Sweat detection device
By designing a sweat detection device to monitor the composition of workers' sweat in real time, the problem of untimely rate detection in existing technologies has been solved, enabling timely early warning and effective prevention of heatstroke risks.
Patent Information
- Application Number
- CN202422713301.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-06
- Publication Date
- 2025-10-24
- Estimated Expiration
- 2034-11-06
AI Technical Summary
In existing technologies, heatstroke can be indirectly diagnosed by detecting workers' heart rates, which leads to untimely detection and makes it difficult to effectively prevent heatstroke.
Design a sweat detection device, including a detection component and a data transmission component, to monitor the worker's physical condition in real time by detecting sweat composition. The device uses a detection substrate to contact the human skin to detect the sweat composition in the sweat circulation channel, and transmits the information to other devices through the data transmission component to achieve real-time detection and early warning.
It enables real-time monitoring of workers' physical condition, timely assessment of heatstroke risk, improves the practicality and structural reliability of sweat detection, and avoids the problem of untimely detection.
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Figure CN223464028U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to sweat detection technical field, specifically, relate to a sweat detection device. BACKGROUND
[0002] The power grid maintenance worker often faces the high-altitude operation scene and the high temperature work environment, wherein, the high temperature work environment can make the power grid worker wearing various equipment more easily face the risk of heat stroke caused by excessive sweating leading to excessive dehydration.
[0003] In the related art, when the worker appears heat stroke, the heart rate can be accelerated, the heart rate change of the worker is detected through the device worn by the worker to detect the heart rate, and then the real-time detection function can be played. However, the device for detecting heart rate in the related art indirectly judges the heat stroke condition through heart rate, which can not detect in time, resulting in the problem that the heat stroke cannot be prevented. UTILITY MODEL CONTENT
[0004] The utility model provides a sweat detection device to solve the problem that the device for detecting heart rate in the related art indirectly judges the heat stroke condition through heart rate, which can not detect in time, resulting in the problem that the heat stroke cannot be prevented.
[0005] The utility model provides a sweat detection device, sweat detection device includes: detection subassembly, including detection base body and detection piece, the first side of detection base body can be contacted with human skin, detection base body has the second side away from the first side, detection base body has the sweat flow passage that penetrates the first side and the second side of detection base body, the first end of detection piece is inserted into the sweat flow passage, and the second end of detection piece is located outside the sweat flow passage;Data transmission piece is set up on detection base body, and one end of data transmission piece is connected with the second end of detection piece signal.
[0006] Further, the detection subassembly further includes an adhesive layer provided on the first side of the detection base body, the detection base body is adhered to the human skin through the adhesive layer, and the adhesive layer is provided with a first channel communicated with the sweat flow passage.
[0007] Further, the detection base body includes: a fixing layer, the first side of the fixing layer is adhesively connected with the adhesive layer, the fixing layer has a second channel communicated with the first channel; an installation layer, the first side of the installation layer is connected with the second side of the fixing layer, the installation layer has a third channel communicated with the second channel, the detection piece is arranged on the second side of the fixing layer and located in the third channel; a covering layer, the first side of the covering layer is connected with the second side of the installation layer, the covering layer has a fourth channel, the fourth channel is communicated with the third channel, the first channel, the second channel, the third channel and the fourth channel constitute the sweat flow passage, and the data transmission piece is connected with the detection piece signal on the covering layer or the installation layer.
[0008] Further, the cross-sectional size of the first channel is larger than the cross-sectional size of the second channel.
[0009] Further, the detection member comprises: a conductive unit arranged on the second side of the fixing layer, the conductive unit having a first communication hole in communication with the second channel; a biosensor arranged at one end of the conductive unit close to the fourth channel, the biosensor being signal connected with the conductive unit; wherein the data transmission member is connected with the other end of the conductive unit away from the fourth channel.
[0010] Further, the detection member further comprises a conductive contact arranged at the other end of the conductive unit away from the fourth channel and signal connected with the conductive unit, and the data transmission member is signal connected with the conductive contact.
[0011] Further, a sealing member is arranged in the third channel, the sealing member being arranged between the conductive unit and the cover layer to isolate the first communication hole from the data transmission member.
[0012] Further, the sealing member comprises a sealing block, a first side of the sealing block being adhesively connected with the side wall of the conductive unit, and a second side of the sealing block being adhesively connected with the first side of the cover layer.
[0013] Further, the sweat detection device further comprises a connecting layer, a first side of the connecting layer being adhesively connected with the second side of the cover layer, and a second side of the connecting layer being adhesively connected with the data transmission member, the connecting layer being provided with a second communication hole therethrough, the cover layer having a fifth channel arranged in spaced relation with the fourth channel, the fifth channel being in communication with the third channel, and the data transmission member being sequentially arranged in the second communication hole and the fifth channel and connected with the other end of the conductive unit away from the fourth channel.
[0014] Further, the data transmission member comprises an electric connection needle and a controller, a first end of the electric connection needle being capable of being arranged in the sweat flow channel and signal connected with the detection member, and the electric connection needle being connected with the controller; the sweat detection device further comprises a signal sending member signal connected with the data transmission member.
[0015] The technical scheme of the utility model discloses a sweat detection device, which comprises a detection assembly and a data transmission piece, the first side of a detection base body can be in contact with human skin, the second side of the detection base body is arranged away from the first side, and the detection base body has a sweat flow passage penetrating through the first side and the second side of the detection base body, the first end of a detection piece can be deep into the sweat flow passage, the second end of the detection piece is located outside the sweat flow passage and can be connected with the data transmission piece, specifically, the sweat flowing out of human skin can flow into the sweat flow passage through the first side of the detection base body, the sweat in the sweat flow passage is in contact with the detection piece, the detection piece can detect the composition of the sweat in the sweat flow passage and transmit the sweat information detected by the detection piece to the data transmission piece, so that the data transmission piece can transmit signals to other equipment, the sweat information can be detected in real time by the detection piece, and the detected information can be transmitted in real time, which can facilitate real-time detection of the physical condition of workers, the sweat can flow out through the second side of the sweat flow passage, and the sweat can also be discharged from the detection base body, so that the sweat flowing out of workers can be discharged, the sweat of workers can be discharged through the detection base body, real-time detection of the sweat by the detection piece arranged in the detection base body can be realized, the physical condition of workers can be judged in time, and the practicability and structural reliability of the sweat detection device are improved. BRIEF DESCRIPTION OF DRAWINGS
[0016] The drawings accompanying the specification of this application form a part thereof, serve to provide further understanding of the present application, and together with the description of the exemplary embodiments of the present application, serve to explain the present application, and do not constitute improper limitations on the present application. In the drawings:
[0017] Figure 1 A schematic view of a sweat detection device provided by an embodiment of the present application is shown.
[0018] Among them, the above-mentioned drawing includes the following sign:
[0019] 10, detection assembly; 11, detection base body; 111, fixed layer; 1111, second passage; 112, mounting layer; 1121, third passage; 113, covering layer; 1131, fourth passage; 1132, fifth passage; 114, sweat flow passage; 12, detection piece; 121, conductive unit; 1211, first communication hole; 122, biosensor; 123, conductive contact; 13, adhesive layer; 131, first passage; 14, sealing piece; 141, sealing block;
[0020] 20, data transmission piece; 21, electric connection needle; 22, controller;
[0021] 30, connecting layer; 31, second communication hole;
[0022] 40. Signal sending device. DETAILED DESCRIPTION
[0023] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only some embodiments of the present invention, not all embodiments. The following description of at least one exemplary embodiment is actually only illustrative and is in no way intended to limit the present invention and its application or use. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0024] like Figure 1 As shown, an embodiment of the present invention provides a sweat detection device, which includes a detection component 10 and a data transmission component 20. The detection component 10 includes a detection base 11 and a detection component 12. The first side of the detection base 11 can contact human skin. The detection base 11 has a second side opposite to the first side. The detection base 11 has a sweat circulation channel 114 that passes through the first and second sides of the detection base 11. The first end of the detection component 12 extends into the sweat circulation channel 114, and the second end of the detection component 12 is located outside the sweat circulation channel 114. The data transmission component 20 is arranged on the detection base 11, and one end of the data transmission component 20 is signal-connected to the second end of the detection component 12.
[0025] The sweat detection device provided by the embodiment comprises a detection assembly 10 and a data transmission member 20. The first side of the detection substrate 11 can be in contact with the human skin. The second side of the detection substrate 11 is arranged away from the first side. The detection substrate 11 has a sweat flow passage 114 penetrating through the first side and the second side of the detection substrate 11. The first end of the detection member 12 can be deep into the sweat flow passage 114. The second end of the detection member 12 is located outside the sweat flow passage 114 and can be in signal connection with the data transmission member 20. Specifically, the sweat flowing out of the human skin can flow into the sweat flow passage 114 through the first side of the detection substrate 11. The sweat in the sweat flow passage 114 is in contact with the detection member 12. The detection member 12 can detect the composition of the sweat in the sweat flow passage 114 and transmit the sweat information detected by the detection member 12 to the data transmission member 20. Then, the data transmission member 20 transmits the signal to other equipment. The sweat information can be detected by the detection member 12 in real time. The detected information can be transmitted in real time. Thus, the physical condition of the worker can be detected in real time. The sweat can flow out through the second side of the sweat flow passage 114. The sweat can be discharged from the detection substrate 11. Thus, the sweat of the worker can be discharged through the detection substrate 11. The sweat can be detected in real time by the detection member 12 arranged in the detection substrate 11. Thus, the physical condition of the worker can be determined in time. The practicality and structural reliability of the sweat detection device are improved.
[0026] It should be noted that the detection member 12 can detect the amount of sweat and the electrolyte concentration of the sweat and generate an electrical signal. The signal is transmitted through the data transmission member 20. Thus, the sweat can be detected in real time.
[0027] As shown in FIG. 1, Figure 1 The detection assembly 10 further comprises an adhesive layer 13 arranged on the first side of the detection substrate 11. The detection substrate 11 is adhered to the human skin by the adhesive layer 13. The first channel 131 in communication with the sweat flow passage 114 is arranged on the adhesive layer 13. The detection assembly 10 is adopted. The adhesive layer 13 is arranged on the first side of the detection substrate 11. The detection substrate 11 is adhered to the human skin by the adhesive layer 13. Thus, the detection substrate 11 can be adhered to the human skin under the action of the adhesive layer 13. The first channel 131 is arranged on the adhesive layer 13. The first channel 131 is in communication with the sweat flow passage 114. Thus, the sweat flowing out of the human skin first flows into the first channel 131 of the adhesive layer 13 and then flows into the sweat flow passage 114. The sweat flowing into the sweat flow passage 114 is detected in real time by the detection member 12 in the sweat flow passage 114.
[0028] It should be noted that in the present embodiment, the adhesive layer 13 is made of silica gel material.
[0029] As shown in Figure 1 The detection substrate 11 includes a fixed layer 111, a mounting layer 112, and a cover layer 113. The first side of the fixed layer 111 is adhesively connected to the adhesive layer 13. The fixed layer 111 has a second channel 1111 that is in communication with the first channel 131. The first side of the mounting layer 112 is connected to the second side of the fixed layer 111. The mounting layer 112 has a third channel 1121 that is in communication with the second channel 1111. The detection member 12 is disposed on the second side of the fixed layer 111 and located in the third channel 1121. The first side of the cover layer 113 is connected to the second side of the mounting layer 112. The cover layer 113 has a fourth channel 1131 that is in communication with the third channel 1121. The first channel 131, the second channel 1111, the third channel 1121, and the fourth channel 1131 form a sweat flow channel 114. The data transmission member 20 is connected to the cover layer 113 or the mounting layer 112 and is signal connected to the detection member 12. With the above-mentioned detection substrate 11, the first side of the fixed layer 111 is adhesively connected to the adhesive layer 13. The second channel 1111 of the fixed layer 111 is in communication with the first channel 131, so that sweat can flow from the first channel 131 into the second channel 1111. The first side of the mounting layer 112 is connected to the second side of the fixed layer 111. The third channel 1121 of the mounting layer 112 is in communication with the second channel 1111, so that sweat flowing into the second channel 1111 can flow into the third channel 1121. The detection member 12 is disposed in the fixed layer 111 and located in the third channel 1121, which can facilitate fixing the detection member 12 in the detection substrate 11 and can enable sweat flowing into the third channel 1121 to wet the detection member 12, so that the detection member 12 can detect the sweat flowing into the third channel 1121 in real time. The first side of the cover layer 113 is connected to the second side of the mounting layer 112. The fourth channel 1131 is provided on the cover layer 113, so that the first channel 131 of the adhesive layer 13, the second channel 1111 of the fixed layer 111, the third channel 1121 of the mounting layer 112, and the fourth channel 1131 of the cover layer 113 jointly form the sweat flow channel 114, which can enable sweat to flow on the detection substrate 11. The data transmission member 20 is disposed on the cover layer 113 or the mounting layer 112 and is signal connected to the detection member 12 in the third channel 1121, which can improve the reliability of the mounting method and facilitate signal connection between the data transmission member 20 and the detection member 12.
[0030] In the embodiment, the cross-sectional size of the first channel 131 is larger than the cross-sectional size of the second channel 1111. With the above structure, the cross-sectional size of the first channel 131 is larger than the cross-sectional size of the second channel 1111, so that the sweat flows into the first channel 131 and then flows into the second channel 1111, and then the air in the first channel 131 and the second channel 1111 can be emptied after the sweat is stored. When the human body continues to sweat, the sweat can be continuously stored in the first channel 131 and continuously discharged from the first channel 131 to the second channel 1111, ensuring continuous circulation of the sweat, avoiding the problem that the sweat cannot continuously circulate due to the presence of air when the sweat flows through the detection member 12 in the third channel 1121, affecting the accuracy of the detection result, and thus improving the reliability of the detection of the detection member 12.
[0031] As shown in Figure 1 , the detection member 12 includes a conductive unit 121 and a biosensor 122. The conductive unit 121 is arranged on the second side of the fixed layer 111. The conductive unit 121 has a first communication hole 1211 that is in communication with the second channel 1111. The biosensor 122 is arranged at one end of the conductive unit 121 close to the fourth channel 1131. The biosensor 122 is in signal connection with the conductive unit 121. The data transmission member 20 is connected to the other end of the conductive unit 121 away from the fourth channel 1131. With the above structure, the conductive unit 121 is arranged on the second side of the fixed layer 111. The first communication hole 1211 on the conductive unit 121 is in communication with the second channel 1111. The biosensor 122 is arranged at one end of the conductive unit 121 close to the fourth channel 1131. In this way, the sweat in the second channel 1111 can flow into the third channel 1121 through the first communication hole 1211. The detection member 12 is arranged on the path of the sweat circulation, realizing the real-time detection of the sweat by the detection member 12. The data transmission member 20 is connected to the other end of the conductive unit 121 away from the fourth channel 1131. In this way, the data transmission member 20 can be in signal connection with the conductive unit 121, ensuring that the detected signals are transmitted through the data transmission member 20, and facilitating real-time observation of the physical condition of the worker.
[0032] As shown in Figure 1As shown, the detection member 12 further comprises a conductive contact 123, which is arranged at one end of the conductive unit 121 away from the fourth channel 1131 and is in signal connection with the conductive unit 121, and the data transmission member 20 is in signal connection with the conductive contact 123. By arranging the conductive contact 123 at one end of the conductive unit 121 away from the fourth channel 1131 and in signal connection with the conductive unit 121, the conductive contact 123 can transmit the signal transmitted by the conductive unit 121 to the data transmission member 20, which facilitates the signal connection between the data transmission member 20 and the detection member 12.
[0033] As shown in Figure 1 As shown, the third channel 1121 is provided with a sealing member 14, which is arranged between the conductive unit 121 and the cover layer 113 to isolate the first communication hole 1211 from the data transmission member 20. By arranging the sealing member 14 between the conductive unit 121 and the cover layer 113, the first communication hole 1211 can be isolated from the data transmission member 20, which prevents the corrosion of the data transmission member 20 by sweat.
[0034] As shown in Figure 1 As shown, the sealing member 14 comprises a sealing block 141, the first side of which is adhesively connected to the side wall of the conductive unit 121, and the second side of which is adhesively connected to the first side of the cover layer 113. By adopting the sealing member 14, the sealing block 141 can seal the conductive unit 121 and the cover layer 113, which prevents the corrosion of the data transmission member 20 by sweat.
[0035] As shown in Figure 1As shown, the sweat detection device further comprises a connecting layer 30, a first side of the connecting layer 30 is adhesively connected with the second side of the covering layer 113, a second side of the connecting layer 30 is adhesively connected with the data transmission piece 20, the connecting layer 30 is provided with a second communication hole 31, the covering layer 113 is provided with a fifth channel 1132 which is spaced apart from the fourth channel 1131, the fifth channel 1132 is in communication with the third channel 1121, and the data transmission piece 20 is sequentially arranged in the second communication hole 31 and the fifth channel 1132 and connected with one end of the conductive unit 121 which is away from the fourth channel 1131. By adopting the above structure, the connecting layer 30 is adhesively arranged on the second side of the covering layer 113, so that the data transmission piece 20 can be adhesively connected with the covering layer 113 under the action of the connecting layer 30, the fifth channel 1132 is arranged on the covering layer 113, the fifth channel 1132 is spaced apart from the fourth channel 1131, the fifth channel 1132 is in communication with the third channel 1121, the connecting layer 30 is provided with the second communication hole 31, so that the data transmission piece 20 sequentially passes through the second communication hole 31 and the fifth channel 1132 and is signal connected with the conductive contact 123 in the third channel 1121, and the sealing block 141 is arranged in the third channel 1121 for sealing, so as to avoid the sweat flowing into the fourth channel 1131 from the third channel 1121 from corroding the conductive contact 123 and the data transmission piece 20, so that the channels where the data transmission piece 20 and the conductive contact 123 are located are sealed and isolated from the channels through which the sweat flows into the third channel 1121 and the fourth channel 1131, and corrosion of the data transmission piece 20 and the conductive contact 123 is avoided.
[0036] As shown in the figure, Figure 1 The data transmission piece 20 comprises an electrically connected needle 21 and a controller 22, a first end of the electrically connected needle 21 can be arranged in the sweat flow channel 114 and signal connected with the detection piece 12, and the electrically connected needle 21 is connected with the controller 22. By adopting the above structure, the first end of the electrically connected needle 21 can be arranged in the sweat flow channel 114 and signal connected with the detection piece 12, so as to facilitate signal connection between the detection piece 12 and the controller 22 through the electrically connected needle 21.
[0037] It should be noted that in other embodiments, the electrically connected needle 21 can be an electrode.
[0038] As shown in the figure, Figure 1 The sweat detection device further comprises a signal sending piece 40, and the signal sending piece 40 is signal connected with the data transmission piece 20. By adopting the above structure, the signal sending piece 40 is used to send the detected signal to a mobile device, so as to realize real-time detection.
[0039] It should be noted that the sweat detection device also includes a warning module. The main function is to immediately warn when the data is abnormal. At the same time, the received Bluetooth signal is sent to the central control platform through the wireless network module, and the instructions of the central control platform can also be received.
[0040] It should be noted that the terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting of example embodiments consistent with the present application. As used herein, the singular forms "a", "an" and "the" are intended to include the plural forms as well, unless the context clearly indicates otherwise. It will be further understood that the terms "comprises" and / or "comprising," when used in this specification, specify the presence of stated features, steps, operations, elements, components, and / or groups thereof, but do not preclude the presence or addition of one or more other features, steps, operations, elements, components, and / or groups thereof.
[0041] The relative arrangement of parts and steps, numerical expressions, and numerical values set forth in these embodiments are not intended to limit the scope of the present application, unless otherwise specifically stated. At the same time, it should be understood that the sizes of the various parts shown in the drawings are not drawn in accordance with the actual proportional relationship. The technology, methods and equipment known to those skilled in the relevant art can not be discussed in detail, but under appropriate circumstances, the technology, methods and equipment should be considered as part of the specification. In all examples shown and discussed herein, any specific value should be interpreted as merely exemplary, and not as a limitation. Therefore, other examples of exemplary embodiments can have different values. It should be noted that similar reference numbers and letters represent similar items in the following drawings, so once an item is defined in one drawing, it does not need to be further discussed in subsequent drawings.
[0042] In the description of the present application, it should be understood that the orientation words such as "front, rear, upper, lower, left, right", "horizontal, vertical, perpendicular, horizontal" and "top, bottom" and the like indicate the orientation or positional relationship shown in the drawings, and are only for the convenience of describing the present application and simplifying the description, and in the absence of contrary statements, these orientation words do not indicate and imply that the indicated device or element must have a particular orientation or be constructed and operated in a particular orientation, therefore it cannot be understood as a limitation on the scope of protection of the present application; the orientation words "inner, outer" refer to the inner and outer of the contour of each component itself.
[0043] For purposes of the description hereinafter, spatial relative terms, such as "above", "below", "upper", "lower", and the like, can be used to describe the relative position of one element or feature to another as illustrated in the figures. It will be understood that the spatial relative terms are intended to encompass different orientations of the device in use or operation in addition to the orientations depicted in the figures. For example, if the device in the figures is turned over, elements described as "above" or "up" other elements or features would then be oriented "below" or "down" the other elements or features. Thus, the exemplary term "above" can encompass both an orientation of above and below. The device can be otherwise oriented (rotated 90 degrees or at other orientations) and the spatially relative descriptors used herein interpreted accordingly. Well, the spatial relative terms are intended to encompass different orientations of the device in use or operation in addition to the orientations depicted in the figures. For example, if the device in the figures is turned over, elements described as "above" or "up" other elements or features would then be oriented "below" or "down" the other elements or features. Thus, the exemplary term "above" can encompass both an orientation of above and below. The device can be otherwise oriented (rotated 90 degrees or at other orientations) and the spatially relative descriptors used herein interpreted accordingly.
[0044] In addition, it needs to be explained that the use of "first", "second" and the like words to limit the parts, only for the convenience of the corresponding parts for the distinction, such as no other declaration, the above words have no special meaning, therefore can not be understood as the restriction of the scope of protection of the utility model.
[0045] The above only describes the preferred embodiments of the present application, and is not intended to limit the present application. For those skilled in the art, the present application can have various modifications and changes. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present application shall be included in the protection scope of the present application.
Claims
1. A sweat detection device, characterized in that, The sweat detection device comprises: a detection assembly (10) comprising a detection substrate (11) and a detection element (12), a first side of the detection substrate (11) being capable of contacting a human skin, the detection substrate (11) having a second side opposite to the first side, the detection substrate (11) having a sweat flow passage (114) extending through the first side and the second side of the detection substrate (11), a first end of the detection element (12) extending into the sweat flow passage (114), and a second end of the detection element (12) being located outside the sweat flow passage (114); a data transmission element (20) disposed on the detection substrate (11), one end of the data transmission element (20) being signal connected with the second end of the detection element (12).
2. The sweat detection device of claim 1, wherein, The detection assembly (10) further comprises an adhesive layer (13) disposed on the first side of the detection substrate (11), the detection substrate (11) being adhered to the human skin through the adhesive layer (13), and the adhesive layer (13) being provided with a first passage (131) in communication with the sweat flow passage (114).
3. The sweat detection device of claim 2, wherein, The detection substrate (11) comprises: a fixing layer (111), a first side of the fixing layer (111) being adhered to the adhesive layer (13), the fixing layer (111) having a second passage (1111) in communication with the first passage (131); an installation layer (112), a first side of the installation layer (112) being connected to a second side of the fixing layer (111), the installation layer (112) having a third passage (1121) in communication with the second passage (1111), the detection element (12) being disposed on the second side of the fixing layer (111) and located in the third passage (1121); a cover layer (113), a first side of the cover layer (113) being connected to a second side of the installation layer (112), the cover layer (113) having a fourth passage (1131) in communication with the third passage (1121), the first passage (131), the second passage (1111), the third passage (1121), and the fourth passage (1131) constituting the sweat flow passage (114), and the data transmission element (20) being connected to the cover layer (113) or the installation layer (112) and signal connected with the detection element (12).
4. The sweat detection device of claim 3, wherein, A cross-sectional dimension of the first passage (131) is greater than a cross-sectional dimension of the second passage (1111).
5. The sweat detection device of claim 3, wherein, The detection element (12) comprises: a conductive unit (121) disposed on the second side of the fixing layer (111), the conductive unit (121) having a first communication hole (1211) in communication with the second passage (1111); a biosensor (122) disposed on one end of the conductive unit (121) close to the fourth passage (1131), the biosensor (122) being signal connected with the conductive unit (121). The data transmission piece (20) is connected to one end of the conductive unit (121) away from the fourth channel (1131).
6. The sweat detection device of claim 5, wherein, The detection piece (12) further comprises a conductive contact (123) disposed at one end of the conductive unit (121) away from the fourth channel (1131) and signal connected to the conductive unit (121), and the data transmission piece (20) is signal connected to the conductive contact (123).
7. The sweat detection device of claim 5, wherein, The third channel (1121) is provided with a sealing piece (14) disposed between the conductive unit (121) and the cover layer (113) to isolate the first communication hole (1211) from the data transmission piece (20).
8. The sweat detection device of claim 7, wherein, The sealing piece (14) comprises a sealing block (141) with a first side adhesively connected to the side wall of the conductive unit (121) and a second side adhesively connected to the first side of the cover layer (113).
9. The sweat detection device of claim 5, wherein, The sweat detection device further comprises a connecting layer (30) with a first side adhesively connected to the second side of the cover layer (113) and a second side adhesively connected to the data transmission piece (20), and the connecting layer (30) is provided with a second communication hole (31) therethrough, the cover layer (113) has a fifth channel (1132) disposed apart from the fourth channel (1131), the fifth channel (1132) is in communication with the third channel (1121), and the data transmission piece (20) is sequentially disposed in the second communication hole (31) and the fifth channel (1132) and connected to one end of the conductive unit (121) away from the fourth channel (1131).
10. The sweat detection device according to claim 1, wherein The data transmission piece (20) comprises an electric connection needle (21) and a controller (22), the first end of the electric connection needle (21) can be disposed in the sweat flow channel (114) and signal connected to the detection piece (12), and the electric connection needle (21) is connected to the controller (22). The sweat detection device further comprises a signal sending piece (40) signal connected to the data transmission piece (20).