Car seats and vehicles with them

By designing a detachable car seat monitoring component, the problem of traditional in-vehicle health monitoring equipment being non-detachable is solved, enabling continuous and comprehensive monitoring of health data and improving the durability of the equipment and user experience.

CN224276926UActive Publication Date: 2026-05-26GUANGZHOU AUTOMOBILE GROUP CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
GUANGZHOU AUTOMOBILE GROUP CO LTD
Filing Date
2025-05-13
Publication Date
2026-05-26

AI Technical Summary

Technical Problem

Traditional in-vehicle health monitoring equipment is not removable, which means that the health monitoring equipment can only be used inside the vehicle, making it impossible to achieve continuity and comprehensiveness of health data, and making maintenance and updates inconvenient.

Method used

Design a detachable monitoring component that connects to the seat headrest assembly, including a limiting space, a housing, multiple monitoring modules, and a wireless module, supporting use in different scenarios, and enabling convenient charging and independent power supply through module socket components and battery modules.

Benefits of technology

It enables the expansion of health monitoring scenarios, data continuity and comprehensiveness, improves the durability of equipment and user experience, reduces maintenance costs, and supports cross-scenario health monitoring and real-time data access.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224276926U_ABST
    Figure CN224276926U_ABST
Patent Text Reader

Abstract

This application provides an automotive seat and a vehicle having the same. The automotive seat includes: a headrest assembly; and a monitoring component detachably connected to the headrest assembly. The monitoring component has a working position that engages with the headrest assembly and a detachable position that separates it from the headrest assembly. The monitoring component is used to detect and generate health status data of a target object. By applying this technical solution, the detachable monitoring component and headrest assembly ensure both comfort and monitoring accuracy within the vehicle environment. It also allows the user to carry and use the monitoring component separately after leaving the vehicle. The monitoring component can store monitoring data and synchronize with the user's smart devices in various environments, achieving continuous and comprehensive health data monitoring. This solves the problem of traditional in-vehicle health monitoring devices not being detachable from automotive seat headrests in the prior art.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This application relates to the field of intelligent connected vehicle interiors, and more specifically, to a car seat and a vehicle having the same. Background Technology

[0002] Currently, with the increasing demand for health and the continuous development of smart technologies, various devices for monitoring human health status are available on the market, such as wearable devices like smartwatches and health bracelets, as well as some fixed health monitoring systems. However, there are certain limitations to applying these devices and systems to car seats. Traditional in-vehicle health monitoring devices are directly fixed inside the car seat headrest. While this ensures close contact between the device and the user's head, improving the accuracy of data monitoring, its non-removable nature means that the health monitoring device can only be used inside the car. This also means that users cannot continue to use the device for health monitoring when they leave the car, limiting the continuity and comprehensiveness of health data.

[0003] There is currently no effective solution to the aforementioned technical problems. Utility Model Content

[0004] This application provides an automobile seat and a vehicle having the same, aiming to improve the problem that traditional in-vehicle health monitoring equipment and automobile seat headrests are not removable in the prior art.

[0005] According to one aspect of the embodiments of this application, an automobile seat is provided, including: a seat headrest assembly; a monitoring assembly, the monitoring assembly being detachably connected to the seat headrest assembly, the monitoring assembly having a working position cooperating with the seat headrest assembly, and the monitoring assembly having a disengaged position detached from the seat headrest assembly, the monitoring assembly being used to detect and generate health status data of a target object.

[0006] The embodiments of this application achieve the following technical effects: By applying the technical solution of this utility model, through the detachable monitoring component and the headrest component, the monitoring component can be detachably connected to the headrest component, which not only ensures comfort and monitoring accuracy in the in-vehicle environment, but also allows users to carry and use the monitoring component separately after leaving the car, expanding the scope of health monitoring scenarios. It can store monitoring data and synchronize data with the user's smart device in various environments, realizing continuous and comprehensive monitoring of health data, and solving the problem that traditional in-vehicle health detection equipment and car seat headrests in the prior art are not detachable.

[0007] Furthermore, the seat headrest assembly includes: a seat headrest body, the seat headrest body having a limiting space, the limiting space extending along a first preset direction, and when the monitoring component is in the working position, at least a portion of the monitoring component is disposed within the limiting space.

[0008] The above-mentioned optional embodiments of this application achieve the following technical effects: The setting of the limiting space ensures the stability and accurate positioning of the monitoring component in the working position, avoiding deviations in monitoring data caused by bumps during vehicle movement or user head movement, and ensuring the accuracy and reliability of health status data. The design of inserting the monitoring component into the limiting space in a specific direction simplifies the installation and disassembly process of the device, achieving the convenience of "plug and play". Users can quickly position the monitoring component to the working position or remove it from the detached position without professional tools or complicated operations, facilitating flexible use in different scenarios.

[0009] Furthermore, the monitoring component includes: a housing having a mounting cavity; and a monitoring module disposed within the mounting cavity, the monitoring module being used to detect and generate health status data of the target object.

[0010] The above-mentioned optional embodiments of this application achieve the following technical effects: the housing provides physical protection for the monitoring module, effectively preventing the monitoring components from being damaged by impact, wear and other factors during use, which can further improve the durability of the components and extend their service life. The replaceability of the monitoring module makes equipment maintenance and upgrades simpler. If a module fails, it can be directly replaced without affecting the entire equipment, reducing maintenance costs and time consumption.

[0011] Further, the monitoring module includes: a pressure-sensing module for acquiring head pressure data; a heart rate detection module for acquiring heart rate data; a sound receiving module for acquiring snoring and babbling data; and a main control module disposed on the housing, electrically connected to the pressure-sensing module, heart rate detection module, and sound receiving module respectively. Based on the head pressure data acquired by the pressure-sensing module, the main control module controls the heart rate detection module and the sound receiving module to be in working mode. Based on the heart rate data acquired by the heart rate detection module and the snoring and babbling data acquired by the sound receiving module, the main control module generates the human health status data.

[0012] The above-mentioned optional embodiments of this application achieve the following technical effects: The setting of the pressure sensing module enables the monitoring component to intelligently sense changes in the pressure on the user's head, thereby determining whether the user is in a monitoring state and automatically waking up or turning off the heart rate detection module and the microphone module, achieving intelligent power saving and extending the device's usage time; The microphone module can comprehensively acquire multi-dimensional data such as head pressure, heart rate, snoring, and babbling, providing a comprehensive monitoring capability for human health status, which is of great significance for sleep quality analysis, heart disease early warning, stress and emotional state assessment, and can provide users with more comprehensive health information; The heart rate detection module accurately captures heart rate changes, thereby generating more accurate heart rate data, providing high-quality raw information for subsequent health status data generation; The main control module can not only process and integrate data from the pressure sensing module, heart rate detection module, and microphone module, but also quickly generate a comprehensive assessment of human health status through built-in algorithms and data models, including but not limited to sleep quality reports, heart rate trend analysis, stress index, etc., providing users with immediate health feedback and suggestions.

[0013] Furthermore, the monitoring module also includes: a wireless module, which is wirelessly connected to external devices and electrically connected to the main control module, and the main control module controls the wireless module to be in the mode of transmitting human health status data.

[0014] The above-mentioned optional embodiments of this application achieve the following technical effects: the wireless module allows the monitored health data to be transmitted to the user's smartphone, smartwatch or other mobile devices in real time, and the user can check their health status at any time without physical connection, which greatly improves the convenience and real-time nature of data access. Through wireless connection, the monitoring module can be integrated with a wider health monitoring ecosystem, including home health monitoring systems, telemedicine services, health applications, etc., thereby providing more comprehensive and integrated health management services.

[0015] Furthermore, the monitoring module also includes: a module connector assembly, which is electrically connected to the wireless module, pressure sensing module, main control module, heart rate detection module, and radio module respectively; the module connector assembly is used for detachable connection with an external power supply device; at least a portion of the module connector assembly has a charging position for connection with the external power supply device; and the module connector assembly has an idle position detached from the external power supply device.

[0016] The above-mentioned optional embodiments of this application achieve the following technical effects: The design of the module socket component makes the charging process simpler. Users only need to place the monitoring module in the charging position without complicated wire connections or finding specific charging ports. The magnetic or precise alignment design further simplifies this process and improves the user experience. The module socket component design is compatible with a variety of external power devices, such as car chargers, power banks, wall adapters, etc., which improves the charging compatibility and reliability of the monitoring module.

[0017] Furthermore, the monitoring module also includes: a battery module, which is electrically connected to the module connector assembly, wireless module, pressure sensing module, main control module, heart rate detection module, and radio module respectively. The battery module is used to supply power to the wireless module, pressure sensing module, main control module, heart rate detection module, and radio module respectively. The module connector assembly is used to connect the battery module to an external power supply device.

[0018] The above-mentioned optional embodiments of this application achieve the following technical effects: The presence of the battery module enables the monitoring module to have independent power supply capabilities, allowing it to operate continuously without an external power source. This is especially beneficial in scenarios where it is inconvenient to access a power source, such as inside a vehicle or outdoors, thus improving the practicality and reliability of the monitoring module. The collaborative work between the module connector component and the battery module allows the monitoring module to automatically switch to external power supply mode when an external power source is connected, and seamlessly switch back to battery power supply when the external power source is disconnected. This function enhances the adaptability of the device and the user experience.

[0019] Furthermore, the seat headrest assembly also includes: a headrest insertion assembly, which is connected to the seat headrest body. At least a portion of the headrest insertion assembly is disposed within a limiting space. When the monitoring component has a working position that cooperates with the seat headrest assembly, the headrest insertion assembly is inserted into the monitoring component.

[0020] The optional embodiments described above achieve the following technical effects: The limiting design of the headrest socket assembly ensures that the monitoring module can be accurately positioned when inserted into the headrest, avoiding problems such as poor contact or unstable data transmission caused by inaccurate positioning. A stable connection ensures the continuity and accuracy of data acquisition and transmission. The headrest socket assembly typically integrates a charging interface, which automatically connects to the vehicle's electrical system or a home power source when the monitoring component is inserted into the headrest, automatically charging without additional user intervention, simplifying the charging process and ensuring the device is always fully charged and ready for use.

[0021] Furthermore, the headrest body of the seat is provided with a clearance space, which is located at the top opening of the limiting space.

[0022] The above-mentioned optional embodiments of this application achieve the following technical effects: the design of the clearance space makes it easier to insert and remove the monitoring component. Users can easily insert or remove the monitoring component from the top opening, avoiding the inconvenience that may be caused by the side or bottom openings, simplifying the installation and disassembly process, improving the user experience. The top opening and clearance space allow users to operate without excessively stretching their arms or body, reducing the risk of accidents during operation. Especially in the confined environment of a vehicle, such a design is safer and more reliable.

[0023] Furthermore, the monitoring component also includes: anti-slip recesses, which are multiple in number and arranged at intervals along the circumference of the housing.

[0024] The above-mentioned optional embodiments of this application achieve the following technical effects: the addition of anti-slip recesses increases the coefficient of friction on the surface of the monitoring component, allowing the user to grip it more firmly when picking it up or putting it in the headrest, especially in wet or oily environments, effectively preventing slippage and reducing the risk of the device falling or being damaged. The multiple spaced anti-slip recesses provide the user with multiple gripping points, so that no matter which angle the monitoring component is operated from, a suitable anti-slip point can be found for gripping, making the installation, disassembly, or carrying process more convenient and effortless.

[0025] According to another aspect of the embodiments of this application, a vehicle is provided, including a car seat, wherein the car seat is the car seat described above.

[0026] The embodiments of this application achieve the following technical effects: the monitoring component can monitor passengers' physiological indicators in real time, such as heart rate, blood pressure, and even fatigue level. For drivers, this helps prevent driving accidents caused by health reasons. If an abnormality is detected, the system can issue an early warning and take measures, such as automatically adjusting the in-vehicle environment, issuing warning signals, or activating automatic driving to ensure safety. For passengers with chronic diseases, the health monitoring seat can provide continuous health data recording, which helps doctors remotely monitor the condition and adjust the treatment plan in a timely manner, while also reducing the pressure on passengers to monitor themselves. Attached Figure Description

[0027] The accompanying drawings, which form part of this application, are used to provide a further understanding of the present invention. The illustrative embodiments of the present invention and their descriptions are used to explain the present invention and do not constitute an undue limitation of the present invention. In the drawings:

[0028] Figure 1 This is an isometric side view of a first embodiment of an automobile seat provided in this application;

[0029] Figure 2 This is an isometric side view of a second embodiment of an automobile seat provided in this application;

[0030] Figure 3 This is an isometric side view of a first embodiment of a car seat headrest assembly provided in this application;

[0031] Figure 4 This is an electrical connection diagram of a third embodiment of a car seat provided in this application;

[0032] Figure 5 This is an isometric side view of a fourth embodiment of an automobile seat provided in this application;

[0033] Figure 6 This is an isometric side view of a first embodiment of a monitoring component in a car seat provided in this application.

[0034] Explanation of reference numerals in the attached figures:

[0035] The above figures include the following reference numerals:

[0036] 10. Seat headrest assembly;

[0037] 11. Seat headrest body;

[0038] 12. Headrest socket assembly;

[0039] 111. Limiting space;

[0040] 112. Avoidance space;

[0041] 20. Monitoring components;

[0042] 21. Shell;

[0043] 22. Pressure sensing module;

[0044] 23. Module socket assembly;

[0045] 24. Radio module;

[0046] 25. Anti-slip recessed area;

[0047] 26. Heart rate detection module;

[0048] 27. Battery module;

[0049] 28. Wireless module;

[0050] 29. Main control module. Detailed Implementation

[0051] It should be noted that, unless otherwise specified, the embodiments and features described in this application can be combined with each other. The present invention will now be described in detail with reference to the accompanying drawings and embodiments.

[0052] It should be noted that the terminology used herein is for the purpose of describing particular embodiments only and is not intended to limit the exemplary embodiments according to this application. As used herein, the singular form is intended to include the plural form as well, unless the context clearly indicates otherwise. Furthermore, it should be understood that when the terms "comprising" and / or "including" are used in this specification, they indicate the presence of features, steps, operations, devices, components, and / or combinations thereof.

[0053] It should be noted that the terms "first," "second," etc., 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 terms can be used interchangeably where appropriate so that the embodiments of this application described herein can be implemented, for example, in orders other than those illustrated or described herein. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover a non-exclusive inclusion; for example, a process, method, system, product, or apparatus that comprises a series of steps or units is not necessarily limited to those steps or units explicitly listed, but may include other steps or units not explicitly listed or inherent to such processes, methods, products, or apparatus.

[0054] Exemplary embodiments according to this application will now be described in more detail with reference to the accompanying drawings. However, these exemplary embodiments may be implemented in many different forms and should not be construed as being limited to the embodiments set forth herein. It should be understood that these embodiments are provided so that the disclosure of this application is thorough and complete, and that the concept of these exemplary embodiments is fully conveyed to those skilled in the art. In the drawings, for clarity, the thickness of layers and regions may be exaggerated, and the same reference numerals are used to denote the same devices, and therefore their description will be omitted.

[0055] With the increasing awareness of health and the growing maturity of smart technologies, health monitoring devices have become an indispensable part of people's daily lives. The market offers a wide variety of health monitoring devices, ranging from portable wearable devices such as smartwatches and health bracelets to fixed health monitoring systems for home or professional settings, covering multiple dimensions of health data collection, from activity tracking and sleep analysis to heart rate and blood pressure monitoring. However, when these devices are applied to car seat environments, their design and functionality exhibit some significant limitations, especially for seats with traditional built-in health monitoring systems.

[0056] Traditional in-vehicle health monitoring devices, such as monitoring modules directly fixed in the headrest of a car seat, can ensure real-time monitoring of the user's head health during driving or riding in a vehicle. However, due to their non-removable nature, the user cannot continue to use the device after leaving the vehicle. This means that the collection of health data will be interrupted when switching between inside and outside the vehicle, which is not conducive to continuous monitoring of health status and long-term data analysis.

[0057] Non-removable health monitoring devices are usually only suitable for the specific environment and user group of the seat they are in. For users who need to maintain continuous health monitoring in different scenarios (such as home and office), their adaptability is relatively limited and cannot meet the needs of cross-scenario health monitoring.

[0058] Built-in, non-removable health monitoring devices present inconveniences in terms of maintenance and updates. Once the device malfunctions or requires a technical update, it is often necessary to send the entire headrest or seat back to the manufacturer for repair or replacement, which is not only time-consuming but also increases costs and inconvenience for users.

[0059] Due to the fixed nature of the equipment, the health data collected is usually limited to the in-vehicle environment, forming "islands" with data collected from other life scenarios, making it difficult to achieve comprehensive health status analysis and data integration, thus limiting the potential and value of the health monitoring system.

[0060] Combination Figure 1 and Figure 2 As shown, according to a specific embodiment of this application, an automobile seat is provided, including: a seat headrest assembly 10 and a monitoring assembly 20. The monitoring assembly 20 is detachably connected to the seat headrest assembly 10. The monitoring assembly 20 has a working position that cooperates with the seat headrest assembly 10, and a detached position that is separated from the seat headrest assembly 10. The monitoring assembly 20 is used to detect and generate health status data of a target object.

[0061] The embodiments of this application achieve the following technical effects: By applying the technical solution of this utility model, the monitoring component 20 and the seat headrest component 10 are detachably connected, which not only ensures comfort and monitoring accuracy in the in-vehicle environment, but also allows users to carry and use the monitoring component separately after leaving the car, expanding the scope of health monitoring scenarios. It can store monitoring data and synchronize data with the user's smart device in various environments, realizing continuous and comprehensive monitoring of health data, and solving the problem that traditional in-vehicle health detection equipment and car seat headrests are not detachable in the prior art.

[0062] In this embodiment, as Figure 3As shown, the seat headrest assembly 10 includes: a seat headrest body 11, the seat headrest body 11 being provided with a limiting space 111, the limiting space 111 extending along a first preset direction, and when the monitoring component 20 is in the working position, at least a portion of the monitoring component 20 is disposed within the limiting space 111.

[0063] The above-mentioned optional embodiments of this application achieve the following technical effects: The setting of the limiting space 111 ensures the stability and accurate positioning of the monitoring component 20 in the working position, avoiding deviations in monitoring data caused by bumps during vehicle movement or user head movement, and ensuring the accuracy and reliability of health status data. The design of inserting the monitoring component 20 into the limiting space 111 in a specific direction simplifies the installation and disassembly process of the device, realizing the convenience of "plug and play". Users can quickly position the monitoring component 20 to the working position or remove it from the detached position without professional tools or complicated operations, which is convenient for flexible use in different scenarios.

[0064] Furthermore, the monitoring component 20 includes a housing 21 and a monitoring module. The housing 21 is provided with a mounting cavity, and the monitoring module is disposed in the mounting cavity. The monitoring module is used to detect and generate health status data of the target object.

[0065] The above-mentioned optional embodiments of this application achieve the following technical effects: the housing 21 provides physical protection for the monitoring module, effectively preventing the monitoring components from being damaged by impact, wear and other factors during use, which can further improve the durability of the components and extend their service life. The replaceability of the monitoring module makes equipment maintenance and upgrades simpler. If a module fails, it can be directly replaced without affecting the entire equipment, reducing maintenance costs and time consumption.

[0066] In one exemplary embodiment, the monitoring module includes: a pressure sensing module 22, a heart rate detection module 26, a microphone module 24, and a main control module 29. The pressure sensing module 22 is used to acquire head pressure data, the heart rate detection module 26 is used to acquire heart rate data, and the microphone module 24 is used to acquire snoring data and babbling data. The main control module 29 is disposed on the housing 21 and is electrically connected to the pressure sensing module 22, the heart rate detection module 26, and the microphone module 24. Based on the head pressure data acquired by the pressure sensing module, the main control module 29 controls the heart rate detection module 26 and the microphone module 24 to be in working mode. Based on the heart rate data acquired by the heart rate detection module and the snoring data and babbling data acquired by the microphone module 24, the main control module 29 generates health status data.

[0067] The above-mentioned optional embodiments of this application achieve the following technical effects: The setting of the pressure sensing module 22 enables the monitoring component to intelligently sense changes in the pressure of the user's head, thereby determining whether the user is in a monitoring state and automatically waking up or turning off the heart rate detection module and the microphone module, achieving intelligent power saving and extending the usage time of the device; The microphone module 24 can comprehensively acquire multi-dimensional data such as head pressure, heart rate, snoring and babbling, providing a comprehensive monitoring capability for human health status, which is of great significance for sleep quality analysis, heart disease early warning, stress and emotional state assessment, and can provide users with more comprehensive health information; The heart rate detection module 26 accurately captures heart rate changes, thereby generating more accurate heart rate data, providing high-quality raw information for subsequent health status data generation; The main control module 29 can not only process and integrate data from the pressure sensing module 22, heart rate detection module 26 and microphone module 24, but also quickly generate a comprehensive assessment of human health status through built-in algorithms and data models, including but not limited to sleep quality reports, heart rate trend analysis, stress index, etc., providing users with immediate health feedback and suggestions.

[0068] Furthermore, the monitoring module also includes: a wireless module 28, which is wirelessly connected to an external device and electrically connected to the main control module 29, wherein the main control module 29 controls the wireless module 28 to be in the mode of transmitting human health status data.

[0069] The above optional embodiments of this application achieve the following technical effects: the wireless module 28 allows the monitored health data to be transmitted to the user's smartphone, smartwatch or other mobile devices in real time, and the user can check their health status at any time without physical connection, which greatly improves the convenience and real-time nature of data access. Through wireless connection, the monitoring module can be integrated with a wider health monitoring ecosystem, including home health monitoring systems, telemedicine services, health applications, etc., thereby providing more comprehensive and integrated health management services.

[0070] In this embodiment, the monitoring module further includes: a module socket assembly 23, which is electrically connected to the wireless module 28, the pressure sensing module 22, the main control module 29, the heart rate detection module 26, and the radio module 24 respectively. The module socket assembly 23 is used for detachable connection with an external power supply device. At least a portion of the module socket assembly 23 has a charging position that can be connected to the external power supply device, and the module socket assembly 23 has an idle position that is detached from the external power supply device.

[0071] The above-mentioned optional embodiments of this application achieve the following technical effects: The design of the module socket component 23 makes the charging process simpler. Users only need to place the monitoring module in the charging position without complicated wire connections or finding specific charging ports. The precise alignment design further simplifies this process and improves the user experience. The module socket component design is compatible with a variety of external power devices, such as car chargers, power banks, wall adapters, etc., which improves the charging compatibility and reliability of the monitoring module.

[0072] In one exemplary embodiment, the module connector assembly 23 is magnetic. This magnetic connector assembly can automatically attract the monitoring module, enabling rapid and precise alignment of the monitoring module with the connector even in dimly lit environments or when the user lacks experience. This greatly simplifies the operation process and improves the user experience. Magnetic attraction replaces the traditional mechanical locking method, reducing physical friction during insertion and removal, effectively extending the service life of the monitoring module and connector assembly, and lowering long-term maintenance costs.

[0073] like Figure 4 As shown, the monitoring module also includes a battery module 27, which is electrically connected to the module socket assembly 23, the wireless module 28, the pressure sensing module 22, the main control module 29, the heart rate detection module 26, and the radio module 24. The battery module 27 is used to supply power to the wireless module 28, the pressure sensing module 22, the main control module 29, the heart rate detection module 26, and the radio module 24, respectively. The module socket assembly is used to connect the battery module 27 to an external power supply device.

[0074] The above-mentioned optional embodiments of this application achieve the following technical effects: The presence of the battery module 27 enables the monitoring module to have independent power supply capability, and it can operate continuously without external power. Especially in scenarios where it is inconvenient to connect to power, such as inside a vehicle or outdoors, the practicality and reliability of the monitoring module are improved. The cooperative work of the module socket component 23 and the battery module 27 enables the monitoring module to automatically switch to external power supply mode when external power is connected, and to seamlessly switch back to battery power supply when external power is disconnected. This function enhances the adaptability of the device and the user experience.

[0075] In this embodiment, as Figure 5 As shown, the seat headrest assembly 10 also includes a headrest insertion assembly 12, which is connected to the seat headrest body 11. At least a portion of the headrest insertion assembly 12 is disposed within the limiting space 111. When the monitoring component 20 has a working position that cooperates with the seat headrest assembly 10, the headrest insertion assembly 12 is inserted into the monitoring component 20.

[0076] The above-mentioned optional embodiments of this application achieve the following technical effects: The limiting design of the headrest socket assembly 12 ensures that the monitoring module can be accurately positioned when inserted into the headrest, avoiding problems such as poor contact or unstable data transmission caused by inaccurate positioning. Stable connection ensures the continuity and accuracy of data acquisition and transmission. The headrest socket assembly 12 usually integrates a charging interface. When the monitoring component is inserted into the headrest, it can automatically connect to the vehicle's electrical system or a home power source for automatic charging without additional user operation, simplifying the charging process and ensuring that the device is always fully charged and ready for use.

[0077] Furthermore, the seat headrest body 11 is provided with a clearance space 112, which is located at the top opening of the limiting space 111.

[0078] The above-mentioned optional embodiments of this application achieve the following technical effects: The design of the clearance space 112 makes it easier to insert and remove the monitoring component 20. Users can easily insert or remove the monitoring component 20 from the top opening, avoiding the inconvenience that may be caused by the side or bottom openings, simplifying the installation and disassembly process, and improving the user experience. The top opening and clearance space 112 allow users to operate without excessively stretching their arms or bodies, reducing the risk of accidents during operation. Especially in the confined environment of a vehicle, such a design is safer and more reliable.

[0079] In one exemplary embodiment, the monitoring component 20 further includes: anti-slip recesses 25, wherein there are multiple anti-slip recesses 25, and the multiple anti-slip recesses 25 are arranged at intervals along the circumference of the housing 21.

[0080] The above-mentioned optional embodiments of this application achieve the following technical effects: the addition of the anti-slip recess 25 increases the friction coefficient of the surface of the monitoring component 20, allowing the user to grip it more firmly when picking it up or putting it in the headrest, especially in humid or oily environments, effectively preventing slippage and reducing the risk of the device falling or being damaged. The multiple spaced anti-slip recesses 25 provide the user with multiple gripping points, so that no matter which angle the monitoring component is operated from, a suitable anti-slip point can be found for gripping, making the installation, disassembly or carrying process more convenient and effortless.

[0081] In one exemplary embodiment, such as Figure 6As shown, the housing 21 includes a front housing and a rear housing. The rear housing has a mounting cavity. The module connector assembly 23, battery module 27, wireless module 28, and main control module 29 are integrated on the PCB board. The bottom of the rear housing has a limiting structure, and the PCB board is mounted on the limiting structure. There are two microphone modules 24, which are symmetrically mounted inside the rear housing about the PCB board. The front housing has a positioning hole in the middle, and the pressure sensing module 22 is mounted on the positioning hole. There are three heart rate detection modules 26, which are arranged circumferentially along the edge of the pressure sensing module 22. The three heart rate detection modules 26 are spaced apart on the front housing. The front housing is fastened to the rear housing. There are two anti-slip recesses 25, which are symmetrically arranged at both ends of the rear housing in the length direction. The module connector assembly 23 is arranged at the first end of the rear housing in the width direction.

[0082] This application also provides a vehicle, including a car seat, which is the car seat described above.

[0083] The embodiments of this application achieve the following technical effects: The monitoring component can monitor passengers' physiological indicators in real time, such as heart rate, blood pressure, and even fatigue level. For drivers, this helps prevent driving accidents caused by health reasons. If an abnormality is detected, the system can issue an early warning and take measures, such as automatically adjusting the in-vehicle environment, issuing warning signals, or activating autonomous driving to ensure safety. For passengers with chronic diseases, the health monitoring seat can provide continuous health data recording, which helps doctors remotely monitor the condition and adjust treatment plans in a timely manner, while also reducing the burden of self-monitoring for passengers. When resting or camping in the car, the seat health monitoring system can monitor sleep quality, such as the number of times the passenger turns over and sleep talking. By adjusting the seat tilt, temperature, and other conditions, it helps passengers obtain higher quality sleep, which is especially important for drivers who frequently need to drive long distances.

[0084] In this application, "multiple" refers to two or more.

[0085] In this application, unless otherwise expressly defined, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection between two components. Those skilled in the art can understand the specific meaning of the above terms in this application based on the specific circumstances.

[0086] The terms “first,” “second,” “third,” “fourth,” etc., in this application (if present) are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence.

[0087] In this application, the term "and / or" is merely a description of the relationship between related objects, indicating that three relationships can exist. For example, A and / or B can represent: A existing alone, A and B existing simultaneously, or B existing alone. Additionally, in this application, the character " / " generally indicates that the preceding and following related objects have an "or" relationship.

[0088] Unless otherwise specified, all steps in this application may be performed sequentially or randomly. For example, the method includes steps A and B, indicating that the method may include steps A and B performed sequentially, or steps B and A performed sequentially. For example, the method may also include step C, indicating that step C may be added to the method in any order. For example, the method may include steps A, B, and C, or steps A, C, and B, or steps C, A, and B, etc.

Claims

1. An automobile seat characterized by comprising: include: Seat headrest assembly (10); The monitoring component (20) is detachably connected to the seat headrest assembly (10), the monitoring component (20) has a working position that cooperates with the seat headrest assembly (10), and the monitoring component (20) has a detached position that is separated from the seat headrest assembly (10), the monitoring component (20) is used to detect and generate health status data of the target object.

2. The automobile seat according to claim 1, characterized by The seat headrest assembly (10) includes: The headrest body (11) is provided with a limiting space (111), which extends along a first preset direction. When the monitoring component (20) is in the working position, at least a portion of the monitoring component (20) is disposed within the limiting space (111).

3. The automobile seat according to claim 1 or 2, characterized in that, The monitoring component (20) includes: The housing (21) is provided with a mounting cavity; A monitoring module is disposed within the mounting cavity, and the monitoring module is used to detect and generate health status data of the target object.

4. The car seat according to claim 3, characterized in that, The monitoring module includes: Pressure sensing module (22), the pressure sensing module (22) is used to acquire head pressure data; Heart rate detection module (26), the heart rate detection module (26) is used to acquire heart rate data; A sound receiving module (24) is used to acquire snoring data and babbling data; The main control module (29) is disposed on the housing (21). The main control module (29) is electrically connected to the pressure sensing module (22), the heart rate detection module (26), and the radio module (24). Based on the head pressure data obtained by the pressure sensing module, the main control module (29) controls the heart rate detection module (26) and the radio module (24) to be in working mode. Based on the heart rate data obtained by the heart rate detection module, and based on the snoring data and babbling data obtained by the radio module (24), the main control module (29) generates the health status data.

5. The car seat according to claim 4, characterized in that, The monitoring module also includes: The wireless module (28) is wirelessly connected to an external device and electrically connected to the main control module (29). The main control module (29) controls the wireless module (28) to be in the mode of sending human health status data.

6. The car seat according to claim 5, characterized in that, The monitoring module also includes: A module connector assembly (23) is electrically connected to the wireless module (28), the pressure sensing module (22), the main control module (29), the heart rate detection module (26), and the radio module (24), respectively. The module connector assembly (23) is used for detachable connection with an external power supply device. At least a portion of the module connector assembly (23) has a charging position that cooperates with the external power supply device, and the module connector assembly (23) has an idle position that is detached from the external power supply device.

7. The car seat according to claim 6, characterized in that, The monitoring module also includes: A battery module (27) is electrically connected to the module socket assembly (23), the wireless module (28), the pressure sensing module (22), the main control module (29), the heart rate detection module (26), and the radio module (24), respectively. The battery module (27) is used to supply power to the wireless module (28), the pressure sensing module (22), the main control module (29), the heart rate detection module (26), and the radio module (24), respectively. The module socket assembly is used to connect the battery module (27) to the external power supply device.

8. The car seat according to claim 2, characterized in that, The seat headrest assembly (10) also includes: A headrest connector assembly (12) is connected to the seat headrest body (11). At least a portion of the headrest connector assembly (12) is disposed within the limiting space (111). When the monitoring component (20) has a working position that cooperates with the seat headrest assembly (10), the headrest connector assembly (12) is engaged with the monitoring component (20).

9. The automobile seat according to claim 8, characterized in that, The seat headrest body (11) is provided with a clearance space (112), which is located at the top opening of the limiting space (111).

10. The automobile seat according to claim 3, characterized in that, The monitoring component (20) further includes: anti-slip recesses (25), wherein there are multiple anti-slip recesses (25), and the multiple anti-slip recesses (25) are arranged at intervals along the circumference of the housing (21).

11. A vehicle, including an automobile seat, characterized in that, The car seat is the car seat according to any one of claims 1-10.