An intelligent health data service system
By combining multi-modal health data collection units with cloud servers, the problem of incomplete and inaccurate data in existing systems has been solved, enabling comprehensive and accurate health data collection and personalized analysis reports to meet users' health management needs.
Patent Information
- Application Number
- CN202520833988.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-29
- Publication Date
- 2026-08-25
- Estimated Expiration
- 2035-04-29
AI Technical Summary
The existing health data intelligent service systems collect health data that is neither comprehensive nor accurate enough, especially lacking consideration for age and gender differences.
It employs multiple modular health data acquisition units, including modules for detecting arterial stiffness, blood pressure, pulse, height, weight, and body composition index. Combined with cloud servers and controllers, it performs data analysis and utilizes artificial intelligence to generate personalized analysis reports.
It enables comprehensive collection and accurate analysis of health data, providing personalized health management solutions to meet users' daily health management needs.
Smart Images

Figure CN224671502U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of detection, specifically to a health data intelligent service system. Background Technology
[0002] With the improvement of living standards, personal health has become a matter of great concern to the public. People's concept has shifted from "treatment-oriented" to "prevention-oriented", and therefore people's demand for personal health management is constantly increasing.
[0003] Traditional health management methods involve going to hospitals for physical examinations. However, due to limited equipment and the number of doctors, patients' needs are prioritized, making it difficult to meet people's daily health management needs.
[0004] In recent years, with the rapid development of Internet technology and the widespread application of smart devices such as smartphones, intelligent health data service systems based on artificial intelligence, the Internet of Things, and big data have gradually emerged. These intelligent health data service systems can be deployed in communities, airports, shopping malls, and other places to collect and analyze the health data of individuals or groups. The process is simple and easy to operate.
[0005] However, existing health data intelligent service systems mainly collect three types of data: heart rate, blood oxygen, and blood pressure. However, the range of indicators for each index varies slightly depending on age and gender. And existing systems generally collect all data through only one sensor, so the collected data is sometimes inaccurate.
[0006] Therefore, existing intelligent health data service systems suffer from problems such as insufficient comprehensiveness and inaccuracy in collecting health data. Utility Model Content
[0007] The technical problem to be solved by this utility model is to overcome the shortcomings of the prior art and provide a health data intelligent service system that collects more comprehensive and accurate health data.
[0008] To solve the above-mentioned technical problems, the present invention provides a health data intelligent service system comprising:
[0009] The health data collection unit is used to collect user data; user data includes information data and health data, and information data includes age and gender.
[0010] The controller is used to control the operation of the health data acquisition unit and the display unit and to send the user data collected by the health data acquisition unit to the cloud server;
[0011] The cloud server is used to store and compare user data sent by the controller to obtain analysis reports and then send the analysis reports to the display unit.
[0012] The display unit is used to interact with the user and display user data collected by the health data collection unit and analysis reports sent by the cloud server.
[0013] The health data acquisition unit includes an arterial stiffness index module for collecting arterial stiffness index, blood pressure, and pulse; a height detection module for collecting user height; and a weight detection module for collecting user weight.
[0014] As a further improvement of this utility model: the arterial stiffness index module is an arterial stiffness index detector whose height can be adjusted.
[0015] As a further improvement of this utility model, the height detection module is an ultrasonic sensor module.
[0016] As a further improvement of this utility model: the weight detection module is a weight sensor.
[0017] As a further improvement of this utility model, the health data acquisition unit includes a body composition index detection module for detecting the user's body composition index.
[0018] Preferably, the body composition index detection module is a biomicrocurrent sensor integrated with a handle.
[0019] As a further improvement of this utility model, the display unit is a touch screen.
[0020] The beneficial effects of this utility model are as follows: The health data collected by the intelligent health data service system provided by this utility model is more comprehensive and more accurate.
[0021] This system collects users' age, gender, weight, height, and arterial stiffness index. When analyzing the collected health data, it makes more detailed judgments based on the user's age, gender, weight, and height, resulting in comprehensive data collection. Furthermore, all data is collected through different modules, leading to more accurate results. The key biochemical indicator, arterial stiffness index, also contributes to more accurate analysis reports. This allows users to enjoy simple, convenient, and sustainable intelligent health management products and services that meet their daily health management needs. Attached Figure Description
[0022] Figure 1 This is a schematic diagram of the principle of this utility model;
[0023] Figure 2 This is a schematic diagram of the overall structure of the C-shaped mounting bracket in this utility model;
[0024] Figure 3This is a schematic diagram of the overall structure of the integrated handle for the biological microcurrent sensor in this utility model;
[0025] The names of the components marked in the above figures are: 1. C-shaped mounting bracket; 2. Bio-microcurrent sensor integrated handle. Detailed Implementation
[0026] The specific embodiments of this utility model will be further described in detail below with reference to the accompanying drawings.
[0027] In this utility model, the directional terms such as "up," "down," "left," "right," "front," "back," "top," and "bottom" are all used in conjunction with... Figure 2 The direction defined by the central cross-shaped directional marker is the reference. All directional terms in this utility model are described based on this definition and do not change the direction they represent regardless of the angle of the diagram.
[0028] like Figure 1 , Figure 2 As shown, the intelligent health data service system provided by this utility model includes:
[0029] The health data collection unit is used to collect user data; user data includes information data and health data. Information data includes age and gender, and health data includes arterial stiffness index, blood pressure, pulse, height, weight, and body fat percentage.
[0030] The controller is used to control the operation of the health data acquisition unit and send the user data collected by the unit to the cloud server. The controller is embedded inside the vertical end of the C-shaped mounting bracket 1. Also known as the embedded system operation module or core module, the embedded design enables the system to operate more safely, efficiently, and accurately. The controller includes a long-distance transmission module with 5G communication capabilities and a GPS positioning module, enabling real-time wireless positioning while maintaining wireless communication with the cloud server to upload or download data. It can control the operation of each module, lifting drive component, and display unit within the health data acquisition unit, and also performs daily self-checks on the working status of the health data acquisition unit and display unit.
[0031] The cloud server is used to store, aggregate, and compare user data sent by the controller to generate analysis reports, which are then sent to the display unit and the mini-program. The cloud server, combined with artificial intelligence, can achieve higher work efficiency and provide a better user experience. The mini-program allows users to conveniently and efficiently receive analysis reports and other content through smart terminals such as mobile phones. Users can further communicate with the service system through the mini-program, thus forming a closed loop for consumer services.
[0032] The display unit is used to interact with the user and display user data collected by the health data collection unit and analysis reports sent by the cloud server.
[0033] C-shaped mounting bracket 1 consists of one vertical end and two horizontal ends. The back of the vertical end of the C-shaped mounting bracket 1 has upper and lower doors for easy installation and maintenance.
[0034] The C-shaped mounting bracket, lifting drive unit, health data acquisition unit, controller, and display unit together constitute the main body of the intelligent terminal device; the appearance and structure of the main body of the device adopt a humanized design that conforms to ergonomics.
[0035] The health data acquisition unit includes an arterial stiffness index module for collecting arterial stiffness index, blood pressure, and pulse; a height detection module for collecting user height; a weight detection module for collecting user weight; and a body composition index detection module for detecting user body composition index. Body composition index includes indicators such as body fat percentage, body water percentage, muscle mass, bone mineral mass, and basal metabolic rate.
[0036] The arterial stiffness index module is an arterial stiffness index detector with adjustable height. The C-shaped mounting bracket 1 contains a lifting drive mechanism for raising and lowering the bent arm support. This mechanism can be an electric cylinder, hydraulic cylinder, pneumatic cylinder, or linear screw module, and its height can be adjusted according to controller commands. A vertical sliding groove is provided on the back of the vertical end of the C-shaped mounting bracket 1 for the arm support to slide up and down. The end of the arm support away from the vertical sliding groove is located on the left side of the front of the vertical end of the C-shaped mounting bracket 1. The arterial stiffness index detector is fixedly mounted on the end of the arm support away from the vertical sliding groove. This allows the height of the arterial stiffness index detector to be adjusted according to the user's height, ensuring that the detector is positioned near the user's heart for measurement. During measurement, the user's arm is inserted into the arm sleeve of the arterial stiffness detector. The arm support is ergonomically designed for easy user operation, and internal grooves are provided to conceal communication wiring, improving the aesthetics and security of the smart terminal.
[0037] The height detection module is an ultrasonic sensor module. The ultrasonic sensor module is installed at the bottom of the upper horizontal end (also called the top cover) of the C-shaped mounting bracket 1. The vertical distance between the bottom of the ultrasonic sensor and the top of the weight sensor is the reference height. The ultrasonic sensor emits sound waves vertically towards the top of the subject's head. After the sound waves encounter the top of the head, they are reflected back to the ultrasonic sensor. The ultrasonic sensor records the time difference between emission and reception, calculates the vertical distance from the ultrasonic sensor to the top of the subject's head, and then subtracts the vertical distance from the ultrasonic sensor to the top of the subject's head from the reference height to obtain the subject's height.
[0038] The weight detection module is a weight sensor, which is fixedly installed on the top of the lower horizontal end of the C-shaped mounting bracket 1;
[0039] like Figure 3 As shown, the body composition index detection module is a bio-microcurrent sensor integrated handle 2, also known as a body fat detection handle or bio-microcurrent electrode handle. The bio-microcurrent sensor integrated handle 2 is mounted on the front center of the vertical end of the C-shaped mounting bracket 1 via a metal connector, located below the touch screen. This position is suitable for users of different heights and body types. Unlike traditional body fat scales that require users to remove their shoes and socks to obtain accurate data, users only need to extend both hands to hold the bio-microcurrent sensor integrated handle 2, making testing convenient and accurate. The bio-microcurrent sensor integrated handle 2 has four electrodes capable of collecting signals from bio-microcurrents passing through the human body.
[0040] The display unit is a 32-inch touchscreen display. The touchscreen display is mounted on the upper front side of the vertical end of the C-shaped mounting bracket 1. It is used to interact with the operating system and the user, allowing the user to input content and complete health checks independently, safely, and efficiently. It also serves as a multimedia playback device, capable of playing advertisements and other content, enabling multimedia operation. The scientific and rational use of the cloud server and display unit ensures smooth human-computer interaction, enhances the user experience, and provides users with an independent, safe, and efficient testing experience.
[0041] The working principle of this utility model is as follows:
[0042] (1) When the user taps the touch screen, the touch screen enters the working state;
[0043] (2) The user inputs age and gender, and the touch screen sends the user's information data to the controller;
[0044] (3) The user stands on the weight sensor according to the prompts of the guidance animation played on the touch screen. The ultrasonic sensor module measures the user's height and sends the user's height data to the controller.
[0045] (4) According to the prompts on the touch screen, the user stands on the weight sensor and holds the bio-microcurrent sensor integrated handle 2 with both hands to detect the body composition index. The weight sensor transmits the collected weight data to the body composition index detection module. The body composition index detection module calculates the body composition index data based on the received weight data and sends the weight data and body composition index data to the controller.
[0046] (5) The controller controls the lifting drive to raise or lower the arm support according to the user's height data, so that the arterial stiffness index detector is located at the user's heart position. The user puts his hand into the arterial stiffness index detector according to the prompts played on the touch screen. The arterial stiffness index detector sends the user's arterial stiffness index, blood pressure and pulse to the controller.
[0047] (6) The controller sends the user's information data and health data to the cloud server. The cloud server stores the uploaded data. The cloud server also stores the standard threshold ranges of health data for different ages and genders. After receiving the user data, the artificial intelligence compares the user's health data with the standard threshold ranges of each health data based on the same user's information data, outputs the comparison results, and obtains an analysis report. During the process, the cloud server will also create a health record for the user and output health suggestions based on the analysis report and common knowledge. The health suggestions are then summarized to form a health management plan.
[0048] (7) The cloud server sends the analysis report to both the controller and the mini-program. The controller sends the analysis report to the touch screen. Users can view the analysis report on the touch screen and the mini-program. However, the health records and health management plans are sent to the user through the mini-program. Users can check their health records anytime and anywhere and communicate with the health management service system continuously, long-term and unlimited times through the mini-program, thereby providing users with long-term, sustainable and closed-loop services throughout the entire process.
[0049] It should be noted that this utility model is not limited to the specific structure shown in the accompanying drawings in the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made to it.
Claims
1. A health data intelligent service system, characterized in that, include: The health data collection unit is used to collect user data; user data includes information data and health data, and information data includes age and gender. The controller is used to control the operation of the health data acquisition unit and the display unit and to send the user data collected by the health data acquisition unit to the cloud server; The cloud server is used to store and compare user data sent by the controller to obtain analysis reports and then send the analysis reports to the display unit. The display unit is used to interact with the user and display user data collected by the health data collection unit and analysis reports sent by the cloud server. The health data acquisition unit includes an arterial stiffness index module for collecting arterial stiffness index, blood pressure, and pulse; a height detection module for collecting user height; and a weight detection module for collecting user weight.
2. The intelligent health data service system according to claim 1, characterized in that, The arterial stiffness index module is an arterial stiffness index detector whose height can be adjusted.
3. The intelligent health data service system according to claim 1, characterized in that, The height detection module is an ultrasonic sensor module.
4. A health data intelligent service system according to any one of claims 1 to 3, characterized in that, The weight detection module is a weight sensor.
5. A health data intelligent service system according to any one of claims 1 to 3, characterized in that, The health data acquisition unit includes a body composition index detection module for detecting the user's body composition index.
6. A health data intelligent service system according to claim 5, characterized in that, The body composition index detection module is a biomicrocurrent sensor integrated with a handle (2).
7. A health data intelligent service system according to any one of claims 1 to 3, characterized in that, The display unit is a touch screen.