IP Library › Granted Patent US 8,925,393
Granted Patent B2
US 8,925,393 · App. 13/981,882 · Granted Jan 6, 2015

Device intended for measuring pressure from a flexible, foldable, and/or extendable object made of a textile material and comprising a measurement device

Inventors: Francis Cannard (Beaune, FR); Nicolas Vuillerme (Francin, FR); Yohann Payan (Allevard, FR); Bruno Diot (Mercurey, FR)
Assignee: Francis Cannard
G01L1/18D04B1/14G01R3/00D04B21/14D10B2401/06D01B2401/16D10B2403/02431
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Quick Facts
Patent No.
US 8,925,393
App. No.
13/981,882
Granted
Jan 6, 2015
Kind
B2
Abstract

The present invention relates to a device for measuring the pressure and/or the tension exerted at different points of a flexible, foldable and/or extensible textile material capable of being used as a garment, lapel, or the like; said device is remarkable in that it includes, on the one hand, at least one sensor obtained from a single layer ( 1 ), formed of an arrangement of at least three types of fibers, piezoresistive fibers forming piezoresistive areas ( 2 ), conductive fibers forming electrically-conductive areas ( 3 ), and insulating fibers forming electrically-insulating areas ( 4 ) and, on the other hand, an electronic circuit ( 5 ) capable of measuring the electric resistance variation of the piezoresistive areas submitted to one or several forces.

Claims (19)

1. A device for measuring a pressure and/or a tension exerted at different points of a flexible, foldable, and/or extensible material, capable of being used as a garment, lapel, or the like, characterized in that it comprises at least one sensor having a single layer comprising an arrangement of at least three types of fibers, the at least three types of fibers including piezoresistive fibers forming piezoresistive areas, conductive fibers forming electrically-conductive areas, and insulating fibers forming electrically-insulating areas, and an electronic circuit capable of measuring the electric resistance variation of the piezoresistive areas submitted to at least one force.

2. The device of claim 1 , characterized in that the layer comprises at least one piezoresistive area and at least two electrically-conductive areas insulated from each other by at least one electrically-insulating area and in contact with the at least one piezoresistive area, and each of said piezoresistive, electrically-conductive and electrically-insulative areas are formed of at least one row of fibers.

3. The device of claim 1 , characterized in that the layer comprises a plurality of piezoresistive areas, and a common conductive area connecting the plurality of piezoresistive areas.

4. The device of claim 1 , characterized in that the at least three types of fibers comprise knit, woven, nonwoven, or plaited textile fibers.

5. The device of claim 1 , characterized in that the piezoresistive fibers comprise an intrinsically conducting polymer and/or an organic metal, and/or carbon nanotubes.

6. The device of claim 5 , characterized in that the piezoresistive fibers comprise polyaniline.

7. The device of claim 5 , characterized in that the piezoresistive fibers comprise polypyrrole.

8. The device of claim 1 , characterized in that the electrically-conductive fibers comprise silver.

9. The device of claim 1 , characterized in that the electrically-conductive fibers comprise nickel.

10. The device of claim 1 , characterized in that the electrically-conductive fibers, electrically-insulating fibers, and piezoresistive fibers comprise rows that are obtained from rows in a weft direction or rows in a warp direction of the fabric, and the piezoresistive, electrically-conductive, and electrically-insulative areas are formed of at least one row of fibers.

11. The device of any of claim 1 , characterized in that the electronic circuit measures an electric resistance variation from the scanning of a plurality of sensors, the scanning being obtained from a sequential selection of an electrode forming a pair of electrically-conductive areas, the reading of the sensor resistance variation being obtained from an analog-to-digital converter.

12. The device of claim 11 , characterized in that the electronic circuit contains a processor performing the pressure analysis and processing operations, and a transmitter for transmitting data measured by the sensors and resulting from the processing operations.

13. A sensor for measuring a pressure and/or a tension, capable of being connected to an electronic circuit measuring the electric resistance variation when a pressure and/or a tension is exerted on said sensor, the pressure and/or the tension being a function of the resistance variation, characterized in that it comprises an arrangement of at least three types of fibers forming a single layer, the at least three types of fibers including piezoresistive fibers forming piezoresistive areas, conductive fibers forming electrically-conductive areas, and insulating fibers forming electrically-insulating areas.

14. The sensor of claim 13 , characterized in that the layer comprises at least one piezoresistive area and at least two electrically-conductive areas insulated from each other by electrically-insulating areas and in contact with the at least one piezoresistive area, and each of said piezoresistive, electrically-conductive, and electrically-insulative areas are formed of at least one row of fibers.

15. The sensor of claim 13 , characterized in that the layer comprises a plurality of piezoresistive areas, and a common conductive area connecting the plurality of piezoresistive areas.

16. The sensor of claim 13 , characterized in that the piezoresistive fibers comprise an intrinsically conducting polymer and/or an organic metal, and/or carbon nanotubes.

17. The sensor of claim 16 , characterized in that the piezoresistive fibers comprise polyaniline and/or polypyrrole.

18. The sensor of any of claim 13 , characterized in that the electrically-conductive fibers comprise silver and/or nickel.

19. A method for manufacturing at least one sensor for measuring a pressure and/or a tension, capable of being connected to an electronic circuit measuring the electric resistance variation when a pressure and/or a tension is exerted on said sensor, the pressure and/or the tension being a function of the resistance variation, characterized in that it comprises forming a single layer comprising an arrangement by weaving, knitting, or plaiting of at least three types of fibers, the at least three types of fibers comprising piezoresistive fibers, conductive fibers, and insulating fibers to form a textile area comprising at least one piezoresistive area, at least two electrically-conductive areas, and at least one electrically-insulating area.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 28, 2022
From: TEXISENSE SAS
To: PALARUM LLC
Reel/Frame 062222/0330 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 2, 2018
From: CANNARD, FRANCIS
To: TEXISENSE S.A.S.
Reel/Frame 046616/0172 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 10, 2013
From: CANNARD, FRANCIS; VUILLERME, NICOLAS; PAYAN, YOHAN; DIOT, BRUNO
To: CANNARD, FRANCIS
Reel/Frame 031383/0437 →
Priority Claims (1)
FR 11 50589 · Jan 25, 2011 · national
Continuity (1)
Related Publication 20140026678A1 · Jan 30, 2014