Health detection equipment and health detection system

By integrating heart rate, blood oxygen, body temperature, and bioelectrical detection elements, this health monitoring device solves the problem of low detection efficiency in existing equipment and enables efficient detection of multiple indicators and cloud-based analysis and utilization of the data.

CN224085315UActive Publication Date: 2026-04-07泰康保险集团股份有限公司 +1
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-05
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

Existing health monitoring equipment is inefficient and fails to effectively utilize measurement data.

Method used

The device integrates sensors for measuring heart rate, blood oxygen, body temperature, and bioelectricity into a single data acquisition unit, and sends the data to a cloud server for analysis and utilization via a communication module.

Benefits of technology

It enables efficient detection of multiple indicators, allowing users to obtain various health data with a single measurement, and supports subsequent data storage and analysis.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides health detection equipment and a health detection system, and relates to the technical field of medical instruments. The health detection equipment comprises an equipment body and a data collector, wherein a control module, a communication module and a display module are arranged in the equipment body; a bioelectricity measuring module, a blood oxygen and heart rate measuring module and a body temperature measuring module are arranged in the data collector; the control module is used for controlling the bioelectricity measuring module to collect bioelectricity data, the blood oxygen and heart rate measuring module to collect heart rate data and blood oxygen data and the body temperature measuring module to collect body temperature data; the control module is further used for controlling the display module to display the bioelectricity data, the heart rate data, the blood oxygen data and the body temperature data; the control module is further used for controlling the communication module to send the bioelectricity data, the heart rate data, the blood oxygen data and the body temperature data to the cloud server. The health detection equipment is high in detection efficiency, and can upload the health data to the cloud server so as to facilitate storage and subsequent analysis processing.
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Description

Technical Field

[0001] This application relates to the field of medical device technology, and in particular to a health detection device and health detection system. Background Technology

[0002] With the development of technology, health monitoring devices are becoming increasingly common. Users can perform self-monitoring of certain health data using portable health monitoring devices without having to visit medical testing institutions, thus meeting people's health monitoring needs. However, although existing health monitoring devices can detect indicators such as heart rate, blood oxygen, body temperature, and bioelectrical signals, the measurement requires separate use of different devices, resulting in low efficiency. Furthermore, existing health monitoring devices do not effectively utilize the measured data after measurement. Utility Model Content

[0003] This application provides a health testing device and a health testing system to solve the problems of low testing efficiency and lack of effective utilization of measurement data in existing health testing devices.

[0004] This application provides a health monitoring device, comprising:

[0005] The device body includes a control module, a communication module, and a display module. The data acquisition unit includes a bioelectric measurement module, a blood oxygen and heart rate measurement module, and a body temperature measurement module. The communication module, the display module, the bioelectric measurement module, the blood oxygen and heart rate measurement module, and the body temperature measurement module are all communicatively connected to the control module.

[0006] The control module is used to control the bioelectric measurement module to collect bioelectric data, the blood oxygen and heart rate measurement module to collect heart rate data and blood oxygen data, and the body temperature measurement module to collect body temperature data.

[0007] The control module is also used to control the display module to display the bioelectrical data, the heart rate data, the blood oxygen data, and the body temperature data;

[0008] The control module is also used to control the communication module to send the bioelectric data, the heart rate data, the blood oxygen data, and the body temperature data to the cloud server.

[0009] In one possible implementation, the health monitoring device provided in this application includes a data acquisition handle, and at least one data acquisition handle is configured to allow the subject to hold it. The data acquisition handle is integrally formed with the device body, or the data acquisition handle is detachably connected to the device body.

[0010] In one possible implementation, the health detection device provided in this application includes a bioelectric measurement module comprising a measuring electrode pad disposed on the outer periphery of the acquisition handle. When the subject holds the acquisition handle, the measuring electrode pad is in contact with at least one first fingertip of the subject, and the measuring electrode pad is used to measure the bioelectric data.

[0011] In one possible implementation, the health monitoring device provided in this application includes a blood oxygen and heart rate measurement module comprising a photoelectric sensor. The photoelectric sensor is disposed on the outer periphery of the acquisition handle. When the subject holds the acquisition handle, the photoelectric sensor is in contact with the subject's second fingertip. The photoelectric sensor is used to measure the blood oxygen data and the heart rate data.

[0012] In one possible implementation, the health monitoring device provided in this application includes a body temperature measurement module comprising an infrared sensor disposed on the outer periphery of the collection handle. When the subject holds the collection handle, the infrared sensor corresponds to the subject's palm, and the infrared sensor is used to measure the body temperature data.

[0013] In one possible implementation, the health monitoring device provided in this application has a communication module that is any one of a 4G communication module, a 5G communication module, a WiFi communication module, or a Bluetooth communication module.

[0014] In one possible implementation, the health monitoring device provided in this application further includes:

[0015] A spring-loaded pin interface is located on the device body and is communicatively connected to the control module. The spring-loaded pin interface is used to connect the health monitoring device to other external devices.

[0016] In one possible implementation, the health monitoring device provided in this application further includes:

[0017] A broadcast module is installed within the device body and is communicatively connected to the control module.

[0018] In one possible implementation, the health monitoring device provided in this application further includes:

[0019] A voice recognition module is disposed within the device body and is communicatively connected to the control module.

[0020] This application also provides a health monitoring system, including:

[0021] The cloud server and any of the above-mentioned health monitoring devices, wherein the health monitoring device is communicatively connected to the cloud server.

[0022] This application provides a health monitoring device and a health monitoring system. The health monitoring device includes a device body and a data acquisition unit. The device body contains a control module, a communication module, and a display module. The data acquisition unit contains a bioelectrical measurement module, a blood oxygen and heart rate measurement module, and a body temperature measurement module. The communication module, display module, bioelectrical measurement module, blood oxygen and heart rate measurement module, and body temperature measurement module are all communicatively connected to the control module. The control module is used to control the bioelectrical measurement module to collect bioelectrical data, the blood oxygen and heart rate measurement module to collect heart rate data and blood oxygen data, and the body temperature measurement module to collect body temperature data. The control module is also used to control the display module to display the bioelectrical data, heart rate data, blood oxygen data, and body temperature data. The control module is also used to control the communication module to send the bioelectrical data, heart rate data, blood oxygen data, and body temperature data to a cloud server. When a user uses the health monitoring device, multiple data acquisition modules in the data acquisition unit begin operating under the instructions of the control module, respectively collecting the user's bioelectrical data, heart rate data, blood oxygen data, and body temperature data. The collected health data is processed by the control module and displayed on the display module for the user to view. Furthermore, the control module also sends the health data to a cloud server via the communication module for further analysis and storage. Therefore, the health monitoring device provided in this embodiment, by integrating the bioelectrical measurement module, blood oxygen and heart rate measurement module, and body temperature measurement module into the data acquisition unit, allows the user to obtain bioelectrical data, heart rate data, blood oxygen data, and body temperature data in a single measurement, resulting in high detection efficiency. In addition, the health data is uploaded to a cloud server for storage and subsequent analysis and processing. Attached Figure Description

[0023] The accompanying drawings, which are incorporated in and form part of this specification, illustrate embodiments consistent with this application and, together with the description, serve to explain the principles of this application.

[0024] Figure 1 This is a circuit diagram of a health monitoring device provided in one embodiment of this application;

[0025] Figure 2 This is a schematic diagram of the structure of a health monitoring device provided in one embodiment of this application;

[0026] Figure 3 A circuit diagram of a health monitoring device provided in another embodiment of this application;

[0027] Figure 4 This is a schematic diagram of a health monitoring system provided in one embodiment of this application.

[0028] Explanation of reference numerals in the attached figures:

[0029] 10-Equipment body; 101-Control module; 102-Communication module; 103-Display module; 104-Battery module; 105-Spring pin interface; 106-Broadcast module; 107-Heat dissipation module; 108-Placement slot; 109-Voice recognition module;

[0030] 20-Data acquisition unit; 201-Bioelectric measurement module; 2011-Measuring electrode pads; 202-Blood oxygen and heart rate measurement module; 2021-Photoelectric sensor; 203-Body temperature measurement module; 2031-Infrared sensor.

[0031] The accompanying drawings illustrate specific embodiments of this application, which will be described in more detail below. These drawings and descriptions are not intended to limit the scope of the concept in any way, but rather to illustrate the concept of this application to those skilled in the art through reference to particular embodiments. Detailed Implementation

[0032] To make the objectives, technical solutions, and advantages of the embodiments of this application clearer, the technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of the embodiments of this application.

[0033] In the embodiments of this application, the terms "upper," "lower," "inner," "middle," "outer," "front," and "rear," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. These terms are primarily for better description of this application and its embodiments, and are not intended to limit the indicated device, element, or component to having a specific orientation, or to be constructed and operated in a specific orientation. Furthermore, some of the above terms may be used to indicate other meanings besides orientation or positional relationship; for example, the term "upper" may also be used in some cases to indicate a certain dependency or connection relationship. Those skilled in the art can understand the specific meaning of these terms in the embodiments of this application according to the specific circumstances.

[0034] Furthermore, the terms "set up," "connect," and "fix" should be interpreted broadly. For example, "connection" can be a fixed connection, a detachable connection, or an integral structure; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium, or it can be an internal connection between two devices, components, or parts. Those skilled in the art can understand the specific meaning of the above terms in the embodiments of this disclosure according to the specific circumstances.

[0035] The terms "first," "second," "third," "fourth," etc. (if present) in the specification, claims, and accompanying drawings of this application are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate so that the embodiments of this application described herein can be implemented, for example, in a sequence other than those illustrated or described herein.

[0036] The terms "first," "second," "third," "fourth," etc. (if present) in the specification, claims, and accompanying drawings of this application are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate so that the embodiments of this application described herein can be implemented, for example, in a sequence other than those illustrated or described herein.

[0037] In this application, the terms "exemplarily" or "for example" are used to indicate examples, illustrations, or descriptions. Any embodiment or design described as "exemplarily" or "for example" in this application should not be construed as being more preferred or advantageous than other embodiments or designs. Specifically, the use of terms such as "exemplarily" or "for example" is intended to present the relevant concepts in a specific manner.

[0038] Unless otherwise stated, the term "multiple" means two or more.

[0039] As described in the background section, technological advancements have facilitated the widespread adoption of health monitoring devices, enabling individuals to conduct self-health monitoring using portable devices without relying on traditional medical testing institutions. However, current health monitoring devices on the market still have shortcomings: on the one hand, existing devices often have limited functionality, requiring different measuring elements for indicators such as heart rate, blood oxygen, body temperature, and bioelectrical activity. This not only increases the complexity of the devices but also reduces testing efficiency. Users need to frequently switch devices when performing multiple health indicator tests, making the process cumbersome and hindering the rapid acquisition of health data. On the other hand, after data collection, users can only see the raw measurement data, lacking effective utilization of this data.

[0040] Therefore, in response to the technical problems of the existing technology, in order to improve the detection efficiency of health monitoring equipment and the utilization of measurement data, the following measures are taken: First, the components for detecting indicators such as heart rate, blood oxygen, body temperature, and bioelectricity are integrated into a single data acquisition unit. This allows users to detect multiple indicators using a single data acquisition unit. Furthermore, a communication module is provided to send the measurement data to a cloud server for subsequent data analysis and utilization.

[0041] The technical solutions of the embodiments of this application and how the technical solutions of the embodiments of this application solve the above-mentioned technical problems are described in detail below with specific examples. The following specific embodiments can be combined with each other, and the same or similar concepts or processes may not be described again in some embodiments. The embodiments of this application will be described below with reference to the accompanying drawings.

[0042] Reference Figure 1 As shown in the figure, this application provides a health monitoring device, including: a device body 10 and a data acquisition unit 20. The device body 10 is provided with a control module 101, a communication module 102, and a display module 103. The data acquisition unit 20 is provided with a bioelectric measurement module 201, a blood oxygen and heart rate measurement module 202, and a body temperature measurement module 203. The communication module 102, the display module 103, the bioelectric measurement module 201, the blood oxygen and heart rate measurement module 202, and the body temperature measurement module 203 are all communicatively connected to the control module 101. The control module 101 is used to control the bioelectric measurement module 201 to collect bioelectric data, the blood oxygen and heart rate measurement module 202 to collect heart rate data and blood oxygen data, and the body temperature measurement module 203 to collect body temperature data. The control module 101 is also used to control the display module 103 to display the bioelectric data, heart rate data, blood oxygen data, and body temperature data. The control module 101 is also used to control the communication module 102 to send the bioelectric data, heart rate data, blood oxygen data, and body temperature data to a cloud server.

[0043] Specifically, the device body 10 has a receiving space, within which the control module 101, communication module 102, and display module 103 are fixedly installed. It should be noted that, in addition to providing installation space for the control module 101, communication module 102, and display module 103, the device body 10 also provides protection to ensure the stable operation of these functional modules. Optionally, the device body 10 can be made of plastic or metal.

[0044] The control module 101 is the core component of the health monitoring device. Specifically, the control module 101 is responsible for controlling the bioelectric measurement module 201 to collect bioelectrical data, controlling the blood oxygen and heart rate measurement module 202 to collect heart rate and blood oxygen data, and controlling the body temperature measurement module 203 to collect body temperature data. The control module 101 also has a storage unit for storing the aforementioned bioelectrical data, heart rate data, blood oxygen data, and body temperature data. The control module 101 is also responsible for controlling the display module 103 to display the bioelectrical data, heart rate data, blood oxygen data, and body temperature data, so that the user can be aware of the measurement data in a timely manner. The control module 101 is also used to control the communication module 102 to send the bioelectrical data, heart rate data, blood oxygen data, and body temperature data to the cloud server, so that the measurement data is stored in the cloud server for subsequent analysis and processing by the cloud server.

[0045] Optionally, the control module 101 includes a control chip, which may be an STM32 microcontroller. Of course, the control module 101 may include other structures, such as input / output interfaces and protection circuits, which will not be described in detail in this embodiment.

[0046] The communication module 102 is communicatively connected to the control module 101 and is used to send the collected bioelectrical data, heart rate data, blood oxygen data, and body temperature data to a cloud server, thereby enabling remote storage and subsequent processing and analysis of the measurement data. Optionally, the specific type of the communication module 102 can be varied, such as a serial communication module, Ethernet communication module, WIFI communication module, Bluetooth communication module, 4G / 5G communication module, etc. Specifically, this embodiment does not impose a specific limitation on this type.

[0047] The display module 103 is communicatively connected to the control module 101 and is used to display various collected health data under the instructions of the control module 101, so that users can view and understand their own health data in real time. Optionally, the specific type of the display module 103 can be selected from various options, such as a liquid crystal display screen or a light-emitting diode display screen. Specifically, in this embodiment, no specific limitation is made.

[0048] Specifically, the data acquisition unit 20 has a housing space within which the bioelectrical measurement module 201, the blood oxygen and heart rate measurement module 202, and the body temperature measurement module 203 are installed. It should be noted that, in addition to providing installation space for the bioelectrical measurement module 201, the blood oxygen and heart rate measurement module 202, and the body temperature measurement module 203, the data acquisition unit 20 also provides protection to ensure the stable operation of these functional modules. Optionally, the data acquisition unit 20 can be made of plastic or metal.

[0049] The bioelectric measurement module 201 is used to collect the user's bioelectric data, which is typically used to assess the user's neural and muscular activity. Optionally, bioelectric data can be measured using a bioimpedance sensor or a skin conductance sensor; however, this embodiment does not specifically limit the method used.

[0050] Specifically, taking a bioimpedance sensor as an example, a bioimpedance sensor typically includes multiple electrode pads. These electrode pads need to contact the subject's skin to form a current loop. Therefore, at least a portion of the electrode pads of the bioimpedance sensor needs to protrude from the data acquisition unit 20 to allow contact with the subject's skin, while other circuitry and other structures of the bioimpedance sensor are housed within the accommodating space. Optionally, the outer wall of the data acquisition unit 20 has a through hole communicating with the accommodating space. The electrode pads are fixedly installed within the accommodating space at positions corresponding to the through hole, allowing the subject's fingers to contact the electrode pads. Optionally, the electrode pads can be fixed inside the data acquisition unit using screws, adhesives, or clips. Alternatively, the electrode pads can be fixed to the outer wall of the data acquisition unit, with the connecting wires of the electrode pads passing through the through hole into the accommodating space.

[0051] It should be noted that when using a skin response sensor to measure bioelectrical data, its installation and fixation method is the same as that of the bioimpedance sensor described above, so it will not be repeated here.

[0052] Optionally, during data acquisition, the bioelectric measurement module 201 can obtain bioelectric data by measuring the subject's hand, wrist, or head. The specific acquisition location needs to be determined according to the specific structure and usage of the data acquisition device, and this embodiment does not impose specific limitations on this.

[0053] The heart rate and blood oxygen measurement module 202 is used to collect the user's heart rate and blood oxygen data, which are important indicators for assessing cardiovascular health. Optionally, heart rate and blood oxygen data can be measured by a photoelectric sensor or a pulse oximeter sensor; specifically, this embodiment does not impose any specific limitations on this method.

[0054] Specifically, the photoelectric sensor or pulse oximeter sensor is installed and fixed in the accommodating space in the same way as the electrode plate of the bioimpedance sensor described above. It can be fixed inside the accommodating space and exposed through a through hole, or fixed to the outer wall of the data acquisition unit 20. In this embodiment, no specific limitation is made in this regard. Similarly, during data acquisition, the blood oxygen and heart rate measurement module 202 can obtain heart rate and blood oxygen data by measuring the subject's hand, wrist, or head. In this embodiment, no specific limitation is made in this regard.

[0055] The body temperature measurement module 203 is used to collect the user's body temperature data to monitor changes in the user's body temperature and detect potential health problems in a timely manner. Optionally, body temperature data can be measured using an infrared sensor or a semiconductor temperature sensor; specifically, this embodiment does not impose a specific limitation on this method.

[0056] Specifically, the infrared sensor or semiconductor temperature sensor is installed and fixed in the accommodating space in the same way as the electrode plate of the bioimpedance sensor described above. It can be fixed inside the accommodating space and exposed through the through hole, or fixed to the outer wall of the data acquisition unit 20. In this embodiment, there is no specific limitation on this. Similarly, when collecting data, the body temperature measurement module 203 can obtain body temperature data by measuring the subject's hand, wrist, or head. In this embodiment, there is no specific limitation on this.

[0057] Optionally, the data acquisition device 20 can be of various types, such as wristband, armband, headband, and finger clip. For example, when a wristband-type data acquisition device is used, the subject wears the device around their wrist during health testing to collect bioelectrical data, heart rate data, blood oxygen data, and temperature data. Similarly, an armband-type device collects data by wearing the device around the arm; a headband-type device collects data by wearing the device on the head; and a finger clip-type device collects data by clipping the device onto the fingers. Of course, the external structure of the data acquisition device will also adapt accordingly to the different types. Specifically, in this embodiment, the type and structure of the data acquisition device are not specifically limited.

[0058] Specifically, when a user uses the health monitoring device, multiple data acquisition modules in the data acquisition unit 20 begin operating under the instructions of the control module 101, respectively collecting the user's bioelectrical data, heart rate data, blood oxygen data, and body temperature data. The collected health data is processed by the control module 101 and displayed on the display module 103 for the user to view. Furthermore, the control module 101 also sends the health data to a cloud server via the communication module 102 for further analysis and storage. Thus, the health monitoring device provided in this embodiment integrates the bioelectrical measurement module 201, the blood oxygen and heart rate measurement module 202, and the body temperature measurement module 203 into the data acquisition unit 20. Users can obtain bioelectrical data, heart rate data, blood oxygen data, and body temperature data with a single measurement. The overall structure is simple, and the detection efficiency is high. In addition, the health data is uploaded to a cloud server for storage and subsequent analysis and processing.

[0059] As an optional implementation, based on any of the above embodiments, the health monitoring device provided in this application has a data acquisition device 20 that is a data acquisition handle, and at least one data acquisition handle is configured to allow the subject to hold it. The data acquisition handle is integrally set with the device body 10, or the data acquisition handle is detachably connected to the device body 10.

[0060] Specifically, refer to Figure 2 As shown in the figure, in this embodiment, the data acquisition device 20 is a data acquisition handle, and at least one data acquisition handle is configured. When data acquisition is required, the subject holds the data acquisition handle with his hand to collect data. The data acquisition handle can be integrated with the device body 10, or it can be detachably connected to the device body 10.

[0061] It should be noted that, Figure 2 The structural diagram of the health monitoring equipment in this document is an example provided to facilitate understanding of the solution and does not represent the actual production structural diagram of the health monitoring equipment.

[0062] Specifically, in this embodiment, taking the setting of a data acquisition grip and its integral connection with the device body 10 as an example, the various measurement modules in the data acquisition grip are connected to the control module 101 via wiring. This setup makes the testing more convenient; when undergoing health testing, the subject only needs to remove the data acquisition grip and hold it to perform subsequent testing, without needing to hold the device body 10, thus reducing hand weight and improving the user experience. More specifically, refer to... Figure 2 As shown, the device body 10 is provided with a placement groove 108, and a snap-fit ​​part is provided in the placement groove 108. The outer periphery of the collection handle is also provided with a matching snap-fit ​​part. The snap-fit ​​between the two snap-fit ​​parts ensures the fixation effect of the collection handle during storage or transportation.

[0063] Optionally, by providing a connector at the end of the connection line of the data acquisition grip and a connector on the device body, when data acquisition is required, the connector is plugged into the connector to establish communication between the bioelectric measurement module 201, blood oxygen and heart rate measurement module 202, and body temperature measurement module 203 inside the data acquisition grip and the control module 101. When storing the data acquisition grip, the connector is separated from the connector, and the data acquisition grip is snapped into the placement slot 108. This configuration enables the data acquisition grip to be detachably connected to the device body 10.

[0064] Optionally, refer to Figure 2 As shown, a groove matching the shape of the hand is provided on the outer periphery of the sampling handle. When the subject holds the sampling handle, the hand can be inserted into the groove, which makes it convenient for the subject to hold the sampling handle, conforms to ergonomics, and also has an anti-slip function.

[0065] Optionally, two data collection handles can be provided, each equipped with a bioelectric measurement module 201, a blood oxygen and heart rate measurement module 202, and a body temperature measurement module 203. This allows the subject to hold one data collection handle in each hand during a health check, thereby improving the accuracy of the data collection. Furthermore, if one data collection handle is damaged, data collection can still be performed using the other handle.

[0066] Optionally, the sampling handle can also be integrally formed with the device body 10. That is, the device body 10 and the sampling handle are manufactured by integral casting so that the device body 10 and the sampling handle become a whole. This design makes the overall structure of the health detection device simple, with fewer external parts and a higher aesthetic appeal.

[0067] Specifically, in the health monitoring device provided in this embodiment, the data collector 20 is a collection handle, and at least one collection handle is configured to allow the subject to hold it. This configuration allows the subject to collect health data simply by holding the device, completing the health data collection process with a single grip. The detection method is simple and highly efficient. Furthermore, the collection handle can be integrated with the device body 10, or detachably connected to the device body 10, to meet the usage needs of health monitoring devices in various scenarios.

[0068] refer to Figure 2 As shown in the figure, as an optional implementation, based on any of the above embodiments, the health detection device provided in this application includes a bioelectric measurement module 201 comprising a measuring electrode 2011. The measuring electrode 2011 is disposed on the outer periphery of the collection handle. When the subject holds the collection handle, the measuring electrode 2011 is in contact with at least one first fingertip of the subject. The measuring electrode 2011 is used to measure bioelectric data.

[0069] Specifically, in this embodiment, the bioelectric measurement module 201 includes a measuring electrode 2011, which is disposed on the outer periphery of the acquisition handle. When the subject holds the acquisition handle, the measuring electrode 2011 can fit against at least one of the subject's first fingertips, thereby measuring the subject's bioelectric data.

[0070] It should be noted that the measuring electrode 2011 not only stimulates the organism to generate electrical signals, but also collects and conducts these signals. When the fingertip of the test subject is in contact with the measuring electrode 2011, the measuring electrode 2011 can capture the weak bioelectrical signals generated by the finger, thereby completing the conduction of the bioelectrical signals. Bioelectrical data is commonly used to assess the neuromuscular activity state of the test subject, and is of great significance for understanding the overall health status of the test subject. Specifically, in this embodiment, the measuring electrode 2011 is a biomedical electrode. Biomedical electrodes generally require good conductivity and are usually manufactured by coating a layer of easily conductive metal onto the surface of a metal material, silicon-based material, or polymer material.

[0071] Optionally, in this embodiment, the thumb pad is used as the first finger pad, that is, a measuring electrode 2011 is set at the position corresponding to the thumb pad of the subject. Of course, multiple measuring electrode pads 2011 can also be set to correspond to multiple finger pads of the subject to obtain bioelectrical data of different finger pads. Then, the control module receives multiple bioelectrical data and calculates the average value of the multiple bioelectrical data through the arithmetic unit in the control module to obtain the final bioelectrical data. Compared with measuring the bioelectrical data of only one finger pad, the data deviation is smaller, thereby improving the accuracy of bioelectrical data measurement.

[0072] Optionally, the shape of the measuring electrode 2011 can be selected in various ways, such as a square electrode, a circular electrode, or a crescent-shaped electrode. In this embodiment, the specific shape of the measuring electrode 2011 is not limited, and can be flexibly adjusted according to the actual situation.

[0073] Alternatively, there are multiple options for fixing the measuring electrode 2011 to the data acquisition handle, such as bonding or snap-fitting. In this embodiment, the specific fixing method of the measuring electrode 2011 is not limited.

[0074] It should also be noted that, in addition to the aforementioned measuring electrode pads 2011, the bioelectric measurement module 201 also includes functional components such as a signal amplifier, a filter, and an analog-to-digital converter to cooperate with the measuring electrode pads 2011 in acquiring bioelectrical data. Specifically, the measuring electrode pads 2011 acquire the electrical signal from the subject's fingertip, the signal amplitude is amplified by the signal amplifier, noise interference is removed by the filter, and finally the analog signal is converted into a digital signal by the analog-to-digital converter for subsequent processing and analysis.

[0075] refer to Figure 2As shown in the figure, as an optional implementation, based on any of the above embodiments, the health monitoring device provided in this application includes a blood oxygen and heart rate measurement module 202, which includes a photoelectric sensor 2021. The photoelectric sensor 2021 is disposed on the outer periphery of the collection handle. When the subject holds the collection handle, the photoelectric sensor 2021 is in contact with the subject's second fingertip. The photoelectric sensor 2021 is used to measure blood oxygen data and heart rate data.

[0076] Specifically, in this embodiment, the element used to measure blood oxygen data and heart rate data in the blood oxygen and heart rate measurement module 202 is a photoelectric sensor 2021, and the photoelectric sensor 2021 is disposed on the outer periphery of the acquisition handle. When the subject holds the acquisition handle to collect data, the subject's second fingertip is in contact with the photoelectric sensor 2021 to measure blood oxygen data and heart rate data.

[0077] It should be noted that the photoelectric sensor 2021 measures heart rate by detecting changes in light absorption due to blood flow, thereby obtaining heart rate data. Specifically, LED light is shone on the skin, and the photoelectric sensor 2021 receives the reflected or transmitted light signals. Since arterial blood flow causes changes in light absorption intensity, these changes occur periodically with the heartbeat, allowing the heart rate to be calculated by analyzing these variations. The photoelectric sensor 2021 measures blood oxygen by utilizing the different absorption capacities of oxygenated hemoglobin and hemoglobin for different wavelengths of light. Typically, 660nm red light and 940nm infrared light are used as light sources. By measuring the light transmission intensity after these lights pass through human tissue, blood oxygen concentration and blood oxygen saturation are calculated. Oxygenated hemoglobin absorbs infrared light more readily, while hemoglobin absorbs red light more readily. By comparing the absorption difference between the two wavelengths, blood oxygen saturation can be calculated.

[0078] Optionally, in this embodiment, the fingertip of the subject's index finger is used as an example, i.e., a photoelectric sensor 2021 is set at the position corresponding to the fingertip of the subject's index finger. Of course, multiple photoelectric sensors 2021 can also be set to correspond to multiple fingertips of the subject to obtain blood oxygen data and heart rate data of different fingertips. Then, the control module receives multiple blood oxygen data and multiple heart rate data and calculates the average value of the multiple blood oxygen data and multiple heart rate data through the arithmetic unit in the control module to obtain the final blood oxygen data and heart rate data. Compared with measuring the data of only one fingertip, the data deviation is smaller, thereby improving the accuracy of blood oxygen data and heart rate data measurement.

[0079] Alternatively, in other embodiments, the photoelectric sensor can be positioned corresponding to the location of the subject's palm to achieve the same purpose of measuring blood oxygen and heart rate data. Of course, when positioning the photoelectric sensor to correspond to the subject's palm, it is necessary to consider whether other measuring elements are located there to avoid overlapping installation positions of different measuring elements.

[0080] It should also be noted that, in addition to the aforementioned photoelectric sensor 2021, the blood oxygen and heart rate measurement module 202 includes, but is not limited to, components such as an analog-to-digital converter, a data processor, and electronic circuits, to cooperate with the photoelectric sensor 2021 in acquiring blood oxygen and heart rate data. Specifically, the red and infrared light emitted by the photoelectric sensor 2021 penetrates the skin and is absorbed by hemoglobin. The degree of absorption varies depending on the oxygenation state of hemoglobin. Subsequently, the analog-to-digital converter converts the light signal received by the photoelectric sensor 2021 into a digital signal for further processing. Finally, the data processor analyzes these digital signals and calculates blood oxygen and heart rate data using algorithms.

[0081] refer to Figure 2 As shown in the figure, as an optional implementation, based on any of the above embodiments, the health detection device provided in this application includes a body temperature measurement module 203 comprising an infrared sensor 2031. The infrared sensor 2031 is disposed on the outer periphery of the collection handle. When the subject holds the collection handle, the infrared sensor 2031 corresponds to the subject's palm. The infrared sensor 2031 is used to measure body temperature data.

[0082] Specifically, in this embodiment, the element used to measure body temperature data in the body temperature measurement module 203 is an infrared sensor 2031, and the infrared sensor 2031 is disposed on the outer periphery of the collection handle. When the subject holds the collection handle to collect data, the infrared sensor 2031 corresponds to the position of the subject's palm to collect the subject's body temperature data.

[0083] It should be noted that the infrared sensor 2031 measures body temperature based on the thermal effect of infrared radiation. When the subject holds the sensor handle, their palm emits infrared radiation. The infrared sensor 2031, located on the outer periphery of the handle, receives this radiation. Internal components convert the received infrared radiation into an electrical signal, the magnitude of which is proportional to the temperature of the subject's palm. Furthermore, when measuring body temperature at the subject's palm, the subject's palm can be placed against the sensor or not.

[0084] It should also be noted that, in addition to the aforementioned infrared sensor 2031, the body temperature measurement module 203 includes, but is not limited to, a signal amplifier, an analog-to-digital converter, and a digital signal processor, to cooperate with the infrared sensor 2031 in completing the body temperature data acquisition. Specifically, the infrared signal captured by the infrared sensor 2031 is first amplified by a signal amplifier, and then converted into a digital signal by an analog-to-digital converter, so that the digital signal processor can perform further analysis and processing. The digital signal processor calculates the converted digital signal according to a preset algorithm to obtain the body temperature data.

[0085] Alternatively, in other embodiments, the infrared sensor can be positioned at the fingertip of the subject to achieve the same purpose of measuring the subject's body temperature.

[0086] As an optional implementation, based on any of the above embodiments, the health monitoring device provided in this application has a communication module 102 that is any one of a 4G communication module, a 5G communication module, a WiFi communication module, or a Bluetooth communication module.

[0087] Specifically, in this embodiment, the communication module 102 can be any one of a 4G communication module, a 5G communication module, a WiFi communication module, or a Bluetooth communication module. This ensures that the health monitoring device can transmit health data efficiently and stably. More specifically, the specific configuration type of the communication module 102 is selected according to actual production needs, and this embodiment does not limit this.

[0088] As an optional implementation, based on any of the above embodiments, the health monitoring device provided in this application uses a serial port screen for the display module 103. Specifically, the serial port screen, also known as a serial communication display screen or intelligent serial port display screen, is a liquid crystal display module 103 that integrates a driving circuit, control program, and display interface. It can communicate with a microcontroller or other devices via a serial port to receive instructions and data, and display them on the screen. In this embodiment, the health monitoring device uses a serial port screen as the display module 103, which allows the device to have a simpler and more intuitive user interface. The user can clearly see various data and information of the health monitoring device through the serial port screen, thus making health management and monitoring more convenient.

[0089] refer to Figure 3 As shown in the figure, as an optional implementation, based on any of the above embodiments, the health monitoring device provided in this application further includes: a battery module 104, which is disposed on the device body 10 and provides power to the control module 101, communication module 102, display module 103, bioelectric measurement module 201, blood oxygen and heart rate measurement module 202, and body temperature measurement module 203.

[0090] Specifically, in this embodiment, the battery module 104 supplies power to the control module 101, communication module 102, display module 103, bioelectric measurement module 201, blood oxygen and heart rate measurement module 202, and body temperature measurement module 203 in the health monitoring device. This configuration makes the health monitoring device more portable and suitable for various applications, such as homes, medical institutions, and sports and fitness venues, allowing users to collect health data anytime, anywhere. Furthermore, the battery module 104 is located inside the device body 10, ensuring the device's overall aesthetics and portability.

[0091] Optionally, the battery module 104 uses a high-energy-density lithium battery, which has advantages such as small size, large capacity and long standby time, ensuring that the device can be used continuously for a long time after a single charge, meeting the user's daily health monitoring needs.

[0092] Optionally, the health monitoring device in this embodiment supports a convenient charging method; users only need to connect the device to a charger to charge it. Meanwhile, the battery module 104 also has safety functions such as overcharge protection and over-discharge protection to ensure the safety and reliability of the charging process.

[0093] refer to Figure 2 and Figure 3 As shown in the figure, as an optional implementation, based on any of the above embodiments, the health detection device provided in this application further includes: a spring pin interface 105, which is disposed on the device body 10 and is communicatively connected to the control module 101. The spring pin interface 105 is used to connect the health detection device to other external devices.

[0094] Specifically, in this embodiment, a spring-loaded pin interface 105 is also provided for connecting to other external devices. The addition of the spring-loaded pin interface 105 gives the device a high degree of scalability. Users can connect different external devices through this interface according to their actual needs, enabling diversified data processing and utilization.

[0095] Specifically, the spring pin interface 105 adopts a pin-type design, which ensures a stable connection and easy insertion and removal. Users can easily connect the health monitoring device to external devices without complicated operations or settings.

[0096] It should be noted that the spring pin interface 105 is communicatively connected to the control module 101, ensuring that the health monitoring device can exchange data and communicate with external devices through this spring pin interface 105. Furthermore, the spring pin interface 105 supports high-speed data transmission, ensuring fast and accurate transmission of health data between the health monitoring device and external devices.

[0097] Optionally, the spring pin interface 105 can be located on the side or bottom of the device body 10 for easy connection to external devices.

[0098] External devices can include computers, smartphones, professional data analyzers, or other health monitoring devices.

[0099] refer to Figure 3 As shown in the figure, as an optional implementation, based on any of the above embodiments, the health monitoring device provided in this application further includes: a broadcast module 106, which is disposed in the device body 10 and is communicatively connected to the control module 101.

[0100] Specifically, in this embodiment, the health monitoring device also provides a broadcast module 106, which is installed inside the device body 10 and communicatively connected to the control module 101. With this configuration, the broadcast module 106 can perform corresponding voice broadcasts, allowing the test subject to receive relevant information prompts through hearing, thus enhancing the user experience.

[0101] Specifically, the main function of the broadcast module 106 is to receive instructions from the control module 101 and broadcast the collected health data or operation prompts to the user in voice form. Furthermore, the broadcast content includes, but is not limited to, the measurement results of physiological parameters such as heart rate, blood oxygen saturation, and body temperature, as well as prompts such as device status (power on, power off).

[0102] Optionally, the broadcast module 106 includes, but is not limited to, the following components: a speech synthesis chip capable of receiving instructions and data from the control module 101 and converting them into audible speech output; an audio amplifier amplifying the weak speech signal generated by the speech synthesis chip to a level sufficient to drive a speaker to produce sound; a speaker converting the amplified speech signal into sound waves so that the user can hear the speech broadcast content; and an interface circuit for communicating with the control module 101 to receive instructions and data, etc.

[0103] refer to Figure 3 As shown in the figure, as an optional implementation, based on any of the above embodiments, the health detection device provided in this application further includes: a voice recognition module 109, which is disposed in the device body 10 and is communicatively connected to the control module 101.

[0104] Specifically, in this embodiment, the health monitoring device is equipped with a voice recognition module 109. The voice recognition module is installed inside the device body 10 and is communicatively connected to the control module 101, so that the health monitoring device can receive the user's voice commands through the voice recognition module 109, thereby further improving the interactive experience between the user and the health monitoring device.

[0105] Specifically, the core function of the voice recognition module 109 is to capture and analyze the user's voice input, converting it into instructions or data that can be understood by the control module 101. This allows the user to control various functions of the health monitoring device via voice, such as starting measurements, querying health data, and adjusting settings.

[0106] Optionally, the voice recognition module 109 includes, but is not limited to, the following components: a microphone for capturing the user's voice input; a voice preprocessing circuit for filtering, noise reduction, and other preprocessing of the captured voice signal to improve recognition accuracy; a voice recognition processor for analyzing the preprocessed voice signal to identify the user's command content; and an interface circuit responsible for communicating with the control module 101 to transmit recognition results and receive control commands. Through the coordinated operation of the above components, the voice recognition module 109 can accurately recognize and respond to the user's voice commands, providing the user with a more intelligent health monitoring experience.

[0107] refer to Figure 3 As shown in the figure, as an optional implementation, based on any of the above embodiments, the health detection device provided in this application further includes: a heat dissipation module 107, which is disposed inside the device body 10, and is communicatively connected to the control module 101. The heat dissipation module 107 is used to dissipate heat from the device body 10.

[0108] Specifically, in this embodiment, the health monitoring device also provides a heat dissipation module 107, which is disposed inside the device body 10 and is used to dissipate heat from multiple components within the device body 10. This avoids performance degradation or malfunctions caused by overheating, ensuring the operational stability of the health monitoring device.

[0109] Optionally, the heat dissipation module 107 includes a cooling fan and a temperature detection unit. The temperature detection unit is used to detect the internal temperature of the device body 10 and transmit the temperature data to the control module 101 in real time. The control module 101 makes a real-time judgment on the temperature data. When the temperature data is greater than the preset temperature value, the control module 101 controls the cooling fan to start. The cooling fan is used to blow the heat of the device body 10 to the outside of the device body 10 to achieve cooling of the inside of the device body 10. The preset temperature value is a user-preset temperature threshold. The specific value of the preset temperature value can be flexibly set according to actual needs.

[0110] refer to Figure 4 As shown in the illustration, an embodiment of this application also provides a health monitoring system, including: a cloud server and any of the above-mentioned health monitoring devices, wherein the health monitoring devices are communicatively connected to the cloud server.

[0111] Specifically, the health monitoring system includes health monitoring equipment and a cloud server. The health monitoring equipment detects the user's health data and transmits this data to the cloud server via a communication module. This health data includes bioelectrical data, heart rate data, blood oxygen data, and body temperature data. The cloud server receives and stores the health data and performs subsequent analysis and processing. Thus, the system enables the storage and effective utilization of the user's health data.

[0112] Optionally, the cloud server includes a health report generation module and a sending module. The health report generation module generates a health report based on the acquired health data; the sending module sends the health report to the user's device. This allows users to clearly understand their health data and improves their health monitoring experience. Optionally, the user's device can be a mobile phone or a tablet.

[0113] Optionally, the cloud server can store a large amount of health data, and users can clearly understand the changes in their own health data by viewing historical health data.

[0114] Optionally, the cloud server can also provide users with personalized health management plans and suggestions, including but not limited to dietary advice, exercise plans, and mental health guidance, to help users improve their health and quality of life.

[0115] Other embodiments of the present application will readily occur to those skilled in the art upon consideration of the specification and practice of the utility models disclosed herein. The embodiments of this application are intended to cover any variations, uses, or adaptations of the embodiments of this application that follow the general principles of the embodiments of this application and include common knowledge or customary technical means in the art not disclosed in the embodiments of this application. The specification and embodiments are to be considered exemplary only, and the true scope and spirit of the embodiments of this application are indicated by the following claims.

[0116] It should be understood that the embodiments of this application are not limited to the precise structures described above and shown in the accompanying drawings, and various modifications and changes can be made without departing from their scope. The scope of the embodiments of this application is limited only by the appended claims.

Claims

1. A health monitoring device, characterized in that, include: The device body and the data acquisition unit, wherein the device body is equipped with a control module, a communication module and a display module; The data acquisition device is a data acquisition handle, and at least one data acquisition handle is configured. The data acquisition handle is configured to allow the subject to hold it with their hand. The data acquisition handle is integrally set with the device body, or the data acquisition handle is detachably connected to the device body. The data collection grip is equipped with a bioelectric measurement module, a blood oxygen and heart rate measurement module, and a body temperature measurement module. The bioelectric measurement module includes a measuring electrode pad, which is disposed on the outer periphery of the collection handle. When the subject holds the collection handle, the measuring electrode pad is in contact with at least one of the subject's first fingertips. The blood oxygen and heart rate measurement module includes a photoelectric sensor, which is disposed on the outer periphery of the acquisition handle. When the subject holds the acquisition handle, the photoelectric sensor is in contact with the subject's second fingertip. The body temperature measurement module includes an infrared sensor, which is located on the outer periphery of the collection handle. When the subject holds the collection handle, the infrared sensor corresponds to the subject's palm. The communication module, the display module, the bioelectric measurement module, the blood oxygen and heart rate measurement module, and the body temperature measurement module are all communicatively connected to the control module; The control module is used to control the bioelectric measurement module to collect bioelectric data, the blood oxygen and heart rate measurement module to collect heart rate data and blood oxygen data, and the body temperature measurement module to collect body temperature data. The control module is also used to control the display module to display the bioelectrical data, the heart rate data, the blood oxygen data, and the body temperature data; The control module is also used to control the communication module to send the bioelectric data, the heart rate data, the blood oxygen data, and the body temperature data to the cloud server.

2. The health monitoring device according to claim 1, characterized in that, The communication module is any one of a 4G communication module, a 5G communication module, a WiFi communication module, or a Bluetooth communication module.

3. The health monitoring device according to any one of claims 1-2, characterized in that, Also includes: A spring-loaded pin interface is located on the device body and is communicatively connected to the control module. The spring-loaded pin interface is used to connect the health monitoring device to other external devices.

4. The health monitoring device according to any one of claims 1-2, characterized in that, Also includes: A broadcast module is installed within the device body and is communicatively connected to the control module.

5. The health monitoring device according to any one of claims 1-2, characterized in that, Also includes: A voice recognition module is disposed within the device body and is communicatively connected to the control module.

6. A health monitoring system, characterized in that, include: The cloud server and the health monitoring device according to any one of claims 1-5, wherein the health monitoring device is communicatively connected to the cloud server.