IP Library › Granted Patent US 11,090,862
Granted Patent B2
US 11,090,862 · App. 16/066,809 · Granted Aug 17, 2021

Strain sensors

Inventors: Sterling Chaffins (Corvallis, OR); Kevin P. DeKam (Corvallis, OR); Cassady Sparks Roop (Corvallis, OR)
Assignee: Hewlett-Packard Development Company, L.P.
B29C64/153B29C64/295B29C64/307G01B1/00G01B7/18G01L1/2287
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Quick Facts
Patent No.
US 11,090,862
App. No.
16/066,809
Granted
Aug 17, 2021
Kind
B2
Abstract

A strain sensor can include a resistor, a first electrical contact at a first end of the resistor, and a second electrical contact at a second end of the resistor. The resistor can be formed of a matrix of sintered elemental transition metal particles interlocked with a matrix of fused thermoplastic polymer particles.

Claims (24)

1. A strain sensor, comprising:

a resistor formed of a matrix of sintered elemental transition metal particles interlocked with a matrix of fused thermoplastic polymer particles, wherein the thermoplastic polymer particles comprise nylon 6 powder, nylon 9 powder, nylon 11 powder, nylon 12 powder, nylon 66 powder, nylon 612 powder, polyethylene powder, thermoplastic polyurethane powder, polypropylene powder, polyester powder, polycarbonate powder, polyether ketone powder, polyacrylate powder, polystyrene powder, or a mixture thereof;

a first electrical contact at a first end of the resistor; and

a second electrical contact at a second end of the resistor.

2. The strain sensor of claim 1 , wherein the elemental transition metal particles comprise silver particles, copper particles, gold particles, or combinations thereof.

3. The strain sensor of claim 1 , wherein the matrix of fused thermoplastic polymer particles comprises a fusing agent selected from carbon black, a near-infrared absorbing dye, a near-infrared absorbing pigment, a tungsten bronze, a molybdenum bronze, metal nanoparticles, a conjugated polymer, or combinations thereof.

4. The strain sensor of claim 1 , wherein the resistor further comprises a halogen salt in the matrix of sintered elemental transition metal particles, the matrix of fused thermoplastic polymer particles, or both.

5. The strain sensor of claim 1 , wherein the resistor has a resistance from 1 ohm to 1 Mega ohm.

6. A 3-dimensional printed part having an integrated strain sensor, comprising:

a part body; and

a resistor, wherein the resistor and the part body are formed of a continuous matrix of fused thermoplastic polymer particles, wherein the resistor comprises a conductive composite of sintered elemental transition metal particles interlocked with the matrix of fused thermoplastic polymer particles in a first region, and wherein the part body is a second region of the matrix of fused thermoplastic polymer particles where the conductive composite is not present.

7. The 3-dimensional printed part of claim 6 , wherein the elemental transition metal particles comprise silver particles, copper particles, gold particles, or combinations thereof.

8. The 3-dimensional printed part of claim 6 , wherein the fused thermoplastic polymer particles comprise a fusing agent selected from carbon black, a near-infrared absorbing dye, a near-infrared absorbing pigment, a tungsten bronze, a molybdenum bronze, metal nanoparticles, a conjugated polymer, or combinations thereof.

9. The 3-dimensional printed part of claim 6 , wherein the resistor further comprises a halogen salt in the matrix of sintered elemental transition metal particles, the matrix of fused thermoplastic polymer particles, or both.

10. The 3-dimensional printed part of claim 6 , wherein the resistor has a resistance from 1 ohm to 1 Mega ohm.

11. The 3-dimensional printed part of claim 6 , wherein the resistor is embedded in the part body.

12. The 3-dimensional printed part of claim 6 , wherein the part is formed of multiple layers of fused thermoplastic polymer particles stacked in a z-axis direction, and wherein the resistor is oriented at least partially in the z-axis direction.

13. The 3-dimensional printed part of claim 6 , wherein the thermoplastic polymer particles comprise nylon 6 powder, nylon 9 powder, nylon 11 powder, nylon 12 powder, nylon 66 powder, nylon 612 powder, polyethylene powder, thermoplastic polyurethane powder, polypropylene powder, polyester powder, polycarbonate powder, polyether ketone powder, polyacrylate powder, polystyrene powder, or a mixture thereof.

14. A method of making a 3-dimensional printed part having an integrated strain sensor in accordance with the strain sensor of claim 1 , the method comprising:

dispensing a conductive fusing ink onto a first area of a layer of thermoplastic polymer particles, wherein the conductive fusing ink comprises a transition metal;

dispensing a second fusing ink onto a second area of the layer of thermoplastic polymer particles, wherein the second fusing ink comprises a fusing agent capable of absorbing electromagnetic radiation to produce heat; and

fusing the first and second areas with electromagnetic radiation to form the resistor in the first area and a part body in the second area comprising the fused thermoplastic polymer particles.

15. The method of claim 14 , wherein the resistor is formed at least partially oriented in a z-axis direction such that the resistor extends across multiple layers of the 3-dimensional printed part.

16. The method of claim 14 , wherein the transition metal is in the form of elemental transition metal particles.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 11, 2025
From: HEWLETT-PACKARD DEVELOPMENT COMPANY, L.P.
To: PERIDOT PRINT LLC
Reel/Frame 070187/0001 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 29, 2018
From: CHAFFINS, STERLING; DEKAM, KEVIN P.; ROOP, CASSADY SPARKS
To: HEWLETT-PACKARD DEVELOPMENT COMPANY, L.P.
Reel/Frame 046742/0535 →
Continuity (1)
Related Publication 20190152137A1 · May 23, 2019
Cited By (1)
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