Wearable physiological parameter monitoring equipment
By employing diverse wearing methods and combining fasteners with flexible wearables or straps, the problem of existing devices easily shifting or falling off during exercise has been solved. This enables stable monitoring of physiological parameters in different scenarios, improving the applicability of the device and the accuracy of the data.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- LIGHTIN INC
- Filing Date
- 2025-04-15
- Publication Date
- 2026-04-10
AI Technical Summary
Existing physiological parameter monitoring devices have a single wearing method, which makes them prone to shifting or falling off during user movement or activity, affecting the accuracy of monitoring data and failing to meet the usage needs of different scenarios.
A wearable physiological parameter monitoring device is provided, which can achieve diverse wearing methods by combining fasteners with flexible wearable materials or straps. The device can be stably connected to different parts of the body, including swimming caps, clothing, headbands, etc., by using clamping force and buckle structure.
This improves the applicability and stability of the device, ensuring accurate monitoring of physiological parameters in various scenarios, preventing the device from shifting or falling off during movement, and enhancing ease of use and data accuracy.
Smart Images

Figure CN224099344U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the field of intelligent devices, in particular to a wearable physiological parameter monitoring device. BACKGROUND
[0002] With the increasing awareness of health, people pay more and more attention to real-time monitoring of their own physiological parameters. Whether in the field of sports fitness, daily life or medical rehabilitation, real-time monitoring of physiological indicators such as heart rate, blood pressure and blood oxygen saturation is particularly important to avoid health problems caused by excessive exercise. However, the existing monitoring devices still have some shortcomings. The wearing way of some monitoring devices is relatively single, and they can usually only be fixed on a certain part of the body such as the wrist, arm, etc. through a band. This wearing way may not be stable enough in some cases and is prone to displacement or falling off during user movement or activity, thereby affecting the accuracy of the monitoring data. Moreover, the single wearing way cannot meet the user's usage requirements in different scenarios, for example, in swimming, sleeping and other scenarios, the band-type fixing way may bring inconvenience to the user.
[0003] In view of this, it is necessary to propose a new technical scheme to overcome the shortcomings in the prior art. CONTENT OF THE INVENTION
[0004] In order to solve the above problems, the present application provides a wearable physiological parameter monitoring device, which can realize the diversification of the wearing way, improve the applicability and stability of the device main body, and ensure accurate monitoring of physiological parameters in various scenarios.
[0005] The present application provides a wearable physiological parameter monitoring device, comprising:
[0006] A device main body comprising a shell and a battery and a mainboard arranged in the shell, the shell comprising a first surface, a second surface arranged oppositely, and a side wall formed by the extension and butt joint of the first surface and the second surface;
[0007] A physiological sensing unit arranged on the first surface and configured to collect physiological parameters of a user; wherein the physiological sensing unit and the battery are electrically connected to the mainboard;
[0008] A fixing member assembled to the device main body, which fixes a flexible wearable article through the clamping force between the fixing member and the second surface or the side wall; or the fixing member is connected with a band to enable the device main body to be worn on a part of the user where physiological parameters are to be monitored.
[0009] The following also provides several optional modes, but not as an additional limitation of the above general scheme, just a further supplement or preferred, without technical or logical contradiction, each optional mode can be combined alone for the above general scheme, but also can be combined between multiple optional modes.
[0010] Optionally, the physiological sensing unit comprises at least one sensor for detecting at least one physiological parameter of heart rate, blood pressure, blood oxygen, body temperature.
[0011] Optionally, the first surface is provided with a first area and a second area, the first area and the second area are spaced apart; the first area is provided with a photoelectric sensor configured to detect heart rate and / or blood oxygen, and the second area is provided with a temperature sensor configured to detect body surface temperature.
[0012] Optionally, the side wall is recessed to form a clamping groove, and the opening of the fixing member is inwardly extended to form a clamping boss, and the clamping boss is embedded in the clamping groove; or the side wall is provided with a clamping boss, and the opening of the fixing member is recessed to form a clamping groove, and the clamping boss and the clamping groove form a clamping structure, so that the fixing member and the equipment main body are detachably connected.
[0013] Optionally, the edge upper surface and the lower surface of the fixing member gradually approach from inside to outside to form an inverted bevel structure.
[0014] Optionally, the fixing member comprises a clamping part, and the clamping part is fixedly or rotatably connected to the equipment main body, so that the flexible wearable is accommodated in the space formed by the clamping part and the equipment main body.
[0015] Optionally, the monitoring device further comprises a handle mounted on the fixing member.
[0016] Optionally, the fixing member has a belt passing hole for the belt to pass through.
[0017] Optionally, the flexible wearable is a wearable article adapted to different parts of the human body, including but not limited to a swimming cap, a piece of clothing, a headband, an arm band, a wristband, a sock band, a waistband, a chest band or a combination thereof.
[0018] Optionally, the fixing member comprises a connecting part, one end of the connecting part is fixedly connected with the second surface, the other end is gap-set with the second surface, two ribs are mounted on the side of the connecting part close to the second surface, the second surface is recessed to form a groove, or the side of the connecting part close to the second surface is recessed to form a groove, and the second surface is provided with two ribs, and the belt is accommodated in the space formed between the two ribs and the groove.
[0019] Optionally, the fixing member comprises a main body part with an arc surface, one of the second surfaces is provided with a buckle, and the other is provided with a clamping groove, the buckle and the clamping groove are matched, and the second surface is concave to form a groove, and the bandage is accommodated in the space formed between the arc surface and the groove.
[0020] Optionally, the battery is a rechargeable lithium battery, and the shell is provided with a wireless charging receiving coil and / or a charging terminal for charging the battery.
[0021] Optionally, a power bank is assembled on the fixing member, and the power bank is internally provided with a transmitting coil magnetically coupled with the wireless charging receiving coil.
[0022] The wearable physiological parameter monitoring device of the present application first connects the fixing member with the device main body when the monitoring device is configured on the flexible wearable object, and then clamps and fixes the fixing member on the flexible wearable object, so as to realize stable connection of the monitoring device with the flexible wearable object; the clamping and fixing design can effectively avoid displacement or falling of the monitoring device during movement.
[0023] The monitoring device is stably worn on the user's limbs by the cooperation of the fixing member and the bandage, so as to realize convenient wearing and use of the monitoring device by the user.
[0024] The present application can fix the flexible wearable object such as a swimming cap, clothing, headband, etc. by the clamping force between the fixing member and the second surface or the side wall, wear the device main body on different parts of the body, and also can connect the device main body to the wrist, arm, waist, etc. by the fixing member and the bandage. The diversified wearing mode improves the applicability and stability of the device main body, and ensures accurate monitoring of physiological parameters in various scenes. BRIEF DESCRIPTION OF DRAWINGS
[0025] Figure 1 An embodiment of the wearable physiological parameter monitoring device provided by the present application is a structural schematic diagram;
[0026] Figure 2 An embodiment of the wearable physiological parameter monitoring device provided by the present application is a structural schematic diagram; Figure 1 An embodiment of the wearable physiological parameter monitoring device provided by the present application is a structural schematic diagram;
[0027] Figure 3 An embodiment of the wearable physiological parameter monitoring device provided by the present application is a structural schematic diagram;
[0028] Figure 4 An embodiment of the wearable physiological parameter monitoring device provided by the present application is a structural schematic diagram; Figure 1 An embodiment of the wearable physiological parameter monitoring device provided by the present application is an exploded structural schematic diagram;
[0029] Figure 5 An embodiment of the wearable physiological parameter monitoring device provided by the present application is an exploded structural schematic diagram; Figure 4 An embodiment of the wearable physiological parameter monitoring device provided by the present application is an exploded structural schematic diagram;
[0030] Figure 6 Another embodiment of a wearable physiological parameter monitoring device according to the present application is provided in the form of a schematic structural diagram;
[0031] Figure 7 Another embodiment of a wearable physiological parameter monitoring device according to the present application is provided in the form of a schematic structural diagram; Figure 6 Another embodiment of a wearable physiological parameter monitoring device according to the present application is provided in the form of a schematic structural diagram;
[0032] Figure 8 Another embodiment of a wearable physiological parameter monitoring device according to the present application is provided in the form of a schematic structural diagram;
[0033] Figure 9 Another embodiment of a wearable physiological parameter monitoring device according to the present application is provided in the form of a schematic structural diagram;
[0034] Figure 10 Another embodiment of a wearable physiological parameter monitoring device according to the present application is provided in the form of a schematic structural diagram; Figure 6 Another embodiment of a wearable physiological parameter monitoring device according to the present application is provided in the form of a schematic structural diagram;
[0035] Figure 11 Another embodiment of a wearable physiological parameter monitoring device according to the present application is provided in the form of a schematic structural diagram; Figure 10 Another embodiment of a wearable physiological parameter monitoring device according to the present application is provided in the form of a schematic structural diagram;
[0036] Figure 12 Another embodiment of a wearable physiological parameter monitoring device according to the present application is provided in the form of a schematic structural diagram;
[0037] Figure 13 Another embodiment of a wearable physiological parameter monitoring device according to the present application is provided in the form of a schematic structural diagram;
[0038] Figure 14 Another embodiment of a wearable physiological parameter monitoring device according to the present application is provided in the form of a schematic structural diagram;
[0039] Figure 15 Another embodiment of a wearable physiological parameter monitoring device according to the present application is provided in the form of a schematic structural diagram;
[0040] Figure 16 Another embodiment of a wearable physiological parameter monitoring device according to the present application is provided in the form of a schematic structural diagram;
[0041] Figure 17 Another embodiment of a wearable physiological parameter monitoring device according to the present application is provided in the form of a schematic structural diagram;
[0042] Figure 18 Another embodiment of a wearable physiological parameter monitoring device according to the present application is provided in the form of a schematic structural diagram;
[0043] Figure 19 Another embodiment of a wearable physiological parameter monitoring device according to the present application is provided in the form of a schematic structural diagram;
[0044] Figure 20 Another embodiment of a wearable physiological parameter monitoring device according to the present application is provided in the form of a schematic structural diagram.
[0045] The reference signs in the drawings are explained as follows:
[0046] 100, monitoring device; 101, flexible wearable; 102, strap;
[0047] 10, device body; 11, housing; 111, first surface; 112, second surface; 113, side wall;
[0048] 20, physiological sensing unit; 201, photoelectric sensor; 202, temperature sensor;
[0049] 30, fixing member; 31, strap hole; 32, clamping portion; 33, connecting portion; 34, rib; 35, groove; 36, body portion; 37, buckle; 38, clamping groove;
[0050] 40, buckle matching structure; 41, clamping groove; 42, clamping boss;
[0051] 50, handle;
[0052] 60, battery; 61, wireless charging receiving coil; 62, charging terminal;
[0053] 70, main board. DETAILED DESCRIPTION
[0054] The technical solutions in the embodiments of the present application will be described clearly and completely below in conjunction with the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments of the present application. Based on the embodiments in the present application, all the other embodiments obtained by those skilled in the art without creative work belong to the scope of protection of the present application.
[0055] It should be noted that when a component is referred to as being “connected” with another component, it can be directly connected with the other component or there can be a middle component. When a component is referred to as being “disposed on” another component, it can be directly disposed on the other component or there can be a middle component.
[0056] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this application belongs. The terminology used in the description of the application herein is for the purpose of describing particular embodiments only and is not intended to be limiting of the application. As used in this description, the terms “and / or” includes any and all combinations of one or more of the associated listed items.
[0057] As Figures 1 to 20As shown, the present application provides a wearable physiological parameter monitoring device 100, comprising a device main body 10, which comprises a shell 11 and a battery 60, a mainboard 70 arranged in the shell 11, the shell 11 comprising a first surface 111, a second surface 112 oppositely arranged, and a side wall 113 extending and connecting the first surface 111 and the second surface 112; a physiological sensing unit 20 arranged on the first surface 111 and configured to collect physiological parameters of a user; wherein the physiological sensing unit 20 and the battery 60 are electrically connected with the mainboard 70; a fixing member 30 assembled on the device main body 10, and the flexible wearable article 101 is fixed by the clamping force between the fixing member 30 and the second surface 112 or the side wall 113. Specifically, the fixing member 30 is assembled on the second surface 112 or the side wall 113 to fix the flexible wearable article by the clamping force between the fixing member 30 and the second surface or the side wall 113.
[0058] The shell 11 is made of waterproof, dustproof and wear-resistant material, which can adapt to different use environments, mainly plays a role in protecting the internal battery 60, mainboard 70 and physiological sensing unit 20 from external factors, and prolongs the service life of the device main body 10. The first surface 111 of the shell 11 is the side that contacts the human body, and the second surface 112 faces the external environment.
[0059] The physiological sensing unit 20 comprises at least one sensor for detecting at least one physiological parameter of heart rate, blood pressure, blood oxygen, body temperature. The first surface 111 is provided with a first area and a second area, and the first area and the second area are spaced apart; the first area is provided with a photoelectric sensor 201 configured to detect heart rate and / or blood oxygen, and the second area is provided with a temperature sensor 202 configured to detect body surface temperature. Through the arrangement of multiple sensors, comprehensive monitoring of multiple physiological parameters can be realized. All sensors are electrically connected with the mainboard 70, ensuring that data can be processed and transmitted in time.
[0060] When the physiological parameter detected by the physiological sensing unit 20 includes heart rate, HRV data can be obtained from heart rate data. Specifically, the (photoelectric) sensor is used to continuously record heart rate data for a period of time, usually at least several minutes or even longer continuous recording is required to obtain sufficient samples, the R wave peak value between adjacent heartbeats is identified and extracted from the heart rate data, the time interval between adjacent R waves, i.e. R-R interval, is calculated, the R-R interval data is processed such as filtering, and various HRV indexes such as standard deviation, coefficient of variation, etc. are calculated by using time domain analysis, frequency domain analysis, etc. to reflect the characteristics of heart rate variability.
[0061] As Figure 14As shown, the battery 60 is a rechargeable lithium battery. A wireless charging receiving coil 61 and / or a charging terminal 62 are provided inside the housing 11 for charging the battery 60. The wireless charging receiving coil 61 supports wireless charging, and the charging terminal 62 supports wired charging. Specifically, the charging terminal 62 is located on the first surface 111 of the housing 11. Preferably, the housing 11 contains both a wireless charging receiving coil 61 and a charging terminal 62, providing two charging methods. This means that users can flexibly choose the most suitable charging method according to their actual situation and personal preferences. Whether traveling or using it daily, the device can always have sufficient power and is not limited by a specific charging method. Even if wireless charging encounters problems, such as a faulty or incompatible wireless charging pad, the user can still ensure the normal operation of the device 10 through wired charging. In other words, having dual charging modes increases compatibility with other devices or accessories, improving overall user experience satisfaction.
[0062] In other embodiments, such as Figure 18 As shown, a power bank is mounted on the fixing member 30. The power bank has a built-in transmitting coil that is magnetically coupled to the wireless charging receiving coil 61 to achieve wireless charging of the battery 60 of the device body 10. The power bank is connected to the device body 10 through the fixing member 30.
[0063] The motherboard 70 is responsible for processing and analyzing the physiological parameters collected by the physiological sensing unit 20. Specifically, the motherboard 70 integrates a high-performance data processing chip and a storage module. The data processing chip can process and analyze the physiological parameters collected by the physiological sensing unit 20 in real time, and the storage module can store physiological parameter data within a certain period of time for later viewing and analysis.
[0064] In addition, the motherboard 70 also integrates a wireless communication module, which supports communication protocols such as Bluetooth and Wi-Fi. This module can transmit the collected and processed physiological parameters to external devices (such as smartphones and tablets) for remote viewing and management by users.
[0065] In other embodiments, the monitoring device also includes a vibration motor disposed in the housing 11, the vibration motor being electrically connected to the motherboard 70, the photoelectric sensor 201 detecting heart rate and / or blood oxygen signals, and the data processing chip on the motherboard 70 processing the signals to determine whether they exceed a preset threshold. If they exceed the preset threshold, the data processing chip sends a signal to the vibration motor to perform an alert action.
[0066] The flexible wearable 101 is a wearable article adapted to different parts of the human body, including but not limited to a swimming cap, a piece of clothing, a headband, an arm band, a wrist band, a sock band, a waistband, a chest band, or a combination thereof. Such a variety of flexible wearable carriers makes the wearing of the device body more flexible, and can meet the use requirements of different users in different scenarios. Figure 3 Exemplarily, the use scenario of the flexible wearable 101 as a swimming cap is shown. When the flexible wearable 101 is a swimming cap, the monitoring device 100 can be clamped on the forehead, temple, back of the head, or the like of the user through the swimming cap. When the monitoring device 100 is configured on the flexible wearable 101, first, the user selects a suitable flexible wearable according to the needs, and then places the device body 10 and the fixing member 30 on the two sides of the flexible wearable 101 respectively, and then connects the fixing member 30 and the device body 10. The flexible wearable 101 can be fixed by the clamping force between the fixing member 30 and the second surface or the side wall. The flexible wearable is clamped firmly by the elasticity of the soft rubber material of the fixing member 30 and the cooperation of the clamping groove 41 and the clamping boss 42. Then, the flexible wearable 101 with the device body 10 is worn on the corresponding body part, such as the head, arm, or the like, so that the physiological sensing unit 20 is in contact with the skin, and the physiological parameters can be collected. The clamping and fixing design can effectively prevent the monitoring device 100 from being displaced or falling off during the movement.
[0067] When the flexible wearable 101 is worn on the corresponding body part, the device body 10 is located on the inner side of the flexible wearable 101, i.e., the first surface 111 is in contact with the body part; the fixing member 30 is located on the outer side of the flexible wearable 101, i.e., the second surface 112 faces the external environment, and at the same time, the second surface 112 is covered by the flexible wearable 101; the flexible wearable 101 such as the swimming cap, sports vest, or the like is distributed and clamped on both sides to form a relatively stable support structure. When the user performs swimming, high-intensity exercise, or the like, the monitoring device will not be easily displaced, shaken, or fallen off due to the violent swinging of the body, the friction of the clothes, or the impact of the water flow, so as to ensure that the physiological sensing unit 20 on the device body 10 can continuously and stably monitor the physiological parameters (including heart rate value, blood oxygen value, and body temperature value, etc.) of the user. At the same time, such a clamping and fixing design avoids too many complex modifications on the flexible wearable, maximally maintains the original structure, and simplifies the wearing process. The user does not need to perform complex operations, but only needs to fix the device body 10 and the fixing member 30 on the flexible wearable in the clamping manner on both sides, so as to easily wear the device, and the device can be quickly taken off for charging or replacement, thereby improving the use convenience.
[0068] In this embodiment, as shown in FIG. 1, the device body 10 and the fixing member 30 are respectively arranged on the two sides of the flexible wearable 101. Figures 1 to 5As shown, the device body 10 serves as the main bearing component of the monitoring device 100, providing the basis for mounting the physiological sensing unit 20 and other components. The shape of the device body 10 is not strictly limited, as long as the device body 10 can bear the physiological sensing unit 20 and other components, etc.; for example, the device body 10 is in a circular structure, a square structure, a strip structure, an oval structure, or a waist-shaped structure, etc.
[0069] In the embodiment, as shown in Figures 1 to 5 The shape of the fixing member 30 is not strictly limited, as long as the fixing member 30 can be mounted on the device body 10; for example, the fixing member 30 is arranged in a ring shape. The fixing member 30 is made of soft rubber material, and the hardness is Shore A 70-100, preferably Shore A 90, so as to facilitate assembly on the device body 10.
[0070] In the embodiment, as shown in Figures 1 to 5 The side wall 113 is recessed to form a clamping groove 41, and the opening of the fixing member 30 extends inwardly to form a clamping boss 42, which is embedded in the clamping groove 41; or the side wall 113 is provided with a clamping boss 42, and the opening of the fixing member 30 is recessed to form a clamping groove 41, and the clamping boss 42 and the clamping groove 41 form a snap-fit structure 40, so that the fixing member 30 and the device body 10 are detachably connected. That is, the fixing member 30 is sleeved on the outer circumferential side of the device body 10, so as to further improve the stability of the monitoring device 100 on the flexible wearable 101. This design forms a wrapping relationship between the fixing member 30 and the device body 10, increases the contact area and friction between the two, and improves the stability of clamping on the flexible wearable 101. In addition, the snap-fit structure 40 can facilitate the disassembly between the device body 10 and the fixing member 30. When it is necessary to install the fixing member 30 on the device body 10, the clamping boss 42 is only needed to be embedded in the clamping groove 41. This clamping method is not only simple and easy to operate, but also has high stability and reliability, and the flexible wearable 101 is clamped between the clamping boss 42 and the clamping groove 41.
[0071] In the embodiment, as shown in Figures 4 to 5 The clamping groove 41 is arranged on the outer side of the device body 10, and the clamping boss 42 is arranged on the inner side of the fixing member 30. The clamping boss 42 is in a ring shape or a ring-like structure, and the inner circumference length dimension along the circumferential direction is smaller than the outer circumference length dimension of the outer surface of the side wall 113 along the circumferential direction, and is equal to the outer circumference length dimension of the clamping groove 41 along the circumferential direction, so that when the fixing member 30 is sleeved on the side wall 113, the clamping boss 42 and the clamping groove 41 can form an interference fit or have a certain radial pre-tightening force, thereby ensuring the stable clamping of the flexible wearable. Of course, in other embodiments, the clamping groove 41 is arranged on the outer side of the fixing member 30, and the clamping boss 42 is arranged on the inner side of the device body 10.
[0072] In the embodiment, as shown in Figures 4 to 5 , the clamping grooves 41 are arranged continuously around the circumference of the device body 10; correspondingly, the clamping bosses 42 are arranged continuously or segmentally around the circumference of the fixing member 30 to match the clamping grooves 41, so as to ensure the clamping stability while reducing the complexity and manufacturing cost of the clamping fitting structure 40. In addition, no matter how the fixing member 30 rotates or moves relative to the device body 10, the clamping bosses 42 can always be in a clamping state with the clamping grooves 41, thereby ensuring that the connection between the device body 10 and the fixing member 30 will not loosen or fall off. Of course, in other embodiments, the clamping grooves 41 are arranged segmentally around the circumference of the device body 10; correspondingly, the clamping bosses 42 are arranged segmentally around the circumference of the fixing member 30 to match the clamping grooves 41.
[0073] In the embodiment, as shown in Figures 4 to 5 , the clamping bosses 42 are arranged integrally with the fixing member 30, so as to enhance the structural strength of the clamping bosses 42 and the fixing member 30 and reduce the processing difficulty of the clamping bosses 42 and the fixing member 30.
[0074] In the embodiment, the edge upper surface and the edge lower surface of the fixing member 30 gradually approach from inside to outside, so as to form an inverted bevel structure; the edge of the fixing member 30 is processed as an inverted bevel, on one hand, the bevel edge is smaller in volume than the right-angle edge in visual effect, and on the other hand, the inverted bevel forms a guide slope to reduce the resistance in the clamping process.
[0075] In the embodiment, as shown in Figures 1 to 5 and Figure 20 , the monitoring device 100 further comprises a handle 50 installed on the fixing member 30. The handle 50 is arranged to facilitate the disassembly and assembly of the fixing member 30 and the device body 10. Specifically, the handle 50 is arranged integrally with the fixing member 30, so as to enhance the structural strength of the handle 50 and the fixing member 30 and reduce the processing difficulty of the handle 50 and the fixing member 30. Specifically, the handle 50 is a pull ring extending around the outer periphery of the fixing member 30.
[0076] As shown in Figures 6 to 12 and Figures 16 to 17As shown, the present application also provides a wearable physiological parameter monitoring device 100, comprising a device main body 10, a physiological sensing unit 20 and a fixing member 30, the physiological sensing unit 20 is installed on the device main body 10; the fixing member 30 can be installed on the device main body 10, and the fixing member 30 can be detachably connected with the device main body 10 or integrally connected with the device main body 10, preferably, the fixing member 30 is detachably connected with the device main body 10; wherein the fixing member 30 can be connected with a bandage 102, so that the device main body 10 can be worn on the part of the user where the physiological parameter needs to be monitored. The monitoring device 100 can be stably worn on the part of the user where the physiological parameter needs to be monitored through the cooperation of the fixing member 30 and the bandage 102; the physiological sensing unit 20 located on the device main body 10 can monitor the physiological parameters of the user in real time.
[0077] Among them, the structure and connection mode of the device main body 10, the physiological sensing unit 20 and the fixing member 30 can refer to the above embodiments, which will not be further described here.
[0078] In this embodiment, as shown in Figure 8 and Figure 9 , the bandage 102 can be an arm band, a wrist band, a finger band, a chest band, a watch band, a head band or a swimming goggles band, etc. The part where the bandage 102 is worn can be the wrist, the arm, the chest, the finger, the neck, the leg or the head.
[0079] In order to connect the bandage 102 with the fixing member 30, referring to one of the embodiments, as shown in Figures 6 to 11 , the fixing member 30 has a band passing hole 31 for the bandage 102 to pass through. Through the design of the buckle cooperation structure 40 and the band passing hole 31, the wearing and dismounting of the monitoring device 100 in different scenes can be conveniently realized. The band passing hole 31 is in the shape of an ellipse or an oblong, etc., so as to allow the bandage 102 to have a certain adjustment range when passing through.
[0080] In other embodiments, as shown in Figure 12 , the fixing member 30 is in a hook structure, the fixing member 30 is assembled on the device main body 10, specifically, the fixing member 30 is fixedly installed on the second surface 112 of the shell 11, and the bandage 102 passes through the band passing hole 31 on the fixing member 30.
[0081] In this embodiment, as shown in Figures 6 to 12 , the number of band passing holes 31 can be set to one or more as needed. In this embodiment, the number of band passing holes 31 is two, which are located on both sides of the fixing member 30. In this way, the user can pass the two ends of the bandage 102 through the corresponding band passing holes 31 respectively, and tighten the bandage 102 on the user's limbs, so as to realize the wearing of the monitoring device 100. In other embodiments, as shown in Figure 19As shown, when the strap 102 is a swimming goggles strap, the swimming goggles strap is used to fix the device main body 10 at the temple position of the user's head through the strap hole 31, and of course, the swimming goggles strap can also be used to fix the device main body 10 at the back of the user's head.
[0082] If the user chooses to fix the device main body 10 by using the strap 102, the strap 102 is passed through the strap hole 31 on the fixing member 30, and then the strap 102 is wound around the user's limbs, such as the wrist, arm, etc., and the tightness of the strap 102 is adjusted, so that the device main body 10 is firmly fixed on the user's limbs, and it is ensured that the physiological sensing unit 20 can accurately collect physiological parameters.
[0083] In other embodiments, as shown in Figure 16 The fixing member 30 includes a connecting portion 33, one end of the connecting portion 33 is fixedly connected with the second surface 112, and the other end is arranged in a gap with the second surface 112. Two ribs 34 are installed on the side of the connecting portion 33 close to the second surface 112. The second surface 112 is concave to form a groove 35, or the connecting portion 33 is concave to form a groove 35 on the side close to the second surface 112, and the second surface 112 is installed with two ribs 34. The strap 102 is accommodated in the space formed between the two ribs 34 and the groove 35. The gap between the connecting portion 33 and the second surface 112 is arranged to facilitate the strap to be clamped into the space formed between the two ribs 34 and the groove 35. Figure 15 Exemplarily, the case that the connecting portion 33 is installed with two ribs 34 and the second surface is concave to form a groove 35 is shown.
[0084] In other embodiments, as shown in Figure 17 The fixing member 30 includes a main body portion 36 with an arc surface. One of the main body portion 36 and the second surface 112 is provided with a buckle 37, and the other is provided with a clamping groove 38. The buckle 37 cooperates with the clamping groove 38. The second surface 112 is concave to form a groove 35. The strap 102 is accommodated in the space formed between the arc surface and the groove 35. Figure 16 Exemplarily, the case that the main body portion 36 is provided with a buckle and the second surface 112 is provided with a clamping groove 38 is shown. When the main body portion 36 is connected with the shell 11 by clamping between the buckle 37 and the clamping groove 38, in order to facilitate the removal of the main body portion 36, the end of the shell 11 is also provided with a pulling groove, which is in communication with the groove 35, so that the user's fingertip part can be conveniently inserted to remove the main body portion 36.
[0085] As shown in Figures 12 to 13 The application also provides a wearable physiological parameter monitoring device 100, which includes a device main body 10, a physiological sensing unit 20, and a fixing member 30. The physiological sensing unit 20 is installed on the device main body 10. The fixing member 30 can be installed on the device main body 10. The fixing member 30 can be clamped and fixed on the flexible wearable object 101.
[0086] The structure and connection mode of the device body 10, the flexible wearable 101, the physiological sensing unit 20, and the like can refer to the above embodiments, and will not be further described here.
[0087] In the embodiment, as shown in the figure, Figures 12 to 13 The fixing member 30 includes a clamping portion 32 fixedly or rotatably connected to the device body 10, so that the flexible wearable 101 is accommodated in the space formed by the clamping portion 32 and the device body 10. The clamping portion 32 is clamped and fixed to the flexible wearable by cooperation with the device body 10, so that the monitoring device 100 can be stably connected to the flexible wearable 101.
[0088] In the embodiment, as shown in the figure, Figures 12 to 13 The clamping portion 32 is substantially in a rod structure, and has a first end and a second end along the length or width direction of the clamping portion 32. The first end of the clamping portion 32 is fixedly or movably connected to the device body 10, and the second end is abutted or spaced apart from the device body 10.
[0089] In the embodiment, as shown in the figure, Figure 12 When the clamping portion 32 is movably connected to the device body 10, the clamping portion 32 is rotatably installed on the device body 10 by a pin shaft. A torsional spring can be arranged between the clamping portion 32 and the device body 10, and the torsional spring can drive the second end of the clamping portion 32 to abut the device body 10.
[0090] In the embodiment, as shown in the figure, Figure 13 When the clamping portion 32 is fixedly connected to the device body 10, the clamping portion 32 can be elastically deformed, so as to adjust the size of the space formed by the clamping portion 32 and the device body 10 according to the thickness of the flexible wearable.
[0091] The technical features of the above embodiments can be combined in any manner. To make the description concise, all possible combinations of the technical features in the above embodiments are not described, but as long as the combinations of the technical features do not exist, they should be considered as the scope disclosed in the specification. When the technical features in different embodiments are embodied in the same figure, it is considered that the figure also discloses the combination of the embodiments involved.
[0092] The above embodiments only express several implementation manners of the present application, and the description is relatively specific and detailed, but it should not be understood as a limitation on the patent application scope. It should be noted that for ordinary skilled persons in the art, without departing from the concept of the present application, a number of modifications and improvements can be made, which are within the protection scope of the present application.
Claims
1. A wearable physiological parameter monitoring device, characterized by, The device comprises: a device body comprising a shell and a battery, a mainboard arranged in the shell, the shell comprising a first surface, a second surface and a sidewall extending from the first surface and the second surface; a physiological sensing unit arranged on the first surface and configured to collect physiological parameters of a user, wherein the physiological sensing unit and the battery are electrically connected to the mainboard; a fixing member assembled to the device body and fixed to the second surface or the sidewall by clamping force therebetween, or the fixing member is connected to a bandage to fix the device body to a part of the user where physiological parameters are to be monitored.
2. The wearable physiological parameter monitoring device of claim 1, wherein, The physiological sensing unit comprises at least one sensor for detecting at least one physiological parameter selected from heart rate, blood pressure, blood oxygen and body temperature.
3. Wearable physiological parameter monitoring device according to claim 1 or 2, characterized in that, The first surface is provided with a first area and a second area, and the first area and the second area are spaced apart; the first area is provided with a photoelectric sensor configured to detect heart rate and / or blood oxygen, and the second area is provided with a temperature sensor configured to detect body surface temperature.
4. The wearable physiological parameter monitoring device of claim 1, wherein, The sidewall is recessed to form a clamping groove, the opening of the fixing member extends inward to form a clamping boss, and the clamping boss is embedded in the clamping groove; or the sidewall is provided with a clamping boss, the opening of the fixing member is recessed to form a clamping groove, and the clamping boss and the clamping groove form a snap-fit structure to detachably connect the fixing member to the device body.
5. The wearable physiological parameter monitoring device of claim 4, wherein, The edge upper surface and the edge lower surface of the fixing member gradually approach from inside to outside to form an inverted bevel structure.
6. The wearable physiological parameter monitoring device of claim 1, wherein, The fixing member comprises a clamping portion fixedly or rotatably connected to the device body, so that the flexible wearable article is accommodated in a space formed by the clamping portion and the device body.
7. The wearable physiological parameter monitoring device of claim 1, wherein, The monitoring device further comprises a handle mounted to the fixing member.
8. The wearable physiological parameter monitoring device of claim 1 or 4, wherein, The fixing member has a through hole for connecting the bandage.
9. The wearable physiological parameter monitoring device of claim 1, wherein, The flexible wearable article is a wearable article adapted to different parts of the human body, including but not limited to a swimming cap, a piece of clothing, a headband, an arm band, a wristband, a sock band, a waistband, a chest band or a combination thereof.
10. The wearable physiological parameter monitoring device of claim 1, wherein, The fixing member comprises a connecting portion, one end of the connecting portion is fixedly connected to the second surface, the other end is spaced apart from the second surface, two ribs are mounted on one side of the connecting portion close to the second surface, the second surface is recessed to form a groove, or the connecting portion is recessed to form a groove on one side close to the second surface, and the second surface is provided with two ribs, and the bandage is accommodated in a space formed between the two ribs and the groove.
11. The wearable physiological parameter monitoring device of claim 1, wherein, The fixing member comprises a main body portion having an arc-shaped surface, one of the second surfaces is provided with a buckle and the other is provided with a clamping groove, the buckle and the clamping groove are matched, the second surface is recessed to form a groove, and the bandage is accommodated in a space formed between the arc-shaped surface and the groove.
12. The wearable physiological parameter monitoring device of claim 1, wherein, The battery is a rechargeable lithium battery, and the shell is provided with a wireless charging receiving coil and / or a charging terminal for charging the battery.
13. The wearable physiological parameter monitoring device of claim 12, wherein, A power bank is mounted on the fixing member, and the power bank is internally provided with a transmitting coil magnetically coupled to the wireless charging receiving coil.