IP Library › Granted Patent US 7,786,736
Granted Patent B2
US 7,786,736 · App. 11/906,366 · Granted Aug 31, 2010

Method and system for detecting damage in aligned carbon nanotube fiber composites using networks

Assignee: University of Delaware
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Quick Facts
Patent No.
US 7,786,736
App. No.
11/906,366
Granted
Aug 31, 2010
Kind
B2
Abstract

Methods and structural defect detectors for detecting a structural defect in composites are presented. An exemplary method includes forming a nanocomposite including a plurality of nanotubes mechanically aligned in a principal direction within a polymer matrix. A voltage is applied to the nanocomposite and a resistance of the nanocomposite is measured using the applied voltage to detect the structural defect. An exemplary structural defect detector includes a nanocomposite including a plurality of mechanically aligned nanotubes within the polymer matrix, electrodes coupled to the nanocomposite, a voltage source for applying a voltage to the electrodes, and a resistance detector for measuring a resistance of the nanocomposite that allows identification of a structural defect. The plurality of nanotubes form a conducting percolating network of sensors.

Claims (31)

1. A method of detecting a structural defect in a composite structure, the method comprising:

forming a nanocomposite comprising a plurality of nanotubes within a polymer matrix, the plurality of nanotubes formed as a conducting network of sensors;

applying a voltage to the nanocomposite; and

measuring a resistance of the nanocomposite using the applied voltage to detect the structural defect, wherein detecting the structural defect comprises detecting microcracks and/or ply delamination by the polymer matrix.

2. The method according to claim, 1 , comprising forming the nanocomposite by shear mixing the plurality of nanotubes with a polymer in an extruder to disperse the nanotubes within the polymer matrix, extruding the mixture from the extruder, and drawing the mixture prior to solidification of the mixture.

3. The method according to claim 1 , wherein the plurality of nanotubes are formed as a conducting percolating network of sensors.

4. The method according to claim 1 , further comprising determining an onset or a change in the structural defect based on the measured resistance.

5. The method according to claim 1 , further comprising measuring a DC volume resistivity of the nanocomposite.

6. The method according to claim 1 , further comprising:

forming the composite structure by combining one or more layers of fibers and the nanocomposite; and

applying electrodes to the composite structure to apply the voltage to the nanocomposite.

7. The method according to claim 6 , wherein the fibers in the one or more layers of fibers are arranged in a unidirectional orientation, in a cross ply orientation or a combination thereof.

8. The method according to claim 6 , wherein the step of forming the composite structure includes applying a vacuum assisted resin transfer molding of the nanocomposite to the one or more layers of fibers.

9. The method according to claim 1 , wherein the plurality of nanotubes are mechanically aligned in a principal direction.

10. The method according to claim 9 , wherein the plurality of nanotubes are mechanically aligned in the principal direction to a standard deviation from the principal direction of less than ±15°.

11. A structural defect detector comprising:

a nanocomposite comprising a plurality of nanotubes within a polymer matrix;

electrodes coupled to the nanocomposite;

a voltage source for applying a voltage to the electrodes; and

a resistance detector for measuring a resistance of the nanocomposite that allows identification of a structural defect,

wherein the plurality of nanotubes form a conducting percolating network of sensors, and

the structural defect comprises microcracks and/or ply delamination by the polymer matrix.

12. The structural defect detector according to claim 11 , wherein the polymer matrix comprises a polymer selected from the group consisting of thermoplastic polymers and thermoset materials.

13. The structural defect detector according to claim 11 , wherein the nanotubes comprise carbon nanotubes.

14. The structural defect detector according to claim 11 , wherein the resistance detector comprises a resistance calculator for calculating resistance based on the applied voltage.

15. The structural defect detector according to claim 11 , wherein the nanocomposite is combined with one or more layers of fibers by a vacuum assisted resin transfer molding as a composite structure and the electrodes are formed on the composite structure.

16. The structural defect detector according to claim 15 , wherein the fibers in the one or more layers of fibers are arranged in a unidirectional orientation, in a cross ply orientation or a combination thereof.

17. The structural defect detector according to claim 15 , wherein the fibers include glass fibers or aramid fibers.

18. The structural defect detector of claim 11 , wherein the nanocomposite comprises a nanocomposite formed by shear mixing the plurality of nanotubes with a polymer in an extruder to disperse the nanotubes within the polymer matrix, extruding the mixture from the extruder, and drawing the mixture prior to solidification of the mixture.

19. The structural defect detector of claim 11 , wherein the plurality of nanotubes are mechanically aligned in a principal direction.

20. The structural defect detector of claim 19 , wherein the plurality of nanotubes are mechanically aligned in the principal direction to a standard deviation from the principal direction of less than ±15°.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 15, 2008
From: THOSTENSON, ERIK T.; CHOU, TSU-WEI
To: UNIVERSITY OF DELAWARE
Reel/Frame 020803/0369 →
Continuity (3)
Continuation In Part 1056734900
Provisional Application 6049290400 · Aug 6, 2003
Related Publication 20080173111A1 · Jul 24, 2008