Cardiopulmonary detector

By integrating electrocardiogram, spirometer and PLC controller in the cardiopulmonary detector, combined with the Internet of Things communication module and display screen, the problem of separate use of spirogram and heart rate detector is solved, and convenient portability and data transmission are achieved.

CN223196078UActive Publication Date: 2025-08-08NANJING SPORTS-MEDICINE INTEGRATED REHABILITATION IND RES INST CO LTD
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Patent Information

Application Number
CN202421470313.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-06-25
Publication Date
2025-08-08
Estimated Expiration
2034-06-25

AI Technical Summary

Technical Problem

The existing spirometry detector and heart rate detector are used separately, which makes it inconvenient to carry and cannot transmit data.

Method used

A cardiopulmonary detector is designed to set the electrocardiogram on the hand holding, combine the spirometer and PLC controller in the shell, and is equipped with a PWA Internet of Things communication module and display screen to achieve integrated detection of heart rate and lung capacity, and can display and transmit data in real time.

Benefits of technology

It realizes integrated detection of heart rate and lung capacity, improves portability convenience, and can display and transmit detection data to mobile terminals in real time.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model belongs to the technical field of medical equipment manufacturing, and particularly relates to a cardiopulmonary detector which comprises a shell, a holding hand and a display screen are arranged on the shell, an electrocardio lead contact piece is arranged on the holding hand, a PLC, a spirometer and a PWA internet-of-things communication module are arranged in the shell, the air inlet end and the air outlet end of the spirometer are both arranged outside the shell, and the display screen is arranged on the display screen. The spirometer and the electrocardio lead contact are both in signal connection with the PLC, and the PLC is in signal connection with the PWA Internet of Things communication module and the display screen; the problems that an existing vital capacity detector and an existing heart rate detector are separated, consequently, carrying is inconvenient, and data transmission cannot be carried out are solved.
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Description

Technical Field

[0001] The present application belongs to the field of medical equipment manufacturing technology, specifically a cardiopulmonary detector. Background Art

[0002] As the "Healthy China 2030" initiative enters its eighth year, health has become a growing focus. While people generally focus on traditional physiological data such as blood pressure, blood sugar, and blood lipids, when these data become problematic, irreversible health issues have often already occurred. Moving health thresholds forward and preventing illness before it occurs, cardiopulmonary function is crucial. Existing spirometers and heart rate monitors are separate devices, unable to perform simultaneous measurements, and are bulky, making them inconvenient to carry. Furthermore, existing spirometers and heart rate monitors display measured data in real time and cannot transmit data. Utility Model Content

[0003] The purpose of this application is to address the shortcomings of the existing technology. By setting an ECG conductive link on the handle of the shell and cooperating with a spirometer and a PLC controller located inside the shell, a cardiopulmonary monitor is designed to integrate heart rate detection and spirometry detection. At the same time, the PWA Internet of Things communication module and display screen can display the detected data in a timely manner and send it to the required equipment, solving the problem that the existing spirometry and heart rate monitor are separate, which makes it inconvenient to carry and cannot perform data transmission.

[0004] In order to achieve the above purpose, the technical solution of the utility model is:

[0005] A cardiopulmonary monitor includes a housing, wherein the housing is provided with a grip and a display screen, the grip is provided with electrocardiogram (ECG) lead contacts, a programmable logic controller (PLC) controller, a spirometer, and a PWA (Personal Internet of Things) communication module are provided within the housing, the air inlet and outlet of the spirometer are both outside the housing, the spirometer and the ECG lead contacts are both signal-connected to the PLC controller, and the PLC controller signal-connected to the PWA (Personal Internet of Things) communication module and the display screen.

[0006] Preferably, the PWA Internet of Things communication module includes one or a combination of telecommunication communication 2G module, telecommunication communication 3G module, telecommunication communication 4G module, telecommunication communication 5G module, mobile communication 2G module, mobile communication 3G module, mobile communication 4G module, mobile communication 5G module, connectivity communication 2G module, connectivity communication 3G module, connectivity communication 4G module, and connectivity communication 5G module.

[0007] Preferably, a battery is provided in the housing, and the battery is electrically connected to the display screen, PWA Internet of Things communication module, spirometer, and PLC controller.

[0008] Preferably, a charging port is provided on the shell, and the charging port signal is connected to the charging end of the battery.

[0009] Preferably, the model of the PWA Internet of Things communication module is SIM7070G.

[0010] Preferably, there are two holding hands, which are located on opposite sides of the shell. Both holding hands are U-shaped, and the open end of the U-shape is fixedly connected to the shell. The two U-shapes are located in the same plane.

[0011] Preferably, the shell is a rectangular parallelepiped, the air inlet end of the spirometer is located on the rear side wall of the shell, the two holding hands are respectively located on the left and right walls of the shell, and the display screen is located on the upper surface of the shell.

[0012] Compared with the prior art, the present invention has the following advantages:

[0013] 1. This application adopts the method of setting an ECG conductive link on the handle of the shell in conjunction with a spirometer and a PLC controller located inside the shell to design a cardiopulmonary monitor that integrates heart rate detection and spirometry detection. At the same time, the PWA Internet of Things communication module and display screen can display the detected data in a timely manner and send it to the required device, solving the problem that the existing spirometry and heart rate monitor are separate, resulting in inconvenience in carrying and inability to transmit data.

[0014] 2. This application sets up a PWA Internet of Things communication module so that the detected data can be transmitted to the mobile terminal.

[0015] 3. The setting of two gripping hands in this application allows the user to grasp the device more steadily when in use. At the same time, both gripping hands are provided with ECG lead contacts, which allows the user's hands to have more complete contact with the ECG lead contacts and makes the test results more accurate. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 This is a schematic diagram of the structure of this application;

[0017] Figure 2 for Figure 1 Schematic diagram of the structure at the top;

[0018] Figure 3 A schematic diagram of the interior of this application.

[0019] Among them, 1. Shell; 2. Grip; 3. Display screen; 4. ECG lead contacts; 5. PLC controller; 6. Spirometer; 7. Charging port. DETAILED DESCRIPTION

[0020] like Figure 1-3 As shown, a cardiopulmonary monitor includes a shell 1, a holding hand 2 and a display screen 3 are provided on the shell 1, an electrocardiogram lead contact piece 4 is provided on the holding hand 2, a PLC controller 5, a spirometer 6, and a PWA Internet of Things communication module are provided in the shell 1, the air inlet and air outlet ends of the spirometer 6 are both outside the shell 1, the spirometer 6 and the electrocardiogram lead contact piece 4 are both connected to the PLC controller 5 for signals, and the PLC controller 5 is connected to the PWA Internet of Things communication module and the display screen 3 for signals.

[0021] In this embodiment, when in use, the user grasps the gripping hand 2 with both hands. At this point, the user's hands contact the ECG lead pads 4, which transmit signals to the PLC controller 5. The PLC controller then calculates the user's heart rate based on the signals transmitted by the ECG lead pads 4. Simultaneously, the user blows air into the air inlet of the spirometer 6 through their mouth to measure vital capacity. The spirometer 6 also transmits signals to the PLC controller 5, which transmits vital capacity information and heart rate data to the display screen 3 for the user to view. The PWA IoT communication module also allows the user to connect the cardiopulmonary monitor to a mobile terminal (such as a mobile phone) for viewing.

[0022] As a preferred embodiment, the PWA IoT communication module includes one or a combination of a telecommunications 2G module, a telecommunications 3G module, a telecommunications 4G module, a telecommunications 5G module, a mobile communications 2G module, a mobile communications 3G module, a mobile communications 4G module, a mobile communications 5G module, a connectivity communications 2G module, a connectivity communications 3G module, a connectivity communications 4G module, and a connectivity communications 5G module. This configuration allows the cardiopulmonary monitor to connect to mobile terminals using different signals for data transmission.

[0023] As a preferred embodiment, a battery 8 is provided in the housing 1 and is electrically connected to the display screen 3, the PWA IoT communication module, the spirometer 6, and the PLC controller 5. The battery 8 provides power to the display screen 3, the PWA IoT communication module, the spirometer 6, and the PLC controller 5. The battery 8 can be a rechargeable lithium battery.

[0024] As a preferred embodiment, a charging port 7 is provided on the housing 1 , and the charging port 7 is connected to the charging end of the battery 8 by a signal.

[0025] As a preferred method, the model of the PWA Internet of Things communication module is SIM7070G.

[0026] As a preferred embodiment, two gripping hands 2 are provided, and the two gripping hands 2 are located on opposite sides of the housing 1. Both gripping hands 2 are U-shaped, and the open ends of the U-shaped gripping hands are fixedly connected to the housing 1. The two U-shaped gripping hands 2 are located in the same plane. This arrangement of two gripping hands 2 allows the user to hold the grip more securely when in use.

[0027] As a preferred embodiment, the shell 1 is a rectangular parallelepiped, the air inlet end of the spirometer 6 is located on the rear wall of the shell 1, the two holding hands 2 are respectively located on the left and right walls of the shell 1, the display screen 3 is located on the upper surface of the shell, and both holding hands 2 are provided with ECG conductive contacts 4.

Claims

1. A cardiopulmonary detector, characterized in that: The invention comprises a housing (1), wherein the housing (1) is provided with a holding hand (2) and a display screen (3), the holding hand (2) is provided with an electrocardiogram lead contact sheet (4), the housing (1) is provided with a PLC controller (5), a spirometer (6), and a PWA Internet of Things communication module, wherein the air inlet and air outlet of the spirometer (6) are both outside the housing (1), the spirometer (6) and the electrocardiogram lead contact sheet (4) are both signal-connected to the PLC controller (5), and the PLC controller (5) is signal-connected to the PWA Internet of Things communication module and the display screen (3).

2. A cardiopulmonary detector according to claim 1, characterized in that: The PWA IoT communication module includes one or a combination of telecommunication communication 2G module, telecommunication communication 3G module, telecommunication communication 4G module, telecommunication communication 5G module, mobile communication 2G module, mobile communication 3G module, mobile communication 4G module, mobile communication 5G module, connectivity communication 2G module, connectivity communication 3G module, connectivity communication 4G module, and connectivity communication 5G module.

3. A cardiopulmonary detector according to claim 1, characterized in that: A battery (8) is provided in the housing (1), and the battery (8) is electrically connected to the display screen (3), the PWA Internet of Things communication module, the spirometer (6), and the PLC controller (5).

4. A cardiopulmonary detector according to claim 3, characterized in that: The housing (1) is provided with a charging port (7), and the charging port (7) is signal-connected to the charging end of the battery (8).

5. A cardiopulmonary detector according to claim 1, characterized in that: The model of the PWA IoT communication module is SIM7070G.

6. A cardiopulmonary detector according to claim 1, characterized in that: There are two holding hands (2), which are located on opposite sides of the shell (1). Both holding hands (2) are U-shaped, and the open ends of the U-shaped parts are fixedly connected to the shell (1). The two U-shaped parts are located in the same plane.

7. A cardiopulmonary detector according to claim 6, characterized in that: The housing (1) is a rectangular parallelepiped, the air inlet end of the spirometer (6) is located on the rear side wall of the housing (1), the two holding hands (2) are respectively located on the left side wall and the right side wall of the housing (1), and the display screen (3) is located on the upper surface of the housing.