US20140242869A1 - Structure of three-dimensional electrically conductive fabric - Google Patents

Structure of three-dimensional electrically conductive fabric Download PDF

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Publication number
US20140242869A1
US20140242869A1 US13/775,421 US201313775421A US2014242869A1 US 20140242869 A1 US20140242869 A1 US 20140242869A1 US 201313775421 A US201313775421 A US 201313775421A US 2014242869 A1 US2014242869 A1 US 2014242869A1
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United States
Prior art keywords
yarns
electrically conductive
tissue
support
structural
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Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Abandoned
Application number
US13/775,421
Inventor
Hong-Hsu Huang
I-Chen Su
King-Mu Hsiao
Shun-Tung Yang
Jung-Hsiang Peng
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Kings Metal Fiber Technologies Co Ltd
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Kings Metal Fiber Technologies Co Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Kings Metal Fiber Technologies Co Ltd filed Critical Kings Metal Fiber Technologies Co Ltd
Priority to US13/775,421 priority Critical patent/US20140242869A1/en
Assigned to KING'S METAL FIBER TECHNOLOGIES CO., LTD. reassignment KING'S METAL FIBER TECHNOLOGIES CO., LTD. ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: Hsiao, King-Mu, HUANG, HONG-HSU, PENG, Jung-Hsiang, Su, I-Chen, YANG, SHUN-TUNG
Publication of US20140242869A1 publication Critical patent/US20140242869A1/en
Priority to US14/630,970 priority patent/US20150164420A1/en
Abandoned legal-status Critical Current

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    • DTEXTILES; PAPER
    • D04BRAIDING; LACE-MAKING; KNITTING; TRIMMINGS; NON-WOVEN FABRICS
    • D04BKNITTING
    • D04B1/00Weft knitting processes for the production of fabrics or articles not dependent on the use of particular machines; Fabrics or articles defined by such processes
    • D04B1/14Other fabrics or articles characterised primarily by the use of particular thread materials
    • D04B1/18Other fabrics or articles characterised primarily by the use of particular thread materials elastic threads
    • DTEXTILES; PAPER
    • D10INDEXING SCHEME ASSOCIATED WITH SUBLASSES OF SECTION D, RELATING TO TEXTILES
    • D10BINDEXING SCHEME ASSOCIATED WITH SUBLASSES OF SECTION D, RELATING TO TEXTILES
    • D10B2403/00Details of fabric structure established in the fabric forming process
    • D10B2403/02Cross-sectional features
    • DTEXTILES; PAPER
    • D10INDEXING SCHEME ASSOCIATED WITH SUBLASSES OF SECTION D, RELATING TO TEXTILES
    • D10BINDEXING SCHEME ASSOCIATED WITH SUBLASSES OF SECTION D, RELATING TO TEXTILES
    • D10B2403/00Details of fabric structure established in the fabric forming process
    • D10B2403/02Cross-sectional features
    • D10B2403/021Lofty fabric with equidistantly spaced front and back plies, e.g. spacer fabrics
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T442/00Fabric [woven, knitted, or nonwoven textile or cloth, etc.]
    • Y10T442/40Knit fabric [i.e., knit strand or strip material]
    • Y10T442/413Including an elastic strand

Definitions

  • the present invention relates to a structure of three-dimensional electrically conductive fabric, and in particular to a structure of three-dimensional electrically conductive fabric that features both resiliency and electrical conductivity.
  • a conventional detection element 1 for physiological examination comprises a base layer 10 and an electrically conductive layer 11 formed on the base layer 10 .
  • the electrically conductive layer is attached to human skin surface to detect a signal generated by the human body.
  • the electrically conductive 11 of such a detection element 1 is generally of poor resiliency and has poor electrical conductivity with human skin is poor, making it difficult to detect the signal generated by the human body and also making wear uncomfortable.
  • an improvement is made such that a resilient layer 12 is arranged between the electrically conductive layer 11 and the base layer 10 so that contact tightness between the electrically conductive layer 11 and human skin can be improved with the resilient layer 12 .
  • a moisture-retaining material is also included in the layer to make the layer also function moisture retaining thereby improving electrical conductivity of the electrically conductive layer 11 .
  • the resilient layer 12 and the electrically conductive layer 11 are two separate layers, moisture must penetrate through the electrically conductive layer 11 before being absorbed by the resilient layer 12 . Consequently, the absorbability of moisture is affected. When the resilient layer 12 releases water between the electrically conductive layer 11 and human skin, the release of water is also affected by being blocked by the electrically conductive layer 11 . Further, since the resilient layer 12 and the electrically conductive layer 11 are two separate layers that are bonded to each other by an external force (such as adhesion). These layers are easily detached from each other due to the high humidity long maintained by the resilient layer 12 , making the detection element 1 losing its function.
  • the present invention aims to provide a structure that possesses the characteristics of resiliency, electrical conduction, and moisture retention in order to achieve the goal of improving electrical conduction and lifespan of product.
  • An object of the present invention is to provide a structure of three-dimensional electrically conductive fabric that is formed through being unitarily knitted and features resiliency and electrical conductivity.
  • Another object of the present invention is to provide a structure of three-dimensional electrically conductive fabric that features moisture retention.
  • the present invention provides a structure of three-dimensional electrically conductive fabric, which comprises a resilient conductive tissue, which is formed by arranging and interlacing a plurality of first structural yarns, a plurality of first elastic yarns, and a plurality of electrically conductive yarns, wherein each of the first structural yarns is combined with each of the first elastic yarns as a strand for being alternately arranged with each of the electrically conductive yarns; a foundation tissue, which is formed by arranging and interlacing a plurality of second structural yarns and a plurality of second elastic yarns, each of the second structural yarns being arranged, as the same strand, with each of the second elastic yarns; and a support tissue, which is formed of a plurality of first support yarns and a plurality of second support yarns and connects between the resilient conductive tissue and the foundation tissue, wherein each of the first support yarns is arranged, as the same strand, with each of the first structural yarns and each of the first elastic yarns
  • the first structural yarns and the second structural yarns are each one of polyester yarn, porous fiber yarn, alginate fiber yarn, carboxymethyl cellulose fiber yarn, and rayon fiber yarn.
  • the electrically conductive yarns are one of metal fiber yarn, carbon nanotube fiber yarn, and carbon fiber yarn.
  • the first elastic yarns and the second elastic yarns are each spandex yarn.
  • the first support yarns and the second support yarns are each one of polyester yarn and nylon yarn.
  • the first structural yarns, the first elastic yarns, and the electrically conductive yarns are arranged and interlaced through knitting to form the resilient conductive tissue.
  • the second structural yarns and the second elastic yarns are arranged and interlaced through knitting to form the foundation tissue.
  • the resilient conductive tissue, the foundation tissue, and the support tissue are unitarily combined to form the structure of three-dimensional electrically conductive fabric, in which the same planar tissue features both resiliency and electrical conductivity and also shows an effect of moisture retention through being combined with structural yarns that feature moisture retention.
  • FIG. 1 is a side elevational view showing a conventional detection element for physiological examination
  • FIG. 2 is a side elevational view showing a conventional detection element for physiological examination
  • FIG. 3 is a schematic view showing a structure of three-dimensional electrically conductive fabric according to the present invention.
  • FIG. 4 is a perspective view showing, in an enlarged form, a portion of the structure of three-dimensional electrically conductive fabric in accordance with the present invention.
  • FIG. 5 is a cross-sectional view showing, in an enlarged form, a portion of the structure of three-dimensional electrically conductive fabric in accordance with the present invention.
  • FIG. 3 is a perspective view showing a structure of three-dimensional electrically conductive fabric according to the present invention
  • the structure of three-dimensional electrically conductive fabric according to the present invention comprises a resilient conductive tissue 20 , a support tissue 30 , and a foundation tissue 40 , which are knitted unitarily to form the structure of three-dimensional electrically conductive fabric with the support tissue 30 arranged between and connecting the resilient conductive tissue 20 and the foundation tissue 40 .
  • FIG. 4 is a perspective view showing, in an enlarged form, a portion of the structure of three-dimensional electrically conductive fabric in accordance with the present invention
  • the resilient conductive tissue 20 is formed by arranging and interlacing, through proper fabric manufacturing process, a plurality of first structural yarns 200 , a plurality of first elastic yarns 201 , and a plurality of electrically conductive yarns 202 together.
  • Each of the first structural yarns 200 is combined with each of the first elastic yarns 201 as a strand for being arranged alternately with each of the electrically conductive yarns 202 .
  • first structural yarns 200 , the first elastic yarns 201 , and the electrically conductive yarns 202 are alternately arranged through knitting to form the resilient conductive tissue 20 .
  • the foundation tissue 40 is formed by arranging and interlacing a plurality of second structural yarns 400 and second elastic yarns 401 .
  • Each of the second structural yarns 400 and each of the second elastic yarns 401 are arranged together as the same strand.
  • the support tissue 30 is formed of a plurality of first support yarns 300 and a plurality of second support yarns 301 and connects between the resilient conductive tissue 20 and the foundation tissue 40 , wherein each of the first support yarns 300 is arranged, as the same strand, with each of the first structural yarns 200 and each of the first elastic yarns 201 and subsequently extends to the foundation tissue 40 to be arranged, as the same strand, with each of the second structural yarns 400 and each of the second elastic yarns 401 .
  • Each of the second support yarns 301 is arranged, as the same strand, with each of the electrically conductive yarns 202 and subsequently extends to the foundation tissue 40 to be arranged, as the same strand, with each of the second structural yarns 400 and each of the second elastic yarns 401 in a manner of being spaced from the first support yarns.
  • the interlaced arrangement of the first support yarns 300 and the second support yarns 301 provides improved resiliency to the structure of three-dimensional electrically conductive fabric of the present invention, so as to make a wearer comfortable when is used to make a wearable article.
  • the first support yarns 300 and the second support yarns 301 form tiny voids therebetween that help retaining moisture and improving electrical conductivity.
  • the resilient conductive tissue 20 is formed by arranging and interlacing a plurality of first structural yarns 200 , a plurality of first elastic yarns 201 , and a plurality of electrically conductive yarns 202 together.
  • Each of the first structural yarns 200 is combined with each of the first elastic yarns 201 as a strand for being arranged alternately with each of the electrically conductive yarns 202 , whereby after the entirety of the structure of three-dimensional electrically conductive fabric is completely arranged when the stretching force of yarns are removed, the first elastic yarns 201 get contracting and squeeze the electrically conductive yarns 202 outward so that the electrically conductive yarns 202 project beyond the surface of the entire resilient conductive tissue 20 . This ensures that when the fabric is placed on human body, the electrically conductive yarns 202 get contact with the human body first so that the structure of three-dimensional electrically conductive fabric according to the present invention may provide improved effect of detection.
  • the first structural yarns 200 and the second structural yarns 400 can selectively be one of polyester yarn, porous fiber yarn, alginate fiber yarn, carboxymethyl cellulose fiber yarn, and rayon fiber yarn, among which porous fiber yarn, alginate fiber yarn, carboxymethyl cellulose fiber yarn, and rayon fiber yarn have the function of moisture retention. If the first structural yarns 200 and the second structural yarns 400 are selected from these four materials, then the structure of three-dimensional electrically conductive fabric according to the present invention may shows the characteristics of resiliency, moisture retention, and electrical conductivity.
  • the first elastic yarns 201 and the second elastic yarns 401 can be spandex yarn.
  • the electrically conductive yarns 202 can selectively be one of metal fiber yarn, carbon nanotube fiber yarn, and carbon fiber yarn.
  • the first support yarns 300 and the second support yarns 301 can selectively be one of polyester yarn and nylon yarn.

Abstract

A structure of three-dimensional electrically conductive fabric includes a resilient conductive tissue, a foundation tissue, and a support tissue. The support tissue is arranged between and connects the resilient conductive tissue and the foundation tissue. The resilient conductive tissue, the foundation tissue, and the support tissue are unitarily combined through knitting to form the structure of three-dimensional electrically conductive fabric.

Description

    FIELD OF THE INVENTION
  • The present invention relates to a structure of three-dimensional electrically conductive fabric, and in particular to a structure of three-dimensional electrically conductive fabric that features both resiliency and electrical conductivity.
  • BACKGROUND OF THE INVENTION
  • As shown in FIG. 1, a conventional detection element 1 for physiological examination comprises a base layer 10 and an electrically conductive layer 11 formed on the base layer 10. To use, the electrically conductive layer is attached to human skin surface to detect a signal generated by the human body. However, the electrically conductive 11 of such a detection element 1 is generally of poor resiliency and has poor electrical conductivity with human skin is poor, making it difficult to detect the signal generated by the human body and also making wear uncomfortable. As shown in FIG. 2, an improvement is made such that a resilient layer 12 is arranged between the electrically conductive layer 11 and the base layer 10 so that contact tightness between the electrically conductive layer 11 and human skin can be improved with the resilient layer 12. Further, a moisture-retaining material is also included in the layer to make the layer also function moisture retaining thereby improving electrical conductivity of the electrically conductive layer 11. However, since the resilient layer 12 and the electrically conductive layer 11 are two separate layers, moisture must penetrate through the electrically conductive layer 11 before being absorbed by the resilient layer 12. Consequently, the absorbability of moisture is affected. When the resilient layer 12 releases water between the electrically conductive layer 11 and human skin, the release of water is also affected by being blocked by the electrically conductive layer 11. Further, since the resilient layer 12 and the electrically conductive layer 11 are two separate layers that are bonded to each other by an external force (such as adhesion). These layers are easily detached from each other due to the high humidity long maintained by the resilient layer 12, making the detection element 1 losing its function.
  • In view of this problem, the present invention aims to provide a structure that possesses the characteristics of resiliency, electrical conduction, and moisture retention in order to achieve the goal of improving electrical conduction and lifespan of product.
  • SUMMARY OF THE INVENTION
  • An object of the present invention is to provide a structure of three-dimensional electrically conductive fabric that is formed through being unitarily knitted and features resiliency and electrical conductivity.
  • Another object of the present invention is to provide a structure of three-dimensional electrically conductive fabric that features moisture retention.
  • To realize the above objects, the present invention provides a structure of three-dimensional electrically conductive fabric, which comprises a resilient conductive tissue, which is formed by arranging and interlacing a plurality of first structural yarns, a plurality of first elastic yarns, and a plurality of electrically conductive yarns, wherein each of the first structural yarns is combined with each of the first elastic yarns as a strand for being alternately arranged with each of the electrically conductive yarns; a foundation tissue, which is formed by arranging and interlacing a plurality of second structural yarns and a plurality of second elastic yarns, each of the second structural yarns being arranged, as the same strand, with each of the second elastic yarns; and a support tissue, which is formed of a plurality of first support yarns and a plurality of second support yarns and connects between the resilient conductive tissue and the foundation tissue, wherein each of the first support yarns is arranged, as the same strand, with each of the first structural yarns and each of the first elastic yarns and extends to the foundation tissue to be arranged, as the same strand, with each of second structural yarns and each of the second elastic yarns and each the second support yarns is arranged, as the same strand, with each of the electrically conductive yarns and extends to the foundation tissue to be arranged, in the same strand, with each of the second structural yarns and the second elastic yarns in a manner as being spaced from the first support yarns.
  • In the above-discussed structure of three-dimensional electrically conductive fabric, the first structural yarns and the second structural yarns are each one of polyester yarn, porous fiber yarn, alginate fiber yarn, carboxymethyl cellulose fiber yarn, and rayon fiber yarn.
  • In the above-discussed structure of three-dimensional electrically conductive fabric, the electrically conductive yarns are one of metal fiber yarn, carbon nanotube fiber yarn, and carbon fiber yarn.
  • In the above-discussed structure of three-dimensional electrically conductive fabric, the first elastic yarns and the second elastic yarns are each spandex yarn.
  • In the above-discussed structure of three-dimensional electrically conductive fabric, the first support yarns and the second support yarns are each one of polyester yarn and nylon yarn.
  • In the above-discussed structure of three-dimensional electrically conductive fabric, the first structural yarns, the first elastic yarns, and the electrically conductive yarns are arranged and interlaced through knitting to form the resilient conductive tissue.
  • In the above-discussed structure of three-dimensional electrically conductive fabric, the second structural yarns and the second elastic yarns are arranged and interlaced through knitting to form the foundation tissue.
  • In the above-discussed structure of three-dimensional electrically conductive fabric, the resilient conductive tissue, the foundation tissue, and the support tissue are unitarily combined to form the structure of three-dimensional electrically conductive fabric, in which the same planar tissue features both resiliency and electrical conductivity and also shows an effect of moisture retention through being combined with structural yarns that feature moisture retention.
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • The present invention will be apparent to those skilled in the art by reading the following description of preferred embodiments thereof with reference to the drawings, in which:
  • FIG. 1 is a side elevational view showing a conventional detection element for physiological examination;
  • FIG. 2 is a side elevational view showing a conventional detection element for physiological examination;
  • FIG. 3 is a schematic view showing a structure of three-dimensional electrically conductive fabric according to the present invention;
  • FIG. 4 is a perspective view showing, in an enlarged form, a portion of the structure of three-dimensional electrically conductive fabric in accordance with the present invention; and
  • FIG. 5 is a cross-sectional view showing, in an enlarged form, a portion of the structure of three-dimensional electrically conductive fabric in accordance with the present invention.
  • DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
  • With reference to the drawings and in particular to FIG. 3, which is a perspective view showing a structure of three-dimensional electrically conductive fabric according to the present invention, as shown in the drawing, in the instant embodiment, the structure of three-dimensional electrically conductive fabric according to the present invention comprises a resilient conductive tissue 20, a support tissue 30, and a foundation tissue 40, which are knitted unitarily to form the structure of three-dimensional electrically conductive fabric with the support tissue 30 arranged between and connecting the resilient conductive tissue 20 and the foundation tissue 40.
  • Referring to FIG. 4, which is a perspective view showing, in an enlarged form, a portion of the structure of three-dimensional electrically conductive fabric in accordance with the present invention, as shown in the drawing, the resilient conductive tissue 20 is formed by arranging and interlacing, through proper fabric manufacturing process, a plurality of first structural yarns 200, a plurality of first elastic yarns 201, and a plurality of electrically conductive yarns 202 together. Each of the first structural yarns 200 is combined with each of the first elastic yarns 201 as a strand for being arranged alternately with each of the electrically conductive yarns 202. Further, the first structural yarns 200, the first elastic yarns 201, and the electrically conductive yarns 202 are alternately arranged through knitting to form the resilient conductive tissue 20. The foundation tissue 40 is formed by arranging and interlacing a plurality of second structural yarns 400 and second elastic yarns 401. Each of the second structural yarns 400 and each of the second elastic yarns 401 are arranged together as the same strand. The support tissue 30 is formed of a plurality of first support yarns 300 and a plurality of second support yarns 301 and connects between the resilient conductive tissue 20 and the foundation tissue 40, wherein each of the first support yarns 300 is arranged, as the same strand, with each of the first structural yarns 200 and each of the first elastic yarns 201 and subsequently extends to the foundation tissue 40 to be arranged, as the same strand, with each of the second structural yarns 400 and each of the second elastic yarns 401. Each of the second support yarns 301 is arranged, as the same strand, with each of the electrically conductive yarns 202 and subsequently extends to the foundation tissue 40 to be arranged, as the same strand, with each of the second structural yarns 400 and each of the second elastic yarns 401 in a manner of being spaced from the first support yarns. The interlaced arrangement of the first support yarns 300 and the second support yarns 301 provides improved resiliency to the structure of three-dimensional electrically conductive fabric of the present invention, so as to make a wearer comfortable when is used to make a wearable article. Further, the first support yarns 300 and the second support yarns 301 form tiny voids therebetween that help retaining moisture and improving electrical conductivity.
  • Referring to FIG. 5, which is a cross-sectional view showing, in an enlarged form, a portion of the structure of three-dimensional electrically conductive fabric in accordance with the present invention, as shown in drawing, the resilient conductive tissue 20 is formed by arranging and interlacing a plurality of first structural yarns 200, a plurality of first elastic yarns 201, and a plurality of electrically conductive yarns 202 together. Each of the first structural yarns 200 is combined with each of the first elastic yarns 201 as a strand for being arranged alternately with each of the electrically conductive yarns 202, whereby after the entirety of the structure of three-dimensional electrically conductive fabric is completely arranged when the stretching force of yarns are removed, the first elastic yarns 201 get contracting and squeeze the electrically conductive yarns 202 outward so that the electrically conductive yarns 202 project beyond the surface of the entire resilient conductive tissue 20. This ensures that when the fabric is placed on human body, the electrically conductive yarns 202 get contact with the human body first so that the structure of three-dimensional electrically conductive fabric according to the present invention may provide improved effect of detection.
  • The first structural yarns 200 and the second structural yarns 400 can selectively be one of polyester yarn, porous fiber yarn, alginate fiber yarn, carboxymethyl cellulose fiber yarn, and rayon fiber yarn, among which porous fiber yarn, alginate fiber yarn, carboxymethyl cellulose fiber yarn, and rayon fiber yarn have the function of moisture retention. If the first structural yarns 200 and the second structural yarns 400 are selected from these four materials, then the structure of three-dimensional electrically conductive fabric according to the present invention may shows the characteristics of resiliency, moisture retention, and electrical conductivity.
  • The first elastic yarns 201 and the second elastic yarns 401 can be spandex yarn. The electrically conductive yarns 202 can selectively be one of metal fiber yarn, carbon nanotube fiber yarn, and carbon fiber yarn. The first support yarns 300 and the second support yarns 301 can selectively be one of polyester yarn and nylon yarn.
  • Although the present invention has been described with reference to the preferred embodiments thereof, it is apparent to those skilled in the art that a variety of modifications and changes may be made without departing from the scope of the present invention which is intended to be defined by the appended claims.

Claims (8)

1. A structure of three-dimensional electrically conductive fabric, comprising:
a resilient conductive tissue, which is formed by arranging and interlacing a plurality of first structural yarns, a plurality of first elastic yarns, and a plurality of electrically conductive yarns, wherein each of the first structural yarns is combined with each of the first elastic yarns as a first strand for being alternately arranged with each of the electrically conductive yarns;
a foundation tissue, which is formed by arranging and interlacing a plurality of second structural yarns and a plurality of second elastic yarns, wherein each of the second structural yarns being arranged with each of the second elastic yarns as a second strand; and
a support tissue, which is formed of a plurality of first support yarns and a plurality of second support yarns and connects between the resilient conductive tissue and the foundation tissue, wherein each of the first support yarns is arranged with each of the first strand and extends to the foundation tissue to be arranged with each of the second strand, and each of the second support yarns is arranged with each of the electrically conductive yarns and extends to the foundation tissue to be arranged with each of the second elastic yarns second strand in a manner as being spaced from the first support yarns.
2. The structure of three-dimensional electrically conductive fabric as claimed in claim 1, wherein the first structural yarns and the second structural yarns are each one of polyester yarn, porous fiber yarn, alginate fiber yarn, carboxymethyl cellulose fiber yarn, and rayon fiber yarn.
3. The structure of three-dimensional electrically conductive fabric as claimed in claim 1, wherein the electrically conductive yarns are one of metal fiber yarn, carbon nanotube fiber yarn, and carbon fiber yarn.
4. The structure of three-dimensional electrically conductive fabric as claimed in claim 1, wherein the first elastic yarns and the second elastic yarns are each spandex yarn.
5. The structure of three-dimensional electrically conductive fabric as claimed in claim 1, wherein the first support yarns and the second support yarns are each one of polyester yam and nylon yarn.
6. The structure of three-dimensional electrically conductive fabric as claimed in claim 1, wherein the first structural yarns, the first elastic yarns, and the electrically conductive yarns are arranged and interlaced through knitting to form the resilient conductive tissue.
7. The structure of three-dimensional electrically conductive fabric as claimed in claim 1, wherein the second structural yarns and the second elastic yarns are arranged and interlaced through knitting to form the foundation tissue.
8. The structure of three-dimensional electrically conductive fabric as claimed in claim 1, wherein the electrically conductive yarns project beyond a surface of the resilient conductive tissue.
US13/775,421 2013-02-25 2013-02-25 Structure of three-dimensional electrically conductive fabric Abandoned US20140242869A1 (en)

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US13/775,421 US20140242869A1 (en) 2013-02-25 2013-02-25 Structure of three-dimensional electrically conductive fabric
US14/630,970 US20150164420A1 (en) 2013-02-25 2015-02-25 Structure of three-dimensional electrically conductive fabric

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Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20140246296A1 (en) * 2013-03-01 2014-09-04 King's Metal Fiber Technologies Co., Ltd. Fabric pressure switch
US20160108566A1 (en) * 2014-10-21 2016-04-21 Tsung-Min Tseng Color Changeable Textile
US20160273137A1 (en) * 2013-03-19 2016-09-22 Müller Textil GmbH Spacing knit fabric and method for producing a spacing knit fabric section
US20210388545A1 (en) * 2018-10-17 2021-12-16 Dmitry Valeryevich Marchenkov Three-dimensional knitted material

Citations (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20040099016A1 (en) * 2002-08-30 2004-05-27 Shepherd Adrian M. Weft knitted spacer fabrics

Patent Citations (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20040099016A1 (en) * 2002-08-30 2004-05-27 Shepherd Adrian M. Weft knitted spacer fabrics

Cited By (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20140246296A1 (en) * 2013-03-01 2014-09-04 King's Metal Fiber Technologies Co., Ltd. Fabric pressure switch
US20160273137A1 (en) * 2013-03-19 2016-09-22 Müller Textil GmbH Spacing knit fabric and method for producing a spacing knit fabric section
US10151054B2 (en) * 2013-03-19 2018-12-11 Mueller Textil Gmbh Spacer knit fabric and method for producing a spacer knit fabric section
US20160108566A1 (en) * 2014-10-21 2016-04-21 Tsung-Min Tseng Color Changeable Textile
US20210388545A1 (en) * 2018-10-17 2021-12-16 Dmitry Valeryevich Marchenkov Three-dimensional knitted material

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Owner name: KING'S METAL FIBER TECHNOLOGIES CO., LTD., TAIWAN

Free format text: ASSIGNMENT OF ASSIGNORS INTEREST;ASSIGNORS:HUANG, HONG-HSU;SU, I-CHEN;HSIAO, KING-MU;AND OTHERS;REEL/FRAME:029865/0690

Effective date: 20130117

STCB Information on status: application discontinuation

Free format text: ABANDONED -- FAILURE TO RESPOND TO AN OFFICE ACTION