an axial joint. The delivery system may then be configured to advance to an internal target site using the axial joint while maintaining a stationary trajectory in relation to the internal target site with the delivery system trajectory is modifiable at the target site.

Claims (39)

1. A delivery system for performing a minimally invasive procedure, the system comprising:

one or more station legs configured to attach to an operating surface;

a cross-beam connected to the one or more station legs and running parallel to a top of the operating surf ace;

a first arm connected to the cross-beam;

a second arm connected to the first arm; and

an axial member connected to the second arm, the axial member comprising an axial joint,

wherein the delivery system is configured to be advanced to an internal target site using the axial joint,

wherein the first arm comprises a rail system, and

wherein the second arm is configured to slide, using the rail system, along at least a portion of the first arm's length.

2. The delivery system of claim 1 , wherein the first arm is configured to slide along a length of the cross-beam.

3. The delivery system of claim 1 , wherein the one or more station legs attach to the operating surface via a rail system.

4. The delivery system of claim 1 , wherein the axial member comprises a distal end.

5. The delivery system of claim 1 , wherein the first arm and second arm are connected using a rotational joint.

6. The delivery system of claim 5 , wherein the second arm is configured to rotate using the rotational joint about a connection point.

7. The delivery system of claim 1 , wherein the second arm and axial member are connected using a rotational joint.

8. The delivery system of claim 7 , wherein the axial member is configured to rotate using the rotational joint about a connection point.

9. The delivery system of claim 1 , further comprising a support arm connected to the operating surface.

10. The delivery system of claim 9 , wherein the support arm connects to the axial member.

11. The delivery system of claim 9 , wherein the support arm attaches to the operating surface via a rail system.

12. A delivery system for performing a minimally invasive procedure, the system comprising:

one or more station legs configured to attach to an operating surface;

a cross-beam connected to the one or more station legs and running from 0° to 45° relative to a top of the operating surface, wherein a distance between the operating surface and the cross-beam is adjustable;

a first arm connected to the cross-beam;

a second arm connected to the first arm; and

an axial member connected to the second arm, the axial member comprising an axial joint,

wherein the delivery system is configured to be advanced to an internal target site using

the axial joint while maintaining a stationary trajectory in relation to the internal target site; and

wherein the delivery system trajectory is modifiable at the target site,

wherein the first arm comprises a rail system, and

wherein the second arm is configured to slide, using the rail system, along at least a portion of the first arm's length.

13. The delivery system of claim 12 , further comprising a support arm connected to the operating surface;

wherein the support arm connects to the axial member; and

wherein the support arm attaches to the operating surface via a rail system.

14. The delivery system of claim 12 , wherein the one or more station legs are vertically adjustable in relation to the operating surface.

15. The delivery system of claim 12 , wherein the axial member comprises a distal end.

16. The delivery system of claim 12 , wherein the first arm and second arm are connected using a rotational joint; and

wherein the second arm is configured to rotate using the rotational joint about a connection point.

17. The delivery system of claim 12 , wherein the second arm and axial member are connected using a rotational joint.

18. The delivery system of claim 17 , wherein the axial member is configured to rotate using the rotational joint about a connection point.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 8, 2023
From: VALCARE, INC.
To: VALCARE MEDICAL, INC.
Reel/Frame 065835/0401 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 5, 2023
From: YELLIN, NADAV; SHAOLIAN, SAMUEL M.; GEDULTER, MATAN; SCHWARZ, BOAZ; GRIMBERG, TSAHI
To: VALCARE, INC.
Reel/Frame 065773/0875 →
Continuity (3)
Continuation 15661140 · Jul 27, 2017
Provisional Application 62367190 · Jul 27, 2016
Related Publication 20210077329A1 · Mar 18, 2021
Cited By (6)
US 12,279,955 US 12,396,853 US 12,409,034 US 12,642,654 US 12,648,850 US 12,661,228