Watch head, wearable device, watch frame mechanism, and detachable structure

CN118483892BActive Publication Date: 2026-09-18GUANGDONG OPPO MOBILE TELECOMMUNICATIONS CORP LTD
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Patent Information

Application Number
CN202310121186.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-02-13
Publication Date
2026-09-18
Estimated Expiration
2043-02-13

AI Technical Summary

Technical Problem

当需要更换机芯时,需要先将底盖从机壳上拆卸,才能够将机芯从机壳内取出,这无疑会对机芯的更换造成不便

Benefits of technology

[0007] The watch head provided in this application embodiment, by setting a sliding component slidably connected to the watch frame, can push a limiting component mounted around the movement on the watch frame towards the movement when sliding from a first position to a second position, causing the limiting component to engage with the movement. Simultaneously, by setting a locking component slidably connected to the watch frame, when the sliding component slides from the first position to the second position, it can be pushed from a third position to a fourth position to avoid obstruction, and after displacement, return to the third position to engage with the sliding component, thus locking the sliding component in the second position to maintain the limiting component engaged with the movement, thereby achieving a fixed assembly of the movement and watch frame. Furthermore, by setting the locking component to be able to move to the fourth position after resetting, it can release the locking of the sliding component, allowing the sliding component to return to the first position. The limiting component can then move away from the movement and exit the movement as the sliding component resets, thereby achieving disassembly of the movement and watch frame. With this configuration, the user can achieve a detachable connection between the watch frame and movement by operating the sliding component and the locking component, which improves the ease of disassembly of the watch frame and movement.

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Abstract

This application provides a watch head, a wearable device, a watch frame mechanism, and a detachable structure. The watch head includes a watch frame, a movement mounted on the watch frame, and a detachable structure disposed on the watch frame. The detachable structure includes a sliding component slidably connected to the watch frame, a limiting component and a locking component located on the sliding path of the sliding component, wherein the limiting component is also arranged around the movement, and the locking component is also slidably connected to the watch frame. When the sliding component slides, the limiting component is pushed into the movement by the sliding component, and the locking component is displaced by the sliding component and resets after displacement to lock the position of the sliding component. The locking component can be displaced in the opposite direction after reset to release the lock on the sliding component. After the lock is released, the sliding component resets, and the limiting component exits the movement along with the reset of the sliding component. With the above configuration, the detachable structure can be used to achieve a detachable connection between the watch frame and the movement.
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Description

Technical Field

[0001] This application relates to the technical field of wearable devices, specifically to a watch head, wearable device, watch frame mechanism and detachable structure. Background Technology

[0002] Currently, most watch cases generally consist of a case, a movement, and a case back. The movement is housed within the case, while the case back is placed on the case, securing the movement inside. When the movement needs to be replaced, the case back must first be removed from the case to extract the movement, which undoubtedly causes inconvenience. Therefore, improving the ease of movement disassembly has become a major concern for industry professionals. Summary of the Invention

[0003] This application provides a watch head, comprising: a watch frame, a movement mounted on the watch frame, and a detachable structure disposed on the watch frame; the detachable structure comprises: a sliding component slidably connected to the watch frame, a limiting component and a locking component located on the sliding path of the sliding component, wherein the limiting component is also disposed around the movement, and the locking component is also slidably connected to the watch frame; wherein, when the sliding component slides from a first position to a second position, the limiting component is pushed by the sliding component and displaced towards the movement, and locks into the movement; the locking component is pushed by the sliding component and displaced from a third position to a fourth position, and after displacement, returns to the third position and locks into the sliding component, thereby locking the sliding component in the second position; the locking component is further configured to be displaced to the fourth position after reset to release the lock on the sliding component; the sliding component is configured to return to the first position after the lock is released; and the limiting component is configured to displace away from the movement as the sliding component resets, and exit the movement.

[0004] This application also provides a wearable device, comprising: a watch head and a watch strap; the watch head includes: a watch frame, a movement mounted on the watch frame, and a detachable structure disposed on the watch frame; the watch strap is connected to the watch frame; the detachable structure includes: a sliding component slidably connected to the watch frame, a limiting component and a snap-fit ​​component located on the sliding path of the sliding component, wherein the limiting component is also disposed around the movement, and the snap-fit ​​component is also slidably connected to the watch frame; wherein, when the sliding component slides from a first position to a second position, the limiting component is subject to the sliding component. The sliding component is pushed towards the movement and engages with it. The engaging component is pushed from the third position to the fourth position by the sliding component, and then returns to the third position to engage with the sliding component, thereby locking the sliding component in the second position. The engaging component is also configured to move to the fourth position after resetting to release the lock on the sliding component. The sliding component is configured to return to the first position after the lock is released. The limiting component is configured to move away from the movement as the sliding component resets and exit the movement.

[0005] This application also provides a watch frame mechanism for mounting the movement of a wearable device. The watch frame mechanism includes: a watch frame for mounting the movement, and a detachable structure disposed on the watch frame; the detachable structure includes: a sliding component slidably connected to the watch frame, a limiting component and a snap-fit ​​component located on the sliding path of the sliding component, wherein the limiting component is also disposed around the movement, and the snap-fit ​​component is also slidably connected to the watch frame; wherein, when the sliding component slides from a first position to a second position, the limiting component is pushed closer to the movement by the sliding component. The sliding component is displaced in the direction of the movement and engages with the movement. The engaging component is pushed by the sliding component and displaced from the third position to the fourth position. After the displacement, it returns to the third position and engages with the sliding component to lock the sliding component in the second position. The engaging component is also configured to be displaced to the fourth position after the reset to release the lock on the sliding component. The sliding component is configured to return to the first position after the lock is released. The limiting component is configured to displace away from the movement as the sliding component resets and exit the movement.

[0006] This application also provides a detachable structure for a detachable connection between a watch case and a movement mounted on the watch case. The detachable structure includes: a sliding component slidably connected to the watch case; a limiting component and a locking component located on the sliding path of the sliding component; the limiting component is also disposed around the movement; and the locking component is also slidably connected to the watch case. When the sliding component slides from a first position to a second position, the limiting component is pushed by the sliding component and displaced towards the movement, locking into the movement. The locking component is pushed by the sliding component and displaced from a third position to a fourth position, then resets to the third position and locks into the sliding component, thereby locking the sliding component in the second position. The locking component is further configured to displace to the fourth position after reset to release the lock on the sliding component. The sliding component is configured to reset to the first position after the lock is released, and the limiting component is configured to displace away from the movement as the sliding component resets, exiting the movement.

[0007] The watch head provided in this application embodiment, by setting a sliding component slidably connected to the watch frame, can push a limiting component mounted around the movement on the watch frame towards the movement when sliding from a first position to a second position, causing the limiting component to engage with the movement. Simultaneously, by setting a locking component slidably connected to the watch frame, when the sliding component slides from the first position to the second position, it can be pushed from a third position to a fourth position to avoid obstruction, and after displacement, return to the third position to engage with the sliding component, thus locking the sliding component in the second position to maintain the limiting component engaged with the movement, thereby achieving a fixed assembly of the movement and watch frame. Furthermore, by setting the locking component to be able to move to the fourth position after resetting, it can release the locking of the sliding component, allowing the sliding component to return to the first position. The limiting component can then move away from the movement and exit the movement as the sliding component resets, thereby achieving disassembly of the movement and watch frame. With this configuration, the user can achieve a detachable connection between the watch frame and movement by operating the sliding component and the locking component, which improves the ease of disassembly of the watch frame and movement. Attached Figure Description

[0008] To more clearly illustrate the technical solutions in the embodiments of this application, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the accompanying drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0009] Figure 1 This is a schematic diagram of the structure of the wearable device 10 provided in the embodiments of this application;

[0010] Figure 2 yes Figure 1 A schematic diagram of the exploded structure of the header 100;

[0011] Figure 3 yes Figure 2 A schematic diagram of the structure of the middle table frame 110;

[0012] Figure 4 yes Figure 3 A schematic diagram of the cross-sectional structure of the middle frame 110 along line V-V;

[0013] Figure 5 yes Figure 2 A schematic diagram of the structure of the central movement 120;

[0014] Figure 6 yes Figure 2 Exploded view of the detachable structure 130;

[0015] Figure 7 yes Figure 1 A schematic diagram of a partial cross-sectional structure of the middle meter head 100 along line VI-VI;

[0016] Figure 8 yes Figure 1 A schematic diagram of another section of the cross-sectional structure of the middle meter head 100 along VI-VI;

[0017] Figure 9 yes Figure 6 A schematic diagram of the structure of the middle limiting component 131;

[0018] Figure 10 yes Figure 9 A magnified view of a portion of point A in the middle;

[0019] Figure 11 yes Figure 1 A schematic diagram of a partial cross-sectional structure of the central meter head 100 along line IV-IV;

[0020] Figure 12 yes Figure 1 A schematic diagram of the cross-sectional structure of another part of the central meter head 100 along line IV-IV;

[0021] Figure 13 yes Figure 6 A schematic diagram of the structure of the sliding component 132;

[0022] Figure 14 yes Figure 13 Schematic diagram of the middle sliding member 1321;

[0023] Figure 15 yes Figure 6 A schematic diagram of the mating structure of the middle limiting component 131 and the sliding component 1321;

[0024] Figure 16 yes Figure 6 Another schematic diagram of the mating structure between the middle limiting component 131 and the sliding component 1321;

[0025] Figure 17 yes Figure 6 A schematic diagram of the structure of the middle card connector assembly 133;

[0026] Figure 18 yes Figure 17 Schematic diagram of the structure of the middle fixed base 1331;

[0027] Figure 19 yes Figure 17 Structural diagram of the 1332 connector;

[0028] Figure 20 yes Figure 6 A schematic diagram of the mating structure of the sliding component 132 and the snap-fit ​​component 133;

[0029] Figure 21 yes Figure 6 Another schematic diagram of the mating structure of the sliding component 132 and the snap-fit ​​component 133. Detailed Implementation

[0030] The present application will now be described in further detail with reference to the accompanying drawings and embodiments. It should be particularly noted that the following embodiments are for illustrative purposes only and do not limit the scope of the application. Similarly, the following embodiments are only some, not all, embodiments of the present application, and all other embodiments obtained by those skilled in the art without inventive effort are within the scope of protection of the present application.

[0031] In this application, the reference to "embodiment" means that a specific feature, structure, or characteristic described in connection with an embodiment may be included in at least one embodiment of this application. The appearance of this phrase in various places throughout the specification does not necessarily refer to the same embodiment, nor is it a separate or alternative embodiment mutually exclusive with other embodiments. It will be explicitly and implicitly understood by those skilled in the art that the embodiments described herein can be combined with other embodiments.

[0032] Please see Figures 1 to 2 , Figure 1 This is a schematic diagram of the structure of the wearable device 10 provided in the embodiments of this application. Figure 2 yes Figure 1 A schematic diagram of the exploded structure of the header 100.

[0033] The wearable device 10 provided in this application embodiment can be a smartwatch, a mechanical watch, or an electronic watch, etc. The following example uses a smartwatch as the wearable device 10 for illustration. Figures 1 to 2As shown, the wearable device 10 may include a watch head 100 and a watch strap 200. The watch strap 200 is connected to opposite sides of the watch head 100, and together with the watch strap 200, they form a wearing space for the user. Simultaneously, the watch head 100 may integrate various functional components required by the wearable device 10. Besides providing users with conventional services such as calendar, time, and weather viewing, it can also provide communication services such as voice calls and video chats, and monitor the user's daily exercise and health data. Of course, the functions of the watch head 100 are not limited to these; they are not all listed in this embodiment.

[0034] The watch head 100 can be worn on the user's wrist and can integrate functional devices such as a battery, display screen, microphone, and speaker. Figure 2 As shown, the watch head 100 may include a watch frame 110, a movement 120, and a detachable structure 130. The watch frame 110 can be used to mount and protect the movement 120, and the opposite sides of the watch frame 110 can also be used to connect the watch strap 200. The movement 120 can be mounted on the watch frame 110 and can integrate the aforementioned functional components. The detachable structure 130 can be disposed on the watch frame 110 and can also be connected to the movement 120, enabling a detachable connection between the watch frame 110 and the movement 120. In this embodiment, the watch frame 110 and the detachable structure 130 can constitute a watch frame mechanism 101 for mounting the movement 120. That is, the watch frame mechanism 101 may include the watch frame 110 and the detachable structure 130. Of course, the watch frame mechanism 101 is not limited to only including the watch frame 110 and the detachable structure 130; this embodiment does not limit this.

[0035] Please see Figures 3 to 5 , Figure 3 yes Figure 2 A structural diagram of the middle frame 110. Figure 4 yes Figure 3 A schematic diagram of the cross-sectional structure of the middle frame 110 along section V-V. Figure 5 yes Figure 2 A schematic diagram of the structure of the central movement 120.

[0036] The bezel 110 can be used to mount and protect the movement 120 and is connected to the strap 200. For example... Figures 3 to 4As shown, the watch frame 110 has a mounting groove 1101 for mounting the movement 120. The mounting groove 1101 extends through two opposite sides of the watch frame 110 perpendicular to the thickness direction Z of the movement 120, and forms a first opening 1102 and a second opening 1103 on the opposite sides of the watch frame 110, respectively. The movement 120 can be fitted into the mounting groove 1101 through the first opening 1102, and the display surface of the movement 120 can be exposed outside the watch frame 110 through the second opening 1103 for user viewing. In this embodiment, the watch frame 110 can be generally annular in shape, and the material of the watch frame 110 can be rigid plastic. Correspondingly, the mounting groove 1101 can also be circular.

[0037] The terms "first," "second," and "third" used in this application are for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first," "second," or "third" may explicitly or implicitly include at least one of that feature.

[0038] Optionally, the mounting groove 1101 may only form a first opening 1102 on the watch frame 110, that is, the mounting groove 1101 does not penetrate the opposite sides of the watch frame 110 perpendicular to the thickness direction Z. In this case, the display surface of the movement 120 can be exposed outside the watch frame 110 through the first opening 1102. Optionally, the material of the watch frame 110 is not limited to hard plastic; the watch frame 110 may also be made of materials such as metal or ceramic, and the watch frame 110 is not limited to being ring-shaped; its shape can be adapted to the design requirements of the wearable device 10. For example, the watch frame 110 may also be rectangular or elliptical in shape, etc., and this embodiment does not limit this. Correspondingly, the shape of the mounting groove 1101 is not limited to being circular; the shape of the mounting groove 1101 can be adapted to the shape of the watch frame 110 and the movement 120, and this embodiment does not limit this.

[0039] Furthermore, the frame 110 also has a clearance groove 1104 and an annular groove 1105 for mounting the detachable structure 130. For example... Figure 4 As shown, a clearance groove 1104 is formed on the side wall of the mounting groove 1101, and the clearance groove 1104 can accommodate the locking and unlocking portion of the detachable structure 130. An annular groove 1105 is also formed on the side wall of the mounting groove 1101, and the annular groove 1105 surrounds the movement 120, which can accommodate the portion of the detachable structure 130 that engages with the movement 120. Simultaneously, the annular groove 1105 can communicate with the clearance groove 1104, so that the two parts of the detachable structure 130 located in the clearance groove 1104 and the annular groove 1105 can cooperate.

[0040] Furthermore, to facilitate locking and unlocking of the detachable structure 130, a first through hole 1106 and a second through hole 1107 can be respectively provided on opposite sides of the frame 110 perpendicular to the thickness direction Z. For example... Figure 4 As shown, both the first through hole 1106 and the second through hole 1107 can communicate with the clearance groove 1105, and the locking and unlocking parts of the detachable structure 130 can be exposed outside the watch frame 110 through the first through hole 1106 and the second through hole 1107, respectively, so that the user can apply external force to the detachable structure 130 through the first through hole 1106 and the second through hole 1107 to perform locking and unlocking operations. In this embodiment, the user can apply external force to the detachable structure 130 through the first through hole 1106 to perform a locking operation, and the user can also apply external force to the detachable structure 130 through the second through hole 1107 to perform an unlocking operation.

[0041] Optionally, the first through hole 1106 and the second through hole 1107 may not be limited to being opened on opposite sides of the frame 110 perpendicular to the thickness direction Z. The specific positions of the two can be adaptively adjusted according to the layout of the locking and unlocking parts of the detachable structure 130. The user only needs to lock and unlock the detachable structure 130 through the first through hole 1106 and the second through hole 1107. This embodiment does not limit this.

[0042] Furthermore, the frame 110 may also have a notch 1108 that communicates with the mounting groove 1101. Figure 3 (As shown), and the notch 1108 can penetrate the watch frame 110 in a direction perpendicular to the thickness direction Z, and connect to the side of the watch frame 110 where the first opening 1102 is formed. When the movement 120 is inserted into the mounting slot 1101 from the first opening 1102, the button structure 121 on the movement 120 that mates with the notch 1108... Figure 2 and Figure 5 (As shown) It can be inserted into the notch 1108 to achieve the positioning and assembly of the watch bezel 110 and the movement 120. At the same time, the button structure 121 can also be set to protrude from the side of the watch bezel 110 away from the mounting groove 1101 through the notch 1108, so that the user can press the button structure 121.

[0043] Furthermore, the opposite sides of the watch bezel 110 away from the mounting groove 1101 can also be used to connect with the watch strap 200. For example, the opposite sides of the watch bezel 110 away from the mounting groove 1101 can be provided with protrusions 111, and holes can be formed on the protrusions 111. The watch strap 200 can be detachably connected to the watch bezel 110 by engaging spring bars with the holes on the protrusions 111. Of course, in addition to detachable connection by spring bars, the watch strap 200 and the watch bezel 110 can also be detachably connected in other ways, which are not limited in this embodiment. Optionally, the watch strap 200 and the watch bezel 110 can also be fixedly connected and non-detachable.

[0044] The mechanism 120 can integrate various functional components to achieve the functions corresponding to the wearable device 10. For example... Figures 3 to 5 As shown, the movement 120 can be assembled into the mounting groove 1101 through the first opening 1102, and the display surface of the movement 120 can also be exposed outside the watch frame 110 through the second opening 1103. A limiting groove 1201 can be formed on the periphery of the movement 120 facing the side wall of the mounting groove 1101. The limiting groove 1201 can also be arranged opposite to the annular groove 1105, and can accommodate a portion of the detachable structure 130 located in the annular groove 1105 when the user locks the detachable structure 130, allowing the movement 120 to engage with the detachable structure 130 in the direction of exiting the mounting groove 1101, thereby achieving a fixed assembly of the watch frame 110 and the movement 120. Simultaneously, the limiting groove 1201 can also be annular, allowing the detachable structure 130 to engage with the periphery of the movement 120 around it, thereby improving the assembly stability of the watch frame 110 and the movement 120. In addition, the button structure 121 can also be located on the periphery of the side wall of the mechanism 120 facing the mounting groove 1101.

[0045] All directional indications (such as up, down, left, right, front, back, etc.) in the embodiments of this application are only used to explain the relative positional relationship and movement of the components in a specific posture (as shown in the figure). If the specific posture changes, the directional indication will also change accordingly. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion. For example, a process, method, system, product, or device that includes a series of steps or units is not limited to the listed steps or units, but may optionally include steps or units not listed, or may optionally include other steps or units inherent to these processes, methods, products, or devices.

[0046] Please see Figures 6 to 8 , Figure 6 yes Figure 2 Exploded view of the detachable structure 130. Figure 7 yes Figure 1A schematic diagram of the cross-sectional structure of the middle meter head 100 along line VI-VI. Figure 8 yes Figure 1 A schematic diagram of another section of the structure of the middle table head 100 along VI-VI.

[0047] A detachable structure 130 is provided on the watch case 110, and the detachable structure 130 enables a detachable connection between the watch case 110 and the movement 120. For example... Figures 6 to 8 As shown, the detachable structure 130 may include a limiting component 131, a sliding component 132, and a snap-fit ​​component 133. The limiting component 131 is located within the annular groove 1105 and can snap into the limiting groove 1201 on the periphery of the movement 120 to achieve a fixed assembly of the watch frame 110 and the movement 120. The sliding component 132 is located within the clearance groove 1104 and is slidably connected to the watch frame 110. The sliding component 132 can push the limiting component 132 into the limiting groove 1201 during sliding. The snap-fit ​​component 133 is also located within the clearance groove 1104 and can lock the position of the sliding component 132 after the limiting component 131 snaps into the limiting groove 1201, thus maintaining the state of the limiting component 131 snapped into the limiting groove 1201. Simultaneously, the snap-fit ​​component 133 is also slidably connected to the watch frame 110, and can release the lock on the sliding component 132 after displacement, allowing the limiting component 131 to exit the limiting groove 1201 as the sliding component 132 resets, thereby enabling the disassembly of the watch frame 110 and the movement 120. This configuration allows the detachable structure 130 to achieve a detachable connection between the watch frame 110 and the movement 120, and also improves the ease of disassembly of the movement 120.

[0048] The limiting component 131 is disposed within the annular groove 1105 and also surrounds the movement 120. Simultaneously, a portion of the limiting component 131 is also disposed within the clearance groove 1104 and located on the sliding path of the sliding component 132, so that the sliding component 132 can push against the limiting component 131 during sliding, causing the limiting component 131 to displace closer to the movement 120 and thus engage with the limiting groove 1201. Furthermore, when the sliding component 132 resets, the limiting component 131 can also displace further away from the movement 120 along with the reset of the sliding component 132, exiting the limiting groove 1201, thereby releasing the engagement between the limiting component 131 and the movement 120, allowing the movement 120 to be removed from the mounting groove 1101.

[0049] The sliding component 132 is disposed within the clearance groove 1104 and is slidably connected to the watch frame 110 in the thickness direction Z. When the sliding component 132 slides from the first position to the second position, it can push the limiting component 131 towards the movement 120, allowing the limiting component 131 to engage with the limiting groove 1201. Simultaneously, when the sliding component 132 slides to the second position, it can also push the engaging component 133 to move, allowing the engaging component 133 to avoid the sliding of the sliding component 132 and engage with the engaging component 133 after the engaging component 133 resets, thus locking itself in the second position and maintaining the state where the limiting component 131 is engaged with the limiting groove 1201. Correspondingly, when the locking component 133 displaces and releases the locking of the sliding component 132, the sliding component 132 can reset to the first position, allowing the limiting component 131 to exit the limiting groove 1201 as the sliding component 132 resets. Furthermore, the sliding component 132 can also be exposed outside the watch frame 110 through the first through hole 1106, allowing it to slide from the first position to the second position under the action of an external force applied by the user, thus completing the user's locking operation.

[0050] The latching component 133 is also disposed within the clearance groove 1104 and is slidably connected to the watch frame 110 in a direction perpendicular to the thickness direction Z. The latching component 133 is also located on the sliding path of the sliding component 132. When the sliding component 132 slides to the second position, the latching component 133 can be pushed from the third position to the fourth position by the sliding component 132 to avoid the sliding of the sliding component 132. After the sliding component 132 has slid into place, the latching component 133 can also reset to the third position and latch with the sliding component 132 to lock the sliding component 132 in the second position, thereby maintaining the state of the limiting component 131 being engaged in the limiting groove 1201. Simultaneously, the latching component 133 can also be exposed outside the watch frame 110 through the second through hole 1107, and the latching component 133 can be displaced to the fourth position under the action of external force applied by the user to release the latching with the sliding component 132, thereby completing the user's unlocking operation.

[0051] Please combine Figures 7 to 8 See Figures 9 to 12 , Figure 9 yes Figure 6 A schematic diagram of the structure of the middle limit component 131. Figure 10 yes Figure 9 A magnified view of a portion of point A in the diagram. Figure 11 yes Figure 1 A schematic diagram of the cross-sectional structure of the middle meter head 100 along section IV-IV. Figure 12 yes Figure 1 A schematic diagram of another section of the structure of the middle table head 100 along section IV-IV.

[0052] like Figures 7 to 9 As shown, the limiting component 131 may include an elastic element 1311 and a locking element 1312. The elastic element 1311 is disposed within the annular groove 1105 and also surrounds the movement 120. A portion of the elastic element 1311 is also disposed within the clearance groove 1104 and located on the sliding path of the sliding component 132. It can be pushed by the sliding component 132, causing the elastic element 1311 to displace towards the movement 120 and engage in the limiting groove 1201. Furthermore, when pushed by the sliding component 132, the elastic element 1311 can undergo elastic deformation, generating a spring force that, after the sliding component 132 returns to its first position, causes the elastic element 1311 to displace away from the movement 120 and exit the limiting groove 1201. The fastener 1312 can be disposed on the elastic element 1311 and located within the annular groove 1105. The fastener 1312 can be engaged into the limiting groove 1201 under the action of the elastic element 1311, and engage with the movement 120 in the direction of exiting the mounting groove 1101, i.e., in the thickness direction Z, to achieve a fixed assembly of the watch frame 110 and the movement 120. Correspondingly, the fastener 1312 can also exit the limiting groove 1201 under the action of the elastic element 1311, thereby releasing the engagement with the movement 120 in the thickness direction Z, allowing the movement 120 to be removed from the mounting groove 1101.

[0053] The elastic element 1311 can be arranged in a ring shape, and the elastic element 1311 can also surround and form a circular limiting space 1301, and the movement 120 can also be located within the limiting space 1301. Among them, a portion of the elastic element 1311 located in the relief groove 1104 can have a break 1302, and has a first end 1311a and a second end 1311b located within the break 1302, and both the first end 1311a and the second end 1311b are located on the sliding path of the sliding assembly 132. When the sliding component 132 slides from the first position to the second position, it can push the first end 1311a towards the second end 1311b and push the second end 1311b towards the first end 1311a, thereby reducing the diameter of the limiting space 1301, i.e., shrinking the limiting space 1301. This allows the elastic member 1311 to move towards the movement 120 as a whole, and then engage with the limiting groove 1201 on the periphery of the movement 120. Simultaneously, the elastic member 1311 can also undergo elastic deformation and generate elastic force when pushed towards the movement 120 by the sliding component 132. When the sliding component 132 returns to the first position, the elastic member 1311 can move away from the movement 120 under the action of the elastic force, thereby exiting the limiting groove 1201. In this embodiment, the elastic member 1311 can be a metal snap ring with elastic deformation capability. Of course, in addition to metal snap rings, the elastic element 1311 can also be other structural components similar to metal snap rings, and this embodiment does not limit this.

[0054] Optionally, the elastic element 1311 may have only one end 1311a or the second end 1311b located on the sliding path of the sliding assembly 132. In this case, the sliding assembly 132 may only push one of the first end 1311a and the second end 1311b located on the sliding path towards the other, so that the pushed end 1311a or the second end 1311b can drive part of the elastic element 1311 into the limiting groove 1201. Considering that only part of the elastic element 1311 may be inserted into the limiting groove 1201, which may result in insufficient locking firmness, when part of the elastic element 1311 is inserted into the limiting groove 1201, the elastic element 1311 can also abut against the bottom wall of the limiting groove 1201, so that the movement 120 can be pressed against the side wall of the mounting groove 1101 under the action of the elastic element 1311, thereby enhancing the locking firmness of the watch frame 110 and the movement 120.

[0055] Optionally, the elastic element 1311 may not be limited to being arranged in a ring, and the elastic element 1311 may not be limited to surrounding and forming a circular limiting space 1301. It is only required that the elastic element 1311 can be arranged around the movement 120 and can be inserted into the limiting groove 1201 under the push of the sliding component 132 and generate elastic force through elastic deformation. This embodiment does not limit this.

[0056] To cooperate with the sliding component 132, the first end 1311a may also be provided with a first mating part 1311c, and the second end 1311b may also be provided with a second mating part 1311d. For example... Figures 7 to 8 and Figure 10 As shown, the first end 1311a has a first mating part 1311c located within the clearance groove 1104, and the second end 1311b has a second mating part 1311d located within the clearance groove 1104. The first mating part 1311c and the second mating part 1311d are spaced apart, and both are located on the sliding path of the sliding assembly 132. With this configuration, when the sliding assembly 132 slides from the first position to the second position, the sliding assembly 132 can apply a pushing force to the first mating part 1311c and the second mating part 1311d respectively, causing the sliding assembly 132 to push the first mating part 1311c to move closer to the second mating part 1311d, and to push the second mating part 1311d to move closer to the first mating part 1311c, thereby reducing the limiting space 1301.

[0057] To allow the first mating part 1311c and the second mating part 1311d to move closer to each other under the pushing force of the sliding component 132, both the first mating part 1311c and the second mating part 1311d are provided with a first inclined surface 1311e that mates with the sliding component 132. The first inclined surface 1311e intersects the thickness direction Z but is not perpendicular to it. Specifically, the first mating part 1311c has the first inclined surface 1311e on the side opposite to the second mating part 1311d, and the second mating part 1311d has the first inclined surface 1311e on the side opposite to the first mating part 1311c. With this configuration, when the sliding component 132 slides from the first position to the second position, the sliding component 132 can contact the first inclined surface 1311e of the first mating part 1311c and the second mating part 1311d respectively, and apply a pushing force to the first mating part 1311c and the second mating part 1311d through the first inclined surface 1311e, so that the first mating part 1311c and the second mating part 1311d can move towards each other to reduce the limiting space 1301.

[0058] Optionally, the first mating part 1311c and the second mating part 1311d can also be symmetrically arranged with respect to the sliding direction of the sliding component 132, that is, the thickness direction Z. Of course, the first mating part 1311c and the second mating part 1311d can also be an asymmetrical structure, as long as they can be displaced towards each other under the pushing of the sliding component 132. This embodiment does not limit this.

[0059] The fastener 1312 can be mounted on the elastic element 1311, and the fastener 1312 can be engaged or disengaged from the limiting groove 1201 under the action of the elastic element 1311. Figure 9 and Figures 11 to 12 As shown, the fastener 1312 is disposed within the annular groove 1105 and sleeved on the elastic element 1311, and the fastener 1312 also has elastic deformation capability. Specifically, when the fastener 1312 is engaged into the limiting groove 1201 under the action of the elastic element 1311, the fastener 1312 will undergo elastic deformation due to the pressure from the side wall of the limiting groove 1201, and under the action of elastic force, it abuts against the side wall of the limiting groove 1201, i.e., the movement 120. With this configuration, the fastener 1312 can be locked into the movement 120 in the thickness direction Z, thereby locking the movement 120 within the mounting groove 1101, thus achieving the fixed assembly of the watch frame 110 and the movement 120. Meanwhile, the fastener 1312 can also absorb the assembly gap between the elastic element 1311 and the side wall of the limiting groove 1201, so as to avoid the abnormal noise caused by the movement 120 shaking in the thickness direction Z and colliding with the elastic element 1311 due to the assembly gap.

[0060] The number of fasteners 1312 can be multiple, and these fasteners 1312 can be spaced apart on the elastic element 1311 and arranged around the movement 120. For example, the number of fasteners 1312 can be six, and these six fasteners 1312 can be spaced apart on the elastic element 1311 and arranged around the movement 120 to improve the assembly stability of the watch case 110 and the movement 120. Simultaneously, the six fasteners 1312 can be divided into two groups of three, and the two groups of fasteners 1312 can be symmetrically arranged about the diameter of the limiting space 1301 through the break 1302 to improve the uniformity of force distribution when the six fasteners 1312 engage with the movement 120. Compared to using a single fastener 1312 to wrap around the entire elastic element 1311, this arrangement of multiple fasteners 1312 can effectively reduce the weight of the watch head 100. In this embodiment, the fastener 1312 can be made of elastic materials such as soft plastic, silicone or rubber, and the fastener 1312 can be integrated with the elastic element 1311 through a metal insert injection molding process.

[0061] Optionally, the number of firmware 1312 may not be limited to six; it may be one, two, three, four, five, or more. That is, the specific number of firmware 1312 can be adaptively adjusted according to design requirements, and this embodiment does not limit this. In the description of this application, "multiple" means at least two, such as two, three, etc., unless otherwise explicitly specified.

[0062] Alternatively, the design of the fastener 1312 can be omitted. In this case, the elastic element 1311 can be designed to match the shape and size of the limiting groove 1201, so that the elastic element 1311 can be locked with the movement 120 in the thickness direction Z after being inserted into the limiting groove 1201, and the assembly gap between the elastic element 1311 and the side wall of the limiting groove 1201 can be reduced.

[0063] Optionally, the fastener 1312 can also be part of the movement 120, that is, the fastener 1312 can also be provided on the side wall of the limiting groove 1201. In this case, when the elastic member 1311 is engaged in the limiting groove 1201, the fastener 1312 can undergo elastic deformation under the pressure of the elastic member 1311, and abut against the elastic member 1311 under the action of elastic force, so as to absorb the assembly gap between the elastic member 1311 and the side wall of the limiting groove 1201, so that the elastic member 1311 can be locked with the movement 120 in the thickness direction Z.

[0064] Please combine Figures 7 to 8 See Figures 13 to 16 , Figure 13 yes Figure 6 A schematic diagram of the structure of the sliding component 132. Figure 14 yes Figure 13 A schematic diagram of the structure of the middle sliding member 1321. Figure 15 yes Figure 6 A schematic diagram of the mating structure of the middle limiting component 131 and the sliding component 1321. Figure 16 yes Figure 6 Another schematic diagram of the mating structure of the middle limiting component 131 and the sliding component 1321.

[0065] like Figures 7 to 8 and Figure 13As shown, the sliding assembly 132 may include a slider 1321 and a first reset member 1322. The slider 1321 is disposed within the clearance groove 1104 and is slidably connected to the frame 110 in the thickness direction Z. The slider 1321 can slide from a first position to a second position to push the first end 1311a and the second end 1311b to displace, allowing the elastic member 1311 to engage in the limiting groove 1201. Simultaneously, when the slider 1321 slides from the first position to the second position, it can also push the engaging assembly 133 to displace from a third position to a fourth position. After the engaging assembly 133 resets to the third position, the slider 1321 engages with the engaging assembly 133 to lock itself in the second position, thereby maintaining the state of the elastic member 1311 engaged in the limiting groove 1201. The first reset member 1322 is also located in the relief groove 1104, and the first reset member 1322 is also located on the sliding path of the slider 1321. When the slider 1321 slides to the second position, it is pressed by the slider 1321 and undergoes elastic deformation to provide elastic force. After the locking component 133 releases the lock on the slider 1321, it drives the slider 1321 to reset to the first position, so that the elastic member 1311 can exit the limiting groove 1201 under the elastic force generated by its own deformation as the slider 1321 resets.

[0066] like Figures 7 to 8 and Figure 14 As shown, the slider 1321 may include a main body 13211 and an abutment part 13212. The main body 13211 may be disposed within the clearance groove 1104 and slidably connected to the frame 110 in the thickness direction Z, and the main body 13211 may slide from a first position to a second position. The abutment part 13212 is connected to the side of the main body 13211 perpendicular to the thickness direction Z, and may push against the first end 1311a and the second end 1311b to displace when the main body 13211 slides to the second position, allowing the elastic member 1311 to engage in the limiting groove 1201. Simultaneously, when the main body 13211 slides to the second position, the abutment portion 13212 can also push the locking component 133 to move from the third position to the fourth position, and engage with the locking component 133 after it returns to the third position, thereby locking the main body 13211 in the second position and maintaining the elastic member 1311 in the limiting groove 1201. Furthermore, when the locking component 133 releases its engagement with the abutment portion 13212, that is, when the locking of the main body 13211 is released, the main body 13211 can return to the first position under the elastic force generated by the first reset member 1322.

[0067] The main body 13211 can also be exposed outside the watch frame 110 through the first through hole 1106. The user can apply an external force to the main body 13211 using the first through hole 1106, causing the main body 13211 to slide from the first position to the second position under the action of the external force, thereby completing the user's locking operation. For example, the side of the main body 13211 facing the first through hole 1106 can be provided with a contact part 13211a, and the contact part 13211a can be exposed outside the watch frame 110 through the first through hole 1106. The user can apply an external force to the contact part 13211a using the first through hole 1106, causing the contact part 13211a to drive the main body 13211 to slide from the first position to the second position. In order to facilitate the user's operation of the contact part 13211a, when the main body 13211 is in the first position, the contact part 13211a can be provided through the first through hole 1106 and protrude from the outer surface of the frame 110, so that the user can press the contact part 13211a to apply external force.

[0068] Optionally, when the main body 13211 is in the first position, the contact part 13211a can also be inserted into the first through hole 1106 and flush with or slightly recessed from the outer surface of the watch frame 110 to improve the flatness of the outer surface of the watch frame 110 and reduce the abruptness of the contact part 13211a. Alternatively, the contact part 13211a can also be located in the relief groove 1104 instead of being inserted into the first through hole 1106, requiring only that the user apply external force to the contact part 13211a through the first through hole 1106. For example, the user can use a caliper pin or other structural component to push the contact part 13211a from the first through hole 1106 into the relief groove 1104, so that the main body 13211 can slide from the first position to the second position under the action of the contact part 13211a, thereby completing the user's locking operation on the movement 120.

[0069] A guide portion 13211b may also be provided on the side of the main body 13211 opposite to the contact portion 13211a. When the main body 13211 slides from the first position to the second position, the guide portion 13211b can be inserted into the snap-fit ​​assembly 133 and cooperate with the snap-fit ​​assembly 133 to provide guidance for the sliding of the main body 13211, so as to prevent the sliding of the main body 13211 in the thickness direction Z from deviating. At the same time, the guide portion 13211b can also be used to fix the first reset member 1322 and provide guidance for the elastic force generated by the first reset member 1322, so as to ensure that the main body 13211 can be reset to the first position under the action of the elastic force.

[0070] Optionally, to prevent the main body 13211 from shifting during sliding, at least one of the contact portion 13211a and the guide portion 13211b can provide a guiding function during the sliding process of the main body 13211 from the first position to the second position. For example, when the main body 13211 slides from the first position to the second position, the contact portion 13211a can remain within the first through hole 1106 to cooperate with the inner wall of the first through hole 1106 to achieve a guiding function. Alternatively, when the main body 13211 slides from the first position to the second position, the guide portion 13211b can remain inserted within the snap-fit ​​assembly 133 to cooperate with the snap-fit ​​assembly 133 to achieve a guiding function. Alternatively, when the main body 13211 slides from the first position to the second position, the contact part 13211a can remain inside the first through hole 1106 to cooperate with the inner wall of the first through hole 1106 to achieve a guiding function, and the guide part 13211b can remain inserted inside the snap-fit ​​assembly 133 to cooperate with the snap-fit ​​assembly 133 to achieve a guiding function.

[0071] like Figures 14 to 16 As shown, the abutment portion 13212 may include a first abutment portion 13212a and abutment portion 13212b. The first abutment portion 13212a and the second abutment portion 13212b may be connected to the side of the main body portion 13211 opposite to the contact portion 13211a, and the first abutment portion 13212a and the second abutment portion 13212b may be spaced apart and symmetrically arranged about the thickness direction Z. Simultaneously, the first mating portion 1311c may be located on the sliding path of the first abutment portion 13212a, and the second mating portion 1311d may be located on the sliding path of the second abutment portion 13212b. When the main body 13211 slides from the first position to the second position, the first abutting part 13212a can push the first mating part 1311c to move closer to the second mating part 1311d through the first inclined surface 1311e, and the second abutting part 13212b can push the second mating part 1311d to move closer to the first mating part 1311c through the first inclined surface 1311e, so as to reduce the limiting space 1301, so that the elastic member 1311 as a whole can be inserted into the limiting groove 1201.

[0072] Optionally, the abutting portion 13212 may also include only one of the first abutting portion 13212a and the second abutting portion 13212b, to individually push the first mating portion 1311c or the second mating portion 1311d to displace. Alternatively, the first abutting portion 13212a and the second abutting portion 13212b may be connected to form an integral unit to simultaneously push the first mating portion 1311c and the second mating portion 1311d to displace. It is understood that the aforementioned terms "first abutting portion" and "second abutting portion" are only used to describe the number of "abutting portions". Therefore, in the following description, "abutting portion" may also be referred to as "first abutting portion" or "second abutting portion", and "second abutting portion" may also be referred to as "abutting portion" or "first abutting portion".

[0073] In order to mate with the first inclined surface 1311e on the first mating part 1311c and the second mating part 1311d, the abutting part 13212 is also provided with a second inclined surface 13212c parallel to the first inclined surface 1311e. Specifically, the second inclined surface 13212c of the first abutting part 13212a is located on the side of the first abutting part 13212a closer to the second abutting part 13212b, while the second inclined surface 13212c of the second abutting part 13212b is located on the side of the second abutting part 13212b closer to the first abutting part 13212a. With this configuration, when the main body 13211 slides from the first position to the second position, the second inclined surface 13212c of the first abutting part 13212a can contact the first inclined surface 1311e of the first mating part 1311c. This allows the first abutting part 13212a to apply a pushing force to the first mating part 1311c through the cooperation of the second inclined surface 13212c and the first inclined surface 1311e, thereby pushing the first mating part 1311c to move closer to the second mating part 1311d. Similarly, the second inclined surface 13212c of the second abutting part 13212b can also contact the first inclined surface 1311e of the second mating part 1311d. This allows the second abutting part 13212b to also apply a pushing force to the second mating part 1311d through the cooperation of the second inclined surface 13212c and the first inclined surface 1311e, thereby pushing the second mating part 1311d to move closer to the first mating part 1311c. Alternatively, either the first inclined plane 1311e or the second inclined plane 13212c may be omitted.

[0074] The first abutting part 13212a and the second abutting part 13212b can also push the locking component 133 from the third position to the fourth position, and engage with the locking component 133 after it returns to the third position, so that the main body 13211 can be locked in the second position to keep the elastic member 1311 engaged in the limiting groove 1201. When the main body 13211 slides from the first position to the second position, the first abutting part 13212a and the second abutting part 13212b can respectively push the locking component 133 from the third position to the fourth position, so that the locking component 133 can avoid the first abutting part 13212a and the second abutting part 13212b. Simultaneously, when the main body 13211 slides into place, that is, in the second position, the locking component 133 can also reset to the third position and engage with the first abutment 13212a and the second abutment 13212b respectively, so as to lock the main body 13211 in the second position through the first abutment 13212a and the second abutment 13212b. This setting can prevent the main body 13211 from resetting to the first position under the elastic force of the first reset member 1322, so as to keep the elastic member 1311 engaged in the limiting groove 1201, thereby locking the movement 120 in the mounting groove 1101.

[0075] like Figure 14 As shown, in order to cooperate with the snap-fit ​​assembly 133, the abutment portion 13212 is further provided with a third inclined surface 13212d that intersects but is not perpendicular to the thickness direction Z, and a first snap-fit ​​surface 13212e that is disposed away from the third inclined surface 13212d in the thickness direction Z. The third inclined surface 13212d of the first abutment portion 13212a can be located on the side of the first abutment portion 13212a closer to the movement 120, and the first snap-fit ​​surface 13212d of the first abutment portion 13212a is located on the side of the first abutment portion 13212a that is away from the third inclined surface 13212d in the thickness direction Z. The positions of the third inclined surface 13212d and the first snap-fit ​​surface 13212d of the second abutting part 13212b are the same as or similar to those of the first abutting part 13212a, and will not be described in detail here. The following description will only take the cooperation relationship between the first abutting part 13212a and the snap-fit ​​assembly 133 as an example.

[0076] When the main body 13211 slides from the first position to the second position, the third inclined surface 13212d of the first abutting part 13212a can contact the locking assembly 133, so that the first abutting part 13212a can apply a pushing force to the locking assembly 133 through the third inclined surface 13212d, so as to push the locking assembly 133 to move and avoid the first abutting part 13212a. At the same time, when the main body 13211 slides into place, that is, in the second position, the locking assembly 133 can return to the first locking surface 13212e, and the first abutting part 13212a is locked in the direction of the main body 13211 returning to the first position through the first locking surface 13212e, thereby locking the main body 13211 in the second position, so as to keep the elastic member 1311 locked in the limiting groove 1201, and completing the locking of the movement 120. It is understood that the cooperation relationship between the second abutment portion 13212b and the snap-fit ​​component 133 is the same as or similar to the cooperation relationship between the first abutment portion 13212a and the snap-fit ​​component 133, and will not be described in detail here.

[0077] like Figures 7 to 8 As shown, the first reset member 1322 is disposed within the clearance groove 1104 and is located on the sliding path of the main body 13211. The first reset member 1322 can also be sleeved on the guide portion 13211b for fixation and guidance. Simultaneously, when the main body 13211 slides from the first position to the second position, the first reset member 1322 can undergo elastic deformation under the pressure of the main body 13211. When the locking assembly 133 releases the lock on the main body 13211, the main body 13211 can reset to the first position under the elastic force generated by the first reset member 1322, allowing the elastic member 1311 to also exit the limiting groove 1201 under the elastic force generated by its own deformation, thereby releasing the lock on the movement 120. In this embodiment, the first reset member 1322 can specifically be a spring. Of course, the first reset member 1322 can also be other structural members with elastic deformation capabilities, such as elastic pads or spring sheets, etc., and this embodiment does not limit this.

[0078] Please combine Figures 7 to 8 See Figures 17 to 21 , Figure 17 yes Figure 6 A schematic diagram of the structure of the middle card connector 133. Figure 18 yes Figure 17 Schematic diagram of the structure of the middle fixed base 1331 Figure 19 yes Figure 17 Structural diagram of the 1332 connector for the Chinese card. Figure 20 yes Figure 6 A schematic diagram of the mating structure of the sliding component 132 and the snap-fit ​​component 133. Figure 21 yes Figure 6 Another schematic diagram of the mating structure of the sliding component 132 and the snap-fit ​​component 133.

[0079] like Figures 7 to 8 and Figure 17 As shown, the snap-fit ​​assembly 133 may include: a fixing base 1331, a snap-fit ​​member 1332, and a second reset member 1333. The fixing base 1331 is disposed within the clearance groove 1104 and can cooperate with the guide portion 13211b to guide the sliding of the main body 13211. The snap-fit ​​member 1332 is slidably connected to the fixing base 1331 in a direction perpendicular to the thickness direction Z. The snap-fit ​​member 1332 can be displaced from a third position to a fourth position by being pushed by the abutment portion 13212, and can be reset to the third position to snap into the abutment portion 13212, thereby locking the main body 13211 in the second position. Simultaneously, the snap-fit ​​member 1332 can also be displaced from the third position to the fourth position after reset to release the snap-fit ​​with the abutment portion 13212, allowing the main body 13211 to be reset to the first position under the elastic force of the first reset member 1322. The second reset member 1333 is disposed on the sliding path of the snap-fit ​​member 1332 and is located between the fixed base 1331 and the snap-fit ​​member 1332. When the snap-fit ​​member 1332 is displaced from the third position to the fourth position, the second reset member 1333 is elastically deformed by the snap-fit ​​member 1332 to provide elastic force to drive the snap-fit ​​member 1332 to reset to the third position.

[0080] like Figures 7 to 8 and Figures 17 to 18 As shown, the fixing base 1331 is located on the side of the main body 13211 opposite to the first through hole 1106, and the main body 13211 can slide from a first position to a second position in the direction close to the fixing base 1331. The fixing base 1331 has a guide hole 1303 on the side facing the main body 13211. When the main body 13211 slides from the first position to the second position, the guide part 13211b can be inserted into the guide hole 1303 and cooperates with the inner wall of the guide hole 1303 to guide the sliding of the main body 13211. Simultaneously, the first reset member 1322 is disposed between the main body 13211 and the fixing base 1331, and is connected to both the main body 13211 and the fixing base 1331. When the main body 13211 slides to the second position, the first reset member 1322 undergoes elastic deformation under the combined pressure of the main body 13211 and the fixing base 1331.

[0081] Optionally, the positions of the guide portion 13211b and the guide hole 1303 can be interchanged. That is, the main body 13211 is provided with the guide hole 1303, while the fixing base 1331 is provided with the guide portion 13211b on the side facing the main body 13211. With this arrangement, when the main body 13211 slides from the first position to the second position, the guide portion 13211b can still be inserted into the guide hole 1303 and cooperate with the inner wall of the guide hole 1303 to provide guidance for the sliding of the main body 13211.

[0082] To achieve a sliding connection with the snap-fit ​​component 1332, the fixing base 1331 also has a groove 1304 extending through the fixing base 1331 in the thickness direction Z. The snap-fit ​​component 1332 can be slidably connected to the fixing base 1331 through the groove 1304. For example, the snap-fit ​​assembly 133 can also have a pin 1334 passing through the groove 1304 and the snap-fit ​​component 1332, and the pin 1334 can slide within the groove 1304, so that the snap-fit ​​component 1332 can be slidably connected to the fixing base 1331 through the engagement of the pin 1334 and the groove 1304. At the same time, a groove 1305 is also provided on the side of the fixing base 1331 opposite to the main body 13211, and this groove 1305 can be used to install the second reset component 1333. In this embodiment, the fixing base 1331 can be fixed in the relief groove 1104 by means of bonding, welding, snap-fitting, or screw connection.

[0083] Optionally, in addition to the pin 1334, a portion of the snap-fit ​​component 1332 may also be located within the slide groove 1304 and slide within the slide groove 1304 to achieve a sliding connection between the snap-fit ​​component 1332 and the fixing base 1331. That is, there can be multiple ways in which the snap-fit ​​component 1332 and the fixing base 1331 can be slidably connected, and this embodiment does not limit this.

[0084] Alternatively, the design of the fixing base 1331 can be omitted, or the fixing base 1331 can also be part of the table frame 110. In this case, the table frame 110 can be provided with a structure similar to the fixing base 1331 in the clearance groove 1104 for cooperating with the main body 13211, the snap-fit ​​member 1332 and the second reset member 1333, and the snap-fit ​​assembly 133 can only include: the snap-fit ​​member 1332 and the second reset member 1333.

[0085] The snap-fit ​​component 1332 is located on the side of the fixing base 1331 opposite to the main body 13211, and is slidably connected to the fixing base 1331. For example... Figures 7 to 8 and Figure 19As shown, the latching member 1332 may include a movable part 13321 and a latching hook part 13322. The movable part 13321 is located on the side of the fixed base 1331 opposite to the main body 13211 and is slidably connected to the fixed base 1331. The latching hook part 13322 is connected to the movable part 13321 and protrudes towards the main body 13211, and is also located on the sliding path of the abutment part 13212. When the main body 13211 slides from the first position to the second position, the latching hook part 13322 can be pushed by the abutment part 13212 to move from the third position to the fourth position, and can return to the third position after the main body 13211 slides into place to engage with the abutment part 13212, thereby locking the main body 13211 in the second position. In addition, the hook portion 13322 can be moved from the third position to the fourth position under the action of the movable portion 13321 to release the hook portion 13322 and the abutment portion 13212, so that the main body portion 13211 can be reset to the first position under the elastic force generated by the first reset member 1322.

[0086] The movable part 13321 can be slidably connected to the fixed base 1331 via the pin 1334, and the movable part 13321 is also provided with a protrusion 13321a protruding towards the fixed base 1331. The protrusion 13321a is located within the groove 1305 and can slide within the groove 1305, and the second reset member 1333 is located on the sliding path of the protrusion 13321a. When the movable part 13321 moves the hook part 13322 to the fourth position, the protrusion 13321a can slide with the movable part 13321 within the groove 1305, and together with the inner wall of the groove 1305, press against the second reset member 1333, causing the second reset member 1333 to undergo elastic deformation.

[0087] Furthermore, the side of the protrusion 13321a facing away from the second reset member 1333 also has a force-bearing surface 13321b, which can be exposed outside the watch frame 110 through the second through hole 1107. The force-bearing surface 13321b may intersect the thickness direction Z but is not perpendicular to it. The user can apply external force to the force-bearing surface 13321b using the second through hole 1107 to cause the protrusion 13321a to slide within the groove 1305 and press against the second reset member 1333, causing elastic deformation. Simultaneously, the protrusion 13321a can also move the hook portion 13322 from the third position to the fourth position via the movable part 13321, thereby releasing the hook portion 13322 from the abutment portion 13212 and allowing the main body 13211 to reset to the first position, thus completing the user's unlocking operation of the movement 120. In this embodiment, since the protrusion 13321a is located in the relief groove 1104, the user can use structural components such as a pin to push the force-bearing surface 13321b of the protrusion 13321a through the second through hole 1107, so as to drive the protrusion 13321a to slide in the groove 1305.

[0088] The latching part 13322 is connected to the movable part 13321 on the side near the movement 120 and protrudes towards the main body 13211, and is also located on the sliding path of the abutment part 13212. When the main body 13211 slides from the first position to the second position, the latching part 13322 can be displaced from the third position to the fourth position by the push of the abutment part 13212 to avoid the push. After the main body 13211 slides to its final position, the latching part 13322 can return to the third position and engage with the abutment part 13212 to lock the main body 13211 in the second position. Furthermore, the latching part 13322 can also be displaced from the third position to the fourth position by the movement part 13321 to release the lock on the main body 13211.

[0089] Specifically, the hook portion 13322 can be made of a metal with elastic deformation capability. When the main body portion 13211 slides from the first position to the second position, the hook portion 13322 can undergo elastic deformation under the push of the abutment portion 13212 and move from the third position to the fourth position. After the main body portion 13211 slides into place, the hook portion 13322 can return to the third position and engage with the abutment portion 13212 under the elastic force generated by its own deformation. During this process, the movable portion 13321 can remain fixed without being affected by the deformation of the hook portion 13322. When it is necessary to release the engagement between the hook portion 13322 and the abutment portion 13212, the movable portion 13321 can drive the hook portion 13322 to move from the third position to the fourth position under the action of the protrusion 13321a. At the same time, the movable part 13321 can also press against the second reset member 1333 to undergo elastic deformation, so that the movable part 13321 can drive the hook part 13322 to reset to the third position under the elastic force of the second reset member 1333, in order to prepare for the next engagement of the hook part 13322 and the abutment part 13212.

[0090] Optionally, the movable part 13321 can also be displaced by the deformation of the hook part 13322, and press against the second reset member 1333 through the protrusion 13321a. Wherein, when the main body part 13211 slides into place, the hook part 13322 can be reset to the third position and engage with the abutment part 13212 under the action of the elastic force generated by its own deformation and the elastic force generated by the second reset member 1333.

[0091] Optionally, the hook portion 13322 can also be made of a material that does not have elastic deformation capability. When the main body portion 13211 slides from the first position to the second position, the hook portion 13322 can be driven by the abutment portion 13212 to move the movable portion 13321 from the third position to the fourth position, and the movable portion 13321 will elastically deform by pressing against the second reset member 1333 through the protrusion 13321a. When the main body portion 13211 slides into place, the hook portion 13322 can be reset to the third position under the elastic force generated by the second reset member 1333 and engage with the abutment portion 13212.

[0092] like Figure 19 To the end Figure 21As shown, the latching portion 13322 may include a first latching portion 13322a and a second latching portion 13322b. Both the first latching portion 13322a and the second latching portion 13322b are connected to the side of the movable portion 13321 near the movement 120, and the first latching portion 13322a and the second latching portion 13322b may be spaced apart. Simultaneously, the first latching portion 13322a may be located on the sliding path of the first abutting portion 13212a, and the second latching portion 13322b may be located on the sliding path of the second abutting portion 13212b. When the main body 13211 slides from the first position to the second position, the first hook portion 13322a can contact the third inclined surface 13212d of the first abutment portion 13212a, and can be displaced from the third position to the fourth position under the pushing force of the first abutment portion 13212a to avoid the sliding of the first abutment portion 13212a. After the main body 13211 slides to the final position, the first hook portion 13322a can return to the third position and engage with the first abutment portion 13212a. Similarly, the cooperation relationship between the second abutment portion 13212b and the second hook portion 13322b is the same as or similar to the cooperation relationship between the first abutment portion 13212a and the first hook portion 13322a, and will not be described in detail here.

[0093] It is understood that the terms "first hook part" and "second hook part" mentioned above are only used to describe the number of "hook parts". Therefore, in the following description, "hook part" can also be referred to as "first hook part" or "second hook part", "first hook part" can also be referred to as "hook part" or "second hook part", and "second hook part" can also be referred to as "hook part" or "first hook part".

[0094] To cooperate with the third inclined surface 13212d of the first abutment portion 13212a and the second abutment portion 13212b, the latch portion 13322 is also provided with a fourth inclined surface 13322c parallel to the third inclined surface 13212d. The fourth inclined surface 13322c of the first latch portion 13322a is located on the side of the first latch portion 13322a facing away from the movement 120, while the fourth inclined surface 13322c of the second latch portion 13322b is located on the side of the second latch portion 13322b facing away from the movement 120. The following explanation will only use the cooperation relationship between the first abutment portion 13212a and the first latch portion 13322a as an example.

[0095] When the main body 13211 slides from the first position to the second position, the third inclined surface 13212d of the first abutment portion 13212a can contact the fourth inclined surface 13322c of the first latch portion 13322a. This allows the first abutment portion 13212a to apply a pushing force to the first latch portion 13322a through the cooperation of the third inclined surface 13212d and the fourth inclined surface 13322c. This pushes the first latch portion 13322a from the third position to the fourth position in the direction close to the movement 120, thereby avoiding the sliding of the first abutment portion 13212a. It is understood that the cooperation relationship between the second abutment portion 13212b and the latching assembly 133 is the same as or similar to the cooperation relationship between the first abutment portion 13212a and the latching assembly 133, and will not be described in detail here.

[0096] To mate with the first engaging surface 13212e of the first abutting portion 13212a and the second abutting portion 13212b, the hook portion 13322 also has a second engaging surface 13322d parallel to the first engaging surface 13212e. The second engaging surface 13322d of the first hook portion 13322a is located on the side of the first hook portion 13322a facing away from the fourth inclined surface 13322c in the thickness direction Z. The position of the second engaging surface 13322d on the second hook portion 13322b is the same as or similar to the position of the second engaging surface 13322d on the first hook portion 13322a, and will not be elaborated here. The following explanation will only use the mating relationship between the first abutting portion 13212a and the first hook portion 13322a as an example.

[0097] When the main body 13211 slides into position, that is, in the second position, the first hook portion 13322a can return to the first contact surface 13212e, and the first contact surface 13212e can contact the second contact surface 13322d, so that the first hook portion 13322a can engage with the first abutment portion 13212a. When the movable part 13321 moves the first hook portion 13322a to the fourth position, the first contact surface 13212e can separate from the second contact surface 13322d, and the two are staggered in the thickness direction Z, that is, the two do not have overlapping projections in the thickness direction Z, so that the first hook portion 13322a can release from the engagement with the first abutment portion 13212a. It is understood that the cooperation relationship between the second abutment portion 13212b and the snap-fit ​​component 133 is the same as or similar to the cooperation relationship between the first abutment portion 13212a and the snap-fit ​​component 133, and will not be described in detail here.

[0098] The following is a brief description of the disassembly and assembly process of the watch frame 110 and the movement 120 provided in this embodiment.

[0099] When the user needs to assemble the watch case 110 and the movement 120, the user can insert the movement 120 into the mounting slot 1101 through the first opening 1102. After the movement 120 is in place, the user can apply external force to the slider 1321 through the first through hole 1106, causing the slider 1321 to slide from the first position to the second position. During this process, the slider 1321 will push the elastic member 1311 to move closer to the movement 120, and the elastic member 1311 will drive the locking member 1312 to engage with the limiting groove 1201 on the periphery of the movement 120, allowing the movement 120 to engage with the locking member 1312 in the thickness direction Z, thus locking the movement 120 within the mounting slot 1101. Simultaneously, the slider 1321 will also push the locking member 1332 to move from the third position to the fourth position, allowing the locking member 1332 to avoid obstructing the slider 1321. When the slider 1321 slides into place, the locking member 1332 can be reset to the third position and engage with the slider 1321, thereby locking the slider 1321 in the second position to keep the locking member 1312 engaged in the limiting groove 1201, thus completing the fixed assembly of the watch frame 110 and the movement 120.

[0100] When the user needs to disassemble the watch frame 110 and the movement 120, the user can apply external force to the latching member 1332 through the second through hole 1107 to make the latching member 1332 slide from the third position to the fourth position, thereby releasing the latching member 1332 and the sliding member 1321 from the latching state. At this time, the sliding member 1321 can be reset to the first position under the elastic force generated by the first reset member 1322, and the elastic member 1311 can drive the fastener 1312 out of the limiting groove 1201 under the elastic force generated by its own deformation as the sliding member 1321 is reset, thereby releasing the latching member 1312 and the movement 120 from the thickness direction Z, so that the movement 120 can be removed from the first opening 1102, thereby completing the fixed assembly of the watch frame 110 and the movement 120.

[0101] The watch head 100 provided in this application embodiment, by setting a sliding component 132 slidably connected to the watch frame 110, can push a limiting component 131 disposed around the movement 120 assembled on the watch frame 110 to move closer to the movement 120 when sliding from a first position to a second position, so that the limiting component 131 is engaged in the movement 120. At the same time, by setting a locking component 133 slidably connected to the watch frame 110, when the sliding component 132 slides from the first position to the second position, it can be pushed by the sliding component 132 to move from a third position to a fourth position to avoid it, and after the displacement, it returns to the third position to engage with the sliding component 132, so that the sliding component 132 can be locked in the second position to maintain the state of the limiting component 131 being engaged in the movement 120, thereby realizing the fixed assembly of the movement 120 and the watch frame 110. Furthermore, by configuring the snap-fit ​​component 133 to be able to move to a fourth position after reset, the locking of the sliding component 132 is released, allowing the sliding component 132 to reset to the first position. Meanwhile, the limiting component 131 can move away from the movement 120 as the sliding component 132 resets and exit the movement 120, thereby enabling the disassembly of the movement 120 and the watch case 110. This configuration allows the user to achieve a detachable connection between the watch case and the movement by operating the sliding component and the snap-fit ​​component, significantly improving the ease of disassembly of the watch case and the movement.

[0102] The above description is only a part of the embodiments of this application and does not limit the scope of protection of this application. Any equivalent device or equivalent process transformation made based on the content of this application specification and drawings, or direct or indirect application in other related technical fields, are similarly included in the patent protection scope of this application.

Claims

1. A meter head, characterized by, The watch head includes: a watch frame, a movement mounted on the watch frame, and a detachable structure provided on the watch frame; The detachable structure includes: a sliding component slidably connected to the watch frame, a limiting component and a snap-fit ​​component located on the sliding path of the sliding component, wherein the limiting component is also disposed around the movement, and the snap-fit ​​component is also slidably connected to the watch frame; wherein... When the sliding component slides from the first position to the second position, the limiting component is pushed by the sliding component and moves towards the movement, and is engaged in the movement. The engaging component is pushed by the sliding component and moves from the third position to the fourth position, and after the displacement, it returns to the third position and engages with the sliding component to lock the sliding component in the second position. The latching component is also configured to be displaced to the fourth position after reset to release the lock on the sliding component. The sliding component is configured to be reset to the first position after the lock is released. The limiting component is configured to displace away from the movement as the sliding component is reset and exit the movement.

2. The table head of claim 1, wherein, The limiting component includes: an elastic element disposed around the movement and located on the sliding path of the sliding component; wherein... When the sliding component slides to the second position, the elastic element undergoes elastic deformation due to the push of the sliding component and moves towards the movement to engage with the movement; when the sliding component returns to the first position, the elastic element moves away from the movement under the action of elastic force and exits the movement.

3. The table head of claim 2, wherein, The elastic element is annularly arranged and has a break, and the elastic element also has a first end and a second end located within the break; wherein, When the sliding component slides to the second position, the sliding component pushes against at least one of the first end and the second end to move closer to the other, so that the elastic element moves closer to the movement and is engaged in the movement.

4. The table head of claim 3, wherein, The first end and the second end are respectively provided with a first mating part and a second mating part, and the first mating part and the second mating part are spaced apart and located on the sliding path of the sliding component; wherein, When the sliding component slides to the second position, the sliding component pushes the first mating part to move closer to the second mating part, and pushes the second mating part to move closer to the first mating part.

5. The meter head according to claim 4, characterized in that, Both the first mating part and the second mating part have a first inclined surface, and the sliding component is configured to push the first mating part and the second mating part to displace through the first inclined surface.

6. The meter head according to claim 2, characterized in that, The limiting component further includes: a locking device disposed on the elastic member; wherein... When the sliding component slides to the second position, the elastic element drives the locking fastener to engage with the movement, and causes the locking fastener to undergo elastic deformation and engage with the movement, thereby locking the movement onto the watch frame.

7. The meter head according to claim 6, characterized in that, The number of the fasteners is multiple, and the multiple fasteners are distributed at intervals on the elastic element and arranged around the movement.

8. The meter head according to claim 3, characterized in that, The sliding assembly includes: a slider slidably connected to the table frame, and a first reset member located on the sliding path of the slider; wherein, When the slider slides to the second position, the slider pushes at least one of the first end and the second end to move towards the other, and pushes the locking component to move from the third position to the fourth position. When the locking component returns to the third position, it engages with the locking component to lock the slider in the second position. The first reset component is pressed by the slider and undergoes elastic deformation. The latching component is also configured to be displaced to the fourth position after reset to release the lock on the slider, and when the lock is released, the slider is reset to the first position under the elastic force generated by the first reset component.

9. The meter head according to claim 8, characterized in that, The sliding member includes: a main body portion slidably connected to the table frame, and an abutting portion connected to the main body portion; wherein, When the main body slides to the second position, the abutting part pushes at least one of the first end and the second end to move towards the other, and pushes the locking component to move from the third position to the fourth position. When the locking component returns to the third position, it engages with the locking component to lock the main body in the second position. The first reset member is pressed by the main body and undergoes elastic deformation. The snap-fit ​​assembly is also configured to be displaced to the fourth position after reset to release the locking of the abutment portion, and when the lock is released, the main body portion is reset to the first position under the elastic force generated by the first reset member.

10. The meter head according to claim 9, characterized in that, The abutting portion includes: a first abutting portion and a second abutting portion located on the same side of the main body and spaced apart; wherein... When the main body slides to the second position, the first abutting part pushes the first end to move closer to the second end, and the second abutting part pushes the second end to move closer to the first end. Both the first abutting part and the second abutting part push the locking component to move, and after the locking component is reset, they lock together with the locking component.

11. The meter head according to claim 9, characterized in that, The abutting portion has a second inclined surface and a third inclined surface; wherein... The abutting portion is configured to push at least one of the first end and the second end toward the other via the second inclined surface, and is configured to push the snap-fit ​​assembly toward the third inclined surface to cause displacement.

12. The meter head according to claim 8, characterized in that, The snap-fit ​​assembly includes: a snap-fit ​​member located on the sliding path of the slider and slidably connected to the table frame, and a second reset member located on the sliding path of the snap-fit ​​member; wherein, When the slider slides to the second position, the latching member is pushed by the slider and displaced from the third position to the fourth position, and after displacement, it resets to the third position and latches with the slider; the latching member is also configured to be displaced to the fourth position after reset and to press against the second reset member to undergo elastic deformation, so as to release the lock on the slider.

13. The meter head according to claim 12, characterized in that, The snap-fit ​​assembly further includes: a fixing seat disposed on the table frame; The snap-fit ​​component is located on one side of the fixed base and is slidably connected to the fixed base; the second reset component is located between the snap-fit ​​component and the fixed base, and undergoes elastic deformation under the combined pressure of the snap-fit ​​component and the fixed base after the snap-fit ​​component is displaced; wherein... The slider is located on the opposite side of the fixed base and can slide from the first position to the second position in a direction close to the fixed base; the first reset member is located between the slider and the fixed base and undergoes elastic deformation under the joint pressure of the slider and the fixed base after the slider slides.

14. The meter head according to claim 13, characterized in that, The latching component includes: a movable portion located on the side of the fixed base opposite to the sliding member and slidably connected to the fixed base; and a hook portion connected to the movable portion and protruding toward the sliding member, wherein the hook portion is located on the sliding path of the sliding member; wherein, When the slider slides to the second position, the hook portion is pushed by the slider and displaced from the third position to the fourth position, and after displacement, it returns to the third position and engages with the slider; the movable part is configured to drive the hook portion to the fourth position after the hook portion returns to its original position, and press against the second reset member to undergo elastic deformation, so as to release the lock on the slider.

15. The meter head according to claim 14, characterized in that, When the slider slides to the second position, the hook portion is pushed by the slider and displaced from the third position to the fourth position, and undergoes elastic deformation. After displacement, the locking member returns to the third position by its own elastic force and locks with the slider.

16. The meter head according to claim 14, characterized in that, When the slider slides to the second position, the hook portion is pushed by the slider and displaced from the third position to the fourth position, causing the movable part to displace and press against the second reset member to undergo elastic deformation, and under the elastic force generated by the second reset member, it resets to the third position and engages with the slider.

17. The meter head according to claim 14, characterized in that, When the slider slides to the second position, the hook portion is pushed by the slider and displaced from the third position to the fourth position, and undergoes elastic deformation. The hook portion also drives the movable part to displace and press against the second reset member to undergo elastic deformation. It then resets to the third position and engages with the slider through the elastic force generated by its own deformation and the elastic force generated by the second reset member.

18. The meter head according to claim 14, characterized in that, The sliding member has an abutment portion, and the hook portion has a fourth inclined surface; wherein... When the slider slides to the second position, the abutting part is configured to push the hook part out of displacement by the fourth inclined surface.

19. The meter head according to claim 18, characterized in that, The abutting portion has a third inclined surface parallel to the fourth inclined surface; wherein, When the slider slides to the second position, the third inclined surface and the fourth inclined surface come into contact, and the abutting part is configured to push the hook part to displacement through the cooperation of the third inclined surface and the fourth inclined surface.

20. The meter head according to claim 19, characterized in that, The abutting portion further has a first engaging surface disposed away from the third inclined surface in the sliding direction of the slider, and the hook portion further has a second engaging surface disposed away from the fourth inclined surface in the sliding direction of the slider; wherein... When the hook portion is reset to the third position and engages with the slider, the first engaging surface is configured to contact the second engaging surface; when the movable part drives the hook portion to the fourth position, the first engaging surface and the second engaging surface separate and are staggered in the sliding direction of the slider.

21. The meter head according to claim 18, characterized in that, The hook portion includes: a first hook portion and a second hook portion located on the same side of the movable portion and spaced apart; the abutting portion includes: a first abutting portion and a second abutting portion spaced apart; wherein... When the slider slides to the second position, the first abutting part and the second abutting part respectively push the first hook part and the second hook part to move from the third position to the fourth position, and the first hook part and the second hook part respectively engage with the first abutting part and the second abutting part when they return to the third position.

22. The meter head according to claim 14, characterized in that, The fixed base has a groove on the side near the movable part, and the movable part has a protrusion located within the groove; wherein... The second reset member is disposed in the groove, and after the movable part is displaced, it undergoes elastic deformation due to pressure from the protrusion and the inner wall of the groove.

23. The meter head according to claim 22, characterized in that, The protrusion has a force-bearing surface that is disposed away from the second reset member, and the force-bearing surface is also exposed outside the frame; wherein... When the force-bearing surface is subjected to an external force, the protrusion is configured to slide within the groove and drive the hook portion to the fourth position via the movable part, thereby releasing the hook portion from the engagement state of the sliding member.

24. The meter head according to claim 14, characterized in that, The slider includes: a main body located on the side of the fixed base opposite to the movable part, and the main body is also slidably connected to the frame and configured to slide from the first position to the second position in a direction close to the fixed base; wherein, One of the main body and the fixed base is provided with a guide portion, and the other is provided with a guide hole. When the main body slides to the second position, the guide portion is inserted into the guide hole. The first reset member is located between the main body and the fixed base and is sleeved on the guide portion.

25. The meter head according to claim 24, characterized in that, The main body is provided with a contact portion on the side away from the fixed base, and the contact portion is also exposed outside the frame and is configured to drive the main body to slide from the first position to the second position when subjected to external force.

26. The meter header according to claim 1, characterized in that, The watch frame has a mounting groove, the movement is assembled within the mounting groove, and a limiting groove is also formed on the periphery of the movement; wherein, The sliding component, the limiting component, and the snap-fit ​​component are all disposed on the side wall of the mounting groove, and the limiting component is configured to snap into the limiting groove and engage with the movement in the direction of exiting the mounting groove.

27. The meter head according to claim 26, characterized in that, The mounting groove has a clearance groove on its side wall and an annular groove that is connected to the clearance groove and surrounds the movement; wherein the sliding component and the snap-fit ​​component are disposed in the clearance groove, and the limiting component is disposed in the annular groove.

28. The meter head according to claim 27, characterized in that, The watch frame has a first through hole and a second through hole on opposite sides perpendicular to the thickness direction of the movement, respectively, which connect to the clearance groove; wherein... The sliding component is configured to be exposed outside the frame through the first through-hole, and the snap-fit ​​component is configured to be exposed outside the frame through the second through-hole.

29. A wearable device, characterized in that, The wearable device includes: a watch head and a watch strap; The watch head includes: a watch frame, a movement mounted on the watch frame, and a detachable structure on the watch frame; the watch strap is connected to the watch frame; The detachable structure includes: a sliding component slidably connected to the watch frame, a limiting component and a snap-fit ​​component located on the sliding path of the sliding component, wherein the limiting component is also disposed around the movement, and the snap-fit ​​component is also slidably connected to the watch frame; wherein... When the sliding component slides from the first position to the second position, the limiting component is pushed by the sliding component and moves towards the movement, and is engaged in the movement. The engaging component is pushed by the sliding component and moves from the third position to the fourth position, and after the displacement, it returns to the third position and engages with the sliding component to lock the sliding component in the second position. The latching component is also configured to be displaced to the fourth position after reset to release the lock on the sliding component. The sliding component is configured to be reset to the first position after the lock is released. The limiting component is configured to displace away from the movement as the sliding component is reset and exit the movement.

30. A watch frame mechanism for mounting the movement of a wearable device, characterized in that, The watch frame mechanism includes: a watch frame for assembling the movement, and a detachable structure disposed on the watch frame; The detachable structure includes: a sliding component slidably connected to the watch frame, a limiting component and a snap-fit ​​component located on the sliding path of the sliding component, wherein the limiting component is also disposed around the movement, and the snap-fit ​​component is also slidably connected to the watch frame; wherein... When the sliding component slides from the first position to the second position, the limiting component is pushed by the sliding component and moves towards the movement, and is engaged in the movement. The engaging component is pushed by the sliding component and moves from the third position to the fourth position, and after the displacement, it returns to the third position and engages with the sliding component to lock the sliding component in the second position. The latching component is also configured to be displaced to the fourth position after reset to release the lock on the sliding component. The sliding component is configured to be reset to the first position after the lock is released. The limiting component is configured to displace away from the movement as the sliding component is reset and exit the movement.

31. A detachable structure for a detachable connection between a watch case and a movement mounted on the watch case, characterized in that, The detachable structure includes: a sliding component slidably connected to the watch frame, a limiting component and a snap-fit ​​component located on the sliding path of the sliding component, wherein the limiting component is also disposed around the movement, and the snap-fit ​​component is also slidably connected to the watch frame; wherein... When the sliding component slides from the first position to the second position, the limiting component is pushed by the sliding component and moves towards the movement, and is engaged in the movement. The engaging component is pushed by the sliding component and moves from the third position to the fourth position, and after the displacement, it returns to the third position and engages with the sliding component to lock the sliding component in the second position. The latching component is also configured to be displaced to the fourth position after reset to release the lock on the sliding component. The sliding component is configured to be reset to the first position after the lock is released. The limiting component is configured to displace away from the movement as the sliding component is reset and exit the movement.

Citation Information

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