Electrocardio detection equipment
The portable ECG monitoring device, which integrates ECG signal acquisition, processing, and temperature control modules, solves the problem of the device being unable to work in low-temperature environments, and achieves normal operation and energy consumption optimization in low-temperature environments.
Patent Information
- Application Number
- CN202422928909.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-29
- Publication Date
- 2026-01-13
- Estimated Expiration
- 2034-11-29
AI Technical Summary
Existing portable ECG monitoring devices cannot function properly in low-temperature environments and may even be damaged, making it impossible to meet the needs of on-site testing.
An electrocardiogram (ECG) detection device was designed, which integrates an ECG signal acquisition module, a main control processing module, a temperature control module, and a power supply module. Inside the housing, a temperature control module is equipped to provide heat to the ECG signal acquisition module in low-temperature environments to prevent damage, and to stop providing heat in high-temperature environments to reduce energy consumption.
It enables ECG monitoring equipment to operate normally in low-temperature environments, expands the applicable scenarios, reduces energy consumption, and is suitable for ECG monitoring needs in both fixed and flexible scenarios.
Smart Images

Figure CN223787632U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of electrocardiogram (ECG) detection, and in particular to an ECG detection device. Background Technology
[0002] With the improvement of people's living standards, cardiovascular diseases are becoming more and more common and affecting younger people. Electrocardiogram (ECG) signals are an important physiological indicator reflecting the health of the human heart, and ECG monitoring devices are widely used in various scenarios. Existing ECG monitoring devices are usually large and inconvenient to carry, leading to the development of portable ECG monitoring devices to meet the needs of out-of-home ECG testing. However, existing portable ECG monitoring devices typically lack low-temperature resistance, causing them to malfunction or even suffer irreversible damage in cold environments. Utility Model Content
[0003] Therefore, it is necessary to provide an electrocardiogram (ECG) detection device that can operate normally in low-temperature environments to address the aforementioned technical problems.
[0004] An electrocardiogram (ECG) monitoring device includes: a housing and a cover connected to the housing; the housing is internally provided with an ECG signal acquisition module, a main control processing module, a temperature control module, and a power supply module; a display screen is embedded in the surface of the housing or the surface of the cover.
[0005] The power supply module provides power to the electrocardiogram signal acquisition module, the main control processing module, the temperature control module, and the display screen;
[0006] The electrocardiogram (ECG) signal acquisition module is connected to the main control processing module and is used to acquire ECG signals and transmit the ECG signals to the main control processing module.
[0007] The main control processing module is used to process, store, and / or transmit the electrocardiogram signal;
[0008] The temperature control module is used to heat the ECG signal acquisition module when the temperature of the ECG signal acquisition module is lower than the first preset temperature, and to stop heating the ECG signal acquisition module when the temperature is greater than or equal to the second preset temperature.
[0009] The display screen is connected to the main control processing module and is used to display the ECG signal detection and control interface, ECG signals and / or ECG signal processing results.
[0010] In one embodiment, the temperature control module includes a temperature control heating module and a temperature detection module; the temperature detection module is used to detect the temperature of the electrocardiogram (ECG) signal acquisition module; the temperature control heating module is used to provide heat to the ECG signal acquisition module when the temperature is lower than a first preset temperature, and to stop providing heat to the ECG signal acquisition module when the temperature is greater than or equal to a second preset temperature.
[0011] In one embodiment, the temperature control heating module and the temperature detection module are respectively disposed on opposite sides of the electrocardiogram signal acquisition module.
[0012] In one embodiment, the temperature control heating module includes a temperature control module and a heating module; the temperature control module controls the heating module based on the temperature feedback from the temperature detection module; the size of the heating module is greater than or equal to the size of the main control chip in the electrocardiogram signal acquisition module, and less than or equal to the size of the electrocardiogram signal acquisition module.
[0013] In one embodiment, the connection between the housing and the cover is a hinge, a pivot connection, a rotational connection, a rotating connection, or a flip-over connection.
[0014] In one embodiment, a display screen is embedded in the surface of the housing facing the cover, and a control panel is provided on the surface of the cover facing the housing; or, a display screen is embedded in the surface of the cover facing the housing, and a control panel is provided on the surface of the housing facing the cover; the control panel is connected to the main control processing module and is used for inputting commands; the control panel includes a keyboard and / or a touch screen.
[0015] In one embodiment, the control panel also includes function shortcut keys.
[0016] In one embodiment, the power supply module includes a power management module, an external power interface, and / or a battery; the battery is connected to the power management module and is used to supply power to the ECG signal acquisition module, the main control processing module, the temperature control module, and the display screen through the power management module; the power management module is connected to the external power interface and is used to connect to an external power source through the external power interface.
[0017] In one embodiment, the external power interface is located on the side wall of the housing; a battery compartment is provided on the inner side of the housing away from the cover for storing the battery.
[0018] In one embodiment, a storage compartment is provided on the inner side of the housing away from the cover for storing the test piece and / or a spare battery; if a battery compartment is provided on the inner side of the housing away from the cover, the storage compartment and the battery compartment are arranged side by side.
[0019] In one embodiment, a heat dissipation module is further included; the power supply module is also used to supply power to the heat dissipation module; the heat dissipation module includes a cooling fan for dissipating heat from the main control processing module; ventilation holes are provided on the side wall of the housing and / or the wall away from the cover corresponding to the cooling fan.
[0020] In one embodiment, the heat dissipation module further includes a heat conduction module, which is connected to the main control processing module in a manner capable of heat conduction, for conducting the heat generated by the main control processing module to the cooling fan for heat dissipation.
[0021] In one embodiment, a handle is provided on the side of the housing away from the connector between the housing and the cover; the side wall of the housing is provided with an electrocardiogram (ECG) signal acquisition interface connected to the ECG signal acquisition module, for connecting to the lead wire and acquiring ECG signals through the lead wire.
[0022] The aforementioned ECG detection device integrates an ECG signal acquisition module, a main control processing module for processing, storing, and / or transmitting ECG signals, a temperature control module, and a power supply module within a housing, housed in a cover connected to the housing. A display screen is also provided on the surface of the housing or cover, creating a portable ECG detection device suitable for both fixed and flexible ECG detection needs. Furthermore, by configuring the temperature control module to heat the ECG signal acquisition module when its temperature is below a first preset temperature and to stop heating when the temperature is above or equal to a second preset temperature, the device avoids malfunction or damage to the ECG signal acquisition module in low-temperature environments and reduces energy consumption, thereby further expanding the applicable scenarios for the ECG detection device. Attached Figure Description
[0023] Figure 1 This is a schematic diagram of the principle of an electrocardiogram (ECG) monitoring device in one embodiment;
[0024] Figure 2 This is a schematic diagram of the electrocardiogram (ECG) detection device in another embodiment;
[0025] Figure 3 This is a schematic diagram of the structure of an electrocardiogram (ECG) detection device in one embodiment;
[0026] Figure 4 This is a schematic diagram of the electrocardiogram (ECG) detection device in another embodiment.
[0027] The diagram shows the following components: 1. Shell; 2. Cover; 3. ECG signal acquisition module; 4. Main control processing module; 5. Temperature control module; 51. Temperature control and heating module; 511. Temperature control module; 512. Heating module; 52. Temperature detection module; 6. Power supply module; 61. Power management module; 62. External power interface; 63. Battery; 7. Display screen; 8. Control panel; 81. Keyboard; 82. Touch screen; 83. Function shortcut keys; 9. Battery compartment; 10. Storage compartment; 11. Heat dissipation module; 111. Ventilation hole; 12. Handle; 13. ECG signal acquisition interface. Detailed Implementation
[0028] To make the objectives, technical solutions, and advantages of this application clearer, the following detailed description is provided in conjunction with the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative and not intended to limit the scope of this application.
[0029] In one embodiment, an electrocardiogram (ECG) detection device is provided, comprising: a housing 1 and a cover 2 connected to the housing 1; the housing 1 is internally provided with an ECG signal acquisition module 3, a main control processing module 4, a temperature control module 5, and a power supply module 6; a display screen 7 is embedded in the surface of the housing 1 or the surface of the cover 2; the power supply module 6 supplies power to the ECG signal acquisition module 3, the main control processing module 4, the temperature control module 5, and the display screen 7; the ECG signal acquisition module 3 is connected to the main control processing module 4 and is used to acquire ECG signals and transmit the ECG signals to the main control processing module 4; the main control processing module 4 is used to process, store, and / or transmit the ECG signals; the temperature control module 5 is used to heat the ECG signal acquisition module 3 when the temperature of the ECG signal acquisition module 3 is lower than a first preset temperature, and to stop heating the ECG signal acquisition module 3 when the temperature is greater than or equal to a second preset temperature; the display screen 7 is connected to the main control processing module 4 and is used to display the ECG signal detection control interface, ECG signals, and / or ECG signal processing results.
[0030] The housing 1 and the cover 2 are connected by a connector. If the surface of the housing 1 has a display screen 7 embedded in it, the housing 1 can switch between a closed state and an open state relative to the cover 2. If the surface of the cover 2 has a display screen 7 embedded in it, the cover 2 can switch between a closed state and an open state relative to the housing 1. When the housing 1 and the cover 2 switch between the closed state and the open state, the connector can be driven to move. The closed state can also be understood as the closed state.
[0031] In one embodiment, the connection between the housing 1 and the cover 2 includes a hinge, a pivot connection, a rotational connection, a swivel connection, or a flip connection. Other existing connection methods can also be used between the housing 1 and the cover 2, as long as they are adapted to the electrocardiogram monitoring device provided in this application, and will not be listed here.
[0032] The power supply module 6 is electrically connected to the main control processing module 4. The power supply module 6 can be electrically connected to the ECG signal acquisition module 3, temperature control module 5, and display screen 7 via the main control processing module 4, so that the main control processing module 4 can supply power to each module. It can also be directly connected to the ECG signal acquisition module 3 and / or the temperature control module 5 for direct power supply. The direct electrical connection between the power supply module 6 and the temperature control module 5 allows the temperature control module 5 to still provide heat to the ECG signal acquisition module 3 when the ECG detection device is powered off and the temperature of the ECG signal acquisition module 3 is lower than the third preset temperature, thus preventing damage to the ECG signal acquisition module 3 in low-temperature environments. It can be understood that the temperature control module 5 can also provide heat to components in the ECG detection device that cannot function or may be damaged in low-temperature environments, such as the main control processing module 4 and / or the display screen 7.
[0033] The ECG signal acquisition module 3 acquires ECG signals through a detection device and transmits the acquired ECG signals to the main control processing module 4. The main control processing module 4 can perform data processing on the ECG signals, including but not limited to at least one of noise reduction, filtering, gain amplification, and intelligent analysis. The main control processing module 4 can also be used to store ECG signals and / or ECG signal processing results obtained based on the ECG signal processing. The main control processing module 4 can also transmit ECG signals and / or ECG signal processing results to a terminal or server. Terminals include, but are not limited to, smartphones, tablets, laptops, desktop computers, IoT devices, and portable wearable devices. Servers include, but are not limited to, independent physical servers, server clusters, and cloud servers.
[0034] The temperature control module 5 monitors the temperature of the ECG signal acquisition module 3. It automatically starts working when the temperature is below the first preset temperature to heat the ECG signal acquisition module 3, and stops working when the temperature is above or equal to the second preset temperature to stop heating the ECG signal acquisition module 3. The first, second, and third preset temperatures can be flexibly set according to actual conditions and are not specifically limited here; for example, they could be -10 degrees Celsius, 0 degrees Celsius, and -40 degrees Celsius, respectively. The third preset temperature must be less than or equal to the first preset temperature, and the second preset temperature must be greater than or equal to the first preset temperature.
[0035] The display screen 7 can be disposed on the surface of the housing 1, specifically on the surface of the housing 1 facing the cover 2, or on the surface of the cover 2, specifically on the surface of the cover 2 facing the housing 1. The display screen 7 can also be used to display various contents that need to be displayed, without specific limitations.
[0036] In one embodiment, such as Figure 1 The diagram shown illustrates the principle of an electrocardiogram (ECG) monitoring device. It can be understood that... Figure 1 This only shows some of the components in an electrocardiogram (ECG) monitoring device. Figure 1 The connections shown for the various components are for illustrative purposes only and are not intended to limit specific applications. For example, power supply module 6 can also directly power the various components.
[0037] The aforementioned electrocardiogram (ECG) detection device integrates an ECG signal acquisition module 3 (for acquiring ECG signals), a main control processing module 4 (for processing, storing, and / or transmitting ECG signals), a temperature control module 5, and a power supply module 6 within a housing 1, and places them on a cover 2 connected to the housing 1. A display screen 7 is also provided on the surface of the housing 1 or cover 2, forming a portable ECG detection device suitable for both fixed and flexible ECG detection needs. Furthermore, by setting the temperature control module 5 to heat the ECG signal acquisition module 3 when its temperature is below a first preset temperature, and to stop heating when its temperature is above or equal to a second preset temperature, the device avoids malfunction or damage to the ECG signal acquisition module 3 in low-temperature environments, reduces energy consumption, and further expands the applicable scenarios for the ECG detection device.
[0038] In one embodiment, the temperature control module 5 includes a temperature control heating module 51251 and a temperature detection module 52; the temperature detection module 52 is used to detect the temperature of the electrocardiogram signal acquisition module 3; the temperature control heating module 51251 is used to provide heat to the electrocardiogram signal acquisition module 3 when the temperature is lower than a first preset temperature, and to stop providing heat to the electrocardiogram signal acquisition module 3 when the temperature is greater than or equal to a second preset temperature.
[0039] The temperature detection module 52 is electrically connected to the temperature-controlled heating module 51251, and is used to transmit the detected temperature to the temperature-controlled heating module 51251 so that the temperature-controlled heating module 51251 can control its own operation based on the received temperature. The temperature detection module 52 can detect the temperature of the ECG signal acquisition module 3 by direct contact and / or non-contact. Similarly, the temperature-controlled heating module 51251 can provide heat to the ECG signal acquisition module 3 by direct contact and / or non-contact, without specific limitations. The temperature detection module 52 and the temperature-controlled heating module 51251 can be located on the same side of the ECG signal acquisition module 3, or they can be located on opposite sides of the ECG signal acquisition module 3.
[0040] In one embodiment, the temperature control heating module 51251 and the temperature detection module 52 are respectively disposed on opposite sides of the electrocardiogram (ECG) signal acquisition module 3. With the temperature control heating module 51251 disposed on one side of the ECG signal acquisition module 3 and the temperature detection module 52 disposed on the other side, the temperature detection module 52 can more accurately detect the temperature of the ECG signal acquisition module 3 without being affected by the temperature of the temperature control heating module 51251.
[0041] In one embodiment, the temperature control heating module 51251 includes a temperature control module 511 and a heating module 512; the temperature control module 511 controls the heating module 512 according to the temperature feedback from the temperature detection module 52; the size of the heating module 512 is greater than or equal to the size of the main control chip in the electrocardiogram signal acquisition module 3, and less than or equal to the size of the electrocardiogram signal acquisition module 3.
[0042] The temperature control module 511 is electrically connected to the temperature detection module 52 and the heating module 512, respectively. It receives the temperature detected by the temperature detection module 52 and controls the heating module 512 based on this temperature. If the size of the heating module 512 is the same as the size of the ECG signal acquisition module 3, it can provide heat to the entire ECG signal acquisition module 3. The size of the heating module 512 is greater than or equal to the main control chip in the ECG signal acquisition module 3 to ensure that it can provide heat to the main control chip based on its temperature. This allows the main control chip to operate normally in low-temperature environments while reducing energy consumption. If there are multiple main control chips, a heating module 512 of matching size can be set for each main control chip. It can be understood that if multiple components in the ECG detection device need to be heated, a heating module 512 can be set for each component, with the size of the heating module 512 being greater than or equal to the size of the key component in the corresponding component and less than or equal to the size of the corresponding component.
[0043] In one embodiment, a display screen 7 is embedded in the surface of the housing 1 facing the cover 2, and a control panel 8 is provided on the surface of the cover 2 facing the housing 1; or, a display screen 7 is embedded in the surface of the cover 2 facing the housing 1, and a control panel 8 is provided on the surface of the housing 1 facing the cover 2; the control panel 8 is connected to the main control processing module 4 and is used to input commands; the control panel 8 includes a keyboard 81 and / or a touch screen 82.
[0044] When the housing 1 and the cover 2 are in contact, if the surface of the cover 2 facing the housing 1 has a display screen 7 embedded therein, and the surface of the housing 1 facing the cover 2 has a control panel 8, the cover 2 can rotate about the connecting member as an axis, thereby adjusting the display angle of the display screen 7.
[0045] In one embodiment, the control panel 8 further includes function shortcut keys 83. Function shortcut keys 83 include, but are not limited to, at least one of the following: start detection key, pause detection key, end detection key, exercise phase selection key, increase exercise load key, decrease exercise load key, exercise program selection key, report printing key, and event marker key. Thus, the function shortcut keys 83 enable convenient and quick implementation of corresponding functions, thereby improving the operational efficiency of the ECG monitoring equipment.
[0046] In one embodiment, the power supply module 6 includes a power management module 61, an external power interface 62, and / or a battery 63; the battery 63 is connected to the power management module 61 and is used to supply power to the ECG signal acquisition module 3, the main control processing module 4, the temperature control module 5, and the display screen 7 through the power management module 61; the power management module 61 is connected to the external power interface 62 and is used to connect to an external power source through the external power interface 62.
[0047] Battery 63 is electrically connected to power management module 61, and supplies power to various components that require power through power management module 61. External power interface 62 is electrically connected to power management module 61, and external power supplies are connected to power management module 61 through external power interface 62 to supply power to various components. Power management module 61 is also used to control the power supply mode, such as external power supply and / or battery 63 power supply, the specific implementation of which can be referred to the prior art and will not be described in detail here.
[0048] In one embodiment, the external power interface 62 is disposed on the side wall of the housing 1; a battery compartment 63 is disposed on the inner side of the housing 1 away from the cover 2 for storing the battery 63. The housing 1 also has a battery compartment 63 inside. When the housing 1 and the cover 2 are in contact, the wall of the battery compartment away from the cover 2 is part of the wall of the housing 1 away from the cover 2.
[0049] In one embodiment, a storage compartment 10 is provided on the inner side of the housing 1 away from the cover 2 for storing the test piece and / or the spare battery 63; if a battery 63 compartment is provided on the inner side of the housing 1 away from the cover 2, the storage compartment 10 and the battery 63 compartment are arranged side by side.
[0050] The detection device is used to collect and transmit human electrocardiogram (ECG) signals. The detection device includes a wireless sensor, or electrode pads and leads. The wireless sensor can be electrode pads with wireless communication capabilities. The wireless sensor is connected to and communicates with the ECG signal acquisition module 3 via a network to transmit the collected ECG signals to the ECG signal acquisition module 3. One end of the lead is electrically connected to the ECG signal acquisition module 3, and the other end is electrically connected to the electrode pads. The electrode pads are attached to the corresponding positions on the human body to collect the ECG signals and transmit them to the ECG signal acquisition module 3 via the lead wires. The lead wires are connected to the ECG signal acquisition module 3 through the ECG signal acquisition interface 13 located in the housing 1. The connections between the lead wires, the ECG signal acquisition module 3, and the electrode pads are all detachable.
[0051] The housing 1 also has a storage compartment 10 inside. When the housing 1 and the cover 2 are in contact, the wall of the storage compartment 10 away from the cover 2 is part of the wall of the housing 1 away from the cover 2. If the housing 1 has both a battery compartment 63 and a storage compartment 10 inside, the arrangement of the battery compartment 63 and the storage compartment 10 can be adapted to the electrocardiogram detection device of this application, and no specific limitation is made here.
[0052] In one embodiment, a heat dissipation module 11 is further included; the power supply module 6 is also used to supply power to the heat dissipation module 11; the heat dissipation module 11 includes a cooling fan for dissipating heat from the main control processing module 4; ventilation holes 111 are provided on the side wall of the housing 1 and / or the wall away from the cover 2 corresponding to the cooling fan. The power supply module 6 can be directly electrically connected to the heat dissipation module 11, or it can be electrically connected to the heat dissipation module 11 through the main control processing module 4, so as to supply power to the heat dissipation module 11.
[0053] In one embodiment, the heat dissipation module 11 further includes a heat-conducting module connected to the main control processing module 4 in a manner capable of heat conduction, for conducting the heat generated by the main control processing module 4 to the cooling fan for heat dissipation. The heat-conducting module may be a heat pipe, heat-conducting plate, or other types of heat-conducting components. The heat-conducting module has a high thermal conductivity, which can improve heat conduction efficiency. The heat-conducting module is in direct contact with the main control processing module 4 or the air surrounding the main control processing module 4.
[0054] In one embodiment, the heat-conducting module is a heat-conducting plate with multiple hollow areas to reduce the weight of the heat-conducting module, thereby reducing the weight of the entire ECG monitoring device.
[0055] In the above embodiment, the heat generated by the main control processing module 4 is conducted to the cooling fan through the heat conduction module for heat dissipation, so as to improve the heat dissipation efficiency.
[0056] In one embodiment, a handle 12 is provided on the side of the housing 1 away from the connector between the housing 1 and the cover 2; an electrocardiogram signal acquisition interface 13 is provided on the side wall of the housing 1, which is connected to the electrocardiogram signal acquisition module 3, for connecting to the lead wire and acquiring electrocardiogram signals through the lead wire.
[0057] A handle 12 is fixedly installed on the housing 1, and the handle 12 is integrally formed with the housing 1. An electrocardiogram (ECG) signal acquisition interface 13 is provided on the side wall of the housing 1. The ECG signal acquisition interface 13 is electrically connected to the ECG signal acquisition module 3 inside the housing 1, and is electrically connected to the lead wires during ECG detection to receive the ECG signals acquired by the electrode pads through the lead wires.
[0058] It is worth noting that the ECG monitoring device may also include other necessary components, such as a switch button, a data interface, and a speaker. The data interface includes at least one of a USB interface, an adapter interface, an Ethernet interface, an SD interface, and / or a SIM interface. One or more embodiments of this application mainly describe components related to the improvements; other necessary components will not be described in detail. For example, the speaker is disposed within the housing 1 and electrically connected to the main control processor. A sound outlet is provided on the side wall of the housing 1 or the wall away from the cover 2 corresponding to the speaker. Alternatively, the main control processor is electrically connected to the data interface, and an opening corresponding to the data interface is provided on the side wall of the housing 1, with the data interface aligned with the corresponding opening.
[0059] In one embodiment, the functions of each component in the electrocardiogram detection device provided in one or more embodiments of this application are only examples and are not intended to limit the specific functions. Each component may also have other general functions, which will not be described in detail here.
[0060] In one embodiment, such as Figure 2 The diagram shown illustrates the principle of an electrocardiogram (ECG) monitoring device. It can be understood that... Figure 2 This only shows some of the components in an electrocardiogram (ECG) monitoring device. Figure 1 The connection relationships of the components shown are for illustrative purposes only and are not intended to limit the specifics.
[0061] In one embodiment, such as Figure 3 and Figure 4 As shown, a three-dimensional structural diagram of an electrocardiogram (ECG) monitoring device is provided from different perspectives. It can be understood that... Figure 3 and Figure 4 The three-dimensional structure of the ECG monitoring device shown is for illustrative purposes only and is not intended to limit specific applications. For example, the display screen 7 may also be embedded in the cover 2, the control panel 8 may also be located in the housing 1, and the location and size of the storage compartment 10 and the battery compartment 63 may be determined according to actual conditions, which will not be listed here.
[0062] The technical features of the above embodiments can be combined in any way. For the sake of brevity, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.
[0063] The embodiments described above are merely illustrative of several implementation methods of this application, and while the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the utility model patent. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this application, and these all fall within the protection scope of this application. Therefore, the protection scope of this patent application should be determined by the appended claims.
Claims
1. An electrocardiogram detection device, characterized by, The application relates to a portable electrocardiosignal detection device. The portable electrocardiosignal detection device comprises a shell, a cover connected with the shell, an electrocardiosignal acquisition module, a main control processing module, a temperature control module and a power supply module arranged in the shell, and a display screen embedded in the surface of the shell or the cover. The power supply module supplies power to the electrocardiosignal acquisition module, the main control processing module, the temperature control module and the display screen. The electrocardiosignal acquisition module is connected with the main control processing module, is used for acquiring electrocardiosignals and transmitting the electrocardiosignals to the main control processing module. The main control processing module is used for processing, storing and / or transmitting the electrocardiosignals. The temperature control module is used for heating the electrocardiosignal acquisition module when the temperature of the electrocardiosignal acquisition module is less than a first preset temperature, and stopping heating the electrocardiosignal acquisition module when the temperature is greater than or equal to a second preset temperature. The display screen is connected with the main control processing module, is used for displaying an electrocardiosignal detection control interface, electrocardiosignals and / or electrocardiosignal processing results.
2. The apparatus of claim 1, wherein, The temperature control module comprises a temperature control heating module and a temperature detection module.
3. The apparatus of claim 2, wherein, The temperature control heating module and the temperature detection module are arranged on opposite sides of the electrocardiosignal acquisition module.
4. The apparatus of claim 2, wherein, The temperature control heating module comprises a temperature control module and a heating module.
5. The apparatus of claim 1, wherein, The connection mode of the shell and the cover is hinged connection, shaft connection, rotary connection, rotating connection or flip connection.
6. The apparatus of claim 1, wherein, The surface of the shell facing the cover is embedded with a display screen, the surface of the cover facing the shell is provided with a control panel, or the surface of the cover facing the shell is embedded with a display screen, and the surface of the shell facing the cover is provided with a control panel.
7. The apparatus of claim 6, wherein, The control panel is connected with the main control processing module and is used for inputting instructions.
8. The apparatus of claim 1, wherein, The control panel further comprises a function shortcut key.
9. The apparatus of claim 8, wherein, The power supply module comprises a power management module, an external power supply interface and / or a battery. The battery is connected with the power management module and is used for supplying power to the electrocardiosignal acquisition module, the main control processing module, the temperature control module and the display screen through the power management module. The external power supply interface is arranged on the side wall of the shell. The inner side of the shell away from the cover is provided with a battery compartment for accommodating the battery.
10. The apparatus of claim 9, wherein, The inner side of the shell away from the cover is provided with a receiving bin for receiving the detection member and / or a spare battery; if the inner side of the shell away from the cover is provided with a battery bin, the receiving bin is arranged side by side with the battery bin.
11. The apparatus of claim 1, wherein, Further comprising a heat dissipation module; the power supply module is further used for supplying power for the heat dissipation module; the heat dissipation module comprises a heat dissipation fan for dissipating heat of the main control processing module; a ventilation hole is arranged on the side wall of the shell and / or the wall away from the cover corresponding to the heat dissipation fan.
12. The apparatus of claim 11, wherein, The heat dissipation module further comprises a heat conduction module connected with the main control processing module in a heat conduction manner, for conducting heat generated by the main control processing module to the heat dissipation fan for heat dissipation.
13. The apparatus of any one of claims 1 to 12, wherein, One side of the shell away from the connecting piece between the shell and the cover is provided with a handle; the side wall of the shell is provided with an electrocardiosignal acquisition interface connected with the electrocardiosignal acquisition module, for being connected with a lead wire and acquiring an electrocardiosignal through the lead wire.