IP Library › Granted Patent US 12,287,252
Granted Patent B2
US 12,287,252 · App. 17/395,885 · Granted Apr 29, 2025

Multi-element sensor for monitoring composite structure

Inventors: Brian Burks (Parker, CO); Zack Prather (Englewood, CO); John Eihusen (Lincoln, NE); Joel R. Johnson (Lincoln, NE); Tyler Perkins (Parker, CO)
Assignee: HEXAGON TECHNOLOGY AS
G01L5/0052G01L1/16G01N29/045G01N29/14G01N29/2437H10N30/06H10N30/088H10N30/302
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Quick Facts
Patent No.
US 12,287,252
App. No.
17/395,885
Granted
Apr 29, 2025
Kind
B2
Abstract

Disclosed is a sensor for monitoring a composite structure. The sensor includes multiple sensing elements of different sizes, each configured for different respective monitoring tasks. Also disclosed are methods of fabricating the sensor, designing and manufacturing the sensor, and attaching the sensor to the composite structure.

Claims (24)

1. A sensor for monitoring a composite structure, the sensor comprising:

a first sensor element configured to detect data associated with a first monitoring task, the first sensor element including a first positive electrode having a first size; and

a second sensor element configured to detect data associated with a second monitoring task, the second sensor element including a second positive electrode having a second size,

wherein the first positive electrode and the second positive electrode are coupled to an active sensing element at respective bottom surfaces via a first conductive layer configured to conduct electricity in only a vertical axis, the active sensing element configured to produce an electric current when placed under mechanical stress and having a size larger than a combination of the first size and the second size.

2. The sensor of claim 1 , wherein the first positive electrode is coplanar with the second positive electrode when the sensor is flat.

3. The sensor of claim 1 , wherein the first conductive layer is a first conductive tape layer.

4. The sensor of claim 1 , wherein the first conductive layer has a size larger than a combination of the first size and the second size.

5. The sensor of claim 1 , wherein a bottom surface of the active sensing element is coupled to a top surface of a ground electrode via a second conductive layer, the ground electrode having a size larger than a combination of the first size and the second size.

6. The sensor of claim 5 , wherein the second conductive layer is a second conductive tape layer.

7. The sensor of claim 5 , wherein the second conductive layer has a size larger than a combination of the first size and the second size.

8. The sensor of claim 5 , further comprising a first polyimide film layer located above the first positive electrode and the second positive electrode.

9. The sensor of claim 8 , further comprising a second polyimide film layer located below the ground electrode.

10. The sensor of claim 9 , further comprising a copper layer located above the first polyimide film layer and configured to shield the sensor from electromagnetic interference.

11. The sensor of claim 9 , wherein the first polyimide film layer, the first positive electrode, the second positive electrode, the first conductive layer, the active sensing element, the second conductive layer, the ground electrode, the second polyimide film layer are each flexible and configured to conform to a surface that the sensor is coupled to.

12. The sensor of claim 1 , wherein the first monitoring task is detecting a direct wave energy from an object when the composite structure endures impact damage from the object, and

wherein the second monitoring task is detecting damage to the composite structure as the composite structure is filled with a fluid.

13. A sensor for monitoring a composite cylinder configured to store a fluid, the sensor comprising:

a first sensor element having a first size and configured to detect data associated with a first monitoring task; and

a second sensor element having a second size and configured to detect data associated with a second monitoring task,

wherein the first monitoring task is detecting a direct wave energy from an object when the composite cylinder endures impact damage from the object, and

wherein the second monitoring task is detecting damage to the composite cylinder as the composite cylinder is filled with the fluid.

14. The sensor of claim 13 , wherein the first sensor element is electrically coupled to a controller configured to determine a damage value based on the detected direct wave energy.

15. The sensor of claim 13 , wherein the second sensor element is electrically coupled to a controller configured to perform a modal acoustic emission inspection to detect the damage to the composite cylinder as the composite cylinder is filled with the fluid.

16. The sensor of claim 13 , wherein the first sensor element includes a first positive electrode and the second sensor element includes a second positive electrode, the first positive electrode being coplanar with the second positive electrode when the sensor is flat.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 6, 2021
From: BURKS, BRIAN; PRATHER, ZACK; EIHUSEN, JOHN; JOHNSON, JOEL R.; PERKINS, TYLER
To: HEXAGON TECHNOLOGY AS
Reel/Frame 057103/0838 →
Continuity (2)
Continuation In Part 17223628 · Apr 6, 2021
Related Publication 20220316967A1 · Oct 6, 2022
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