Adjusting device and charging box

By designing a drive component with an adjustment device to automatically replace the functional modules of the modular smart ring, the problems of high operational difficulty and loss are solved, achieving efficient and safe module replacement.

CN121667474APending Publication Date: 2026-03-17GEER TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-12-29
Publication Date
2026-03-17

AI Technical Summary

Technical Problem

Modular smart rings are difficult to operate when replacing functional modules, and functional modules are easily lost.

Method used

Design an adjustment device including a housing, a support platform, a carrier plate, and a drive mechanism. The drive component automatically completes the disassembly and assembly of functional modules, reducing the difficulty of operation and preventing loss.

Benefits of technology

It enables automated replacement of functional modules, reduces operational difficulty, minimizes the loss of functional modules, and improves replacement efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses an adjusting device and a charging box, and relates to the technical field of intelligent finger rings, the adjusting device comprises a shell, a supporting table, a bearing disc and a driving mechanism, the bearing disc is provided with a first dismounting cavity and a second dismounting cavity, and the driving mechanism comprises a first driving assembly and a second driving assembly. When the functional module is disassembled, the second driving assembly is used for being inserted into the first disassembly and assembly cavity and pushing the disassembly and assembly mechanism arranged in the first disassembly and assembly cavity so as to disassemble the functional module from the intelligent ring; when the function module is installed, the first driving assembly drives the bearing disc to rotate so that the second disassembly and assembly cavity can move to the position of the first disassembly and assembly cavity, and the second driving assembly is used for being inserted into the second disassembly and assembly cavity and pushing the disassembly and assembly mechanism in the second disassembly and assembly cavity so that the function module can be installed on the intelligent ring. According to the technical scheme provided by the invention, the technical problem that the operation difficulty is high when the functional module of the modular intelligent ring is replaced can be solved.
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Description

Technical Field

[0001] This invention relates to the field of smart ring technology, and more particularly to an adjustment device and a charging case. Background Technology

[0002] A smart ring is a miniature wearable smart device worn on the finger. Its stylish and compact design allows it to continuously and discreetly monitor the user's health data using various built-in sensors (such as optical heart rate sensors, blood oxygen sensors, body temperature sensors, and accelerometers), with its core advantage being accurate sleep monitoring and analysis. It also enables functions such as message notifications, activity tracking, and mobile payments. Modular smart rings, as one type, are characterized by detachable functional modules; however, replacing these modules presents technical challenges due to the complexity of the process.

[0003] Therefore, it is necessary to provide a new adjustment device and charging box to solve the above-mentioned technical problems. Summary of the Invention

[0004] The main objective of this invention is to provide an adjustment device and a charging box, which aims to solve the technical problem of high operational difficulty when replacing the functional modules of a modular smart ring.

[0005] To achieve the above objectives, the present invention proposes an adjustment device for assisting in the alignment of the functional modules of a smart ring with its disassembly and assembly mechanism. The adjustment device includes: shell; A support platform, at least a portion of which is disposed within the housing and serves to support the smart ring; A carrier plate is rotatably disposed inside the outer shell and circumferentially arranged around the support platform. The carrier plate is provided with a first disassembly cavity and a second disassembly cavity. The first disassembly cavity and the second disassembly cavity are arranged along the circumference of the support platform. Both the first disassembly cavity and the second disassembly cavity are provided with the disassembly mechanism. The driving mechanism includes a first driving component and a second driving component. The first driving component is disposed on the outside of the support plate and is connected to the support plate for driving the support plate to rotate. The second driving component is disposed on the outside of the support plate and is correspondingly disposed to the first disassembly / assembly cavity. When disassembling the functional module, the second drive component is used to insert into the first disassembly cavity and push the disassembly mechanism disposed in the first disassembly cavity to remove the functional module from the smart ring; when installing the functional module, the first drive component drives the carrier plate to rotate so that the second disassembly cavity moves to the position of the first disassembly cavity, and the second drive component is used to insert into the second disassembly cavity and push the disassembly mechanism in the second disassembly cavity to install the functional module onto the smart ring.

[0006] In one embodiment, the support plate is provided with a plurality of first disassembly cavities and a plurality of second disassembly cavities, the number of the first disassembly cavities and the number of the second disassembly cavities are equal, and each of the first disassembly cavities and each of the second disassembly cavities is alternately arranged along the circumference of the support platform.

[0007] In one embodiment, there are multiple carrier disks, which are arranged around the support platform and stacked along the height direction of the outer shell. The bottommost carrier disk is rotatably disposed on the outer shell, and the uppermost carrier disk is rotatably disposed on the adjacent lower carrier disk. Each carrier disk is correspondingly provided with at least one second drive component. The driving mechanism further includes a third driving assembly, which includes a driving unit and a driving rod that is pulverically connected to the driving unit. The driving unit is disposed at the bottom of the support platform, and the driving rod passes through at least a portion of the support platform and is threadedly connected to the support platform. The driving unit drives the support platform to move along the height direction of the outer shell through the driving rod.

[0008] In one embodiment, the smart ring is provided with a plurality of the functional modules, and each of the carrier disks is provided with a plurality of second driving components spaced apart along its circumference, the number of the second driving components being equal to the number of the functional modules; When the smart ring is placed on the support platform, each of the second driving components is configured to correspond one-to-one with each of the functional modules.

[0009] In one embodiment, the carrier disk is provided with a rack extending circumferentially thereon, and the first drive assembly includes a drive member and a drive gear that is pulverically connected to the drive member. The drive member is disposed on the outside of the carrier disk, and the drive gear meshes with the rack.

[0010] In one embodiment, the smart ring includes a ring body, a functional module, and a fixing frame, wherein the functional module is snapped onto the ring body via the fixing frame; The disassembly and assembly mechanism includes a sliding assembly, an adsorption component, a second elastic component, and a pry bar assembly. The sliding assembly includes a bracket, a slide table, and an elastic component. The bracket is slidably disposed on the support plate and can slide towards or away from the support platform. The slide table is slidably disposed on the bracket and has a disassembly position and an installation position. The two ends of the first elastic component are respectively connected to the bracket and the slide table. The first elastic component extends and retracts along the sliding direction. The adsorption component is disposed on the slide table. The pry bar assembly is hinged to the bracket. The second drive assembly includes a drive module, a push rod, and a transmission gear that is drively connected to the drive module. The drive module is disposed inside the housing. The push rod is slidably disposed inside the housing and can slide toward or away from the support platform. The transmission gear meshes with the push rod. When disassembling the functional module, the drive module drives the push rod to slide towards the support platform via the transmission gear, so that the push rod inserts into the first disassembly cavity and pushes the bracket to slide towards the support platform, and the slide table slides from the disassembly position to the installation position. At the same time, the pry bar assembly abuts against the fixing frame and pushes the fixing frame, so that the functional module detaches from the ring body and is attracted to the adsorption member. When installing the functional module, the first drive assembly drives the carrier plate to rotate, so that the functional module faces the second disassembly cavity. The drive module drives the push rod to slide towards the support platform via the transmission gear, so that the push rod inserts into the second disassembly cavity and pushes the bracket to slide towards the support platform, and the slide table slides from the installation position to the disassembly position, so that the functional module is pushed onto the smart ring and the functional module is secured by the fixing frame.

[0011] In one embodiment, the support platform is provided with a first protrusion and at least two second protrusions spaced apart along its circumference, the first protrusion and each of the second protrusions extending along the height direction of the support platform; defined as: the distance between the second protrusion closest to the first protrusion along the circumference of the support platform and the first protrusion is a, and the distance between two second protrusions is b; then: a > b or a < b; and / or, The support platform includes a base and a column. The base is disposed inside the outer shell, and the column is disposed on the base and extends along the height direction of the outer shell. The base is provided with a magnet for attracting the smart ring.

[0012] In one embodiment, the smart ring is provided with multiple functional modules, and the driving mechanism further includes a fourth driving component. The fourth driving component includes a driving body and a support plate that is pulsatorically connected to the driving body. The driving body is disposed inside the housing, and the support plate is rotatably disposed inside the housing. The third driving component is disposed on the support plate. The driving body is used to drive the carrier plate to rotate, and then drive the support platform to rotate, so that each of the functional modules of the smart ring can be oriented toward the second driving component.

[0013] In addition, the present invention also proposes a charging case, comprising: The adjustment device described above includes a fourth drive assembly, which includes a drive body and a support plate that is pulsatorically connected to the drive body. The drive body is disposed inside the housing, the support plate is rotatably disposed inside the housing, and the support platform is disposed on the support plate. A wireless charging module is disposed on the support platform; A charging mechanism, comprising a circuit board and an energy storage module, wherein the circuit board is disposed within the housing and the energy storage module is disposed on the circuit board; A flexible conductor, the first end of which is connected to the wireless charging module, and the second end of which is disposed on the carrier plate and electrically connected to the circuit board.

[0014] In one embodiment, a spring piece is provided on the support plate at the position corresponding to the second end of the elastic wire, and a conductive ring extending along the rotation direction of the support platform is provided inside the housing. The conductive ring is electrically connected to the circuit board, and the spring piece is provided on the support plate and abuts against the conductive ring when the drive body drives the support platform to rotate.

[0015] The technical solution of this invention involves setting a first driving component to drive the carrier plate to rotate, so that the functional modules face different disassembly / assembly cavities, and setting a second driving component to push the disassembly / assembly mechanism to disassemble / assemble the functional modules. By using a machine, the replacement of functional modules can be automated, replacing manual labor and reducing the operational difficulty of replacing functional modules. In this embodiment, the support platform serves as a placement base for the smart ring. The carrier plate is ring-shaped on the support platform and has a first disassembly / assembly cavity and a second disassembly / assembly cavity. Both the first and second disassembly / assembly cavities are equipped with disassembly / assembly mechanisms for disassembling / assembling functional modules. The first and second driving components are both located on the outside of the carrier plate. The first driving component drives the carrier plate to rotate, and the second driving component inserts into the corresponding disassembly / assembly cavity to push the disassembly / assembly mechanism, thereby removing the functional module from or installing it onto the smart ring. Specifically, replacing the functional module involves two processes: disassembly and installation. When disassembling the functional module, the operator first places the smart ring on the support platform with the functional module facing the first disassembly / installation cavity. Then, the operator controls the second drive component to insert into the first disassembly / installation cavity and pushes the disassembly / installation mechanism within it. This allows the functional module to be removed from the smart ring, completing the disassembly. When installing the functional module, the operator first controls the first drive component to rotate the support plate, moving the second disassembly / installation cavity to the position of the first cavity. At this point, the functional module to be installed, held by the disassembly / installation mechanism in the second cavity, is facing the installation position on the smart ring. Then, the operator controls the second drive component to insert into the second disassembly / installation cavity and pushes the disassembly / installation mechanism within it. This allows the functional module to be installed onto the smart ring, completing the installation. In the above process, the operator only needs to place the smart ring on the support platform and control the operation of the first and second drive components through the external controller to complete the replacement of the functional module. This eliminates the need for the operator to repeatedly pick up and put down the functional module, which greatly reduces the difficulty of replacing the functional module of the smart ring. At the same time, the operator does not need to repeatedly pick up and put down the functional module when replacing it, which can effectively avoid the loss of the functional module and reduce losses. Attached Figure Description

[0016] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on the structures shown in these drawings without creative effort.

[0017] Figure 1 A schematic diagram of the structure of a charging box in one embodiment of the present invention; Figure 2A schematic diagram of the structure of a charging box (without the outer shell and charging mechanism) in one embodiment of the present invention; Figure 3 A cross-sectional view of a charging box in one embodiment of the present invention; Figure 4 for Figure 3 Enlarged view of point A; Figure 5 A schematic diagram of the structure of the spring sheet in one embodiment of the present invention; Figure 6 A schematic diagram of the support platform in one embodiment of the present invention; Figure 7 A schematic diagram of the structure of the carrier plate and the disassembly / assembly mechanism in one embodiment of the present invention; Figure 8 A schematic diagram of the disassembly and assembly mechanism in one embodiment of the present invention when the sliding component is in the first state; Figure 9 A schematic diagram of the disassembly and assembly mechanism in one embodiment of the present invention when the sliding component is in the second state; Figure 10 for Figure 9 Enlarged view of point B; Figure 11 A schematic diagram of the structure of the slide table in one embodiment of the present invention; Figure 12 A schematic diagram of the guide groove in one embodiment of the present invention; Figure 13 A schematic diagram of the disassembly and assembly mechanism for disassembling a functional module in one embodiment of the present invention; Figure 14 A schematic diagram of the structure of a smart ring in one embodiment of the present invention; Figure 15 A schematic diagram of the structure of the fixing frame in one embodiment of the present invention; Figure 16 A schematic diagram of the structure of a functional module detached from the ring body in one embodiment of the present invention; Figure 17 This is a schematic diagram of the structure of a functional module being secured to the ring body in one embodiment of the present invention.

[0018] Explanation of icon numbers: 1. Outer shell; 11. Conductive ring; 2. Support platform; 21. First protrusion; 22. Second protrusion; 23. Base; 24. Column; 3. Bearing plate; 31. First disassembly / assembly cavity; 32. Second disassembly / assembly cavity; 33. Rack; 4. Disassembly / assembly mechanism; 41. Sliding assembly; 411. Bracket; 411a. Sliding space; 411b. Fixing block; 412. Slide table; 412a. Slider; 412b. Connecting rod; 412c. Mounting device Mounting plate; 412d, limiting post; 413, elastic element; 414, guide groove; 414a, first guide section; 414b, second guide section; 414c, third guide section; 414d, fourth guide section; 414e, first locking position; 414f, second locking position; 414g, abutment position; 42, suction element; 43, pry bar assembly; 431, connecting rod; 431a, abutment block; 432, swing rod; 433, pull rod ; 433a, Reset component; 433b, Connecting rope; 44, Slide rod; 45, Elastic component; 51, First drive assembly; 511, Drive component; 512, Drive gear; 52, Second drive assembly; 521, Drive module; 522, Push rod; 523, Transmission gear; 53, Third drive assembly; 531, Drive unit; 532, Drive rod; 54, Fourth drive assembly; 541, Drive body; 542, Support plate 542a, spring; 542b, fixing plate; 542c, elastic plate; 6, elastic wire; 7, charging mechanism; 71, circuit board; 72, energy storage module; 8, smart ring; 81, ring body; 811, assembly slot; 82, functional module; 821, abutment slot; 822, snap-fit ​​hole; 823, gap; 83, fixing frame; 831, swing arm; 831a, abutment block; 832, crossbeam; 832a, snap-fit ​​block.

[0019] The realization of the objective, functional features and advantages of the present invention will be further explained in conjunction with the embodiments and with reference to the accompanying drawings. Detailed Implementation

[0020] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of the present invention, and not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of the present invention.

[0021] It should be noted that all directional indications (such as up, down, left, right, front, back, etc.) in the embodiments of the present invention are only used to explain the relative positional relationship and movement of each component in a certain specific posture (as shown in the figure). If the specific posture changes, the directional indication will also change accordingly.

[0022] Furthermore, if the embodiments of the present invention involve descriptions such as "first" or "second," these descriptions are for descriptive purposes only and should not be construed as indicating or implying their relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined with "first" or "second" may explicitly or implicitly include at least one of those features. Additionally, if "and / or" or "and / or" appears throughout the text, its meaning includes three parallel solutions. For example, "A and / or B" includes solution A, solution B, or a solution where both A and B are satisfied simultaneously.

[0023] Furthermore, the technical solutions of the various embodiments of the present invention can be combined with each other, but only if they are feasible for those skilled in the art. If the combination of technical solutions is contradictory or cannot be implemented, it should be considered that such combination of technical solutions does not exist and is not within the scope of protection claimed by the present invention.

[0024] A smart ring is a miniature wearable smart device worn on the finger. Its stylish and compact design allows for continuous and discreet monitoring of the user's health data through various built-in sensors (such as optical heart rate sensors, blood oxygen sensors, body temperature sensors, and accelerometers), with precise sleep monitoring and analysis as its core advantage. It also enables functions such as message notifications, activity tracking, and mobile payments. Modular smart rings, as one branch of this technology, are characterized by detachable functional modules. During actual production and R&D, researchers found that replacing functional modules is primarily done manually using a disassembly and assembly mechanism. However, this requires operators to repeatedly pick up and put down the modules attached to the mechanism and adjust their position to align them with the ring's preset mounting location, significantly increasing the difficulty of module replacement. Furthermore, due to the small size of the modules, repeated handling greatly increases the risk of losing them.

[0025] This invention proposes an adjustment device to solve the technical problem of high operational difficulty when replacing the functional modules of a modular smart ring.

[0026] Please see Figure 1 , Figure 2 as well as Figures 14 to 17In one embodiment of the present invention, the adjustment device is used to assist the alignment of the functional module 82 of the smart ring 8 with the disassembly and assembly mechanism 4. The adjustment device includes a housing 1, a support platform 2, a carrier plate 3, and a drive mechanism. At least a portion of the support platform 2 is disposed within the housing 1 and is used to support the smart ring 8. The carrier plate 3 is rotatably disposed within the housing 1 and surrounds the support platform 2. The carrier plate 3 is provided with a first disassembly and assembly cavity 31 and a second disassembly and assembly cavity 32. The first disassembly and assembly cavity 31 and the second disassembly and assembly cavity 32 are arranged along the circumference of the support platform 2. Both the first disassembly and assembly cavity 31 and the second disassembly and assembly cavity 32 are provided with the disassembly and assembly mechanism 4. The drive mechanism includes a first drive component 51 and a second drive component 52. The first drive component 51 is disposed on the outside of the carrier plate 3 and is drively connected to the carrier plate 3 to drive the carrier plate 3 to rotate. The second drive component 52 is disposed on the outside of the carrier plate 3 and is correspondingly disposed to the first disassembly and assembly cavity 31. When disassembling the functional module 82, the second drive assembly 52 is used to insert into the first disassembly cavity 31 and push the disassembly mechanism 4 disposed in the first disassembly cavity 31 to remove the functional module 82 from the smart ring 8; when installing the functional module 82, the first drive assembly 51 drives the carrier plate 3 to rotate so that the second disassembly cavity 32 moves to the position of the first disassembly cavity 31, and the second drive assembly 52 is used to insert into the second disassembly cavity 32 and push the disassembly mechanism 4 disposed in the second disassembly cavity 32 to install the functional module 82 onto the smart ring 8.

[0027] The technical solution of this invention involves setting a first driving component 51 to drive the carrier plate 3 to rotate, so that the functional module 82 faces different disassembly / assembly cavities, and setting a second driving component 52 to push the disassembly / assembly mechanism 4 to disassemble / assemble the functional module 82. By using a machine, the replacement of the functional module 82 can be completed automatically, reducing the operational difficulty of replacing the functional module 82. In this embodiment, the support platform 2 serves as a placement base 23 for placing the smart ring 8. The carrier plate 3 is arranged around the support platform 2 and has a first disassembly / assembly cavity 31 and a second disassembly / assembly cavity 32. Both the first and second disassembly / assembly cavities 31 and 32 are equipped with disassembly / assembly mechanisms 4 for disassembling / assembling the functional module 82. The first driving component 51 and the second driving component 52 are both located on the outside of the carrier plate 3. The first driving component 51 drives the carrier plate 3 to rotate, and the second driving component 52 is inserted into the corresponding disassembly / assembly cavity to push the disassembly / assembly mechanism 4, thereby removing the functional module 82 from the smart ring 8 or installing the functional module 82 onto the smart ring 8.

[0028] Specifically, the replacement of functional module 82 includes two processes: disassembly and installation. When disassembling functional module 82, the operator first places the smart ring 8 on the support platform 2 with functional module 82 facing the first disassembly / removal cavity 31. Then, the operator controls the second drive assembly 52 to insert into the first disassembly / removal cavity 31 and pushes the disassembly / removal mechanism 4 within the cavity. The disassembly / removal mechanism 4 then removes the functional module 82 from the smart ring 8, completing the disassembly of functional module 82. To install the functional module 82, the first drive assembly 51 is controlled to drive the carrier plate 3 to rotate, so that the second disassembly cavity 32 moves to the position of the first disassembly cavity 31. At this time, the functional module 82 to be installed, which is adsorbed on the disassembly mechanism 4 of the second disassembly cavity 32, is facing the position of the smart ring 8 where the functional module 82 can be installed. Then, the second drive assembly 52 is controlled to insert into the second disassembly cavity 32 and push the disassembly mechanism 4 inside the second disassembly cavity 32. The functional module 82 to be installed can then be installed onto the smart ring 8 through the disassembly mechanism 4, thus completing the installation of the functional module 82. In the above process, the operator only needs to place the smart ring 8 on the support platform 2 and control the operation of the first drive assembly 51 and the second drive assembly 52 through the external controller to complete the replacement of the functional module 82. This eliminates the need for the operator to repeatedly pick up and put down the functional module 82, which greatly reduces the difficulty of replacing the functional module 82 of the smart ring 8. At the same time, the operator does not need to repeatedly pick up and put down the functional module 82 when replacing it, which can effectively prevent the functional module 82 from being lost and reduce losses. This adjustment device is used in the disassembly and assembly equipment of the modular smart ring 8, etc.

[0029] It should be noted that when the support platform 2 is installed inside the housing 1, the support platform 2 can be completely installed inside the housing 1, partially protruding from the housing 1, or exposed outside the housing 1 and flush with its outer surface. In this embodiment, one end of the support platform 2 is installed inside the housing 1, and the other end protrudes from the housing 1; by extending one end of the support platform 2 out of the housing 1, it is convenient for operators to quickly pick up and put down the smart ring 8, thus optimizing the operation process. In addition, in this embodiment, the disassembly and assembly mechanisms 4 in the first disassembly and assembly cavity 31 and the second disassembly and assembly cavity 32 can both disassemble and assemble the functional module 82. After a functional module 82 is replaced, the original functional module 82 on the smart ring 8 will be attached to the disassembly mechanism 4 in the first disassembly cavity 31, and the functional module 82 attached to the disassembly mechanism 4 in the second disassembly cavity 32 will be installed on the smart ring 8. When it is necessary to replace the functional module 82 again, the functional module 82 can be removed by the disassembly mechanism 4 in the second disassembly cavity 32 and installed by the disassembly mechanism 4 in the first disassembly cavity 31 to realize the replacement of the functional module 82.

[0030] Please see Figure 2In one embodiment of the present invention, the support plate 3 is provided with a plurality of first disassembly cavities 31 and a plurality of second disassembly cavities 32, the number of first disassembly cavities 31 and the number of second disassembly cavities 32 are equal, and the first disassembly cavities 31 and the second disassembly cavities 32 are alternately arranged along the circumference of the support platform 2. By providing a plurality of first disassembly cavities 31 and second disassembly cavities 32, the number of functional modules 82 that the adjustment device can accommodate can be increased to meet the actual replacement needs of users. In this embodiment, different types of functional modules 82 (such as a functional module 82 equipped with a heart rate sensor and a functional module 82 equipped with a temperature sensor) are adsorbed onto the disassembly and assembly mechanisms 4 of different second disassembly and assembly chambers 32. When replacing a functional module 82, the functional module 82 to be replaced is removed from the smart ring 8 through the disassembly and assembly mechanism 4 in one of the first disassembly and assembly chambers 31. Then, the second disassembly and assembly chamber 32 containing the functional module 82 to be installed is moved to the position of the first disassembly and assembly chamber 31, and the functional module 82 to be installed is installed onto the smart ring 8 through the disassembly and assembly mechanism 4 in the second disassembly and assembly chamber 32, thus completing the replacement of the functional module 82. By alternating the first disassembly and assembly chambers 31 and the second disassembly and assembly chambers 32, the replacement efficiency of the functional module 82 can be improved. Specifically, when replacing the functional module 82, the functional module 82 is disassembled by the disassembly and assembly mechanism 4 in the first disassembly and assembly cavity 31, which is adjacent to the second disassembly and assembly cavity 32 containing the functional module 82 to be installed. Then, the functional module 82 is installed onto the smart ring 8 by the disassembly and assembly mechanism 4 in the second disassembly and assembly cavity 32. During this process, the first drive component 51 only needs to drive the carrier plate 3 to rotate a small angle, which reduces the required rotation angle of the carrier plate 3 when replacing the functional module 82, thus improving replacement efficiency. In a specific embodiment, there are three first disassembly and assembly cavities 31 and three second disassembly and assembly cavities 32.

[0031] Please see Figure 2 and Figure 3In one embodiment of the present invention, there are multiple carrier plates 3, all of which are arranged around the support platform 2 and stacked along the height direction of the outer shell 1. The driving mechanism also includes a third driving component 53, which is disposed at the bottom of the support platform 2 and is used to drive the support platform 2 to move along the height direction of the outer shell 1. In this embodiment, by setting the number of carrier plates 3 to multiple, the number of functional modules 82 that the adjustment device can accommodate can be increased to meet the user's actual replacement needs. The third driving component 53 is used to drive the support platform 2 to rise and fall so that the smart ring 8 placed on the support platform 2 is aligned with the carrier plate 3 on which the functional module 82 to be installed is located. Specifically, when replacing the functional module 82, the functional module 82 is disassembled through the disassembly and assembly mechanism 4 in a first disassembly and assembly cavity 31 of one of the carrier plates 3, and then the third driving component 53 is controlled to drive the smart ring 8 to align with another carrier plate 3, and the functional module 82 to be installed is installed onto the smart ring 8 through the disassembly and assembly mechanism 4 in a second disassembly and assembly cavity 32 of the other carrier plate 3. In one specific embodiment, there are three carrier disks 3, which are arranged around the support platform 2 and stacked along the height direction of the outer shell 1.

[0032] In one specific embodiment, the third drive assembly 53 includes a drive unit 531 and a drive rod 532 that is pulsatorically connected to the drive unit 531. The drive unit 531 is disposed at the bottom of the support platform 2, and the drive rod 532 passes through at least a portion of the support platform 2 and is threadedly connected to the support platform 2. The drive unit 531 may be a drive motor. In this embodiment, the drive unit 531 drives the support platform 2 to rise and fall through threaded engagement, which has the advantage of simple structure, simplifying the structure of the adjustment device and reducing its manufacturing difficulty.

[0033] In this embodiment, the bottommost support disk 3 is rotatably disposed on the outer casing 1, and the upper support disk 3 is rotatably disposed on the adjacent lower support disk 3; each support disk 3 is provided with at least one second driving component 52. Specifically, the outer casing 1 is provided with a first annular boss at the position corresponding to the bottommost support disk 3, and a first annular groove is provided at the bottom of the bottommost support disk 3, with the first annular boss slidably disposed in the first annular groove; in any two adjacent support disks 3, a second annular boss is provided at the top of the lower support disk 3, and a second annular groove is provided at the bottom of the upper support disk 3, with the second annular boss slidably disposed in the second annular groove.

[0034] Please see Figure 2 and Figure 3In one embodiment of the present invention, the smart ring 8 is provided with multiple functional modules 82, and the driving mechanism further includes a fourth driving component 54. The fourth driving component 54 includes a driving body 541 and a support plate 542 that is pulvinctly connected to the driving body 541. The driving body 541 is disposed inside the outer shell 1, and the support plate 542 is rotatably disposed inside the outer shell 1. A third driving component 53 is disposed on the support plate 542. The driving body 541 is used to drive the support plate 542 to rotate, thereby driving the support platform 2 to rotate, so that each functional module 82 of the smart ring 8 can be oriented towards the second driving component 52. In a specific embodiment, the driving body 541 may be a drive motor. In this embodiment, by setting the fourth driving component 54 to drive the support platform 2 and the smart ring 8 placed on it to rotate, the position of the smart ring 8 can be adjusted to improve the applicability of the adjustment device. Specifically, when the smart ring 8 has multiple functional modules 82, if it is necessary to replace other functional modules 82 of the smart ring 8, the support platform 2 is rotated by the fourth drive component 54, which in turn drives the smart ring 8 to rotate, allowing any functional module 82 of the smart ring 8 to be oriented towards the second drive component 52. Subsequently, by controlling the operation of the first drive component 51 and the second drive component 52, the functional module 82 of the smart ring 8 can be replaced. In addition, the fourth drive component 54 can also reduce the operational difficulty when replacing functional modules 82. Specifically, when replacing the functional module 82 of the smart ring 8, the operator needs to ensure that the functional module 82 of the smart ring 8 is oriented towards the second drive component 52 after placing the smart ring 8 on the support platform 2. However, with the fourth drive component 54, the user does not need to pay attention to the orientation of the functional module 82 of the smart ring 8 when placing it on the support platform 2, which greatly reduces the operational difficulty.

[0035] In another embodiment of the present invention, the smart ring is provided with multiple functional modules, and each carrier plate is correspondingly provided with multiple second driving components spaced apart along its circumference. The number of second driving components is equal to the number of functional modules. When the smart ring is placed on the support platform, each second driving component corresponds to each functional module. In this embodiment, by setting multiple carrier plates and multiple second driving components, multiple functional modules of the functional modules can be replaced simultaneously, thereby improving replacement efficiency. Specifically, when multiple functional modules of the smart ring need to be replaced simultaneously, multiple functional modules are first disassembled simultaneously through the disassembly mechanism in the multiple first disassembly cavities of one layer of carrier plate. Then, the third driving component is controlled to drive the smart ring to align with another layer of carrier plate, and the second driving component is controlled to operate. Then, the multiple functional modules to be installed can be simultaneously installed onto the smart ring through the disassembly mechanism in the multiple second disassembly cavities of the other layer of carrier plate.

[0036] Please see Figure 2 In one embodiment of the present invention, the support disk 3 is provided with a rack 33 extending circumferentially therefrom. The first driving assembly 51 includes a driving member 511 and a driving gear 512 that is pulverically connected to the driving member 511. The driving member 511 is disposed on the outer side of the support disk 3, and the driving gear 512 meshes with the rack 33. The driving member 511 may be a drive motor. In this embodiment, the driving member 511 drives the support disk 3 to rotate through the meshing of the gear and rack 33. This has the advantage of simple structure, which simplifies the structure of the adjustment device and reduces the manufacturing difficulty of the adjustment device.

[0037] Please see Figure 6 In one embodiment of the present invention, a support platform 2 is provided with a first protrusion 21 and two second protrusions 22 spaced apart along its circumference. Both the first protrusion 21 and each of the second protrusions 22 extend along the height direction of the support platform 2. Define: the distance between the second protrusion 22 closest to the first protrusion 21 along the circumference of the support platform 2 and the first protrusion 21 is 'a', and the distance between the two second protrusions 22 is 'b'; then: a > b; or a < b. In this embodiment, by providing a first protrusion 21 and two second protrusions 22 on the support platform 2, and making the distance between adjacent protrusions different, the placement position of the smart ring 8 can be restricted to ensure the accurate positioning of the smart ring 8. Specifically, when the smart ring 8 is placed on the support platform 2, due to the restriction of the first protrusion 21 and the second protrusions 22, the smart ring 8 can only be placed on the support platform 2 with a specific orientation and position. Accordingly, to ensure that the smart ring 8 can be placed on the support platform 2, the smart ring 8 should have a first groove corresponding to the first protrusion 21 and a second groove corresponding to the second protrusion 22.

[0038] Please see Figure 6 In one embodiment of the present invention, the support platform 2 includes a base 23 and a column 24. The base 23 is disposed inside the outer casing 1, and the column 24 is disposed on the base 23 and extends along the height direction of the outer casing 1. The base 23 is provided with a magnet for attracting the smart ring 8. In this embodiment, by providing a magnet for attracting the smart ring 8 on the base 23, the position of the smart ring 8 can be fixed when it is placed on the support platform 2, so as to avoid damage to the smart ring 8 due to rotation when the functional module 82 is replaced. In a specific embodiment, the first protrusion 21 and two second protrusions 22 are arranged circumferentially spaced along the column 24.

[0039] Please see Figure 2In one embodiment of the present invention, the second driving component 52 includes a driving module 521, a push rod 522, and a transmission gear 523 that is pulsatorically connected to the driving module 521. The driving module 521 is disposed within the housing 1, and the push rod 522 is slidably disposed within the housing 1 and can slide towards or away from the support platform 2. The transmission gear 523 meshes with the push rod 522. In this embodiment, the driving module 521 drives the push rod 522 to slide through gear meshing, which has the advantage of simple structure, simplifies the structure of the adjustment device, and reduces the manufacturing difficulty of the adjustment device. In a specific embodiment, to ensure the accuracy of the push rod 522 during sliding, a sliding groove is provided on the push rod 522, and a slider 412a is provided inside the housing 1, which is slidably disposed in the sliding groove.

[0040] Please see Figures 14 to 17 The smart ring 8 includes a ring body 81, a functional module 82, and a fixing frame 83. The functional module 82 is snapped into the ring body 81 via the fixing frame 83. Specifically, the ring body 81 is provided with an assembly slot 811, and the functional module 82 is snapped into the assembly slot 811 via the fixing frame 83. The fixing frame 83 is movably disposed on the ring body 81 and has a snap-in position for engaging the functional module 82 into the assembly slot 811 and a release position for disengaging the functional module 82 from the assembly slot 811. The fixing frame 83 includes two swing arms 831 and a crossbeam 832 extending axially along the ring body 81. The two swing arms 831 are respectively located at both ends of the extension direction of the crossbeam 832, and the swing arms 831 extend from the end of the corresponding crossbeam 832 toward the inner wall of the ring body 81. The end of each swing arm 831 facing away from the crossbeam 832 is hinged to the bottom wall of the mounting groove 811 on both sides of the circumferential direction of the ring body 81. A stop block 831a is formed at the hinge of each swing arm 831. The crossbeam 832 is provided with a snap block 832a. The inner side of the functional module 82 is provided with a stop groove 821, and the outer side of the functional module 82 is provided with a snap hole 822. When the functional module 82 is inserted into the assembly slot 811, the abutment groove 821 abuts against the abutment block 431a and drives the fixing frame 83 to rotate, thereby causing the fixing frame 83 to swing from the relaxed position to the snap-fit ​​position. At the same time, the snap-fit ​​block 832a is accommodated in the snap-fit ​​hole 822 to lock the functional module 82. When the pry bar assembly 43 abuts against the fixing frame 83 and pushes the fixing frame 83, the fixing frame 83 switches from the snap-fit ​​position to the relaxed position, and the snap-fit ​​block 832a is pushed out of the snap-fit ​​hole 822. The abutment block 431a abuts against the abutment groove 821 and pushes the functional module 82 away from the assembly slot 811. Furthermore, the fixing frame 83 is provided with a snap-fit ​​block 832a for accommodating the snap-fit ​​hole 822 when the fixing frame 83 is in the snap-fit ​​position; when the snap-fit ​​block 832a is accommodated in the snap-fit ​​hole 822, the snap-fit ​​block 832a and the snap-fit ​​hole 822 form a gap 823.

[0041] Please see Figures 7 to 13The disassembly and assembly mechanism 4 includes a sliding assembly 41, an adsorption component 42, a second elastic component 413, and a pry bar assembly 43. The sliding assembly 41 includes a bracket 411, a slide table 412, and an elastic component 413. The bracket 411 is slidably disposed on the support plate 3 and can slide towards or away from the support platform 2. The slide table 412 is slidably disposed on the bracket 411 and has a disassembly position and an installation position. The two ends of the first elastic component 413 are respectively connected to the bracket 411 and the slide table 412. The first elastic component 413 extends and retracts along the sliding direction. The adsorption component 42 is disposed on the slide table 412. The pry bar assembly 43 is hinged to the bracket 411. An elastic component 45 that extends and retracts along the sliding direction of the bracket 411 is disposed between the bracket 411 and the side of the support plate 3 away from the support platform 2. When disassembling the functional module 82, the drive module 521 drives the push rod 522 to slide towards the support platform 2 via the transmission gear 523, so that the push rod 522 is inserted into the first disassembly cavity 31 and pushes the bracket 411 to slide towards the support platform 2, and the slide table 412 slides from the disassembly position to the installation position. At the same time, the pry bar assembly 43 abuts against the fixing frame 83 and pushes the fixing frame 83, so that the functional module 82 is detached from the ring body 81 and adsorbed onto the adsorption member 42. When installing the functional module 82, the first drive assembly 51 drives the carrier plate 3 to rotate, so that the functional module 82 faces the second disassembly cavity 32. The drive module 521 drives the push rod 522 to slide towards the support platform 2 via the transmission gear 523, so that the push rod 522 is inserted into the second disassembly cavity 32 and pushes the bracket 411 to slide towards the support platform 2, and the slide table 412 slides from the installation position to the disassembly position, so that the functional module 82 is pushed onto the smart ring 8 and the functional module 82 is clamped by the fixing frame 83.

[0042] Specifically, when disassembling the functional module 82, the second drive component 52 is first controlled to push the bracket 411, causing the bracket 411 to slide towards the support platform 2. When the slide 412 comes into contact with the functional module 82 and is attracted by the adsorption member 42, the pry bar component 43 comes into contact with the fixing frame 83. As the second drive component 52 continues to push the bracket 411, the pry bar component 43 will push the fixing frame 83, so that the functional module 82 will detach from the ring body 81. During this process, the slide 412 slides from the disassembly position to the installation position on the side away from the disassembly position and drives the elastic member 413 to undergo elastic deformation. Subsequently, the drive module 521 drives the push rod 522 to slide away from the support platform 2. With the rebound force of the elastic member 45, the bracket 411 will slide away from the support platform 2, so that the functional module 82 attracted by the adsorption member 42 is completely detached from the ring body 81, completing the disassembly of the functional module 82. During this process, the slide 412 will slide down to the installation position under the action of the rebound force of the elastic member 413. When installing the functional module 82, the first drive assembly 51 is first controlled to drive the carrier plate 3 to rotate, so that the second disassembly cavity 32 moves from the position of the first disassembly cavity 31. Then, the second drive assembly 52 is controlled to push the bracket 411, so that the bracket 411 slides towards the support platform. This pushes the functional module 82 to be installed, which is adsorbed on the adsorption member 42, to the smart ring 8 and is locked by the fixing bracket 83. During this process, the slide table 412 slides away from the installation position and drives the elastic member 413 to undergo elastic deformation. Subsequently, the drive module 521 drives the push rod 522 to slide away from the support platform 2. With the rebound force of the elastic member 45, the bracket 411 will slide away from the support platform 2, so that the functional module 82 to be installed is separated from the adsorption member 42, and the installation of the functional module 82 is completed. During this process, the slide table 412 will slide towards the disassembly position under the action of the rebound force of the elastic member 413. It should be noted that the position adjustment of the slide table 412 in the above process is achieved by the cooperation of the slide rod 44 and the guide groove 414 described below.

[0043] Please see Figure 8 and Figure 9In one embodiment of the present invention, the support 411 is provided with a sliding space 411a extending along its sliding direction. The slide table 412 includes a slider 412a, a connecting rod 412b, and a mounting plate 412c. The slider 412a is slidably disposed in the sliding space 411a and can slide towards or away from the support table. The first end of the connecting rod 412b is connected to the slider 412a, and the second end of the connecting rod 412b extends out of the support 411 from the side of the support 411 near the support table. The mounting plate 412c is disposed at the second end of the connecting rod 412b and is provided with an adsorption member 42. The elastic member 413 extends and retracts along the sliding direction of the slider 412a. The elastic member 413 is disposed on the side of the slide table 412 facing the support table and is connected to the inner wall of the sliding space 411a; or, the elastic member 413 is disposed on the side of the slide table 412 away from the support table and is connected to the inner wall of the sliding space 411a. In this embodiment, by slidably placing the slider 412a in the sliding space 411a, the slider 412a can be limited to ensure accurate sliding. By extending the connecting rod 412b out of the bracket 411 and installing the adsorption member 42 on the mounting plate 412c provided at the second end of the connecting rod 412b, the functional module 82 can be adsorbed by the adsorption member 42, thereby realizing the disassembly of the functional module 82. The elastic member 413 extends and retracts along the sliding direction of the slider 412a and is used to push the slide table 412 when the bracket 411 slides away from the support platform, so that the slide table 412 slides from the installation position to the disassembly position. In a specific embodiment, the elastic member 413 is provided on the side of the slide table 412 away from the support platform and connected to the side wall of the sliding space 411a away from the support platform; and when the slide table 412 is in the disassembly position, the elastic member 413 is in the initial state; when the slide table 412 is in the installation position, the elastic member 413 is in the compressed state.

[0044] Please see Figures 9 to 12In one embodiment of the present invention, the slider 412a is provided with a guide groove 414, and the disassembly and assembly mechanism 4 further includes a slide rod 44. The first end of the slide rod 44 is hinged to the end of the bracket 411 away from the support platform, and the second end of the slide rod 44 is slidably disposed in the guide groove 414. The guide groove 414 includes a first guide segment 414a and a second guide segment 414b connected to each other. The end of the first guide segment 414a away from the second guide segment 414b is provided with a first snap-fit ​​position 414e, and the end of the second guide segment 414b away from the first guide segment 414a is provided with a first snap-fit ​​position 414e. A second locking position 414f is provided, and an abutment position 414g is provided at the connection between the first guide segment 414a and the second guide segment 414b. The second locking position 414f is located on the side of the first locking position 414e near the support table along the sliding direction of the slider 412a, and the abutment position 414g is located on the side of the second locking position 414f near the support table along the sliding direction of the slider 412a. The first locking position 414e, the second locking position 414f, and the abutment position 414g are arranged sequentially along the direction in which the slider 412a slides towards the support table. In this embodiment, by providing a guide groove 414 on the slider 412a and setting the guide groove 414 in a hook shape, the position of the slider 412 can be restricted when it slides to the installation position, thereby locking the slider 412 in the installation position.

[0045] Specifically, when the slide table 412 slides from the disassembly position to the installation position, the second end of the slide rod 44 slides from the first engaging position 414e, through the first guide section 414a, the abutment position 414g, and the second guide section 414b, to the second engaging position 414f. When the slide table 412 slides from the disassembly position to the installation position away from the disassembly position, the second end of the slide rod 44 slides from the first engaging position 414e, through the first guide section 414a, to the abutment position 414g. When the slide table 412 slides to the installation position by the rebound force of the elastic member 413, the second end of the slide rod 44 slides from the abutment position 414g, through the second guide section 414b, to the second engaging position 414f. When the slide table 412 slides from the installation position to the disassembly position, the second end of the slide rod 44 slides from the second engaging position 414f, through the second guide section 414b, the abutment position 414g, and the first guide section 414a, to the first engaging position 414e. When the slide table 412 slides away from the installation position towards the direction away from the disassembly position, the second end of the slide rod 44 slides from the second locking position 414f through the second guide section 414b to the abutment position 414g; when the slide table 412 slides to the disassembly position by the rebound force of the elastic member 413, the second end of the slide rod 44 slides from the abutment position 414g through the first guide section 414a to the first locking position 414e.

[0046] In one specific embodiment, the guide groove 414 is formed on the side wall of the slider 412a. To ensure smooth sliding of the second end of the slider 44 within the guide groove 414, the first guide segment 414a and the second guide segment 414b are connected by an arc segment, and the abutment position 414g is disposed on the arc segment. In a more specific embodiment, the first guide segment 414a includes a third guide segment 414c and a fourth guide segment 414d connected to each other, the first snap-fit ​​position 414e is disposed at the end of the third guide segment 414c away from the fourth guide segment 414d, and the end of the fourth guide segment 414d away from the third guide segment 414c is connected to the second guide segment 414b. The second guide segment 414b and the third guide segment 414c both slide along the slider 412a toward the support platform, tilting from the side closer to the central axis of the slider 412a toward the side farther from the central axis of the slider 412a; the fourth guide segment 414d slides along the slider 412a toward the support platform, tilting from the side farther from the central axis of the slider 412a toward the side closer to the central axis of the slider 412a. By designing the guide groove 414 with the above structure, the second end of the slide rod 44 can slide more smoothly between the first locking position 414e and the second locking position 414f, thereby improving the smoothness and reliability of the mechanism's movement. In addition, to further ensure the smooth sliding of the second end of the slide rod 44 within the guide groove 414, the end of the first guide segment 414a near the second guide segment 414b is connected to the second guide segment 414b to form an arc groove; that is, the fourth guide segment 414d is connected to the second guide segment 414b to form an arc groove.

[0047] Please see Figure 9 and Figure 12 In one embodiment of the present invention, the slider 412a is symmetrically provided with two guide grooves 414. The ends of the first guide segments 414a of the two guide grooves 414 away from the second guide segments 414b are connected to each other to form a first locking position 414e. The ends of the second guide segments 414b of the two guide grooves 414 away from the first guide segments 414a are connected to each other to form a second locking position 414f. In this embodiment, by symmetrically providing two guide grooves 414 on the slider 412a and connecting the two guide grooves 414 to form a heart-shaped structure, the movement path of the slider 44 can be optimized to ensure that the second end of the slider 44 slides smoothly in the guide grooves 414.

[0048] Specifically, when the slide table 412 slides from the disassembly position to the installation position, the second end of the slide rod 44 slides from the first locking position 414e through the first guide section 414a of one of the guide grooves 414, the abutment position 414g of one of the guide grooves 414, and the second guide section 414b of one of the guide grooves 414 to the second locking position 414f; when the slide table 412 slides from the installation position to the disassembly position, the second end of the slide rod 44 slides from the second locking position 414f through the second guide section 414b of another guide groove 414, the abutment position 414g of another guide groove 414, and the first guide section 414a of another guide groove 414 to the first locking position 414e. In one specific embodiment, to ensure that the second end of the slide rod 44 accurately slides into the second guide segment 414b of one of the guide grooves 414 when passing the abutment position 414g of one of the guide grooves 414, a first guide slope can be provided inside the connection between the first guide segment 414a and the second guide segment 414b of one of the guide grooves 414; to ensure that the second end of the slide rod 44 accurately slides into the second guide segment 414b of the other guide groove 414 from the second locking position 414f, a second guide slope can be provided inside the connection between the second guide segments 414b of the two guide grooves 414; to ensure that the second end of the slide rod 44 accurately slides into the first guide segment 414a of the other guide groove 414 when passing the abutment position 414g of the other guide groove 414, a third guide slope can be provided inside the connection between the first guide segment 414a and the second guide segment 414b of the other guide groove 414. The first and third guide slopes have the same inclination direction, while the second guide slope has the opposite inclination direction to the first guide slope.

[0049] Please see Figures 8 to 10In one embodiment of the present invention, the functional module 82 is provided with fixing brackets 83 on both sides of the ring body 81 in the circumferential direction. The functional module 82 is snapped into the ring body 81 by the two fixing brackets 83. There are two pry bar assemblies 43, which are symmetrically arranged and correspond one-to-one with the two fixing brackets 83. Each pry bar assembly 43 includes a connecting rod 431 and a swing rod 432 disposed at both ends of the connecting rod 431. The swing rod 432 is rotatably disposed on the bracket 411. The connecting rod 431 is provided with an abutment block 431a. The abutment block 431a is used to insert into the gap 823 when disassembling the functional module 82 and abut against the snap-fit ​​block 832a to drive the fixing bracket 83 to switch from the snap-fit ​​position to the release position. In this embodiment, the second drive assembly 52 pushes the bracket 411 so that the pry bar assembly 43 abuts against the fixed frame 83 and pushes the fixed frame 83. Simultaneously, the two pry bar assemblies 43 push the two fixed frames 83 from the snap-fit ​​position to the release position, thereby disengaging the functional module 82 from the ring body 81, ensuring the normal disengagement of the functional module 82. When the pry bar assembly 43 abuts against the fixed frame 83, the abutment block 431a is inserted into the gap 823 formed by the snap-fit ​​block 832a and the snap-fit ​​hole 822, ensuring the reliability of the pry bar assembly 43 pushing the fixed frame 83.

[0050] Please see Figure 10In one embodiment of the present invention, a pull rod 433 is provided at the end of each swing rod 432 away from the connecting rod 431. A fixing block 411b is provided on the bracket 411 corresponding to the position of each pull rod 433. A reset member 433a is provided between each pull rod 433 and the corresponding fixing block 411b. The reset member 433a is used to drive the swing rods 432 of the two pry bar assemblies 43 to swing towards each other. In a specific embodiment, the reset member 433a can be a spring. In this embodiment, the reset member 433a is used to drive the two pry bar assemblies 43 to swing towards each other, that is, to reduce the included angle between the swing rods 432 of the two pry bar assemblies 43, so that the two pry bar assemblies 43 reset. By setting the reset member 433a to drive the pry bar assemblies 43 to reset, the difficulty of disassembling and assembling the functional module 82 of the smart ring 8 can be reduced. Specifically, when disassembling the functional module 82, the operator needs to align the abutment blocks 431a of the two pry bar assemblies 43 with the gap 823 to ensure accurate insertion of the abutment blocks 431a into the gap 823 and push the fixing frame 83. However, by setting a reset member 433a, the rebound force of the reset member 433a automatically drives the two pry bar assemblies 43 to reset, thus aligning the abutment blocks 431a with the gap 823. When disassembling the functional module 82, the operator does not need to rotate the two pry bar assemblies 43 to align the abutment blocks 431a with the gap 823, reducing the operational difficulty and consequently simplifying the replacement of the functional module 82 of the smart ring 8. It should be noted that to ensure the two pry bar assemblies 43 accurately stop at the position where their abutment blocks 431a are aligned with the gap 823, the reset member 433a can be used in conjunction with the connecting rope 433b described below, or a limiting block can be set on the bracket 411 to restrict the position of the two pry bar assemblies 43.

[0051] Please see Figure 10In one embodiment of the present invention, a connecting rope 433b is provided between the two pull rods 433 corresponding to the two pry bar assemblies 43, and a limiting post 412d is provided on the slide table 412. The limiting post 412d is used to pull the connecting rope 433b when the slide table 412 slides to the installation position, and drives the pull rods 433 of the two pry bar assemblies 43 to swing towards each other through the connecting rope 433b, so that the swing rods 432 of the two pry bar assemblies 43 swing away from each other. In this embodiment, the limiting post 412d is used to bend the connecting rope 433b when the slide table 412 is in the installation position, so that the pry bar assembly 43 opens to a larger angle, thereby preventing the pry bar assembly 43 from pushing the fixing frame 83 when installing the functional module 82. Specifically, when the slide table 412 slides to the installation position, the limiting post 412d abuts against and pulls the connecting rope 433b, causing the connecting rope 433b to bend. This, in turn, drives the pull rods 433 of the two pry bar assemblies 43 to swing towards each other, causing the swing rods 432 of the two pry bar assemblies 43 to swing in opposite directions. After sliding to the installation position, the connecting rope 433b will be in a bent state. At this time, the swing rods 432 of the two pry bar assemblies 43 will open to a larger angle under the pull of the connecting rope 433b, thus preventing the pry bar assemblies 43 from pushing the fixing frame 83 when installing the functional module 82. In this embodiment, the connecting rope 433b is a non-extendable and non-retractable pull rope.

[0052] Please see Figures 1 to 3 The present invention also proposes a charging box, which includes the above-mentioned adjustment device. The specific structure of the adjustment device is as described in the above embodiments. Since the charging box adopts all the technical solutions of all the above embodiments, it has at least all the beneficial effects brought about by the technical solutions of the above embodiments, which will not be described in detail here.

[0053] Specifically, the charging box includes a wireless charging module, a charging mechanism 7, an elastic wire 6, and the aforementioned adjustment device. The adjustment device includes a fourth drive assembly 54, which includes a drive body 541 and a support plate 542 pulsatorically connected to the drive body 541. The drive body 541 is disposed within the outer shell 1, the support plate 542 is rotatably disposed within the outer shell 1, a support platform 2 is disposed on the support plate 542, and the wireless charging module is disposed on the support platform 2. The charging mechanism 7 includes a circuit board 71 and an energy storage module 72. The circuit board 71 is disposed within the outer shell 1, and the energy storage module 72 is disposed on the circuit board 71. The first end of the elastic wire 6 is connected to the wireless charging module, and the second end of the elastic wire 6 is disposed on the support plate 542 and electrically connected to the circuit board 71. In this embodiment, the smart ring 8 can be charged through the charging mechanism 7 and the wireless charging module disposed on the support platform 2 to meet the user's charging needs for the smart ring 8. Specifically, to ensure the charging case can charge the smart ring 8, the smart ring 8 should be equipped with a wireless charging coil, and when the smart ring 8 is placed on the support platform 2, the wireless charging coil should be aligned with the wireless charging module. The flexible wire 6 is used to match the lifting movement of the support platform 2 to ensure the reliability of the electrical signal connection between the circuit board 71 and the wireless charging module. In a specific embodiment, the energy storage module 72 can be a battery.

[0054] Please see Figures 3 to 5 In one embodiment of the present invention, a spring piece 542a is provided on the support plate 542 at the position corresponding to the second end of the elastic wire 6. A conductive ring 11 extending along the rotation direction of the support platform 2 is provided inside the outer shell 1. The conductive ring 11 is electrically connected to the circuit board 71. The spring piece 542a is disposed on the support plate 542 and abuts against the conductive ring 11 when the drive body 541 drives the support platform to rotate. In this embodiment, when the drive body 541 drives the support platform to rotate, the spring piece 542a and the conductive ring 11 are always in contact. This ensures the continuity between the elastic wire 6 and the circuit board 71 and prevents cable tangling, thus ensuring the reliability of the charging box during use. In addition, the structure of the spring piece 542a and the conductive ring 11 to achieve continuity has the advantage of simple structure and can reduce the manufacturing difficulty of the charging box. In one specific embodiment, the spring sheet 542a includes an elastic plate 542c and a fixing plate 542b respectively connected to both sides of the elastic plate 542c. The fixing plate 542b is disposed on the support plate 542 and connected to the elastic wire 6. The elastic plate 542c is provided with a bending portion, which abuts against the conductive ring 11 when the drive body 541 drives the support platform to rotate.

[0055] The above description is merely an exemplary embodiment of the present invention and does not limit the scope of protection of the present invention. Any equivalent structural transformations made based on the technical concept of the present invention and the contents of the specification and drawings of the present invention, or direct / indirect applications in other related technical fields, are included within the scope of protection of the present invention.

Claims

1. An adjustment device for assisting the alignment of a functional module and a disassembly mechanism of a smart ring, characterized in that, The adjusting device comprises: a housing; a support table, at least a part of the support table is arranged in the housing and is used for carrying the smart ring; a carrying disc, the carrying disc is rotatably arranged in the housing and is annularly arranged on the support table, the carrying disc is provided with a first dismounting cavity and a second dismounting cavity, the first dismounting cavity and the second dismounting cavity are arranged along the circumference of the support table, the first dismounting cavity and the second dismounting cavity are both provided with the dismounting mechanism; a driving mechanism, the driving mechanism comprises a first driving assembly and a second driving assembly, the first driving assembly is arranged outside the carrying disc, the first driving assembly is in transmission connection with the carrying disc and is used for driving the carrying disc to rotate; the second driving assembly is arranged outside the carrying disc and is correspondingly arranged with the first dismounting cavity; when the functional module is dismounted, the second driving assembly is used for inserting the first dismounting cavity and pushing the dismounting mechanism arranged in the first dismounting cavity, so as to dismount the functional module from the smart ring; when the functional module is mounted, the first driving assembly drives the carrying disc to rotate, so that the second dismounting cavity moves to the position of the first dismounting cavity, the second driving assembly is used for inserting the second dismounting cavity and pushing the dismounting mechanism in the second dismounting cavity, so as to mount the functional module to the smart ring.

2. The adjustment device of claim 1, wherein The carrying disc is provided with a plurality of first dismounting cavities and a plurality of second dismounting cavities, the number of the first dismounting cavities is equal to the number of the second dismounting cavities, and each first dismounting cavity and each second dismounting cavity are alternately arranged along the circumference of the support table.

3. The adjustment device of claim 1, wherein, The number of the carrying discs is a plurality, a plurality of the carrying discs are annularly arranged on the support table and are stacked along the height direction of the housing, the bottommost carrying disc is rotatably arranged in the housing, and the upper carrying disc is rotatably arranged on the adjacent lower carrying disc; each carrying disc is correspondingly provided with at least one second driving assembly; The driving mechanism further comprises a third driving assembly, the third driving assembly comprises a driving unit and a driving rod in transmission connection with the driving unit, the driving unit is arranged at the bottom of the support table, the driving rod is arranged through at least part of the support table and is in threaded connection with the support table, and the driving unit drives the support table to move along the height direction of the housing through the driving rod.

4. The adjustment device of claim 3, wherein The smart ring is provided with a plurality of functional modules, each carrying disc is correspondingly provided with a plurality of second driving assemblies which are arranged at intervals along the circumference thereof, and the number of the second driving assemblies is equal to the number of the functional modules; When the smart ring is placed on the support table, each second driving assembly is correspondingly arranged with each functional module.

5. The adjustment device of any one of claims 1 to 4, wherein, The carrying disc is provided with a rack extending along the circumference thereof, the first driving assembly comprises a driving piece and a driving gear in transmission connection with the driving piece, the driving piece is arranged outside the carrying disc, and the driving gear is in meshing connection with the rack.

6. The adjustment device of any one of claims 1 to 4, wherein, The smart ring comprises a ring body, a functional module and a fixing frame, the functional module is clamped on the ring body through the fixing frame. The dismounting mechanism comprises a sliding assembly, a suction accessory, a second elastic member and a lever assembly, the sliding assembly comprises a support, a sliding table and an elastic member, the support is slidingly arranged on the bearing disc and can slide towards or away from the support table, the sliding table is slidingly arranged on the support and has a dismounting position and an installation position, two ends of the first elastic member are connected with the support and the sliding table respectively, the first elastic member is stretched or contracted along the sliding direction of the sliding, the suction accessory is arranged on the sliding table, and the lever assembly is hinged to the support; The second driving assembly comprises a driving module, a push rod and a transmission gear in transmission connection with the driving module, the driving module is arranged in the shell, the push rod is slidingly arranged in the shell and can slide towards or away from the support table, and the transmission gear is in mesh with the push rod; When the functional module is dismounted, the driving module drives the push rod to slide towards the support table through the transmission gear, so that the push rod is inserted into the first dismounting cavity and pushes the support to slide towards the support table, the sliding table slides from the dismounting position to the installation position, at the same time, the lever assembly abuts against the fixed frame and pushes the fixed frame, so that the functional module is separated from the ring body and is adsorbed on the suction accessory; when the functional module is installed, the first driving assembly drives the bearing disc to rotate, so that the functional module is towards the second dismounting cavity, the driving module drives the push rod to slide towards the support table through the transmission gear, so that the push rod is inserted into the second dismounting cavity and pushes the support to slide towards the support table, and the sliding table slides from the installation position to the dismounting position, so that the functional module is pushed to the smart ring and is clamped by the fixed frame.

7. The adjustment device of any one of claims 1 to 4, wherein, The support is provided with a first protrusion and at least two second protrusions along the circumferential direction thereof, and the first protrusion and each second protrusion extends along the height direction of the support; Definition: the distance between the second protrusion close to the first protrusion along the circumferential direction of the support and the first protrusion is a, and the distance between two second protrusions is b; then a > b or a < b; and / or, The support comprises a base and a column, the base is arranged in the shell, the column is arranged on the base and extends along the height direction of the shell, and the base is provided with a magnet for adsorbing the smart ring.

8. The adjustment device of claim 3, wherein, The smart ring is provided with a plurality of functional modules, and the driving mechanism further comprises a fourth driving assembly, the fourth driving assembly comprises a driving body and a bearing plate in transmission connection with the driving body, the driving body is arranged in the shell, the bearing plate is rotationally arranged in the shell, and the third driving assembly is arranged on the bearing plate; The driving body is used for driving the bearing plate to rotate, and further driving the support to rotate, so that each functional module of the smart ring can be arranged towards the second driving assembly.

9. A charging case characterized by, Comprise: The adjusting device according to any one of claims 1 to 7, comprising a fourth driving assembly, the fourth driving assembly comprising a driving body and a bearing plate in driving connection with the driving body, the driving body being arranged in the shell, the bearing plate being rotatably arranged in the shell, the support table being arranged on the bearing plate; a wireless charging module arranged on the support table; a charging mechanism comprising a circuit board and an energy storage module, the circuit board being arranged in the shell, the energy storage module being arranged on the circuit board; an elastic wire, a first end of the elastic wire being connected with the wireless charging module, a second end of the elastic wire being arranged on the bearing plate and being in electrical signal connection with the circuit board.

10. The charging case of claim 9, wherein, The bearing plate is provided with an elastic sheet at a position corresponding to the second end of the elastic wire, the shell is provided with a conductive ring extending along a rotation direction of the support table, the conductive ring being in electrical signal connection with the circuit board, the elastic sheet being arranged on the bearing plate and being in abutment with the conductive ring when the driving body drives the bearing table to rotate.