IP Library Granted Patent US 12,226,180
Granted Patent B2
US 12,226,180 · App. 18/408,714 · Granted Feb 18, 2025

Sterile drape for robotic drive

Inventors: Jason Cope (Natick, MA); Peter Falb (Hingham, MA); Bruno Piazzarolo (Waltham, MA); Wayne Boucher (Manchester, NH)
Assignee: Siemens Healthineers Endovascular Robotics, Inc.
A61B46/10A61B34/30A61B90/50A61B2017/00477
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Quick Facts
Patent No.
US 12,226,180
App. No.
18/408,714
Granted
Feb 18, 2025
Kind
B2
Abstract

A catheter-based procedure system comprises: a robotic drive body; a support arm supporting the robotic drive body; a first drive module configured to move along a longitudinal axis of the robotic drive body; a second drive module configured to move along the longitudinal axis of the robotic drive body, the second drive module being separate from the first drive module; and a sterile barrier. The sterile barrier includes: a first portion covering a portion of the support arm and a portion of the robotic drive body; a second portion that is removably coupled to the robotic drive body, the second portion being more rigid than the first portion; a resilient third portion extending from the second portion, the resilient third portion having a first free edge arranged along the longitudinal axis and the first free edge being adjacent the first drive module.

Claims (46)

1. A catheter-based procedure system comprising:

a robotic drive body;

a support arm supporting the robotic drive body;

a first drive module configured to move along a longitudinal axis of the robotic drive body;

a second drive module configured to move along the longitudinal axis of the robotic drive body, the second drive module being separate from the first drive module; and

a sterile barrier including

a first portion covering a portion of the support arm and a portion of the robotic drive body,

a second portion that is removably coupled to the robotic drive body, the second portion being more rigid than the first portion, and

a resilient third portion extending from the second portion, the resilient third portion having a first free edge arranged along the longitudinal axis and the first free edge being adjacent the first drive module.

2. The catheter-based procedure system of claim 1 , wherein the resilient third portion is arranged on a bottom surface of the robotic drive body.

3. The catheter-based procedure system of claim 1 , wherein the first drive module is configured to move along a bottom surface of the robotic drive body.

4. The catheter-based procedure system of claim 3 , wherein the second drive module is configured to move along the bottom surface of the robotic drive body.

5. The catheter-based procedure system of claim 1 , wherein the resilient third portion includes a second free edge that is separate from the first free edge and arranged along the longitudinal axis, the first drive module being configured to move between the first free edge and the second free edge.

6. The catheter-based procedure system of claim 1 , wherein

the first free edge is adjacent the second drive module, and

the first free edge is configured to be resiliently biased away from, and returned to, the longitudinal axis as at least one of the first drive module or the second drive module moves along the longitudinal axis.

7. The catheter-based procedure system of claim 1 , further comprising:

a drive module drape removably covering a portion of the first drive module.

8. The catheter-based procedure system of claim 1 , wherein the first portion comprises:

a flexible drape coupled to the second portion and covering the robotic drive body.

9. The catheter-based procedure system of claim 8 , wherein the first portion further comprises:

a first arm drape member having a clip that is removably secured to a portion of the support arm, the first arm drape member including a lower arm drape positioned under the support arm, and wherein the flexible drape includes an upper arm drape section covering an upper portion of the support arm.

10. The catheter-based procedure system of claim 9 , wherein the clip is a C-shaped clip.

11. The catheter-based procedure system of claim 1 , wherein

the resilient third portion includes a first resilient member and a second resilient member, the first resilient member including the first free edge and the second resilient member including a second free edge, and

the first free edge and the second free edge are resiliently biased away from, and returned to, the longitudinal axis as at least one of the first drive module or the second drive module moves along the longitudinal axis between the first resilient member and the second resilient member.

12. The catheter-based procedure system of claim 11 , wherein the first resilient member and the second resilient member are arranged on a bottom surface of the robotic drive body.

13. The catheter-based procedure system of claim 11 , wherein the second portion includes a first rigid member removably coupled to the robotic drive body, and wherein the first resilient member is secured to the first rigid member.

14. The catheter-based procedure system of claim 13 , wherein the second portion includes a second rigid member removably coupled to the robotic drive body, and wherein the second resilient member is secured to the second rigid member.

15. The catheter-based procedure system of claim 14 , wherein the first rigid member includes at least two sections that are in a folded orientation in a packaged configuration and an unfolded orientation in an install configuration.

16. The catheter-based procedure system of claim 14 , wherein the first resilient member includes a first side and an opposing second side, the first side facing the robotic drive body, and a portion of the first side contacting an outer surface of the first drive module as the first drive module moves along the longitudinal axis.

17. The catheter-based procedure system of claim 1 , wherein the second drive module is configured to move independently of the first drive module.

18. The catheter-based procedure system of claim 1 , further comprising:

a third drive module configured to move along the longitudinal axis of the robotic drive body; wherein

the first free edge is adjacent the second drive module,

the first free edge is adjacent the third drive module,

the first free edge is configured to be resiliently biased away from, and returned to, the longitudinal axis as at least one of the first drive module, the second drive module or the third drive module moves along the longitudinal axis.

19. The catheter-based procedure system of claim 18 , wherein the third drive module is configured to move independently of the first drive module and the second drive module.

20. The catheter-based procedure system of claim 1 , further comprising:

a first cassette configured to operatively engage a percutaneous device, the first cassette being releasably secured to the first drive module; wherein

the sterile barrier includes a drive module drape secured to the first cassette and removably covering a portion of the first drive module.

21. The catheter-based procedure system of claim 20 , wherein

the first cassette covers a portion of a first side of the first drive module and the drive module drape covers at least one second side of the first drive module.

22. The catheter-based procedure system of claim 21 , wherein the first cassette and the drive module drape covers substantially all sides of the first drive module.

23. The catheter-based procedure system of claim 20 , wherein the drive module drape is a rigid member pivotally attached to the first cassette.

24. The catheter-based procedure system of claim 20 , wherein the drive module drape is comprised of a flexible material and is secured to the first cassette.

Assignments (2)
CHANGE OF NAME Recorded Nov 8, 2024
From: CORINDUS, INC.
To: SIEMENS HEALTHINEERS ENDOVASCULAR ROBOTICS, INC.
Reel/Frame 069333/0219 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 10, 2024
From: COPE, JASON; FALB, PETER; PIAZZAROLO, BRUNO; BOUCHER, WAYNE
To: CORINDUS, INC.
Reel/Frame 066082/0651 →
Continuity (3)
Continuation 17813626 · Jul 20, 2022
Provisional Application 63203785 · Jul 30, 2021
Related Publication 20240138947A1 · May 2, 2024
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