Double-sided charging physiological monitoring ring
By setting up a wireless charging device and a rechargeable battery in the installation gap between the outer ring and the inner ring of the physiological monitoring ring, direct charging of the wireless charger is achieved, solving the problem of a dedicated charging stand in the prior art, and improving the charging efficiency and user experience.
Patent Information
- Application Number
- CN202421932280.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-09
- Publication Date
- 2025-08-08
- Estimated Expiration
- 2034-08-09
AI Technical Summary
The existing physiological monitoring ring needs to be set on a dedicated charging stand to charge, which makes charging difficult and reduces the user experience.
A physiological monitoring ring for double-sided charging is designed. By setting a wireless charging device and a rechargeable battery in the installation gap between the outer ring and the inner ring, allowing the wireless charging device to be set close to the inner top wall or inner bottom wall of the installation gap. The user can directly place the ring on the wireless charger for charging and charge it simultaneously through multiple wireless charging devices.
It reduces the difficulty of charging the physiological monitoring ring, improves the charging efficiency and user experience, and enhances the working reliability and connection reliability of the ring.
Smart Images

Figure CN223196064U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of wearable devices, and in particular to a double-sided charging physiological monitoring ring. Background Art
[0002] In the prior art, a physiological monitoring ring includes an inner ring and an outer ring. The inner ring is placed on the outside of the user's finger and is used to monitor the user's physiological vital signs. A wireless charging component is provided inside the physiological monitoring ring and is provided on the inner wall of the inner ring. When the user charges the physiological monitoring ring, the user needs to place the physiological monitoring ring on a dedicated charging base for charging. This charging method increases the difficulty of charging the physiological monitoring ring and reduces the user experience of the physiological monitoring ring. Utility Model Content
[0003] In order to reduce the difficulty of charging a physiological monitoring ring and improve the user experience of the physiological monitoring ring, the present application provides a double-sided charging physiological monitoring ring.
[0004] The present application provides a double-sided charging physiological monitoring ring that adopts the following technical solutions:
[0005] A double-sided charging physiological monitoring ring comprises an outer ring and an inner ring. The outer ring is sleeved onto the outer side of the inner ring and the two rings are fixedly connected. A mounting gap is defined between the outer ring and the inner ring. A physiological monitoring component is located within the mounting gap. The physiological monitoring component is used to obtain physiological information of the user. The inner ring is adapted to be sleeved onto the outer side of the user's finger.
[0006] A wireless charging component and a rechargeable battery, wherein the wireless charging component and the rechargeable battery are both arranged in the installation gap, and the wireless charging component is arranged close to the inner top wall or inner bottom wall of the installation gap, the rechargeable battery is electrically connected to the physiological monitoring component and the wireless charging component, the rechargeable battery is used to supply power to the physiological monitoring component, and the wireless charging component is used to charge the rechargeable battery.
[0007] By adopting the above technical solution, by positioning the wireless charging component near the inner top wall or inner bottom wall of the installation gap, the user can place the physiological monitoring ring directly on the wireless charger. With the wireless charging component positioned opposite the wireless charger, the wireless charging signal emitted by the wireless charger is received by the wireless charging component, allowing the wireless charging component to charge the rechargeable battery. Compared to the existing technology, there is no need to place the physiological monitoring ring on a dedicated wireless charging base to charge the physiological monitoring ring, thereby reducing the difficulty of charging the physiological monitoring ring and improving the user experience of the physiological monitoring ring.
[0008] Preferably, there are multiple wireless charging components, and the multiple wireless charging components are arranged in sequence along the height direction of the physiological monitoring ring.
[0009] By adopting the above technical solution, by arranging multiple wireless charging components in the installation gap, the multiple wireless charging components can all receive wireless charging signals in the external environment, and the multiple wireless charging components can all charge the rechargeable battery, thereby improving the charging efficiency of the physiological monitoring ring and further reducing the charging time of the physiological monitoring ring.
[0010] Preferably, the wireless charging component includes a plurality of wireless charging coils, which are spaced apart along the radial direction of the physiological monitoring ring, and are all electrically connected to the rechargeable battery.
[0011] By adopting the above technical solution, when the user places the physiological monitoring ring on the wireless charger, the wireless charging signal emitted by the wireless charger is received simultaneously by multiple wireless charging coils, and the multiple wireless charging coils charge the rechargeable battery at the same time, thereby further improving the charging efficiency of the physiological monitoring ring.
[0012] Preferably, the physiological monitoring ring also includes: a mounting bracket, the mounting bracket is arranged between the outer ring and the inner ring, the mounting bracket is provided with a first accommodating groove, the open end of the first accommodating groove is opposite to the side wall of the mounting bracket, the wireless charging component is provided in the first accommodating groove, the inner peripheral wall of the mounting bracket is provided with a second accommodating groove and a third accommodating groove, one of the physiological monitoring component and the rechargeable battery is provided in the second accommodating groove, and the other is provided in the third accommodating groove.
[0013] By adopting the above technical solution, the wireless charging component is arranged in the first receiving groove, so that the mounting bracket supports the wireless charging component, so that the wireless charging component remains in a fixed position in the installation gap, thereby preventing the wireless charging component from deviating from the preset installation position, preventing the wireless charging component from being unable to receive wireless charging signals from the external environment, and thus improving the working reliability of the physiological monitoring ring.
[0014] Preferably, a side wall of the receiving slot in which the rechargeable battery is provided is provided with a clamping portion, and the clamping portion is engaged with the rechargeable battery to fix the rechargeable battery in the receiving slot.
[0015] By adopting the above technical solution, when the physiological monitoring ring is subjected to vibration and / or impact, the rechargeable battery is fixed to the third receiving slot by using the clamping portion, which can prevent the rechargeable battery from detaching from the mounting bracket and causing the rechargeable battery to collide with the inner ring, and can prevent the rechargeable battery from being damaged and causing the ring to be unable to work normally, thereby improving the working reliability of the physiological monitoring ring.
[0016] Preferably, the physiological monitoring component includes a monitoring circuit board and at least one physiological detection component, the monitoring circuit board is formed with a monitoring circuit, the physiological detection component is arranged on the end wall of the monitoring circuit board close to the inner ring, the physiological detection component is communicatively connected with the monitoring circuit, the physiological detection component is used to detect the user's physiological sign signal, and the monitoring circuit is used to obtain the user's physiological sign information based on the detection signal of the physiological detection component.
[0017] By adopting the above technical solution, when the user wears the physiological monitoring ring, the physiological detection element detects the physiological sign signal of the user's finger, and the monitoring circuit obtains the user's physiological sign information based on the detection signal of the physiological detection element, thereby achieving the technical effect of the physiological monitoring ring monitoring the user's physiological signs. When the physiological sign information is body temperature, the physiological monitoring ring monitors the user's body temperature; when the physiological sign information is blood oxygen saturation, the physiological monitoring ring monitors the user's blood oxygen saturation.
[0018] Preferably, the physiological detection component includes a body temperature sensor and / or a blood oxygen infrared sensor.
[0019] By adopting the above technical solution, when the physiological detection component is configured as a body temperature sensor, the physiological detection component detects the user's body temperature signal, thereby achieving the technical effect of the physiological monitoring ring monitoring the user's body temperature. When the physiological detection component is configured as a blood oxygen infrared sensor, the physiological detection component detects the user's blood oxygen signal, thereby achieving the technical effect of the physiological monitoring ring monitoring the user's blood oxygen saturation.
[0020] Preferably, a fixed colloid is provided between the outer ring and the inner ring.
[0021] By adopting the above technical solution, by injecting a fixed colloid between the outer ring and the inner ring, the outer ring and the inner ring can be prevented from separating when the user uses the physiological monitoring ring, thereby improving the connection reliability between the outer ring and the inner ring.
[0022] Preferably, the physiological monitoring ring further comprises: a communication module, the physiological monitoring component is communicatively connected to the communication module, the communication module is suitable for remote communication connection with a server, and the communication module is suitable for communication connection with a mobile phone.
[0023] By adopting the above technical solution, a communication module is set in the physiological monitoring ring, and the communication module sends the user's physiological sign information to a mobile phone and / or server connected to the communication module. The user can view the physiological sign information through the application on the mobile phone, and the doctor or home coach can perform health analysis and remote monitoring based on the user's physiological sign information on the server, thereby improving the user experience of the physiological monitoring ring.
[0024] In summary, this application includes at least one of the following beneficial technical effects:
[0025] 1. By placing the wireless charging unit near the inner top wall or inner bottom wall of the installation gap, the user can place the physiological monitoring ring directly on the wireless charger. With the wireless charging unit positioned opposite the wireless charger, the wireless charging signal emitted by the wireless charger is received by the wireless charging unit, allowing the wireless charging unit to charge the rechargeable battery. Compared with existing technologies, there is no need to place the physiological monitoring ring on a dedicated wireless charging stand to charge the physiological monitoring ring, thereby reducing the difficulty of charging the physiological monitoring ring and improving the user experience of the physiological monitoring ring.
[0026] 2. By injecting a fixed colloid between the outer ring and the inner ring, the outer ring and the inner ring can be prevented from separating during the user's use of the physiological monitoring ring, thereby improving the connection reliability between the outer ring and the inner ring;
[0027] 3. By setting up a communication module in the physiological monitoring ring, the communication module sends the user's physiological sign information to the mobile phone and / or server connected to the communication module. The user can view the physiological sign information through the application on the mobile phone. The doctor or home coach can perform health analysis and remote monitoring based on the user's physiological sign information on the server, thereby improving the user experience of the physiological monitoring ring. BRIEF DESCRIPTION OF THE DRAWINGS
[0028] Figure 1 is a schematic diagram of a physiological monitoring ring according to an embodiment of the present application;
[0029] Figure 2 is a cross-sectional view of a physiological monitoring ring according to an embodiment of the present application;
[0030] Figure 3 yes Figure 2 A magnified schematic diagram of point A in the middle;
[0031] Figure 4 is a cross-sectional view from another angle of the physiological monitoring ring according to an embodiment of the present application;
[0032] Figure 5 is a cross-sectional view from another angle of the physiological monitoring ring according to an embodiment of the present application;
[0033] Figure 6 4 is a cross-sectional view of a partial structure of a physiological monitoring ring according to an embodiment of the present application.
[0034] Description of reference numerals:
[0035] 100. Physiological monitoring ring;
[0036] 1. Outer ring; 11. Installation clearance;
[0037] 2. Inner ring;
[0038] 3. Physiological monitoring components; 31. Monitoring circuit board; 32. Physiological detection components; 321. Body temperature sensor; 322. Blood oxygen infrared sensor;
[0039] 4. Wireless charging component; 41. Wireless charging coil;
[0040] 5. Rechargeable battery;
[0041] 6. Mounting bracket; 61. First receiving slot; 62. Second receiving slot; 63. Third receiving slot; 64. Clamping portion. DETAILED DESCRIPTION
[0042] The following is combined with Figures 1-6 This application is described in further detail.
[0043] The embodiment of the present application discloses a double-sided charging physiological monitoring ring 100.
[0044] Reference Figure 1-Figure 3 According to the embodiment of the present application, the double-sided charging physiological monitoring ring 100 includes: an outer ring 1, an inner ring 2, a wireless charging component 4 and a rechargeable battery 5. Along the radial direction of the inner ring 2, the outer ring 1 is sleeved on the outside of the inner ring 2, and the outer ring 1 and the inner ring 2 are fixedly connected. In some specific embodiments, the inner ring 2 and the outer ring 1 can be fixedly connected by bonding. An installation gap 11 is defined between the outer ring 1 and the inner ring 2. A physiological monitoring component 3 is provided in the installation gap 11. The physiological monitoring component 3 is used to obtain the user's physiological signs information. Specifically, the physiological monitoring component 3 can obtain the user's physiological signs information such as heart rate, blood oxygen saturation and body temperature. The inner ring 2 is suitable for being sleeved on the outside of the user's finger.
[0045] The wireless charger 4 and the rechargeable battery 5 are both arranged in the installation gap 11, and the wireless charger 4 is arranged close to the inner top wall or the inner bottom wall of the installation gap 11. That is, along the height direction of the physiological monitoring finger ring 100, the wireless charger 4 is arranged close to the upper end or the lower end of the installation gap 11. The height direction of the physiological monitoring finger ring 100 can be Figure 2 In the up and down directions, the rechargeable battery 5 is electrically connected to the physiological monitoring component 3 and the wireless charging component 4. The rechargeable battery 5 is used to supply power to the physiological monitoring component 3, and the wireless charging component 4 is used to charge the rechargeable battery 5. In some specific embodiments, the rechargeable battery 5 can be a lithium battery, but the application is not limited thereto. The rechargeable battery 5 can also be a nickel-hydrogen battery, etc.
[0046] By placing the wireless charging component 4 close to the inner top wall or the inner bottom wall of the installation gap 11, the user can place the end of the physiological monitoring ring 100 provided with the wireless charging component 4 on the wireless charger. The wireless charging component 4 and the wireless charger are arranged opposite to each other so that the wireless charger charges the rechargeable battery 5. It should be noted that the shape of the wireless charger can be constructed as a flat plate, that is, the physiological monitoring ring 100 can be charged by a wireless charger with any flat plate shape. The physiological monitoring ring 100 does not need to be charged using a dedicated charging stand, but the present application is not limited to this. The physiological monitoring ring 100 can also be charged by a wireless charger that is not flat in shape.
[0047] In some specific embodiments, the user can also directly place the physiological monitoring ring 100 on the wireless charger. That is, the user does not need to distinguish whether the end of the physiological monitoring ring 100 provided with the wireless charging component 4 is placed on the wireless charger. The wireless charging signal emitted by the wireless charger passes through the inner ring 2 and the outer ring 1 and is received by the wireless charging component 4. Such a setting can reduce the difficulty of charging the physiological monitoring ring 100, thereby improving the user experience of the physiological monitoring ring 100.
[0048] In some specific embodiments, the wireless charging component 4 can be set on the inner top wall of the outer ring 1 or the inner bottom wall of the outer ring 1. In other specific embodiments, the wireless charging component 4 can be set on the inner top wall of the inner ring 2 or the inner bottom wall of the inner ring 2. Such a setting of the wireless charging component 4 can receive the wireless charging signal from the external environment more quickly, so that the wireless charging component 4 can charge the rechargeable battery 5 more quickly.
[0049] Moreover, when fixing glue is poured between the inner ring 2 and the outer ring 1, the inner ring 2 and the outer ring 1 are bonded together by the fixing glue. By setting the wireless charging component 4 on the inner top wall of the installation gap 11 or the inner bottom wall of the installation gap 11, such a setting can avoid the fixing glue from interfering with the wireless charging signal of the external environment as much as possible, thereby avoiding the wireless charging component 4 from being unable to receive the wireless charging signal of the external environment, and avoiding the wireless charging component 4 from being unable to charge the rechargeable battery 5, thereby improving the charging reliability of the physiological monitoring ring 100.
[0050] It should be noted that the wireless charging signal in the external environment may refer to a wireless charging signal emitted by a wireless charger.
[0051] Thus, by placing the wireless charging component 4 near the inner top wall or the inner bottom wall of the installation gap 11, the user can place the physiological monitoring ring 100 directly on the wireless charger. With the wireless charging component 4 positioned opposite the wireless charger, the wireless charging signal emitted by the wireless charger is received by the wireless charging component 4, allowing the wireless charging component 4 to charge the rechargeable battery 5. Compared to the prior art, there is no need to place the physiological monitoring ring 100 on a dedicated wireless charging stand to charge the physiological monitoring ring 100, thereby reducing the difficulty of charging the physiological monitoring ring 100 and improving the user experience of the physiological monitoring ring 100.
[0052] Reference Figure 2 In some embodiments of the present application, there are multiple wireless charging components 4, and the multiple wireless charging components 4 are arranged in sequence along the height direction of the physiological monitoring ring 100. Figure 2 In the illustrated embodiment, there may be two wireless charging components 4 , one of the two wireless charging components 4 is disposed near the inner top wall of the installation gap 11 , and the other of the two wireless charging components 4 is disposed near the inner bottom wall of the installation gap 11 .
[0053] By arranging multiple wireless charging components 4 in the installation gap 11, the multiple wireless charging components 4 can all receive wireless charging signals in the external environment, and the multiple wireless charging components 4 can all charge the rechargeable battery 5, thereby improving the charging efficiency of the physiological monitoring ring 100 and further reducing the charging time of the physiological monitoring ring 100.
[0054] In addition, a wireless charging component 4 is provided on the inner top wall and the inner bottom wall of the installation gap 11. The user can place the upper end wall of the inner ring 2 or the lower end wall of the inner ring 2 on the wireless charger so that the wireless charger can charge the rechargeable battery 5 through the wireless charging component 4, thereby improving the user experience of the physiological monitoring ring 100.
[0055] Furthermore, when one of the multiple wireless charging components 4 fails to work properly, the wireless charging component 4 that can work properly among the multiple wireless charging components 4 can charge the rechargeable battery 5, thereby improving the reliability of the physiological monitoring ring 100 and minimizing the number of times the user needs to repair the physiological monitoring ring 100.
[0056] Reference Figure 2 and Figure 3 In some embodiments of the present application, the wireless charging component 4 includes multiple wireless charging coils 41, which are spaced apart along the radial direction of the physiological monitoring ring 100, and the multiple wireless charging coils 41 are electrically connected to the rechargeable battery 5.
[0057] Specifically, when the user places the physiological monitoring ring 100 on the wireless charger, the wireless charging signal emitted by the wireless charger is received simultaneously by multiple wireless charging coils 41, and the multiple wireless charging coils 41 charge the rechargeable battery 5 at the same time, thereby further improving the charging efficiency of the physiological monitoring ring 100.
[0058] Furthermore, the shape of the wireless charging coil 41 can be constructed as a ring, and the wireless charging coil 41 has multiple signal receiving areas, which are arranged at intervals along the circumferential direction of the wireless charging coil 41. The signal receiving areas are used to receive wireless charging signals. The multiple signal receiving areas of the wireless charging coil 41 can simultaneously receive the wireless charging signals transmitted by the wireless charger, thereby increasing the charging power of the wireless charging coil 41, and further improving the charging efficiency of the physiological monitoring ring 100.
[0059] Reference Figure 2 and Figure 4 In some embodiments of the present application, the physiological monitoring ring 100 further includes: a mounting bracket 6, the mounting bracket 6 is arranged between the outer ring 1 and the inner ring 2, the mounting bracket 6 is provided with a first accommodating groove 61, the open end of the first accommodating groove 61 is opposite to the side wall of the mounting bracket 6, and the wireless charging component 4 is arranged in the first accommodating groove 61. Specifically, along the height direction of the physiological monitoring ring 100, the first accommodating groove 61 is arranged on the upper end wall of the mounting bracket 6 or the lower end wall of the mounting bracket 6. By arranging the wireless charging component 4 in the first accommodating groove 61, the mounting bracket 6 supports the wireless charging component 4, so that the wireless charging component 4 remains in a fixed position in the installation gap 11, thereby preventing the wireless charging component 4 from deviating from the preset installation position, preventing the wireless charging component 4 from being unable to receive the wireless charging signal from the external environment, and thereby improving the working reliability of the physiological monitoring ring 100.
[0060] Further, in Figure 2 In the embodiment shown, there are two wireless charging components 4 and two first accommodating grooves 61. One of the two first accommodating grooves 61 is arranged on the upper end wall of the mounting bracket 6, and the other of the two first accommodating grooves 61 is arranged on the lower end wall of the mounting bracket 6. Each first accommodating groove 61 is provided with a wireless charging component 4.
[0061] And, in Figure 2In the embodiment shown, the mounting bracket 6 is arranged close to the outer ring 1, the outer peripheral wall of the mounting bracket 6 abuts against the inner peripheral wall of the outer ring 1, the upper end wall of the mounting bracket 6 abuts against the inner top wall of the outer ring 1, and the lower end wall of the mounting bracket 6 abuts against the inner bottom wall of the outer ring 1. The upper end wall of the mounting bracket 6 and the lower end wall of the mounting bracket 6 are both provided with a first accommodating groove 61. By abutting the upper end wall of the mounting bracket 6 against the inner top wall of the outer ring 1 and the lower end wall of the mounting bracket 6 against the inner bottom wall of the outer ring 1, the wireless charging room can be prevented from being separated from the first accommodating groove 61, thereby improving the connection reliability between the wireless charging component 4 and the mounting bracket 6.
[0062] It should be noted that the mounting bracket 6 and the wireless charging component 4 are both constructed as flexible components and are suitable for elastic deformation.
[0063] The inner peripheral wall of the mounting bracket 6 is provided with a second accommodating groove 62 and a third accommodating groove 63, that is, the second accommodating groove 62 and the third accommodating groove 63 are provided on the side wall of the mounting bracket 6 close to the inner ring 2, one of the physiological monitoring component 3 and the rechargeable battery 5 is provided in the second accommodating groove 62, and the other of the physiological monitoring component 3 and the rechargeable battery 5 is provided in the third accommodating groove 63.
[0064] In some specific embodiments, the physiological monitoring component 3 is arranged in the second receiving groove 62, and the rechargeable battery 5 is arranged in the third receiving groove 63, so as to prevent the physiological monitoring component 3 from moving in the installation gap 11, prevent the physiological monitoring component 3 from deviating from the preset installation position, and prevent the physiological monitoring component 3 from being unable to monitor the user's physiological signs information, thereby improving the working reliability of the physiological monitoring ring 100.
[0065] Reference Figure 4-Figure 6 In some embodiments of the present application, a clamping portion 64 is provided on the side wall of the receiving groove for the rechargeable battery 5. Specifically, the clamping portion 64 is provided on the side wall of the third receiving groove 63. The clamping portion 64 is engaged with the side wall of the rechargeable battery 5 close to the inner ring 2 to fix the rechargeable battery 5 in the receiving groove.
[0066] When the physiological monitoring ring 100 is subjected to vibration and / or impact, the rechargeable battery 5 is fixed to the third receiving groove 63 by using the clamping portion 64. This can prevent the rechargeable battery 5 from being separated from the mounting bracket 6 and causing the rechargeable battery 5 to collide with the inner ring 2. This can also prevent the rechargeable battery 5 from being damaged and unable to work normally, thereby improving the working reliability of the physiological monitoring ring 100.
[0067] Furthermore, such a configuration can also reduce the difficulty of installing and removing the rechargeable battery 5 , thereby improving the user experience of the physiological monitoring ring 100 .
[0068] Reference Figure 4In some embodiments of the present application, the physiological monitoring component 3 includes a monitoring circuit board 31 and at least one physiological detection component 32. The monitoring circuit board 31 is arranged in the second accommodating groove 62. The monitoring circuit board 31 is formed with a monitoring circuit. The physiological detection component 32 is arranged on the end wall of the monitoring circuit board 31 close to the inner ring 2. The physiological detection component 32 is communicatively connected with the monitoring circuit. The physiological detection component 32 is used to detect the user's physiological sign signals. The monitoring circuit is used to obtain the user's physiological sign information based on the detection signals of the physiological detection component 32.
[0069] In some specific embodiments, the physiological sign information may be blood oxygen saturation, but the application is not limited thereto. The physiological sign signal may be body temperature, etc.
[0070] Specifically, when the user wears the physiological monitoring ring 100, the physiological detection element 32 detects the physiological sign signal of the user's finger, and the monitoring circuit obtains the user's physiological sign information based on the detection signal of the physiological detection element 32, thereby achieving the technical effect of the physiological monitoring ring 100 monitoring the user's physiological signs. When the physiological sign information is body temperature, the physiological monitoring ring 100 monitors the user's body temperature; when the physiological sign information is blood oxygen saturation, the physiological monitoring ring 100 monitors the user's blood oxygen saturation.
[0071] Furthermore, there may be multiple physiological detection components 32. In some specific embodiments, multiple physiological detection components 32 can jointly detect the same physiological sign signal of the user. The monitoring circuit can obtain the user's physiological sign information based on the detection signals of multiple physiological detection components 32. Such a setting can improve the detection accuracy of the user's physiological sign signal, thereby improving the monitoring accuracy of the physiological monitoring ring 100.
[0072] In other specific embodiments, multiple physiological detection components 32 can detect different physiological sign signals of the user. That is, at least one physiological detection component 32 among the multiple physiological detection components 32 is used to detect the user's body temperature signal, and at least one physiological detection component 32 is used to detect the user's blood oxygen saturation signal, thereby achieving the technical effect of the physiological monitoring ring 100 monitoring multiple physiological sign information of the user, thereby improving the user experience of the physiological monitoring ring 100.
[0073] Reference Figure 4In some embodiments of the present application, the physiological detection component 32 includes a body temperature sensor 321 and / or a blood oxygen infrared sensor 322. Specifically, when the physiological detection component 32 is configured as the body temperature sensor 321, the physiological detection component 32 detects the user's body temperature signal, thereby achieving the technical effect of the physiological monitoring ring 100 monitoring the user's body temperature. When the physiological detection component 32 is configured as the blood oxygen infrared sensor 322, the physiological detection component 32 detects the user's blood oxygen signal, thereby achieving the technical effect of the physiological monitoring ring 100 monitoring the user's blood oxygen saturation.
[0074] Furthermore, at least one of the multiple physiological detection components 32 is constructed as a body temperature sensor 321, and at least one physiological detection component 32 is constructed as a blood oxygen infrared sensor 322, so that the physiological monitoring ring 100 can achieve the technical effect of monitoring the user's body temperature and blood oxygen saturation, thereby improving the user experience of the physiological monitoring ring 100.
[0075] Furthermore, the physiological detection component 32 can also be constructed as a PPG (Photoplethysmography) pulse wave sensor. When the physiological detection component 32 is constructed as a PPG pulse wave sensor, the physiological detection component 32 can be used to detect the user's blood pressure signal, thereby achieving the technical effect of the physiological monitoring ring 100 monitoring the user's blood pressure.
[0076] It should be noted that the inner ring 2 can be constructed as a transparent member, and the inner ring 2 can conduct the user's body temperature, and the inner ring 2 is suitable for allowing infrared rays to pass through.
[0077] In some embodiments of the present application, there is a fixed colloid between the outer ring 1 and the inner ring 2. In some specific embodiments, the fixed colloid can be a resin, but the present application is not limited to this. The fixed colloid can also be plastic, etc. By injecting the fixed colloid between the outer ring 1 and the inner ring 2, the outer ring 1 and the inner ring 2 can be prevented from separating during the user's use of the physiological monitoring ring 100, thereby improving the connection reliability between the outer ring 1 and the inner ring 2.
[0078] In addition, the mounting bracket 6 is embedded in the fixing colloid, and the mounting bracket 6 is fixed by the fixing colloid, thereby preventing the mounting bracket 6 from moving between the inner ring 2 and the outer ring 1, preventing the physiological detection component 32 from deviating from the preset position, and preventing the physiological detection component 32 from being unable to detect the user's physiological sign signals, thereby improving the working reliability of the physiological monitoring ring 100.
[0079] Moreover, during the use of the physiological monitoring ring 100, by providing a fixed colloid between the outer ring 1 and the inner ring 2, the fixed colloid can prevent dust, liquid and other debris in the external environment from entering the interior of the physiological monitoring ring 100, thereby improving the cleanliness and working stability of the physiological monitoring ring 100.
[0080] It should be noted that a glue injection hole is provided on one of the outer peripheral wall of the outer ring 1 and the outer peripheral wall of the inner ring 2 , and the fixed glue is injected between the outer ring 1 and the inner ring 2 through the glue injection hole.
[0081] In some embodiments of the present application, the physiological monitoring ring 100 may further include: a communication module. In some specific embodiments, the communication module may be arranged on the monitoring circuit board 31, and the physiological monitoring component 3 is communicatively connected to the communication module. Specifically, the monitoring circuit of the monitoring circuit board 31 is communicatively connected to the communication module, and the communication module is suitable for remote communication connection with the server, and the communication module is suitable for communication connection with a mobile phone.
[0082] By setting a communication module on the physiological monitoring ring 100, the communication module sends the user's physiological sign information to a mobile phone and / or server that is communicatively connected to the communication module. The user can view the physiological sign information through an application on the mobile phone, and a doctor or home coach can perform health analysis and remote monitoring based on the user's physiological sign information on the server, thereby improving the user experience of the physiological monitoring ring 100.
[0083] In some specific embodiments, the communication module may be a cellular communication module, but the present application is not limited thereto, and the communication module may also be a WIFI module, etc.
[0084] The above are all preferred embodiments of the present application, and are not intended to limit the scope of protection of the present application. Therefore, any equivalent changes made based on the structure, shape, and principle of the present application should be included in the scope of protection of the present application.
Claims
1. A double-sided charging physiological monitoring ring, characterized in that: include: An outer ring (1) and an inner ring (2), wherein the outer ring (1) is sleeved on the outer side of the inner ring (2), and the outer ring (1) and the inner ring (2) are fixedly connected, and an installation gap (11) is defined between the outer ring (1) and the inner ring (2), and a physiological monitoring component (3) is provided in the installation gap (11), and the physiological monitoring component (3) is used to obtain physiological sign information of a user, and the inner ring (2) is suitable for being sleeved on the outer side of a user's finger; A wireless charging component (4) and a rechargeable battery (5), wherein the wireless charging component (4) and the rechargeable battery (5) are both arranged in the installation gap (11), and the wireless charging component (4) is arranged close to the inner top wall or the inner bottom wall of the installation gap (11), the rechargeable battery (5) is electrically connected to the physiological monitoring component (3) and the wireless charging component (4), the rechargeable battery (5) is used to supply power to the physiological monitoring component (3), and the wireless charging component (4) is used to charge the rechargeable battery (5).
2. The double-sided charging physiological monitoring ring according to claim 1, characterized in that: There are multiple wireless charging components (4), and the multiple wireless charging components (4) are arranged in sequence along the height direction of the physiological monitoring ring (100).
3. The double-sided charging physiological monitoring ring according to claim 1, characterized in that: The wireless charging component (4) comprises a plurality of wireless charging coils (41), the plurality of wireless charging coils (41) are spaced apart along the radial direction of the physiological monitoring ring (100), and the plurality of wireless charging coils (41) are all electrically connected to the rechargeable battery (5).
4. The double-sided charging physiological monitoring ring according to claim 1, characterized in that: Also includes: A mounting bracket (6) is provided between the outer ring (1) and the inner ring (2), the mounting bracket (6) is provided with a first receiving groove (61), the open end of the first receiving groove (61) is opposite to the side wall of the mounting bracket (6), the wireless charging component (4) is provided in the first receiving groove (61), the inner peripheral wall of the mounting bracket (6) is provided with a second receiving groove (62) and a third receiving groove (63), one of the physiological monitoring component (3) and the rechargeable battery (5) is provided in the second receiving groove (62), and the other is provided in the third receiving groove (63).
5. The double-sided charging physiological monitoring ring according to claim 4, characterized in that: A clamping portion (64) is provided on the side wall of the receiving slot in which the rechargeable battery (5) is provided. The clamping portion (64) is engaged with the rechargeable battery (5) to fix the rechargeable battery (5) in the receiving slot.
6. The double-sided charging physiological monitoring ring according to claim 1, characterized in that: The physiological monitoring component (3) comprises a monitoring circuit board (31) and at least one physiological detection element (32), wherein the monitoring circuit board (31) is formed with a monitoring circuit, and the physiological detection element (32) is arranged on an end wall of the monitoring circuit board (31) close to the inner ring (2), and the physiological detection element (32) is communicatively connected with the monitoring circuit, and the physiological detection element (32) is used to detect a physiological sign signal of a user, and the monitoring circuit is used to obtain the physiological sign information of the user according to the detection signal of the physiological detection element (32).
7. The double-sided charging physiological monitoring ring according to claim 6, characterized in that: The physiological detection component (32) includes a body temperature sensor (321) and / or a blood oxygen infrared sensor (322).
8. The double-sided charging physiological monitoring ring according to claim 1, characterized in that: A fixed colloid is provided between the outer ring (1) and the inner ring (2).
9. The double-sided charging physiological monitoring ring according to claim 1, characterized in that: Also includes: A communication module, wherein the physiological monitoring component (3) is communicatively connected to the communication module, the communication module is suitable for remote communication connection with a server, and the communication module is suitable for communication connection with a mobile phone.