Elastic fabric with electrifying function

By setting a wire zone and an adjustment section for the flexible conductor wire on the elastic fabric, the problem of the conductive wire's inability to stretch is solved, realizing the elastic stretching of the conductive fabric and improving the aesthetics and user experience of wearable electronic products.

CN224092091UActive Publication Date: 2026-04-07SYSMAX INNOVATIONS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-24
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

Existing conductive wires cannot work with the stretching properties of elastic fabrics, resulting in bulky and unsightly structures for wearable electronic products, which negatively impacts the user experience.

Method used

A wire section is set on an elastic fabric, and a flexible conductor wire is arranged along the stretching direction with several adjustment parts set at an angle. The adjustment parts are S-shaped or spring-shaped, and together with the elastic support and elastic webbing, the conductor wire can be stretched and adapted.

Benefits of technology

It achieves synchronous expansion and contraction of conductive wires and elastic fabric, reducing the need for external power supply cables, shrinking product size, and improving product aesthetics and user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an elastic fabric with a power-on function, which comprises an elastic fabric which comprises a wire rod area arranged at a preset position; and the conductor wires are flexible conductor wires, the conductor wires are arranged in the wire rod area in the stretching direction of the elastic fabric, each conductor wire comprises a plurality of adjusting parts which are continuously arranged, and the conductor wires corresponding to the adjusting parts are obliquely arranged along a preset radian relative to the stretching direction of the elastic fabric. According to the utility model, the wire rod area is arranged on the elastic fabric, the plurality of adjusting parts which are continuously arranged on the flexible conductor wire are arranged in the wire rod area, and the adjusting parts are obliquely arranged along the preset radian, so that when the elastic fabric is stretched, the inclined conductor wire is adaptive to the elastic fabric to provide a stretching space; and when the elastic fabric is applied to a wearable electronic product, a power supply line does not need to be externally hung, so that the effects of reducing the size of the product and providing better use experience for a user are achieved.
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Description

Technical Field

[0001] This utility model relates to the field of fabric technology, and in particular to an elastic fabric with electrical conductivity. Background Technology

[0002] In recent years, with the rapid development of science and technology and the Internet, the research and application of smart textiles and wearable electronic products have become more and more widespread. Conductive fabrics, because they can achieve both conductivity and wearability, have shown important research value and application potential in many fields such as medicine, military, and entertainment.

[0003] However, in the field of fabrics, combining conductive wires with ordinary fabrics is an important research direction. Elastic fabrics have stretchable properties, but there are currently no conductive wires with stretchable properties. However, to meet user experience requirements, conductive wires must be able to stretch and contract with elastic fabrics. Therefore, how to make conductive wires stretch and contract with elastic fabrics has become one of the important issues.

[0004] Therefore, existing technologies still need to be improved and developed. Utility Model Content

[0005] To address the problem that existing conductive wires cannot adapt to the stretching and contracting properties of elastic fabrics, this invention provides an elastic fabric with electrical conductivity.

[0006] This utility model is achieved through the following technical solution:

[0007] An elastic fabric with electrical conductivity, wherein the elastic fabric with electrical conductivity comprises:

[0008] An elastic fabric, the elastic fabric including a thread area disposed at a predetermined location;

[0009] The conductor wire is a flexible conductor wire, which is arranged in the wire area along the stretching direction of the elastic fabric. The conductor wire includes a plurality of continuously arranged adjustment parts, and the conductor wire corresponding to the adjustment part is inclined at a predetermined arc relative to the stretching direction of the elastic fabric.

[0010] The elastic fabric with electrical conductivity, wherein the adjustment part is a first adjustment unit, the first adjustment unit is S-shaped, the axis of the first adjustment unit is arranged parallel to the stretching direction of the elastic fabric, and a plurality of the first adjustment units are arranged along the plane within the wire area.

[0011] The described elastic fabric with electrical conductivity, wherein, and / or, the adjustment part is a second adjustment unit;

[0012] The elastic fabric is provided with an elastic support member arranged along the stretching direction of the elastic fabric, and the second adjustment unit is wound around the elastic support member in a spring shape. A plurality of the second adjustment units are sleeved in the wire area.

[0013] The aforementioned elastic fabric with electrical conductivity includes several elastic support members, which are uniformly arranged in the wire area along the stretching direction of the elastic fabric, and the elastic coefficient of the elastic support members is adapted to the elastic fabric.

[0014] The elastic fabric with electrical conductivity, wherein, and / or, the adjustment part is a third adjustment unit, and the third adjustment unit is S-shaped;

[0015] An elastic webbing is provided on one side of the elastic fabric corresponding to the conductor wire. The axis of the third adjustment unit is parallel to the stretching direction of the elastic webbing and is fixedly connected to the elastic webbing. A plurality of the third adjustment units are arranged along the plane within the wire area.

[0016] The aforementioned elastic fabric with electrical conductivity includes several elastic webbing strips, which are evenly arranged in the thread area along the stretching direction of the elastic fabric, and the elastic coefficient of the elastic webbing strips is adapted to the elastic fabric.

[0017] The aforementioned elastic fabric with electrical conductivity includes a plurality of conductor wires, which are uniformly arranged in the wire area along the stretching direction of the elastic fabric.

[0018] The aforementioned elastic fabric with electrical conductivity is provided with a wire interface, one end of the conductor wire is electrically connected to the wire interface, and the other end of the conductor wire extends out of the wire area.

[0019] The elastic fabric is provided with connectors for connecting the two ends of the elastic fabric, and the wire interface is provided on the connectors.

[0020] The aforementioned elastic fabric with electrical conductivity, wherein a monitoring module is provided on the elastic fabric;

[0021] The monitoring module includes a first monitoring module, which is fixedly mounted on one side of the elastic fabric and connected to the conductor wire circuit.

[0022] The elastic fabric with electrical conduction function, wherein, and / or, the monitoring module further includes a second monitoring module, the second monitoring module being movably disposed on one side of the elastic fabric and connected to the conductor wire circuit.

[0023] The beneficial effects of this utility model are as follows: By setting a wire area on the elastic fabric, and arranging a number of adjustment parts continuously set on the flexible conductor wire in the wire area, the adjustment parts are inclined along a predetermined arc. When the elastic fabric is stretched, the inclined conductor wire adapts to the elastic fabric to provide stretching space, so that the elastic fabric has both elastic stretching and conductivity. When applied to wearable electronic products, there is no need for an external power supply wire, thereby reducing the product size, improving the product's aesthetics, and providing users with a better user experience. Attached Figure Description

[0024] Figure 1 This is a schematic diagram of the first embodiment of the elastic fabric with electrical conductivity of this utility model;

[0025] Figure 2 This is a schematic diagram of the second embodiment of the elastic fabric with electrical conductivity of this utility model;

[0026] Figure 3 This is a schematic diagram of the third embodiment of the elastic fabric with electrical conductivity of this utility model;

[0027] Figure 4 This is a schematic diagram of the inner structure of the elastic fabric with electrical conductivity according to this utility model.

[0028] exist Figures 1 to 4 In the middle: 100, elastic fabric; 110, wire area; 200, conductor wire; 210, adjustment part; 211, first adjustment unit; 212, second adjustment unit; 213, third adjustment unit; 310, elastic support; 320, elastic webbing; 400, monitoring module. Detailed Implementation

[0029] To make the objectives, technical solutions, and effects of this utility model clearer and more explicit, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain this utility model and are not intended to limit this utility model.

[0030] It should be noted that if the embodiments of this utility model involve directional indicators (such as up, down, left, right, front, back, etc.), the directional indicators are only used to explain the relative positional relationship and movement of each component in a certain specific posture (as shown in the figure). If the specific posture changes, the directional indicators will also change accordingly.

[0031] Furthermore, if the embodiments of this utility model involve descriptions such as "first" or "second," these descriptions are for descriptive purposes only and should not be construed as indicating or implying their relative importance or implicitly specifying the number of technical features indicated. Therefore, features defined with "first" or "second" may explicitly or implicitly include at least one of those features. Additionally, the technical solutions of the various embodiments can be combined with each other, but this must be based on the ability of those skilled in the art to implement them. If the combination of technical solutions is contradictory or impossible to implement, it should be considered that such a combination of technical solutions does not exist and is not within the scope of protection claimed by this utility model.

[0032] In existing technologies, conductive wires lack elasticity and cannot be used with wearable fabrics for flexible stretching. Therefore, wearable electronic products require external wires, resulting in bulky and unsightly structures that negatively impact user experience. Thus, developing conductive wires that can stretch and contract with elastic fabrics has become a crucial research topic.

[0033] Based on the aforementioned problems in the existing technology, such as Figure 1 As shown, this utility model provides an elastic fabric with an electrical conduction function. The elastic fabric with an electrical conduction function includes: an elastic fabric 100, which includes a wire area 110 disposed at a predetermined location; a conductor wire 200, which is a flexible conductor wire, and the conductor wire 200 is arranged in the wire area 110 along the stretching direction of the elastic fabric. The conductor wire 200 includes a plurality of continuously arranged adjustment parts 211, and the conductor wire 200 corresponding to the adjustment part 211 is inclined along a predetermined arc relative to the stretching direction of the elastic fabric 100.

[0034] This invention provides a wire area on an elastic fabric 100, and arranges a plurality of adjustment parts 211 continuously arranged on the flexible conductor wire within the wire area 110. The adjustment parts 211 are inclined along a predetermined arc. When the elastic fabric 100 is stretched, the inclined conductor wire 200 adapts to the elastic fabric 100 to provide stretching space, thereby enabling the elastic fabric 100 to have both elasticity and conductivity. When applied to wearable electronic products, no external power supply wire is required, thereby reducing product size, improving product aesthetics, and providing users with a better user experience.

[0035] Specifically, the conductor wire 200 should be a flexible conductor wire 200, which can adjust its shape under stress. Preferably, a thinner conductor wire 200 is used to reduce the overall weight of the elastic fabric with electrical conductivity. In this embodiment, the conductor wire 200 is arranged within the wire area 110 along the stretching direction of the elastic fabric 100. It should be noted that the conductor wire 200 is not arranged in a straight line, but rather with a certain arc and tilt angle to provide a suitable deformation allowance for the conductor wire 200 when the elastic fabric 100 is stretched. In this embodiment, the arrangement shape of the conductor wire 200 inside the wire area 110 is named the adjustment section 210 for ease of subsequent explanation. It should be noted that multiple adjustment sections 210 are provided and arranged continuously. Specifically, the adjustment section... The conductor wire 200 corresponding to 210 is inclined along a predetermined arc relative to the stretching direction of the elastic fabric 100, thereby forming a continuous stretching structure of the corresponding elastic fabric 100. In actual production, the conductor wire 200 corresponding to several adjustment parts 210 is fixedly connected to the elastic fabric 100 of the wire area 110 by point fixing or partial fixing to maintain the preset shape. When the elastic fabric 100 stretches, several adjustment parts 210 move with the elastic fabric 100 and stretch towards the straightening trend. When the elastic fabric 100 contracts under its own elastic force, several adjustment parts 210 move with the elastic fabric 100 and reset to the initial arrangement position. Therefore, when the elastic fabric with power-conducting function is applied to electronic products, it can replace the external conductor wire of traditional electronic products.

[0036] Furthermore, in this embodiment, the elastic fabric 100 is an elastic fabric strip, and the stretching direction of the elastic fabric 100 can be the length direction of the fabric strip or the width direction of the fabric strip. When the stretching direction of the elastic fabric 100 is the length direction of the fabric strip, the elastic fabric 100 can be stretched and extended along the length direction of the fabric strip. Similarly, when the stretching direction of the elastic fabric 100 is the width direction of the fabric strip, the elastic fabric 100 can be stretched and extended along the width direction of the fabric strip, thereby realizing the stretching and extension of the elastic fabric 100 in both the length and width directions.

[0037] Furthermore, it is understood that in this embodiment, the conductor wire 200 is a power supply wire that can be used to power the device. When various external modules that require power supply (such as various small fans for cooling, various electrode control devices, and external light sources for lighting) are provided on the elastic fabric, the conductor wire 200 can be used as the power supply wire of the corresponding external module to meet the power supply function.

[0038] Furthermore, in this embodiment, the conductor wire 200 can be used as a heating wire for heating. When the elastic fabric needs to meet the heating function, the conductor wire 200 can be used as a heating wire to generate heat, thereby meeting the corresponding heating function.

[0039] In addition, such as Figure 4 As shown, in this embodiment, the conductor line 200 can be used as a signal line to obtain the detection signals corresponding to the various monitoring modules 400 installed on the elastic fabric. When the conductor line 200 is used as a signal line of the various monitoring modules 400, it can transmit the various detection signals emitted by them, thereby satisfying the corresponding detection functions.

[0040] In a specific embodiment, the monitoring module 400 includes a first monitoring module (such as a heart rate sensor, blood pressure sensor, temperature and humidity sensor, and electrodes of various sensors). The first monitoring module is fixedly disposed on one side of the elastic fabric 100. When in use, this side is in contact with a predetermined part of the user's skin to achieve the corresponding function.

[0041] In another specific embodiment, the monitoring module 400 also includes a second monitoring module (such as a heart rate sensor, blood pressure sensor, temperature and humidity sensor, and electrodes of various sensors). The second monitoring module is movably arranged on one side of the elastic fabric 100. The conductor wire 200 forms a circuit connection with the second monitoring module while constraining the range of motion of the second monitoring module. During use, the user can adjust the second monitoring module to a suitable position to fit the skin to achieve the corresponding function.

[0042] The first monitoring module and the second monitoring module can be set up independently to realize the relevant functions through a single device. In some special embodiments, the first monitoring module and the second monitoring module can also be arranged at the same time, for example, when it is necessary to monitor two parts at the same time to obtain comparative data. This application does not limit this, and those skilled in the art can set it up according to actual use needs.

[0043] Based on the above embodiments, the shape of the adjustment part 210 can be of various types. In the first embodiment of this utility model, such as... Figure 1 As shown, the adjustment section 210 is a first adjustment unit 211. Specifically, the first adjustment unit 211 is S-shaped, meaning the conductor wire 200 of the first adjustment unit 211 is arranged in an S-shape. The axis of the first adjustment unit 211 is parallel to the stretching direction of the elastic fabric 100. Multiple first adjustment units 211 are formed as shown. Figure 1 The diagram shows a spaced, overlapping state. At the same time, several first adjustment units 211 are arranged along the plane within the wire area 110. The advantage of this arrangement is that, on the one hand, it can provide redundancy for the conductor wire 200 to stretch in conjunction with the elastic fabric 100, and on the other hand, it can ensure that the elastic fabric 100 is thin, thereby meeting the user's need for lightweight wearing.

[0044] Furthermore, in the second embodiment of this utility model, as Figure 2 As shown, the adjustment part 210 is the second adjustment unit 212. Specifically, in this embodiment, an elastic support member 310 is also provided inside the elastic fabric 100 along the stretching direction of the elastic fabric 100. The elastic support member 310 can be made of a material with elasticity, such as rubber or silicone. It should be noted that the elastic coefficient of the elastic support member 310 should match the elastic coefficient of the elastic fabric 100 to ensure user comfort during wear and avoid a feeling of tightness. In this embodiment, the second adjustment unit 212 is wound around the elastic support member 310 in a spring-like manner, thereby... A spring-like tensioning mechanism is formed. When the elastic support 310 is stretched along with the elastic fabric 100, the length of the elastic support 310 increases and the diameter area decreases. The ring structure of the second adjustment unit 212 is stretched accordingly, thereby achieving the same effect as the above embodiment in arranging the conductor wire 200 inside the elastic fabric 100. In this embodiment, several second adjustment units 212 are arranged in a nested manner within the wire area 110, which can achieve the effect of providing redundancy for the conductor wire 200 to cooperate with the stretching of the elastic fabric 100, and also make the elastic fabric 100 round and beautiful, thereby meeting the user's personalized wearing needs.

[0045] In this embodiment, as Figure 2 As shown, the elastic support 310 can be specifically configured as several strips to adapt to the arrangement of several conductor wires 200. In a specific configuration, the several elastic support 310s are evenly arranged along the stretching direction of the elastic fabric 100 so that the elastic fabric 100 has uniform elasticity during the stretching process, thereby ensuring comfort when it is attached to the user's skin surface. In this embodiment, the elastic coefficient of the elastic support 310 should be equal to or greater than the elastic coefficient of the elastic fabric 100, so as to avoid the user from feeling a tight feeling of stress concentration due to the large elastic force after the elastic support 310 is stretched along with the elastic fabric 100. At the same time, it also avoids the second adjustment unit 212 wound on the elastic support 310 from causing discomfort to the user's skin due to stress concentration.

[0046] Furthermore, in the third embodiment of this utility model, as Figure 3 As shown, the adjustment section 210 is the third adjustment unit 213. Specifically, in this embodiment, an elastic webbing 320 is also provided on one side of the elastic fabric 100 along the stretching direction of the elastic fabric 100. The elastic webbing 320 is made of a fabric with elasticity, and the elastic coefficient of the elastic webbing 320 is adapted to the elastic coefficient of the elastic fabric 100 to ensure the user's comfort during wearing and avoid a feeling of tightness. In this embodiment, the third adjustment unit 213 is formed in an "S" shape, and the axis of the third adjustment unit is arranged parallel to the stretching direction of the elastic webbing. Multiple third adjustment units 213 are formed as shown in the figure. Figure 3 The diagram shows a spaced, overlapping state. Simultaneously, several third adjustment units 213 are arranged along the plane within the wire area 110. During manufacturing, the elastic webbing 320 and the corresponding points of the third adjustment units 213 can be fixedly connected by sewing or glue, thereby achieving the effect of simultaneously fixing the conductor wire 200 and the stretchable elastic fabric 100. This achieves two goals: firstly, it provides redundancy for the conductor wire 200 to accommodate the stretching of the elastic fabric 100; secondly, it ensures that the elastic fabric 100 is relatively thin, thus meeting the user's need for lightweight carrying.

[0047] In this embodiment, as Figure 3 As shown, the elastic webbing 320 can be configured as several strips to adapt to the arrangement of several conductor wires 200. Specifically, the elastic webbing 320 is evenly arranged along the stretching direction of the elastic fabric 100 so that the elastic fabric 100 has uniform elasticity during the stretching process, thereby ensuring comfort when it fits against the user's skin surface. In this embodiment, the elastic coefficient of the elastic webbing 320 should be equal to or greater than the elastic coefficient of the elastic fabric 100 to avoid the elastic support 310 causing a tight feeling of stress concentration to the user due to the large elastic force after it stretches along with the elastic fabric 100.

[0048] In the above embodiments, the first, second and third embodiments can be used independently in different models of elastic fabrics with electrical function, or can be used simultaneously in some models. In addition, the adjustment unit 210 can also be arranged in other ways, such as setting the adjustment unit to a "Z" shape, a "U" shape, etc.

[0049] In the above embodiments, such as Figure 1 , Figure 2 and Figure 3 As shown, in the above-mentioned different specific embodiments, several conductor wires 200 can be provided to meet the needs of different elastic fabrics with power-conducting functions in different devices. In specific settings, several conductor wires 200 are evenly arranged in the wire area 110 along the stretching direction of the elastic fabric 100 to avoid entanglement during the stretching and reset process.

[0050] In another embodiment of this utility model, a connector is also provided on the elastic fabric 100. The connector is used to connect the two free ends of the elastic fabric 100 to form a ring, or to adjust the diameter and length of the elastic fabric 100 forming the ring, so as to meet the usage needs of different users. Specifically, the connector can be set as a structure such as a D-ring.

[0051] In one specific embodiment, to facilitate the connection and use of the conductor wire 200 with other functional components, a wire interface can be provided at one end of the elastic fabric 100. The wire interface is electrically connected to one end of the conductor wire 200 for quick connection with a suitable circuit structure. The other end of the conductor wire 200 extends out of the wire area for connection with other circuit structures. More specifically, the wire interface is provided on the connector, thereby achieving both the function of assembling the elastic fabric 100 into a loop and the function of connecting circuits, so as to minimize the accessories of wearable electronic products and thus reduce the overall weight.

[0052] Based on the above embodiments, the elastic fabric with electrical conduction function has a wire area 110 on the elastic fabric, and a plurality of adjustment parts 210 continuously arranged on the flexible conductor wire 200 are arranged in the wire area 110. The adjustment parts 210 are inclined along a predetermined arc. When the elastic fabric 100 is stretched, the inclined conductor wire 200 adapts to the elastic fabric 100 to provide a suitable stretching space, so that the conductor wire 200 can be hidden inside the elastic fabric 100 for use, thereby avoiding the use of external conductor wires.

[0053] In summary, this utility model provides an elastic fabric with electrical conductivity. The elastic fabric includes: an elastic fabric comprising a wire area disposed at a predetermined location; and a conductor wire, which is a flexible conductor wire arranged within the wire area along the stretching direction of the elastic fabric. The conductor wire includes a plurality of continuously arranged adjusting portions, with the conductor wire corresponding to each adjusting portion inclined at a predetermined arc relative to the stretching direction of the elastic fabric. This utility model, by setting a wire area on the elastic fabric and arranging a plurality of continuously arranged adjusting portions on the flexible conductor wire within the wire area, with the adjusting portions inclined at a predetermined arc, allows the inclined conductor wire to adapt to the elastic fabric and provide stretching space when the elastic fabric is stretched. This enables the elastic fabric to possess both elastic stretching and electrical conductivity. When applied to wearable electronic products, it eliminates the need for an external power supply wire, thereby reducing product size, improving product aesthetics, and providing a better user experience.

[0054] It should be understood that the application of this utility model is not limited to the examples above. Those skilled in the art can make improvements or modifications based on the above description, and all such improvements and modifications should fall within the protection scope of the appended claims.

Claims

1. An elastic fabric with electrical conductivity, characterized in that, The elastic fabric with electrical conductivity includes: An elastic fabric, the elastic fabric including a thread area disposed at a predetermined location; The conductor wire is a flexible conductor wire, which is arranged in the wire area along the stretching direction of the elastic fabric. The conductor wire includes a plurality of continuously arranged adjustment parts, and the conductor wire corresponding to the adjustment part is inclined at a predetermined arc relative to the stretching direction of the elastic fabric. A monitoring module is installed on the elastic fabric; The monitoring module includes a first monitoring module, which is fixedly mounted on one side of the elastic fabric and connected to the conductor wire circuit.

2. The elastic fabric with electrical conductivity according to claim 1, characterized in that, The adjustment part is a first adjustment unit, which is S-shaped. The axis of the first adjustment unit is parallel to the stretching direction of the elastic fabric, and several first adjustment units are arranged along the plane within the wire area.

3. The elastic fabric with electrical conductivity according to claim 2, characterized in that, And / or, the adjustment section is a second adjustment unit; The elastic fabric is provided with an elastic support member arranged along the stretching direction of the elastic fabric, and the second adjustment unit is wound around the elastic support member in a spring shape. A plurality of the second adjustment units are sleeved in the wire area.

4. The elastic fabric with electrical conductivity according to claim 3, characterized in that, The elastic support is provided in a plurality of manner, and the plurality of elastic support is uniformly arranged in the wire area along the stretching direction of the elastic fabric, and the elastic coefficient of the elastic support is adapted to the elastic fabric.

5. The elastic fabric with electrical conductivity according to claim 2, characterized in that, And / or, the adjustment part is a third adjustment unit, and the third adjustment unit is S-shaped; An elastic webbing is provided on one side of the elastic fabric corresponding to the conductor wire. The axis of the third adjustment unit is parallel to the stretching direction of the elastic webbing and is fixedly connected to the elastic webbing. A plurality of the third adjustment units are arranged along the plane within the wire area.

6. The elastic fabric with electrical conductivity according to claim 5, characterized in that, The elastic webbing is provided in a plurality of strips, which are evenly arranged in the thread area along the stretching direction of the elastic fabric, and the elastic coefficient of the elastic webbing is adapted to the elastic fabric.

7. The elastic fabric with electrical conductivity according to claim 1, characterized in that, The conductor wires are provided in a plurality of manner, and the plurality of conductor wires are evenly arranged in the wire area along the stretching direction of the elastic fabric.

8. The elastic fabric with electrical conductivity according to claim 1, characterized in that, The elastic fabric is provided with a wire interface, one end of the conductor wire is connected to the wire interface, and the other end of the conductor wire extends out of the wire area. The elastic fabric is provided with connectors for connecting the two ends of the elastic fabric, and the wire interface is provided on the connectors.

9. The elastic fabric with electrical conductivity according to claim 1, characterized in that, And / or, the monitoring module further includes a second monitoring module, which is movably disposed on one side of the elastic fabric and connected to the conductor wire circuit.