IP Library Granted Patent US 12,508,375
Granted Patent B2
US 12,508,375 · App. 19/248,839 · Granted Dec 30, 2025

Vascular access device and methods

Inventors: Eric Taylor (West Harford, CT); Brock Kopp (Garden City, ID); Alok Agrawal (New Haven, CT); Sean Casley (Branford, CT); Pablo Acosta (Newark, CA); Russell Pribanic (Roxbury, CT); Earl Bright, II (Sunnyvale, CA); Jonathan Podmore (San Carlos, CA)
Assignee: X9, Inc.
A61M5/427A61M5/158G16H40/63A61M2005/1585A61M2005/1588A61M2205/3327A61M2205/3375A61M2205/502A61M2205/583
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Quick Facts
Patent No.
US 12,508,375
App. No.
19/248,839
Granted
Dec 30, 2025
Kind
B2
Abstract

Systems and methods for delivering needles or catheters within target tissue including an apparatus that includes or a method involving, structure configured for placing a needle, a catheter or a cannula to provide vascular access. In one or more approaches, a vascular access device or system is provided for hemodialysis.

Claims (16)

1 . A handheld device for positioning a needle in an anatomical site of a patient, the device comprising:

an ultrasound transducer arrangement, wherein the ultrasound transducer arrangement comprises:

a first linear array arranged parallel to a second linear array, wherein:

the first linear array is separated from the second linear array;

one or more actuators connected to one or more needle holders to position the one or more needle holders relative to a target;

one or more sensors providing information with respect to a location of the one or more needle holders; and

a controller that communicates with the one or more actuators and controls a pivoting arm configured to support the one or more needle holders to alter a needle path angle within the anatomical site, wherein the controller determines a first center of a first cross-section of the anatomical site under the first linear array and a second center of a second cross-section of the anatomical site under the second linear array and uses the first center and the second center to dynamically adjust an insertion angle of the needle once the needle is placed within the patient.

2 . The device according to claim 1 wherein the ultrasound transducer arrangement comprises a bi-plane or multi-plane transducer arrangement which is used to scan the anatomical site from two different locations offset from each other.

3 . The device according to claim 2 wherein the ultrasound transducer arrangement provides graphical user guidance which facilitates positioning the handheld device relative to the anatomical site both in translation and orientation.

4 . The device according to claim 3 further comprising a machine learning algorithm that guides settings for the one or more actuators.

5 . The device according to claim 2 wherein the ultrasound transducer arrangement provides information on an anatomical site location and dimensions of the anatomical site.

6 . The device according to according to claim 1 wherein the first linear array is tilted with respect to a flow of blood at an angle of between approximately 15 to 45 degrees.

7 . The device according to claim 1 further comprising a display that presents information on a target location.

8 . The device according to claim 1 wherein the one or more actuators change a location of the pivoting arm based on one or more settings.

9 . The device according to claim 8 wherein the one or more actuators move the needle based on the one or more settings.

10 . The device according to claim 1 wherein a distance from the first center of the first cross-section to the second center of the second cross-section is 14 millimeters.

Continuity (4)
Continuation PCTUS2025014834 · Feb 6, 2025
Provisional Application 63669094 · Jul 9, 2024
Provisional Application 63645725 · May 10, 2024
Related Publication 20250345515A1 · Nov 13, 2025
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