ELECTRICALLY CONDUCTIVE AND ELASTIC TEXTILE BAND CAPABLE OF TRANSMITTING ELECTRICAL SIGNAL WITHOUT DISTORTION
20210140075 ยท 2021-05-13
Inventors
Cpc classification
D03D17/00
TEXTILES; PAPER
D10B2331/04
TEXTILES; PAPER
D03D15/283
TEXTILES; PAPER
International classification
D03D15/00
TEXTILES; PAPER
Abstract
Disclosed is an electrically conductive and elastic textile band capable of transmitting an electrical signal by interconnecting wearable smart devices. The textile band can precisely transmit an electrical signal without distortion because there is almost no change in resistance according to extension although the textile band is extended in one direction.
Claims
1. An electrically conductive and elastic textile band in which a first direction fiber and the second direction fiber are orthogonal to each other, wherein the first direction fiber comprises an extensible yarn and a conductive yarn having electrical conduction, the extensible yarn and conductive yarn are orthogonal to the second direction fibers, respectively, the extensible yarn has a greater size of fiber than the conductive yarn, and the conductive yarn is positioned within a marginal space orthogonally formed by the second direction fiber.
2. The textile band of claim 1, wherein the marginal space is formed between the extensible yarn arranged in the first direction.
3. The textile band of claim 2, wherein the marginal space is formed by the extensible yarn protruded to a top and bottom of the second direction fiber.
4. The textile band of claim 2, wherein the conductive yarn is extended in the first direction within the marginal space by a height difference formed by the conductive yarn before and after the extensible yarn.
5. The textile band of claim 1, wherein a single or a plurality of the conductive yarns is alternately arranged along with one or more extensible yarns in the first direction.
6. The textile band of claim 1, wherein a ratio of sizes of fiber of the conductive yarn and the extensible yarn is 1:4 to 1:8.
7. The textile band of claim 1, wherein the electrically conductive textile band has a rate of change in resistance of 3% or less according to extension in the first direction.
8. The textile band of claim 6, wherein the electrically conductive textile band has a rate of change in resistance of 3% or less if the electrically conductive textile band is extended 80% or less in the first direction.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
DESCRIPTION OF REFERENCE NUMERALS
[0029] 10: electrically conductive textile band
[0030] 20: first direction fiber
[0031] 21: extensible yarn
[0032] 22: conductive yarn
[0033] 30: second direction fiber
[0034] 40: clamp
[0035] S: marginal space
[0036] D.sub.1: extensible yarn thickness before extension
[0037] D.sub.2: extensible yarn thickness after extension
[0038] H.sub.1: conductive yarn height before extension
[0039] H.sub.2: conductive yarn height after extension
[0040] C: conductive yarn path length
DETAILED DESCRIPTION OF THE INVENTION
[0041] Hereinafter, embodiments of the present invention are described in detail with reference to the accompanying drawings.
[0042] The embodiments are provided to a person having ordinary knowledge in the art to which the present invention pertain to fully describe the present invention. In the drawings, the shape of an element, the size of an element and the distance between elements may have been exaggerated or reduced in order to emphasize a clearer description.
[0043] Furthermore, in describing the embodiments, a detailed description of a known art which is evident to an ordinary person in the art to which the present invention pertains, such as a known function or construction related to the present invention, will be omitted if it is deemed to make the gist of the present invention unnecessarily vague.
[0044] In the present invention, a term fiber means a natural or artificial line-shaped polymer object which can be bent lengthily, slimly and flexibly. A term elongation rate means a ratio of a drawn and extended length and the original length (unit: %).
[0045] Furthermore, in the present invention, a term first direction fiber means a fiber arranged in the direction in which the length of the fiber is extended, and means a warp or a weft. A second direction fiber means a fiber orthogonal to the first direction fiber, and means a weft or a warp.
[0046] An electrically conductive textile band according to an embodiment of the present invention is a conductive line used to electrically connect an electrical element, such as a sensor embedded in smart clothes, an electronic device, such as a display or a terminal, and a power source unit for driving a sensor or an electronic device.
[0047]
[0048] The first direction fiber 20 is configured with an extensible yarn 21 having elasticity and a conductive yarn 22 having electrical conduction, and is orthogonal to the second direction fiber 30.
[0049] In this case, the extensible yarn 21 and the conductive yarn 22 are arranged in the same first direction, and are freely extended by the extensible yarn 21 in the first direction in which an electrical signal is transmitted in response to a motion of a user.
[0050] Furthermore, the extensible yarn 21 extends the electrically conductive textile band 10 in the first direction and also forms a marginal space S in the first direction in which the conductive yarns 22 are arranged. To this end, as shown in
[0051] The conductive yarn 22 is a fiber having electrical conduction. The conductive yarn 22 and the extensible yarn 21 and are alternately arranged in the first direction.
[0052] As described above, the conductive yarn 22 that is alternately arranged along with the extensible yarn 21 can be freely extended by an adjacent extensible yarn 21. Furthermore, as shown in
[0053] A known synthetic fiber, such as a polyester yarn or a nylon yarn, may be used as the second direction fibers 30 orthogonal to the respective extensible yarn 21 and conductive yarn 22 configuring the first direction fiber 20. The electrically conductive textile band 10 illustrated in
[0054]
[0055] That is, the extensible yarn 21 orthogonal to the top and bottom of the first direction fiber 20 is protruded by a corresponding thickness, and the conductive yarn 22 having a smaller size of fiber than the extensible yarn 21 is orthogonal to the first direction fiber 20 in parallel to the extensible yarn 21. Accordingly, as shown in
[0056] In this case, in order for the marginal space S to be formed by the extensible yarn 21, a ratio of the sizes of fiber of the conductive yarn 22 and the extensible yarn 21 may be 1:4 to 1:8. If the ratio of the sizes of fiber of the conductive yarn 22 and the extensible yarn 21 is less than 1:4, a change in resistance occurs if the elongation rate of the extensible yarn 21 is high because the marginal space S is reduced. If the ratio of the sizes of fiber of the conductive yarn 22 and the extensible yarn 21 exceeds 1:8, it is difficult for the conductive yarn 22 and the first direction fiber 20 to be weaved because the marginal space S is too large. Furthermore, the ratio of the sizes of fiber of the conductive yarn 22 and the first direction fiber 20 may be 1:11:4. If the ratio of the sizes of fiber of the conductive yarn 22 and the first direction fiber 20 is less than 1:1, it is difficult for the second direction fiber 30 to be weaved with the first direction fiber 20. If the ratio of the sizes of fiber of the conductive yarn 22 and the first direction fiber 20 exceeds 1:4, a change in resistance occurs because the second direction fiber 30 presses the conductive yarn 22 upon extension.
[0057] The state in which the electrically conductive textile band 10 has been extended is illustrated in
[0058] Changes in the form of the conductive yarn 22 before and after the electrically conductive textile band 10 is extended as described above are illustrated in
[0059] Such embodiment of the present invention and a comparison example are described below.
[0060] <Embodiment 1>
[0061] A conductive yarn having a size of fiber of 70 denier was prepared as a warp by covering an outer side of a polyurethane yarn, that is, corn yarn, with a nylon covered yarn and coating silver (Ag) nanopowder on an extensible yarn having a size of fiber of 420 deniers and the nylon yarn. Furthermore, a polyester yarn having a size of fiber of 150 deniers was prepared as a weft. One strand of an extensible yarn and one strand of a conductive yarn are alternately weaved along with the weft in the warp direction, thus forms side parts on both sides. Only the extensible yarn and the weft are weaved at the center. Accordingly, as shown in
[0062] <Embodiment 2>
[0063] An electrically conductive textile band identical with that of the embodiment 1 was fabricated except that an extensible yarn having a size of fiber of 350 deniers was used.
[0064] <Comparison Example 1>
[0065] An electrically conductive textile band identical with that of the embodiment 1 was fabricated except that an extensible yarn having a size of fiber of 200 deniers was used.
[0066] <Comparison Example 2>
[0067] An electrically conductive textile band identical with that of the embodiment 1 was fabricated except that an extensible yarn and a conductive yarn both having a size of fiber of 70 deniers were used.
[0068] <Comparison Example 3>
[0069] An electrically conductive textile band identical with that of the embodiment 1 was fabricated except that a weft having a size of fiber of 350 deniers was used.
[0070] Changes in resistance according to the extension of the textile bands according to the embodiments 1 and 2 and the comparison examples 1 to 3 were measured as follows.
[0071] <Experiment 1: Measurement of Changes in Resistance According to Extension>
[0072] As shown in
[0073] A rate of change in resistance according to extension (%)=(resistance value after extension in the warp directionresistance value prior to extension)/(resistance value prior to extension)100.
TABLE-US-00001 TABLE 1 Classification/ 10% 25% 50% 75% 80% Elongation rate Embodiment 1 0.1% 0.4% 1.1% 1.8% 2.3% Embodiment 2 0.2% 0.8% 1.8% 2.4% 3.0% Comparison example 1 1.8% 4.5% 11% 24% 32% Comparison example 2 5% 22% 45% 66% 73% Comparison example 3 1.5% 3.9% 10% 22% 29%
[0074] As shown in Table 1 and
[0075] From such an experiment, it could be seen that a difference in the size of fiber between the extensible yarn and weft arranged in the same direction as the conductive yarn 22 greatly influences a rate of change in resistance. The reason for this is that upon extension, the conductive yarn 22 positioned within the marginal space S formed by the extensible yarn 21 having a large size of fiber is extended in the warp direction without being influenced by weight or an external force according to the extension of the extensible yarn 21. Accordingly, the cross section and path length C of the conductive yarn 22 before and after extension is almost the same, and there is almost no change in resistance in the conductive yarn 22.
[0076] As described above, the electrically conductive textile band 10 according to an embodiment of the present invention can transfer an electrical signal in the direction in which the extensible yarn 21 and the conductive yarn 22 are extended because the extensible yarn 21 and the conductive yarn 22 are arranged in the same direction. Accordingly, a fine electrical signal can be accurately transmitted to an electronic device connected to the textile band without noise because a change in resistance can be minimized upon extension.
[0077] The electrically conductive and elastic textile band according to an embodiment of the present invention can transfer an electrical signal in the direction in which the extensible yarn and the conductive yarn, that is, the first direction fiber, are extended because the first direction fiber is orthogonal to the second direction fiber. Furthermore, when the extensible yarn is extended, a change in resistance can be minimized because the conductive yarn within the marginal space formed by the extensible yarn having a large size of fiber is not influenced by weight according to extension or an external force and is extended without a change in the path length. Accordingly, when the textile band is used in a wearable smart device, a fine electrical signal, such as a bio signal, can be precisely transmitted to an electronic device connected to the textile band without noise.
[0078] The present invention is not limited to the embodiments and it is evident to those skilled in the art that the present invention may be modified and changed in various ways without departing from the spirit and range of the present invention. Accordingly such modifications or changes may fall within the claims of the present invention.