PLASTIC-CLADDING FILAMENT STRUCTURE
20170145189 ยท 2017-05-25
Assignee
Inventors
- Yu Hsun KANG (Taipei City, TW)
- Shu Fen LIAO (Taipei City, TW)
- Jaang Jiun HOU (Taipei City, TW)
- Hao Chen WANG (Taipei City, TW)
- Reng Sho CHEN (Taipei City, TW)
Cpc classification
C09J201/00
CHEMISTRY; METALLURGY
C08J2300/00
CHEMISTRY; METALLURGY
International classification
C08J5/12
CHEMISTRY; METALLURGY
Abstract
An improved plastic-cladding filament structure includes a combined arrangement of a base layer, thermosetting polymer glue, and at least one conductive filament. The thermosetting polymer glue is combined with the base layer. The at least one conductive filament is enclosed and housed in the thermosetting polymer glue to allow the conductive filament to be attached to the base layer through heating and setting of the thermosetting polymer glue. By means of the property the thermosetting polymer glue that the thermosetting polymer glue gets set after being heated to a predetermined temperature and melted and shaped and once heated to get set and shaped, further heating does not change the shape, the thermosetting polymer glue that encloses and houses the conductive filament can be set to form any desired shape to facilitate combination thereof with the base layer.
Claims
1. An improved plastic-cladding filament structure, comprising: a base layer; thermosetting polymer glue, which is combined with the base layer; and at least one conductive filament, which is enclosed and housed in the thermosetting polymer glue to allow the conductive filament to be attached to the base layer through heating and setting of the thermosetting polymer glue.
2. The improved plastic-cladding filament structure as claimed in claim 1, wherein the thermosetting polymer glue comprises one of epoxy resin, polyurethane (PU), melamine resin, phenolic resin (PF), melamine formaldehyde resin (MF), polyamic acid rein (PAA), furan resin, resorcinol formaldehyde resin (RF), xytene formaldehyde resin, unsaturated polyester (UP), polyimide (PI), silicone plastics (SP), polydiarylphthalate (PDAP), urea formaldehyde resin (UF), and polymerized siloxanes (SI), bismaleimide triazine resin (BT).
3. The improved plastic-cladding filament structure as claimed in claim 1, wherein the base layer comprises an adhesive surface and the thermosetting polymer glue that encloses and houses the conductive filament is combined with the adhesive surface of the base layer.
4. The improved plastic-cladding filament structure as claimed in claim 1, wherein the base layer comprises a non-adhering surface and the thermosetting polymer glue that encloses and houses the conductive filament is first combined with the non-adhering surface of the base layer and then a layer of adhesive is coated on the non-adhering surface of the base layer on which the thermosetting polymer glue that encloses and houses the conductive filament is attached.
5. The improved plastic-cladding filament structure as claimed in claim 1, wherein the base layer comprises one of paper, fabric, film, plate, and elastic body.
6. The improved plastic-cladding filament structure as claimed in claim 3, wherein the base layer comprises one of paper, fabric, film, plate, and elastic body.
7. The improved plastic-cladding filament structure as claimed in claim 4, wherein the base layer comprises one of paper, fabric, film, plate, and elastic body.
8. The improved plastic-cladding filament structure as claimed in claim 5, wherein the fabric is tailored and sewn to form a fabric article, which is one of a garment, trousers, gloves, underwear, a vest, a corsage, and a tube-top, the fabric article comprising an elastic material or a non-elastic material.
9. The improved plastic-cladding filament structure as claimed in claim 6, wherein the fabric is tailored and sewn to form a fabric article, which is one of a garment, trousers, gloves, underwear, a vest, a corsage, and a tube-top, the fabric article comprising an elastic material or a non-elastic material.
10. The improved plastic-cladding filament structure as claimed in claim 7, wherein the fabric is tailored and sewn to form a fabric article, which is one of a garment, trousers, gloves, underwear, a vest, a corsage, and a tube-top, the fabric article comprising an elastic material or a non-elastic material.
11. The improved plastic-cladding filament structure as claimed in claim 1, wherein the thermosetting polymer glue is heated and set to be combined with the base layer in such a way that the conductive filament is set in a linear form.
12. The improved plastic-cladding filament structure as claimed in claim 3, wherein the thermosetting polymer glue is heated and set to be combined with the base layer in such a way that the conductive filament is set in a linear form.
13. The improved plastic-cladding filament structure as claimed in claim 4, wherein the thermosetting polymer glue is heated and set to be combined with the base layer in such a way that the conductive filament is set in a linear form.
14. The improved plastic-cladding filament structure as claimed in claim 1, wherein the thermosetting polymer glue is heated and set to be combined with the base layer in such a way that the conductive filament is bent to show an S-shaped configuration or a Z-shaped configuration.
15. The improved plastic-cladding filament structure as claimed in claim 3, wherein the thermosetting polymer glue is heated and set to be combined with the base layer in such a way that the conductive filament is bent to show an S-shaped configuration or a Z-shaped configuration.
16. The improved plastic-cladding filament structure as claimed in claim 4, wherein the thermosetting polymer glue is heated and set to be combined with the base layer in such a way that the conductive filament is bent to show an S-shaped configuration or a Z-shaped configuration.
17. The improved plastic-cladding filament structure as claimed in claim 1, wherein the combination is achieved with sewing or adhesive.
18. The improved plastic-cladding filament structure as claimed in claim 3, wherein the combination is achieved with sewing or adhesive.
19. The improved plastic-cladding filament structure as claimed in claim 4, wherein the combination is achieved with sewing or adhesive.
20. The improved plastic-cladding filament structure as claimed in claim 1, wherein the conductive filament comprises an extension section, which is located outside the thermosetting polymer glue.
21. The improved plastic-cladding filament structure as claimed in claim 1, wherein the thermosetting polymer glue that encloses and houses the conductive filament comprises at least one hollowed section to partly expose the conductive filament.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0013] The present invention can be fully understood from the following detailed description and preferred embodiments with reference to the accompanying drawings, in which:
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0022] Referring to
[0023] In a primary example of embodiment of the present invention, the improved plastic-cladding filament structure generally comprises a base layer 10, thermosetting polymer glue 20, and at least one conductive filament 30 (as shown in
[0024] The at least one conductive filament 30 is formed of a material comprising one of stainless steel, carbon fiber, sputtered fiber, or other materials showing similar electrical conduction property in order to provide the conductive filament 30 with electrical conductivity. The at least one conductive filament 30 is enclosed and housed in the thermosetting polymer glue 20, or alternatively multiple conductive filaments 30 (see
[0025] In the primary example of embodiment of the improved plastic-cladding filament structure according to the present invention, the thermosetting polymer glue 20 that encloses and houses the conductive filament 30 is provided with at least one hollowed section 21 (three hollowed sections 21 being involved in the instant embodiment) such that the hollowed sections 21 of the thermosetting polymer glue 20 allow the conductive filament 30 to be partly exposed (as shown in
[0026] A first example of application of the improved plastic-cladding filament structure according to the present invention comprises a base layer 10, thermosetting polymer glue 20, and at least one conductive filament 30. The at least one conductive filament 30 is enclosed and hosed in the thermosetting polymer glue 20 so that the conductive filament 30 may be combined with the base layer 10 by means of the thermosetting polymer glue 20 being heated and getting set. The base layer 10 can be one of paper, fabric, film, plate, and elastic body. Paper used herein can be all sorts of paper product (not shown) made of pulp, such as an ordinary paper sheet, a cardboard, and a corrugated paperboard. Fabric used herein can be a piece of fabric (not shown) formed by weaving or knitting or otherwise processing all sorts of fibers or filaments. Film used herein can be a flexible film of plastics or a flexible film of carbon material or other films formed of flexible materials (not shown). Plate used herein can be a rigid plate made of plastics, a rigid plate made of metals, a rigid plate made of carbon materials, or plates made of other rigid materials (not shown). The elastic body used herein can be a fabric or an elastic band (not shown) formed by weaving or knitting or otherwise processing all sorts of elastic fibers or filaments.
[0027] The base layer 10 comprises an adhesive surface 11 (as shown in
[0028] A second example of application of the improved plastic-cladding filament structure according to the present invention comprises a base layer 10, thermosetting polymer glue 20, and at least one conductive filament 30. The at least one conductive filament 30 is enclosed and hosed in the thermosetting polymer glue 20 so that the conductive filament 30 may be combined with the base layer 10 by means of the thermosetting polymer glue 20 being heated and getting set. The base layer 10 can be one of paper, fabric, film, plate, and elastic body. The base layer 10 does not include an adhesive surface. The thermosetting polymer glue 20 that encloses and houses the conductive filament 30 is first combined to a non-adhesive surface of the base layer 10, wherein the combination between the thermosetting polymer glue 20 that encloses and houses the conductive filament 30 and the base layer 10 is achieved with sewing or adhesive. In the instant example, the base layer 10 is coated with adhesive to make the surface adhering so that the thermosetting polymer glue 20 that encloses and houses the conductive filament 30 can be adhesively attached to the base layer 10. Alternatively, stitching lines may be used to stitch the thermosetting polymer glue 20 that encloses and houses the conductive filament 30 to the base layer 10 and after the combination is made, a layer of adhesive 40 is applied to the non-adhering surface of the base layer 10 to which the thermosetting polymer glue 20 that encloses and houses the conductive filament 30 is combined (as shown in
[0029] A third example of application of the improved plastic-cladding filament structure according to the present invention comprises a base layer 10, thermosetting polymer glue 20, and at least one conductive filament 30. The at least one conductive filament 30 is enclosed and hosed in the thermosetting polymer glue 20 so that the conductive filament 30 may be combined with the base layer 10 by means of the thermosetting polymer glue 20 being heated and getting set. The base layer 10 can be one of paper, fabric, film, plate, and elastic body, wherein the fabric can be tailored and sewn to form a fabric article (as shown in
[0030] Further, in the above-described first, second, third, and fourth examples of application of the plastic-cladding filament structure according to the present invention, the fabric article is provided with signal transmission contact terminals (not shown) and the signal transmission contact terminal is connected to at least one detection module (not shown), wherein signal transmission or electrical power transmission between the signal transmission contact terminals and the at least one detection module is achieved with the thermosetting polymer glue 20 that encloses and houses the conductive filament 30. The detection module used herein may be formed by weaving or knitting a plurality of non-conductive yarns and a plurality of conductive yarns, or alternatively, an electrode plate that is entirely formed by weaving or knitting a plurality of conductive yarns so that the entire electrode plate shows a property of electrical conduction, allowing the detection module to detect a physiological signal or tilting of a human body that is then transmitted to the signal transmission contact terminals. Further, the signal transmission contact terminals may be combined with a signal transmitter (not shown), which comprises therein a wireless transmission module that transmits, in a wireless manner, the physiological signal or a wireless signal indicating variation of tilting of human body to an electronic device (such as a smart phone, an intelligent tablet computer, a notebook computer, a desktop computer, and medical facility) or cloud for facilitating understanding of the detection result to provide preventive medical treatment.
[0031] Based on the above detailed description, those skilled in the art may appreciate that the present invention can achieve the above-discussed objectives. However, it is noted that the above description is made only to a preferred embodiment of the present invention and is not intending to limit the true scope where the present invention may be put into practice. Thus, simple and equivalent variations and modifications made on the disclosure of the specification and the attached claims are all considered within the scope of the present invention.