IP Library › Granted Patent US 9,913,605
Granted Patent B2
US 9,913,605 · App. 15/154,656 · Granted Mar 13, 2018

Systems and methods for autonomous intravenous needle insertion

Inventors: Richard J. Harris (Coconut Grove, FL); Joseph B. Mygatt (Ridgefield, CT); Stuart I. Harris (Coconut Grove, FL)
Assignee: Veebot Systems, Inc.
A61B5/1535A61B5/14A61B5/153A61B5/15003A61B5/150068A61B5/15074A61B5/150389A61B5/150503A61B5/150732A61B5/150748A61B5/150946A61B5/150954A61B8/0891A61B34/10A61B34/25A61B34/30A61M5/20A61M5/52A61B90/11A61B90/361A61B2017/00057A61B2017/00106A61B2034/107
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Quick Facts
Patent No.
US 9,913,605
App. No.
15/154,656
Granted
Mar 13, 2018
Kind
B2
Abstract

Systems and methods for autonomous intravenous needle insertion are disclosed herein. In an embodiment, a system for autonomous intravenous insertion include a robot arm, one or more sensors pivotally attached to the robot arm for gathering information about potential insertion sites in a subject arm, a medical device pivotally attached to the robot arm, and a controller in communication with the sensors and the robot arm, wherein the controller receives the information from the sensors about potential insertion sites, and the controller selects a target insertion site and directs the robot arm to insert the medical device into the target insertion site.

Claims (74)

1. A method for autonomous intravenous needle insertion comprising:

receiving, from one or more sensors of an intravenous insertion system, information about potential insertion sites in blood vessels of a subject arm, wherein the intravenous needle insertion system comprises:

a robotic positioning system; and

a sensor assembly detachably engaged to the robotic positioning system, the sensor assembly including the one or more sensors to gather the information about potential insertion sites in blood vessels of the subject arm; and

a needle holding tool detachably engaged to the robotic positioning system, the needle holding tool comprising a needle to be inserted into an insertion site of the subject arm;

identifying a target insertion site in a target blood vessel in at least three-dimensional coordinates and orientation of the target blood vessel based on the information received from the one or more sensors to guide an insertion of the needle into the subject arm at the target insertion site;

identifying a topography of the subject arm at the target insertion site; and

based on the three-dimensional coordinates and orientation of the target blood vessel and the topography of the subject arm at the target insertion site, autonomously directing the needle to the target insertion site and inserting the needle into the subject arm at the target insertion site.

2. The method of claim 1 wherein the step of directing further comprises monitoring the target insertion site and tracking the target insertion site through movements of the subject arm.

3. The method of claim 1 wherein the step of identifying comprises:

receiving an image of the subject arm from a camera;

identifying potential insertion sites;

ranking potential insertion sites based on size, shape, and location of the potential insertion sites; and

prioritizing potential insertion sites based on the ranking.

4. The method of claim 1 further comprising selecting the target insertion site based on a ranking of the potential insertion sites.

5. The method of claim 1 wherein the step of identifying comprises:

highlighting and presenting to a user potential insertion sites; and

enabling the user to select the target insertion site.

6. The method of claim 1 wherein the step of identifying comprises:

determining a location of an elbow in the subject arm;

ranking potential targets depending on the location relative to the elbow; and

selecting the target insertion site based on the ranking of the potential insertion sites.

7. A method of claim 1 further comprising automatically stabilizing a blood vessel with the target insertion site prior to the inserting of the needle into the target insertion site.

8. The method of claim 1 further comprising using an ultrasound sensor to verify an existence of a blood vessel at the target insertion site and determining a depth of the blood vessel from a surface of the subject arm.

9. The method of claim 1 further comprising autonomously tracking a position and orientation of the target insertion site relative to a position of the needle and orientation in real-time during directing of the needle.

10. The method of claim 1 wherein the one or more sensors comprises an ultrasound probe.

11. The method of claim 1 wherein the needle holding tool further comprises

a plurality of grippers for holding the needle;

a first actuating mechanism to actuate the plurality of grippers;

stabilizing feet;

a second actuating mechanism to place the stabilizing feet in the proximity to the target insertion site; and

a third actuating mechanism to advance the needle into the target blood vessel at the target insertion site.

12. The method of claim 1 wherein the one or more sensors comprise a camera, a rangefinder and an ultrasound probe.

13. A method for autonomous intravenous needle insertion comprising:

receiving, from one or more sensors of an intravenous insertion system, information about potential insertion sites in blood vessels of a subject arm, wherein the intravenous needle insertion system comprises:

a robotic positioning system; and

a sensor assembly detachably engaged to the robotic positioning system, the sensor assembly including the one or more sensors to gather the information about potential insertion sites in blood vessels of the subject arm; and

a needle holding tool detachably engaged to the robotic positioning system, the needle holding tool comprising a needle to be inserted into an insertion site of the subject arm;

based on the information received from the one or more sensors, determining a location of an elbow in the subject arm, ranking potential insertion sites depending on the location relative to the elbow; and identifying a target insertion site based on the ranking of the potential insertion sites; and

autonomously directing the needle to the target insertion site and inserting the needle into the subject arm at the target insertion site.

14. The method of claim 13 wherein the step of directing further comprises monitoring the target insertion site and tracking the target insertion site through movements of the subject arm.

15. The method of claim 13 wherein the step of identifying comprises:

highlighting and presenting to a user potential insertion sites; and

enabling the user to select the target insertion site.

16. A method of claim 13 further comprising automatically stabilizing a blood vessel with the target insertion site prior to the inserting of the needle into the target insertion site.

17. The method of claim 13 further comprising using an ultrasound sensor to verify an existence of a blood vessel at the target insertion site and determining a depth of the blood vessel from a surface of the subject arm.

18. The method of claim 13 further comprising further ranking potential insertion sites and identifying the target insertion site based on one or more of on size of the blood vessel, shape of the blood vessel, location of the blood vessel, orientation of the blood vessel, and topography of the subject arm.

19. The method of claim 13 wherein the information about potential insertion sites comprises topography of the subject arm.

20. The method of claim 13 further comprising autonomously tracking a position and orientation of the target insertion site in real-time during directing of the needle.

21. The method of claim 13 wherein the one or more sensors comprises an ultrasound probe.

22. A method for autonomous intravenous needle insertion comprising:

receiving from one or more sensors of an intravenous insertion system, information about potential insertion sites in blood vessels of a subject arm, wherein the intravenous needle insertion system comprises:

a robotic positioning system; and

an insertion module removably attachable to the robotic positioning system, the insertion module comprising:

a sensor assembly detachably engaged to the insertion module, the sensor assembly including the one or more sensors attached to the sensor assembly to gather the information about potential insertion sites in blood vessels of the subject arm; and

a needle holding tool detachably engaged to the insertion module, the needle holding tool comprising a needle to be inserted into the subject arm;

ranking potential insertion sites based on size, shape, location and orientation of a blood vessel at the potential insertion sites and prioritizing potential insertion sites based on the ranking to select a target insertion site;

identifying the target insertion site in a target blood vessel in at least three-dimensional coordinates and orientation of the target blood vessel based on the information received from the one or more sensors to guide an insertion of the needle into the subject arm at the target insertion site; and

based on the three-dimensional coordinates and orientation of the target blood vessel, autonomously directing the needle to the target insertion site and inserting the needle into the subject arm at the target insertion site.

23. The method of claim 22 wherein one or both of the steps of ranking or selecting is performed autonomously.

24. The method of claim 22 wherein the step of ranking is performed using a machine learning algorithm.

25. The method of claim 22 , wherein the insertion module of the intravenous needle insertion system further comprises a stabilizing tool.

26. The method of claim 22 further comprising identifying a topography of the subject arm at the target insertion site and using the topography of the subject arm to autonomously direct the needle to the target insertion site and insert the needle into the subject arm at the target insertion site.

27. A method for autonomous intravenous needle insertion comprising:

gathering information about potential insertion sites in blood vessels of a subject arm with an intravenous needle insertion system, the intravenous needle insertion system comprising:

a robotic positioning system; and

an insertion module removably attachable to the robotic positioning system, the insertion module comprising:

a sensor assembly detachably engaged to the insertion module, the sensor assembly including one or more sensors attached to the sensor assembly to gather the information about potential insertion sites in blood vessels of the subject arm; and

a needle holding tool detachably engaged to the insertion module, the needle holding tool comprising a needle to be inserted into the subject arm and

a stabilizing tool;

identifying a target insertion site in a target blood vessel in at least three-dimensional coordinates and orientation of the target blood vessel based on the information received from the one or more sensors to guide an insertion of the needle into the subject arm at the target insertion site;

automatically stabilizing with the stabilizing tool the target blood vessel at the target insertion site prior to the inserting of the needle into the target insertion site; and

based on the three-dimensional coordinates and orientation of the target blood vessel, autonomously directing the needle to the target insertion site and inserting the needle into the subject arm at the target insertion site.

28. The method of claim 27 wherein the needle holding tool comprises a plurality of grippers for holding the needle, a first actuating mechanism to actuate the plurality of grippers and a second actuating mechanism to advance the needle into the target blood vessel at the target insertion site; and wherein the stabilizing tools comprises stabilizing feet and a third actuating mechanism to place the stabilizing feet in the proximity to an insertion site.

Assignments (2)
CHANGE OF NAME Recorded Aug 24, 2018
From: VEEBOT, LLC
To: VEEBOT SYSTEMS, INC.
Reel/Frame 046942/0651 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 31, 2016
From: HARRIS, RICHARD J.; MYGATT, JOSEPH B.; HARRIS, STUART I.
To: VEEBOT, LLC
Reel/Frame 038746/0559 →
Continuity (3)
Continuation 13335700 · Dec 22, 2011
Provisional Application 61426022 · Dec 22, 2010
Related Publication 20160256093A1 · Sep 8, 2016