IP Library Granted Patent US 12,458,320
Granted Patent B2
US 12,458,320 · App. 17/421,037 · Granted Nov 4, 2025

Contact sensor positioning system, cannula insertion system and method to position a contact sensor

Inventors: Toon Olaf Overbeeke (Utrecht, NL); Brian Robert Joseph ('S-Gravenhage, NL); Johannes Gerhard Daniël Karssen (Utrecht, NL); Arris Cornelis Jonker (Utrecht, NL); Guido van Schie (Utrecht, NL); Mark de Greef (Utrecht, NL)
Assignee: Vitestro Holding B.V.
A61B8/0891A61B8/085A61B8/4218A61B8/4245A61B8/429A61B8/4281A61B8/54A61B2017/3413A61B2034/2063
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Quick Facts
Patent No.
US 12,458,320
App. No.
17/421,037
Granted
Nov 4, 2025
Kind
B2
Abstract

A cannula insertion system includes: a contact sensor positioning system arranged to determine a suitable location for insertion of the cannula, where the contact sensor positioning system includes: a contact sensor having a contact surface to be placed at least partially on the human or animal body to enable measurement with the contact sensor, a positioning device configured to support and position the contact sensor, and a control device arranged to control the positioning device to position the contact sensor in a desired position. The contact sensor positioning system includes one or more sensors to determine a position and/or contact force related parameter representative for a position and/or contact force of the contact sensor, and a processing device to process the position and/or contact force related parameter and to provide a position control signal to the control device, where the contact sensor is an imaging sensor.

Claims (44)

1 . A cannula insertion system configured to insert a cannula into a human or animal body, comprising:

a contact sensor positioning system arranged to determine a suitable location for insertion of the cannula, wherein the contact sensor positioning system comprises:

a contact sensor having a contact surface to be placed at least partially on the human or animal body to enable measurement with said contact sensor, wherein the contact sensor is an imaging sensor;

a positioning device configured to support and position the contact sensor;

a control device arranged to control the positioning device to position the contact sensor in a desired position; and

a processing device,

wherein the contact sensor positioning system comprises one or more sensors to determine a position and/or contact force related parameter representative of a position and/or contact force of the contact sensor,

wherein the processing device is configured to process the position and/or contact force related parameter and provide a position control signal to the control device on the basis of the position and/or contact force related parameter,

wherein the processing device is configured to determine the position control signal by image processing of one or more images obtained by the imaging sensor, and

wherein the position control signal, when used by the control device to position the contact sensor, is configured to move the contact sensor in an automated scanning movement, wherein the automated scanning movement comprises movement of the contact sensor in a direction transverse to an insertion direction of the cannula until a blood vessel is identified in the one or more images obtained by the imaging sensor.

2 . The cannula insertion system of claim 1 , wherein the processing device is configured to determine a blood vessel deformation parameter of a blood vessel present in the one or more images obtained by the imaging sensor as a basis for the position control signal, wherein the blood vessel deformation parameter is based on the cross section of the blood vessel.

3 . The cannula insertion system of claim 2 , wherein the blood vessel deformation parameter is determined on the basis of a relationship between a long axis and a short axis of the cross section of the blood vessel.

4 . The cannula insertion system of claim 2 , wherein the processing device is further configured to determine, based on the blood vessel deformation parameter, whether the blood vessel is an artery or a vein.

5 . The cannula insertion system of claim 1 , wherein the position and/or contact force related parameter comprises a contact force with which the contact surface is pressed against the human or animal body.

6 . The cannula insertion system of claim 1 , wherein the position and/or contact force related parameter comprises a size and/or position of a surface area of the contact surface which is in contact with the human or animal body.

7 . The cannula insertion system of claim 1 , wherein the position and/or contact force related parameter comprises a torque being exerted on the contact surface.

8 . The cannula insertion system of claim 1 , wherein the contact sensor and the one or more sensors are the same sensor.

9 . The cannula insertion system of claim 1 , wherein the processing device is configured to determine a blood vessel deformation parameter of the blood vessel present in the one or more images obtained by the imaging sensor as a basis for the position control signal.

10 . The cannula insertion system of claim 1 , wherein the processing device is configured to determine the position and/or size of the surface area of the contact surface which is in contact with the human or animal body in an image obtained by the imaging sensor as a basis for the position control signal.

11 . The cannula insertion system of claim 1 , wherein the processing device is configured to determine a position and/or size of a vein present in an image obtained by the imaging sensor as a basis for the position control signal.

12 . The cannula insertion system of claim 1 , wherein the one or more sensors comprise at least one contact force sensor to determine a contact force exerted on the contact surface.

13 . The cannula insertion system of claim 1 , wherein the one or more sensors comprise a torque sensor and/or a combination of at least two contact force sensors to determine a torque exerted on the contact surface.

14 . The cannula insertion system of claim 1 , wherein the one or more sensors comprise a first distance sensor arranged to measure a first distance between the contact surface and the human or animal body near a first end of the contact surface and a second distance sensor arranged to measure a second distance between the contact surface and the human or animal body near a second end of the contact surface, the second end being opposite to the first end, wherein the processing device is configured to provide a position control signal to adapt the position of the contact sensor on the basis of the first distance and the second distance.

15 . The cannula insertion system of claim 1 , wherein the contact sensor is an ultrasound transducer.

16 . The cannula insertion system of claim 1 , wherein the positioning device comprises a robot arm.

17 . The cannula insertion system of claim 1 , wherein the cannula insertion system comprises:

a cannula insertion device configured to insert the cannula into the human or animal body,

a cannula insertion device positioning system to support and position the cannula insertion device, and

a control device arranged to control the positioning system to position the cannula insertion device in a suitable position to insert the cannula into human or animal body.

18 . The cannula insertion system of claim 1 , wherein the cannula insertion system is an autonomous cannula insertion system comprising a robotic system configured to autonomously insert the cannula into the human or animal body.

19 . The cannula insertion system of claim 1 , wherein the cannula insertion system comprises a robotic system to autonomously draw blood from the blood vessel.

20 . The cannula insertion system of claim 1 , wherein the cannula insertion system further comprises the cannula and the cannula is aligned with the center part of the contact surface of the contact sensor.

21 . A method to automatically position a contact sensor in a system configured to insert a cannula into a human or animal body, the contact sensor having a contact surface to be placed at least partially on the human or animal body to enable measurement with said contact sensor, the method comprising the steps of:

measuring, using one or more sensors, a position and/or contact force related parameter representative of a position and/or contact force of the contact sensor, wherein the contact sensor is an imaging sensor,

processing, with a processing device, the position and/or contact force related parameter sensor and providing a position control signal to a control device on the basis of the position and/or contact force related parameter and the image processing of one or more images obtained by the imaging sensor, and

controlling, with the control device, a positioning device configured to support and position the contact sensor to position the contact sensor in a desired position,

wherein the position control signal, when used by the control device to position the contact sensor, is configured to move the contact sensor in an automated scanning movement, wherein the automated scanning movement comprises movement of the contact sensor in a direction transverse to an insertion direction of the cannula until a blood vessel is identified in the one or more images obtained by the imaging sensor.

22 . The method of claim 21 , wherein the position and/or contact force related parameter comprises a contact force with which the contact surface is pressed against the human or animal body.

23 . The method of claim 21 , wherein the method comprises the step of determining a blood vessel deformation parameter of a blood vessel present in an image obtained by the imaging sensor as a basis for the position control signal, wherein the blood vessel deformation parameter is based on the cross section of the blood vessel.

24 . The method of claim 23 , wherein the blood vessel deformation parameter is determined on the basis of a relationship between a long axis and a short axis of the cross section of the blood vessel.

25 . The method of claim 21 , wherein the position and/or contact force related parameter comprises a size and/or position of a surface area of the contact surface which is in contact with the human or animal body.

26 . The method of claim 21 , wherein the contact sensor and the one or more sensors are the same sensor, and wherein the step of processing the position and/or contact force related parameter comprises image processing of the images obtained by the imaging sensor.

27 . The method of claim 21 , wherein the step of processing the position and/or contact force related parameter comprises determining a blood vessel deformation parameter of a blood vessel present in an image obtained by the imaging sensor as a basis for the position control signal.

28 . The method of claim 21 , wherein the step of processing the position and/or contact force related parameter comprises determining the position and/or size of the surface area of the contact surface which is in contact with the human or animal body in an image obtained by the imaging sensor as a basis for the position control signal.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 1, 2021
From: OVERBEEKE, TOON OLAF; JOSEPH, BRIAN ROBERT; KARSSEN, JOHANNES GERHARD DANIËL; JONKER, ARRIS CORNELIS; VAN SCHIE, GUIDO; DE GREEF, MARK
To: VITESTRO HOLDING B.V.
Reel/Frame 057354/0543 →
Priority Claims (1)
NL 2022351 · Jan 7, 2019 · national
Continuity (1)
Related Publication 20220054201A1 · Feb 24, 2022
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