Electrocardiogram detection garment

By setting a flexible connection area inside the garment body of the electrocardiogram detection clothing, the electrode body and the garment body can move relatively dislocation in a state of motion, solving the problem that the electrode body is prone to disengage or dislocation in a state of motion in the prior art, and improving the accuracy of the detection data.

CN223009141UActive Publication Date: 2025-06-24BEIJING KANGRUI LINGHANG MEDICAL TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202422663169.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-01
Publication Date
2025-06-24
Estimated Expiration
2034-11-01

AI Technical Summary

Technical Problem

Existing electrocardiograms are prone to cause the electrode body to be disconnected or dislocated in the human body during movement, and are interfered by factors such as motion artifacts, electromyography interference, baseline drift, etc., resulting in distortion of the detection data.

Method used

A human electrocardiogram detection clothing is designed. By setting a flexible connection area on the inside of the clothing body, the electrode body and the clothing body are kept in a corresponding state in a non-moving state, and can move relatively dislocation in the motion state to reduce the impact of movement on the electrode body.

Benefits of technology

It effectively reduces the impact of movement on the electrode body, reduces the probability of the electrode body disengagement or dislocation, improves the accuracy of the detection data, and is suitable for long-term dynamic electrocardiogram monitoring.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a human body electrocardio detection garment which comprises a garment body and an electrode body arranged on the inner side of the garment body, and the electrode body and the garment body are connected through a flexible connecting area so that the electrode body and the garment body can move in a relative dislocation mode. At least one part of one side, close to the clothes body, of the electrode body or / and at least one part, corresponding to the electrode body, of the inner side of the clothes body is adopted or arranged, and a human skin contact material is adopted or arranged at the detection end of the electrode body; when the human body electrocardiogram detection garment is worn, the friction force overcome by relative dislocation movement between the electrode body and the garment body is smaller than the friction force generated by contact between the detection end of the electrode body and the human body skin. According to the detection garment, the influence of separation or dislocation of the electrode body, motion artifacts, myoelectricity interference and baseline drift on detection data in a human body motion state can be reduced, and long-term dynamic electrocardiogram monitoring is facilitated.
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Description

Technical Field

[0001] The utility model relates to a wearable device for human body function detection, specifically, to a human electrocardiogram detection garment. Background Art

[0002] In recent years, the detection and monitoring of heart activities have received great attention from people, and various detection / monitoring devices or auxiliary tools have emerged as the times require. The utility model patent with the authorization announcement number CN205458657U discloses a positioning garment for human electrocardiogram detection positions. By wearing this positioning garment, it is convenient to locate the human electrocardiogram detection positions and facilitate auxiliary detection, with the advantages of accurate positioning and convenient use. However, only wearing this positioning garment cannot directly complete the human electrocardiogram detection. Subsequently, electrocardiogram detection garments that can be worn on the human body have appeared on the market. They can directly detect human electrocardiogram information, monitor the human electrocardiogram condition, and can conveniently transmit the relevant information of detection / monitoring to a personal intelligent terminal. Even, professional analysis and medical guidance can be sought from an Internet hospital based on the relevant information of detection / monitoring.

[0003] In order to ensure the accuracy of detection information, when wearing a human electrocardiogram detection garment, the wearer is often required to be in a non-moving state, such as a static state like lying still or sitting still, and a relatively static state with very small limb movement amplitudes. However, after wearing for a long time, the wearer will feel very uncomfortable or will unconsciously enter the daily human activity state, such as daily living activities and eating activities with moderate activity amplitudes. Once the human body enters a moving state, the electrode body of the electrocardiogram detection device is likely to detach from or be misaligned with the corresponding human electrocardiogram detection position, and the electrocardiogram detection device is easily interfered by factors such as motion artifacts, electromyogram interference, and baseline drift, resulting in distorted detection data, and then the relevant information of detection / monitoring is inaccurate.

[0004] In order to solve the above existing problems, people have been seeking an ideal technical solution. Summary of the Invention

[0005] The purpose of the utility model is to overcome the deficiencies of the prior art, and thus provide a human electrocardiogram detection garment, which can reduce the influence of electrode body detachment or misalignment and motion artifacts, electromyogram interference, and baseline drift on detection data under the human moving state, and facilitate long-term dynamic electrocardiogram monitoring.

[0006] In order to achieve the above purpose, the technical solution adopted by the utility model is:

[0007] A human electrocardiogram detection garment, comprising a garment body and an electrode body disposed on the inner side of the garment body corresponding to the human electrocardiogram detection positions. Among them, the electrode body and the garment body are connected through a flexible connection area, so that the electrode body and the garment body maintain a corresponding state to each other in the non-moving state of the human body, and can move relatively out of position in the moving state of the human body.

[0008] Furthermore, at least a part of the side of the electrode body close to the garment body or / and the material used or set for at least a part of the inner side of the garment body corresponding to the electrode body, and the human skin contact material used or set at the detection end of the electrode body, when wearing the human electrocardiogram detection garment, the frictional force overcome by the relative misalignment movement between the electrode body and the garment body is less than the frictional force generated by the contact between the detection end of the electrode body and the human skin.

[0009] Furthermore, at least a part of the side of the electrode body close to the garment body or / and the material used or set for at least a part of the inner side of the garment body corresponding to the electrode body is a smooth material or composed of a smooth material, so that the electrode body and the garment body are convenient for relative misalignment movement.

[0010] Furthermore, the smooth material is a smooth plastic or a smooth metal or a smooth silk fabric or a smooth garment fabric or a smooth wearable fabric.

[0011] Furthermore, the human skin contact material used or set at the detection end of the electrode body is a rough material or composed of a rough material, so that the frictional force generated by the contact between the detection end of the electrode body and the human skin is increased.

[0012] Furthermore, the rough material is a rough garment fabric suitable for human skin contact or a rough wearable fabric or a metal with a rough outer surface or a material containing plastic with a rough outer surface.

[0013] Furthermore, the flexible connection area is composed of several flexible wires connecting the electrode body and the garment body respectively, or composed of no less than one flexible wire connecting the electrode body and the garment body in series, or is a cloth, or is a flexible material in a wrinkled / folded structure, so that the electrode body and the garment body are convenient for relative misalignment movement.

[0014] Furthermore, the selection of the size of the flexible connection area or some parts of the flexible connection area limits the misalignment generated by the relative misalignment movement between the electrode body and the garment body within the detection error range of the electrode body corresponding to the human electrocardiogram detection position.

[0015] Furthermore, a lateral dimension of the flexible connection area is greater than a vertical dimension of the flexible connection area.

[0016] Furthermore, it also includes an ECG detection host and a wire with one end connected to the ECG detection host, and the other end of the wire is connected to the electrode of the electrode body, wherein a part of the wire is arranged together with the flexible connection area or a movable disk is arranged in the flexible connection area to facilitate relative misalignment movement between the electrode body and the clothing body.

[0017] Furthermore, a transparent area corresponding to the human electrocardiogram detection position is provided on the clothing body, so that it is possible to observe from the outside of the clothing body whether the electrode body corresponds to the corresponding human electrocardiogram detection position or is within the detection error range of the corresponding human electrocardiogram detection position.

[0018] Furthermore, the clothing body has a clothing contour that fits closely with the human body contour, so that the electrode body is set corresponding to the human electrocardiogram detection position or the detection error range of the human electrocardiogram detection position, and the friction force generated by the contact between the detection end of the electrode body and the human skin is increased.

[0019] Furthermore, the fabric of the clothing body is elastic, so that the electrode body is set to correspond to the human electrocardiogram detection position or the detection error range of the human electrocardiogram detection position, and the friction force generated by the contact between the detection end of the electrode body and the human skin is increased.

[0020] Furthermore, the clothing body is provided with positioning marks corresponding to human body surface marks, so that the electrode body is set corresponding to the human electrocardiogram detection position or the detection error range of the human electrocardiogram detection position.

[0021] Furthermore, the positioning mark is a navel positioning mark and / or a rib positioning mark and / or an axillary positioning mark.

[0022] The utility model has substantial features and progress compared with the prior art. Specifically, the human body electrocardiogram detection clothing is provided with a flexible connection area, so that the electrode body and the clothing body can maintain a corresponding state with each other when the human body is not in motion, and can move relative to each other when the human body is in motion. In other words, when the human body is in motion, that is, under the action of external force, the clothing body can move independently relative to the electrode body, thereby reducing the impact of motion on the electrode body, such as reducing the electrode body from being separated from the corresponding human body electrocardiogram detection position or being misaligned with it, or reducing the interference of factors such as motion artifacts, electromyographic interference, and baseline drift.

[0023] By selecting materials, when the human electrocardiogram detection garment is worn, the frictional force overcome by the relative dislocation movement between the electrode body and the garment body is less than the frictional force generated by the contact between the detection end of the electrode body and the human skin. That is, when the human body is in a moving state, under the action of the frictional force generated by the contact between the detection end of the electrode body and the human skin, it is very difficult for the garment body to pull the electrode body any further. This will enable the electrode body to be in its original detection position or have a minimal dislocation relative to the original detection position. Obviously, the influence of movement on the electrode body can be further reduced, such as reducing the detachment of the electrode body from the corresponding human electrocardiogram detection position or its dislocation, or reducing the interference of factors such as motion artifacts, electromyogram interference, and baseline drift.

[0024] By selecting smooth materials, the relative dislocation movement between the electrode body and the garment body is facilitated, enabling the garment body to move more freely and independently relative to the electrode body, further reducing the influence of movement on the electrode body.

[0025] The detection data of this human electrocardiogram detection garment is less affected by movement, the relevant information detected / monitored is accurate, it is suitable for long-term dynamic electrocardiogram monitoring, and can improve the wearing experience of users. Description of the Drawings

[0026] Figure 1 It is a schematic structural diagram of the human electrocardiogram detection garment in the present utility model.

[0027] Figure 2 is Figure 1 One of the schematic structural diagrams of the local cross-sectional area from the inner side to the outer side of the garment body in

[0028] Figure 3 is Figure 2 The cross-sectional structural diagram in the A-A direction in

[0029] Figure 4 is Figure 1 Two of the schematic structural diagrams of the local cross-sectional area from the inner side to the outer side of the garment body in

[0030] Figure 5 is Figure 1 Three of the schematic structural diagrams of the local cross-sectional area from the inner side to the outer side of the garment body in

[0031] In the figure: 1. Garment body; 11. Inner side of the garment body; 12. Outer side of the garment body; 2. Electrode body; 21. Side of the electrode body close to the garment body; 22. Detection end of the electrode body; 3. Flexible connection area; 4. Local cross-sectional area. Detailed Description of the Invention

[0032] The following is a further detailed description of the technical solutions of the present utility model through specific embodiments.

[0033] Example 1

[0034] As Figures 1-3 shown, a human electrocardiogram detection garment includes a garment body 1 and an electrode body 2 disposed on the inner side 11 of the garment body corresponding to the human electrocardiogram detection position. Among them, the electrode body 2 is connected to the garment body 1 through a flexible connection area 3, so that the electrode body 2 and the garment body 1 maintain a corresponding state with each other in the non-moving state of the human body and can move relatively out of position in the moving state of the human body. That is, when the human electrocardiogram detection garment is worn on the human body, in the non-moving state of the human body, the two are hardly affected by external forces and remain in the corresponding positions to make the electrode body 2 correspond to the human electrocardiogram detection position. In the moving state of the human body, the two are affected by external forces and can move relatively out of position.

[0035] Specifically, wear the human electrocardiogram detection garment on the human body and make the electrode body 2 correspond to the human electrocardiogram detection position. In the non-moving state of the human body, the relative positions of the electrode body 2 and the garment body 1 are naturally in a corresponding state and will not generate external forces due to human movement. That is, under the action of this external force, the garment body 1 will not pull the electrode body 2 to cause the electrode body 2 to be out of position or detached, thereby affecting the detection accuracy. In the moving state of the human body, that is, under the action of external forces, the external forces usually first pull the garment body 1 and then the garment body 1 pulls the electrode body 2. Obviously, the electrode body 2 and the garment body 1 can move relatively out of position. When the external force pulls the garment body 1, the garment body 1 can move independently relative to the electrode body 2 to consume the external force or most of its force, and then the force of the garment body 1 pulling the electrode body 2 disappears or weakens. Obviously, this will enable the electrode body 2 to be in the original detection position or have a small dislocation relative to the original detection position, reducing the interference of the electrocardiogram detection device of the human electrocardiogram detection garment by factors such as motion artifacts, electromyogram interference, and baseline drift.

[0036] It should be particularly noted that the non-moving state of the human body refers to a state where the human body is stationary or a relatively stationary state with a very small range of human body movements, such as static lying, sitting still, etc. and a relatively stationary state with a very small range of limb movements. The moving state of the human body refers to the daily activity state of the human body, such as daily living activities, eating activities, etc. with a moderate range of activity of the human body.

[0037] Example 2

[0038] The main difference between this embodiment and Example 1 is that:

[0039] As Figures 1-3As shown, at least a part of the side 21 of the electrode body close to the clothing body 1, or / and the material used or provided for at least a part of the inner side 11 of the clothing body corresponding to the electrode body 2, and the material of the human skin contact part used or provided for the detection end 22 of the electrode body, when wearing the human electrocardiogram detection clothing, the frictional force overcome by the relative displacement movement between the electrode body 2 and the clothing body 1 is less than the frictional force generated by the contact between the detection end 22 of the electrode body and the human skin.

[0040] Specifically, in the human body's motion state, that is, under the action of an external force, this external force usually first pulls the clothing body 1, and then the clothing body 1 pulls the electrode body 2. Obviously, the electrode body 2 and the clothing body 1 can move relative to each other in a displaced manner. When the external force pulls the clothing body 1, since the clothing body 1 can move independently relative to the electrode body 2, this external force or most of its force will be consumed, and then the force for the clothing body 1 to pull the electrode body 2 will disappear or weaken. Moreover, because the frictional force overcome by the relative displacement movement between the electrode body 2 and the clothing body 1 is less than the frictional force generated by the contact between the detection end 22 of the electrode body and the human skin, under the action of this external force, the clothing body 1 is more likely to move relative to the electrode body 2, that is, it is more likely to completely consume this external force or most of its force. Then, under the action of the frictional force generated by the contact between the detection end 22 of the electrode body and the human skin, it is very difficult for the clothing body 1 to pull the electrode body 2 anymore. As a result, the force for the clothing body 1 to pull the electrode body 2 will completely disappear or be greatly weakened. Obviously, this will enable the electrode body 2 to be in its original detection position or have a very small displacement relative to the original detection position, greatly reducing the interference of factors such as motion artifacts, electromyogram interference, and baseline drift on the electrocardiogram detection device of the human electrocardiogram detection clothing.

[0041] Embodiment 3

[0042] The main difference between this embodiment and Embodiments 1 - 2 lies in:

[0043] As Figures 1-3 shown, at least a part of the side 21 of the electrode body close to the clothing body 1, or / and the material used or provided for at least a part of the inner side 11 of the clothing body corresponding to the electrode body 2 is a smooth material or composed of a smooth material, so that the relative displacement movement between the electrode body 2 and the clothing body 1 is facilitated.

[0044] In this embodiment, the smooth material is smooth plastic, or smooth metal, or smooth silk fabric, or smooth clothing fabric, or smooth wearable fabric.

[0045] Specifically, when the human body is in a moving state, that is, under the action of an external force, the external force usually first pulls the clothing body 1, and then the clothing body 1 pulls the electrode body 2. Obviously, the smooth material makes it easier for the electrode body 2 and the clothing body 1 to move relative to each other. When the external force pulls the clothing body 1, because the clothing body 1 can have more free independent movement relative to the electrode body 2, the external force or most of its force will be completely consumed. Subsequently, the force exerted by the clothing body 1 to pull the electrode body 2 will completely disappear or be greatly weakened. Obviously, this will enable the electrode body 2 to be in its original detection position or have a very small misalignment relative to the original detection position, greatly reducing the interference of the electrocardiogram detection device of the electrocardiogram detection clothing for the human body by factors such as motion artifacts, electromyogram interference, and baseline drift.

[0046] Example 4

[0047] The main difference between this embodiment and Embodiments 1-3 is that:

[0048] As Figures 1-3 shown, the human skin contact material used or provided at the detection end 22 of the electrode body is a rough material or composed of a rough material, so as to increase the frictional force generated when the detection end 22 of the electrode body contacts the human skin.

[0049] In this embodiment, the rough material is a rough clothing fabric suitable for human skin contact, or a rough wearable fabric, or a metal with a rough outer surface, or a material containing plastic with a rough outer surface.

[0050] Specifically, when the human body is in a moving state, that is, under the action of an external force, the external force usually first pulls the clothing body 1, and then the clothing body 1 pulls the electrode body 2. Obviously, the human skin contact material increases the frictional force generated when the detection end 22 of the electrode body contacts the human skin. When the external force pulls the clothing body 1, because the clothing body 1 can move independently relative to the electrode body 2, the external force or most of its force will be consumed. Subsequently, the force exerted by the clothing body 1 to pull the electrode body 2 will disappear or weaken, and under the action of the frictional force generated when the detection end 22 of the electrode body contacts the human skin, it is also very difficult for the clothing body 1 to pull the electrode body 2 anymore. Obviously, this will enable the electrode body 2 to be in its original detection position or have a very small misalignment relative to the original detection position, greatly reducing the interference of the electrocardiogram detection device of the electrocardiogram detection clothing for the human body by factors such as motion artifacts, electromyogram interference, and baseline drift.

[0051] Example 5

[0052] The main difference between this embodiment and Embodiments 1-4 is that:

[0053] As Figures 1-3 shown, the flexible connection area 3 is made of a flexible material with a wrinkled / folded structure, so that the electrode body 2 and the clothing body 1 are facilitated to move relative to each other in a displaced manner.

[0054] In other embodiments, the flexible connection area may also be a piece of cloth.

[0055] Embodiment 6

[0056] The main difference between this embodiment and Embodiments 1-5 lies in:

[0057] As Figure 4 shown, the flexible connection area 3 is composed of several flexible connection lines that respectively connect the electrode body 2 and the clothing body 1, so that the electrode body 2 and the clothing body 1 are facilitated to move relative to each other in a displaced manner.

[0058] Embodiment 7

[0059] The main difference between this embodiment and Embodiments 1-6 lies in:

[0060] As Figure 5 shown, the flexible connection area 3 is composed of at least one flexible connection line that connects the electrode body 2 and the clothing body 1 in series, so that the electrode body 2 and the clothing body 1 are facilitated to move relative to each other in a displaced manner.

[0061] Embodiment 8

[0062] The main difference between this embodiment and Embodiments 1-7 lies in:

[0063] For the selection of the size of the flexible connection area or some parts of the flexible connection area, the displacement generated by the relative displaced movement of the electrode body and the clothing body is limited within the detection error range corresponding to the human electrocardiogram detection position of the electrode body.

[0064] Through the selection of the size of the flexible connection area, the electrode body is within the detection error range corresponding to the human electrocardiogram detection position, ensuring the effectiveness and detection accuracy of the detection.

[0065] Embodiment 9

[0066] The main difference between this embodiment and Embodiment 8 lies in:

[0067] The horizontal dimension of the flexible connection area is greater than the vertical dimension of the flexible connection area.

[0068] When the human body is in a moving state and the amplitude of the lateral movement of the human body is greater than that of the vertical movement, through the selection and design of the lateral dimension and the vertical dimension, the detection error range of the electrode body at the human electrocardiogram detection position can be accurately controlled to ensure the effectiveness of the detection and further improve the detection accuracy.

[0069] Embodiment 10

[0070] The main difference between this embodiment and Embodiments 1-9 is that:

[0071] A human electrocardiogram detection garment further includes an electrocardiogram detection host and a wire with one end connected to the electrocardiogram detection host, and the other end of the wire is connected to the electrode of the electrode body. Among them, a part of the wire is arranged together with the flexible connection area or is movably coiled around the flexible connection area, so that the electrode body and the clothing body are convenient for relative misalignment movement.

[0072] A part of the wire is arranged together with the flexible connection area or is movably coiled around the flexible connection area to prevent the wire from affecting the relative misalignment movement of the electrode body and the clothing body.

[0073] Embodiment 11

[0074] The main difference between this embodiment and Embodiments 1-10 is that: a transparent area corresponding to the human electrocardiogram detection position is provided on the clothing body, so as to observe from the outside of the clothing body whether the electrode body corresponds to the corresponding human electrocardiogram detection position or whether it is within the detection error range of the corresponding human electrocardiogram detection position. Furthermore, it is convenient to adjust in time when it is found that the electrode body is misaligned.

[0075] Embodiment 12

[0076] The main difference between this embodiment and Embodiments 1-11 is that: the clothing body has a clothing contour that closely fits the human body contour, so as to set the electrode body corresponding to the human electrocardiogram detection position or the detection error range of the human electrocardiogram detection position, and increase the friction force generated by the contact between the detection end of the electrode body and the human skin.

[0077] When making clothes, corresponding clothing sizes are designed according to the body shapes of humans. The electrode body is set accordingly according to the clothing sizes. When purchasing the human electrocardiogram detection clothing, select the size targeted according to one's own body shape so that the electrode body can accurately correspond to the human electrocardiogram detection position during use. And the clothing body has a clothing contour that closely fits the human body contour. When the human electrocardiogram detection clothing is worn on the human body, the clothing body will generate an inward pressure from the outside on the electrode body, which will not only enable the electrode body to accurately correspond to the human electrocardiogram detection position and not be easily displaced, but also increase the friction force generated by the detection end of the electrode body in contact with the human skin.

[0078] Embodiment 13

[0079] The main difference between this embodiment and Embodiments 1-12 is that: the fabric of the clothing body is an elastic clothing fabric, so as to set the electrode body corresponding to the human electrocardiogram detection position or the detection error range of the human electrocardiogram detection position, and increase the friction force generated by the detection end of the electrode body in contact with the human skin.

[0080] The fabric of the clothing body is an elastic clothing fabric, which is convenient for the user to put on and take off the clothing body, and the elastic fabric can make the clothing body fit better with the human body contour. At the same time, when the human electrocardiogram detection clothing is worn on the human body, the clothing body will generate an inward pressure from the outside on the electrode body, which will not only enable the electrode body to accurately correspond to the human electrocardiogram detection position and not be easily displaced, but also increase the friction force generated by the detection end of the electrode body in contact with the human skin.

[0081] Embodiment 14

[0082] The main difference between this embodiment and Embodiments 1-13 is that: positioning marks corresponding to the body surface marks of the human body are provided on the clothing body, so as to set the electrode body corresponding to the human electrocardiogram detection position or the detection error range of the human electrocardiogram detection position.

[0083] In this embodiment, the positioning marks are navel positioning marks and / or rib positioning marks and / or armpit positioning marks.

[0084] When the human electrocardiogram detection clothing is worn on the human body, using the positioning marks as a reference can effectively improve the accuracy of the correspondence between the electrode body and the human electrocardiogram detection position.

[0085] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present utility model and are not intended to limit them; although the present utility model has been described in detail with reference to the preferred embodiments, those of ordinary skill in the art should understand that: it is still possible to modify the specific implementation manners of the present utility model or perform equivalent replacements on some technical features; without departing from the spirit of the technical solutions of the present utility model, they should all be covered within the scope of the technical solutions claimed by the present utility model.

Claims

1. A human electrocardiogram detection garment, characterized in that: It includes a clothing body and an electrode body arranged on the inner side of the clothing body and corresponding to the electrocardiogram detection position of the human body, wherein the electrode body and the clothing body are connected through a flexible connection area so that the electrode body and the clothing body can move relative to each other.

2. The human body electrocardiogram detection clothing according to claim 1, characterized in that: The material used or arranged for at least a portion of the electrode body close to the side of the clothing body or / and at least a portion of the electrode body corresponding to the inner side of the clothing body, and the human skin contact material used or arranged for the detection end of the electrode body, enable the friction force overcome by the relative misalignment movement between the electrode body and the clothing body when wearing the human electrocardiogram detection clothing to be smaller than the friction force generated by the contact between the detection end of the electrode body and the human skin.

3. The human body electrocardiogram detection clothing according to claim 1 or 2, characterized in that: The material used or arranged for at least a portion of the electrode body close to the clothing body or / and at least a portion of the inner side of the clothing body corresponding to the electrode body is a smooth material or is composed of a smooth material, so that the electrode body and the clothing body can facilitate relative misalignment movement.

4. The human body electrocardiogram detection clothing according to claim 3, characterized in that: The smooth material is smooth plastic or smooth metal or smooth silk fabric or smooth clothing fabric or smooth wearable fabric.

5. The human body electrocardiogram detection clothing according to claim 1 or 2, characterized in that: The human skin contact material used or provided at the electrode body detection end is a rough material or is composed of a rough material, so that the friction force generated by the contact between the electrode body detection end and the human skin is increased.

6. The human body electrocardiogram detection clothing according to claim 5, characterized in that: The rough material is a rough clothing fabric or a rough wearable fabric suitable for contact with human skin, or a metal with a rough outer surface, or a material containing plastic with a rough outer surface.

7. The human body electrocardiogram detection clothing according to claim 1 or 2, characterized in that: The flexible connection area is composed of a plurality of flexible connecting wires that respectively connect the electrode body and the clothing body, or is composed of at least one flexible connecting wire that connects the electrode body and the clothing body in series, or is a cloth, or a flexible material with a pleated / folded structure, so that the electrode body and the clothing body can facilitate relative misalignment movement.

8. The human body electrocardiogram detection clothing according to claim 1 or 2, characterized in that: The size of the flexible connection area or part of the flexible connection area is selected to limit the misalignment caused by the relative misalignment movement between the electrode body and the clothing body to within the detection error range of the electrode body corresponding to the human body electrocardiogram detection position.

9. The human body electrocardiogram detection clothing according to claim 8, characterized in that: The lateral dimension of the flexible connection area is greater than the vertical dimension of the flexible connection area.

10. The human body electrocardiogram detection clothing according to claim 1 or 2, characterized in that: It also includes an ECG detection host and a wire with one end connected to the ECG detection host, and the other end of the wire is connected to the electrode of the electrode body, wherein a part of the wire is arranged together with the flexible connection area or a movable disk is arranged in the flexible connection area to facilitate relative misalignment movement between the electrode body and the clothing body.

11. The human body electrocardiogram detection clothing according to claim 1 or 2, characterized in that: A transparent area corresponding to the human electrocardiogram detection position is provided on the clothing body, so that it is possible to observe from the outside of the clothing body whether the electrode body corresponds to the corresponding human electrocardiogram detection position or is within the detection error range of the corresponding human electrocardiogram detection position.

12. The human body electrocardiogram detection clothing according to claim 1 or 2, characterized in that: The clothing body has a clothing contour that fits closely with the human body contour, so that the electrode body is set corresponding to the human electrocardiogram detection position or the detection error range of the human electrocardiogram detection position, and the friction force generated by the contact between the detection end of the electrode body and the human skin is increased.

13. The human body electrocardiogram detection clothing according to claim 1 or 2, characterized in that: The fabric of the clothing body is elastic, so that the electrode body is set corresponding to the human electrocardiogram detection position or the detection error range of the human electrocardiogram detection position, and the friction generated by the contact between the detection end of the electrode body and the human skin is increased.

14. The human body electrocardiogram detection clothing according to claim 1 or 2, characterized in that: The clothing body is provided with positioning marks corresponding to the human body surface marks, so that the electrode body is set corresponding to the human electrocardiogram detection position or the detection error range of the human electrocardiogram detection position.

15. The human body electrocardiogram detection clothing according to claim 14, characterized in that: The positioning mark is a navel positioning mark and / or a rib positioning mark and / or an axillary positioning mark.

Citation Information

Patent Citations

  • People body -centered electrograph detects position location clothes

    CN205458657U