IP Library Patent Application 17698777
Patent Application
App. No. 17/698,777

CONSTRUCTING A 3D PHANTOM WITH LIQUID HYDROGEL

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Quick Facts
Patent No.
US None
App. No.
17/698,777
Abstract

A hydrogel phantom is herein described. The hydrogel phantom includes a plurality of adjacently disposed hydrogel elements. A first one of the hydrogel elements has a first electrical impedance and a second one of the hydrogel elements has a second impedance. The first impedance is different from the second impedance.

Claims (33)

1 . A hydrogel phantom, comprising:

a plurality of connected hydrogel elements, a first one of the hydrogel elements having a first electrical impedance and a second one of the hydrogel elements having a second impedance with the first impedance different from the second impedance.

2 . The hydrogel phantom of claim 1 , wherein the plurality of connected hydrogel elements are in the form of a patient's body part.

3 . The hydrogel phantom of claim 1 , wherein at least one of the hydrogel elements is in the form of a tumor, and the at least one of the plurality of adjacently disposed hydrogel elements has an impedance mimicking the impedance of the tumor.

4 . The hydrogel phantom of claim 1 , wherein the plurality of connected hydrogel elements are in the shape of a human head.

5 . The hydrogel phantom of claim 1 , wherein each of the plurality of connected hydrogel elements include a predetermined ratio of a first component and a second component.

6 . The hydrogel phantom of claim 1 , further comprising a non-gel element communicating with at least one of the plurality of connected hydrogel elements.

7 . The hydrogel phantom of claim 6 , wherein the non-gel element is a medical device communicating with at least one of the plurality of adjacently disposed hydrogel elements.

8 . The hydrogel phantom of claim 6 , wherein the non-gel element is implanted within the plurality of adjacently disposed hydrogel elements.

9 . A method, comprising:

receiving a 3-dimensional model of an object, the 3-dimensional model having a plurality of voxels, with each voxel provided with property information identifying or being usable to determine at least one of an impedance or a resistance for the voxel; and

operating a gel application system to create a hydrogel phantom with the 3-dimensional model, by creating hydrogel elements within the hydrogel phantom corresponding to voxels within the 3-dimensional model.

10 . A method, comprising:

attaching field-generating pads to a hydrogel phantom at particular locations on the hydrogel phantom, the hydrogel phantom having a plurality of connected hydrogel elements, a first one of the hydrogel elements having a first electrical impedance and a second one of the hydrogel elements having a second impedance with the first impedance different from the second impedance;

applying an alternating electric field to the hydrogel phantom with the field generating pads;

measuring of at least one property related to the alternating electric field passing through at least a portion of the hydrogel phantom with a plurality of sensors; and

performing at least one of the following steps:

determining an efficacy of the alternating electric field on a target region within the hydrogel phantom; and

modeling the alternating electric field passing through at least a portion of the hydrogel phantom using data measured by the plurality of sensors.

11 . The method of claim 10 , wherein applying an alternating electric field includes applying a tumor treating field to the hydrogel phantom with the field generating pads.

12 . The method of claim 10 further comprising calculating a specific absorption rate of the alternating electric field by the hydrogel phantom based at least in part on the measured at least one property related to the alternating electric field.

13 . The method of claim 10 further comprising attaching the plurality of sensors on or within the hydrogel phantom and associated with a particular portion of the hydrogel phantom, each sensor providing at least one property.

14 . The method of claim 13 wherein measuring of at least one property related to the alternating electric field further includes measuring at least one of the plurality of sensors to determine the at least one property.

15 . The method of claim 14 wherein measuring of at least one property related to the alternating electric field further includes measuring at least one of the plurality of sensors to determine a temperature related to the alternating electric field passing through the particular portion of the hydrogel phantom.

16 . The method of claim 14 wherein measuring of at least one property related to the alternating electric field further includes measuring at least one of the one or more sensor to determine an electrical property related to the alternating electric field passing through the particular portion of the hydrogel phantom.

17 . The method of claim 14 wherein measuring of at least one property related to the alternating electric field further includes measuring at least one of the one or more sensor to determine a magnetic property related to the alternating electric field passing through the particular portion of the hydrogel phantom.

18 . The method of claim 14 , wherein applying an alternating electric field includes applying a tumor treating field to the hydrogel phantom with the field generating pads.

19 . The method of claim 18 , wherein modeling the tumor treating field includes determining an efficacy of the alternating electric field on a target region within the hydrogel phantom.

20 . A method, comprising:

attaching field-generating pads to a hydrogel phantom at pre-determined locations based on a computer simulation, the hydrogel phantom having a plurality of hydrogel elements, a first one of the hydrogel elements having a first electrical impedance and a second one of the hydrogel elements having a second impedance with the first impedance different from the second impedance;

applying an alternating electric field to the hydrogel phantom with the field generating pads;

measuring TTField intensity related to the alternating electric field passing through at least a portion of the hydrogel phantom to obtain an actual TTField intensity; and,

comparing the actual TTField intensity to an estimated TTField intensity obtained from the computer simulation.

Assignments (2)
PATENT SECURITY AGREEMENT Recorded May 4, 2024
From: NOVOCURE GMBH (SWITZERLAND)
To: BIOPHARMA CREDIT PLC
Reel/Frame 067315/0399 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 8, 2023
From: WASSERMAN, YORAM; OBUCHOVSKY, STAS; KUPLENNIK, NATALIYA
To: NOVOCURE GMBH
Reel/Frame 062917/0861 →