Ejection locking mechanism and electronic device

By designing the rotation and movement of the support and locking components, the problems of unstable movement and large space occupation of functional modules are solved, thus achieving the thinning and lightening of electronic devices and improving their stability.

CN120743044BActive Publication Date: 2025-12-09XIAN GLORY TERMINAL CO LTD
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Patent Information

Application Number
CN202511223915.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-08-29
Publication Date
2025-12-09
Estimated Expiration
2045-08-29

AI Technical Summary

Technical Problem

The movement direction space of functional modules in existing electronic devices is large and unstable, and the pop-out locking mechanism has a complex structure.

Method used

A pop-out locking mechanism is adopted, in which the support member is rotatably connected to the mounting base. The pop-out of the functional module is achieved by rotating the support member around the axis. Combined with the movement of the first and second locking members, the structure is simplified and the stability is enhanced.

Benefits of technology

This reduces the space occupied by functional modules in the direction of movement, improves motion stability, simplifies structural design, and reduces costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application provides a pop-up locking mechanism and an electronic device, and relates to the technical field of electronic products. The pop-up locking mechanism comprises a mounting base, a supporting piece, a first locking piece and a second locking piece. The supporting piece can rotate relative to the mounting base around a first axis to switch the supporting piece between a reset state and a pop-up state. The first locking piece is arranged with the supporting piece in a first direction, and the first locking piece has a first locking part and a second locking part. In a first locking position, the second locking piece is locked with the first locking part, and the supporting piece is in the reset state. In a second locking position, the second locking piece is locked with the second locking part, and the supporting piece is in the pop-up state. The pop-up locking mechanism of the application can realize the pop-up function of the pop-up locking mechanism, reduce the movement space of the functional module arranged in the pop-up locking mechanism, improve the stability of the pop-up movement of the functional module, and simplify the structure of the pop-up locking mechanism.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of electronic products, and in particular to a pop-up locking mechanism and an electronic device. BACKGROUND

[0002] At present, in order to facilitate the installation and removal of a functional module in an electronic device, a pop-up locking mechanism is usually provided in the electronic device. However, the functional module in the related art occupies a large space in the movement direction, the movement stability of the functional module is poor, and the structure of the pop-up locking mechanism is relatively complex.

[0003] Therefore, how to realize the pop-up function of the pop-up locking mechanism while reducing the movement space of the functional module, improving the stability of the pop-up movement of the functional module, and simplifying the structure of the pop-up locking mechanism is one of the technical problems to be solved at present. SUMMARY

[0004] The present application provides a pop-up locking mechanism and an electronic device, which can realize the pop-up function of the pop-up locking mechanism while reducing the movement space of the functional module, improving the stability of the pop-up movement of the functional module, and simplifying the structure of the pop-up locking mechanism.

[0005] To achieve the above-mentioned purpose, the embodiments of the present application adopt the following technical solutions:

[0006] In a first aspect, the present application provides a pop-up locking mechanism, which comprises a mounting base, a support, a first locking member and a second locking member.

[0007] The support is arranged on the mounting base, and the support can rotate relative to the mounting base about a first axis to switch the support between a reset state and a pop-up state.

[0008] It should be understood that when the support rotates relative to the mounting base, the support and the mounting base have a rotation shaft supporting the rotation of the support, and the central axis of the rotation shaft is parallel to the first axis. The concentricity of the rotation shaft is good, and when an external force acts on the support to make it rotate about the rotation shaft, even if the forces on each point of the support are uneven, all points on the support still have the same angular velocity and angular acceleration, which can solve the problem of inconsistent speeds of each point in translation movement, so that the support has good movement stability.

[0009] Thus, compared with driving the functional module to move out by the translational movement of the support along the Z-axis direction, the support in the embodiment of the application rotates relative to the mounting base around the first axis, which can not only realize the ejection function of the ejection locking mechanism, but also enhance the movement stability of the support, and further enhance the stability of the movement of the functional module. In addition, the movement of the support does not need to be guided by additional balance structure, which can simplify the structure of the ejection locking mechanism, improve the assembly efficiency of the ejection locking mechanism, and reduce the cost.

[0010] The first locking member is fixed to the mounting base, and the first locking member and the support are arranged in the first direction. The first locking member has a first locking portion and a second locking portion. The second locking member is arranged on the support, and the second locking member can move relative to the support along the first direction and the second direction, so that the second locking member can move relative to the first locking member between the first locking position and the second locking position. The first direction is perpendicular to the first axis, and the second direction is parallel to the first axis.

[0011] The arrangement and setting mode of the first locking member and the support makes the first locking member and the support occupy less space in the Z-axis direction. By rotating the second locking member relative to the mounting base around the first axis, and moving the second locking member relative to the mounting base along the first direction and the second direction, the support can be switched between the reset state and the pop-up state. In this way, the movement stroke of the support in the Z-axis direction is smaller, and the support occupies less space in the third direction when moving.

[0012] In summary, when the ejection locking mechanism of the embodiment of the application is applied to an electronic device, the ejection locking mechanism occupies less space in the third direction of the electronic device (i.e. the thickness direction of the electronic device), which is beneficial to the thin and light design of the electronic device.

[0013] In the first locking position, the second locking member is locked and matched with the first locking portion, and the support is in the reset state. In the second locking position, the second locking member is locked and matched with the second locking portion, and the support is in the pop-up state. By locking and matching the second locking member with the first locking portion, the stability of the support in the reset state can be ensured. By locking and matching the second locking member with the second locking portion, the stability of the support in the pop-up state can be ensured.

[0014] The second locking member moves along the first path when moving from the first locking position to the second locking position relative to the first locking member. The second locking member moves along the second path when moving from the second locking position to the first locking position relative to the first locking member. The first path and the second path are spliced into a ring-shaped path.

[0015] In this way, the movement path of the second locking member is different in different positions of the movement of the second locking member relative to the first locking member, and the first path and the second path are spliced into a loop path, indicating that the movement path of the second locking member is irreversible, so as to ensure the reliability of the switching movement of the second locking member between the first locking position and the second locking position.

[0016] In addition, when the second locking member moves along the first path from the first locking position to the second locking position, it undergoes an unlocking process in between, so as to release the locking of the second locking member with the first locking part and lock the second locking part. Similarly, when the second locking member moves along the second path from the second locking position to the first locking position, it also undergoes an unlocking process in between, so as to release the locking of the second locking member with the second locking part and lock the first locking part. Therefore, the first locking member has both locking and unlocking functions, so that the ejection locking mechanism does not need to additionally add an unlocking structure to unlock the locking between the second locking member and the first locking member, so that the structure of the ejection locking mechanism is simpler, and the cost can be further reduced.

[0017] In some embodiments provided in the first aspect of the present application, the ejection locking mechanism comprises a first elastic member connected to the support member and the mounting base, and the first elastic member is used to drive the support member to rotate relative to the mounting base about the first axis. By setting the first elastic member to drive the support member to move, the support member can be switched between various working states without setting a complex electromagnetic control device to control the locking and unlocking of the support member, so as to further simplify the structure of the ejection locking mechanism and further reduce the cost.

[0018] In some embodiments provided in the first aspect of the present application, the support member also has a first pressing state and a second pressing state. When the support member is in the first pressing state, the second locking member is located at the first unlocking position, the second locking member is disengaged from the first locking part, and the first elastic member is in a compressed state. When the support member is in the second pressing state, the second locking member is located at the second unlocking position, the second locking member is disengaged from the second locking part, and the first elastic member is in a compressed state. The first unlocking position is located on the first path, and the second unlocking position is located on the second path.

[0019] It should be understood that when a pressing force is applied to the support member in the reset state, the support member can be switched to the first pressing state; when the pressing force is removed, the first elastic member can drive the support member to switch to the pop-up state. When a pressing force is applied to the support member in the pop-up state again, the support member can be switched to the second pressing state; when the pressing force is removed, the first elastic member can drive the support member to switch to the pop-up state.

[0020] Thus, two presses on the support member can switch the support member between different states, and the position of the functional module relative to the shell can be adjusted to better meet different user needs, and the operation is simple.

[0021] In some embodiments provided in the first aspect of the present application, the second locking member is provided with the first elastic member on both sides of the second direction. In this way, when the elastic force of the first elastic member acts on the support member, the stress on each region of the support member can be more uniform, so as to further improve the stability of the movement of the support member, and thus the stability of the movement of the functional module provided on the support member can be further improved.

[0022] In some embodiments provided in the first aspect of the present application, the first elastic member is a torsion spring, the torsion spring comprises a spring body and first and second torsion arms at two ends of the spring body, and the central axis of the spring body is parallel to the second direction; the first torsion arm abuts against the support member, and the second torsion arm abuts against the mounting base.

[0023] It should be understood that the central axis of the spring body is parallel to the second direction, so that the first torsion arm occupies less space in the third direction (i.e. the Z-axis direction) when moving. Thus, by arranging the torsion spring to drive the support member to move relative to the mounting base, while ensuring that the elastic force of the torsion spring is sufficient to drive the support member to move, the deformation process of the torsion spring will not excessively occupy the space in the third direction, which is suitable for scenarios where the space size in the third direction is small. When the pop-out locking mechanism with the first elastic member is applied to an electronic device, the pop-out locking mechanism occupies less space in the third direction, which is conducive to the lightweight design of the electronic device.

[0024] In some embodiments provided in the first aspect of the present application, the support member comprises a support plate and a synchronization block, the synchronization block is fixed to one end of the support plate close to the first locking member, and the synchronization block has a first sliding groove extending in the second direction; the pop-out locking mechanism further comprises a first sliding body and a second elastic member, the first sliding body is in sliding cooperation with the first sliding groove, and the first sliding groove can define the movement track of the first sliding body.

[0025] The second elastic member is arranged in the first sliding groove, one end of the second elastic member is connected to the inner wall surface of the first sliding groove, and the other end of the second elastic member is connected to the first sliding body. The second elastic member can be elastically deformed in the second direction to drive the first sliding body to move in the second direction, so that the elastic force of the second elastic member drives the second locking member to move in the second direction, without the need to arrange a complex electric drive device to control the movement of the first sliding body, which helps to simplify the structure of the pop-out locking mechanism and reduce the cost.

[0026] In some embodiments of the first aspect of the present application, the first sliding body has a second sliding groove extending along the first direction, and a portion of the second locking member is accommodated in the second sliding groove and is adapted to move along the second sliding groove; a third elastic member is arranged in the second sliding groove, one end of the third elastic member is connected to an inner wall surface of the second sliding groove, and the other end of the third elastic member is connected to the second locking member, and the third elastic member can be elastically deformed along the first direction to drive the second locking member to move along the first direction.

[0027] According to the above-mentioned embodiments, the first sliding groove can define the movement track of the first sliding body, and the second locking member is arranged in the first sliding body, so that the first sliding groove can also define the movement track of the second locking member; and the second sliding groove can define the movement track of the second locking member, so that the first sliding groove and the second sliding groove can jointly prevent the second locking member from deviating from the path when cooperating with the first locking member.

[0028] In addition, by elastically deforming the third elastic member along the first direction to drive the second locking member to move along the first direction, the second locking member can move along the second sliding groove, without the need to set a complex power-driven device to control the movement of the second locking member, which helps to simplify the structure of the ejection locking mechanism and reduce the cost.

[0029] In some embodiments of the first aspect of the present application, the first sliding body comprises a main body portion and a sliding portion, the main body portion has the second sliding groove, and the main body portion is located outside the first sliding groove; the sliding portion is connected to the main body portion and is located on at least one side of the main body portion in the second direction, and the sliding portion is slidingly fitted in the first sliding groove. The thickness of the main body portion in the third direction is greater than the size of the first sliding groove in the third direction, and the third direction is perpendicular to the first direction and perpendicular to the second direction.

[0030] By locating the main body portion outside the first sliding groove and by making the thickness of the main body portion in the third direction greater than the size of the first sliding groove in the third direction, the side wall of the first sliding groove can be located on at least one side of the main body portion in the second direction, so as to limit the displacement of the main body portion in the second direction.

[0031] In some embodiments of the first aspect of the present application, the sliding portion can comprise a first sliding portion and a second sliding portion, and the first sliding portion and the second sliding portion are respectively located on opposite sides of the main body portion in the second direction. The first sliding groove comprises a first groove segment and a second groove segment, at least a portion of the first sliding portion moves along the first groove segment, and at least a portion of the second sliding portion moves along the second groove segment, which helps to improve the stability of the movement of the first sliding body in the second direction.

[0032] In some embodiments of the first aspect of the present application, the first sliding groove penetrates an end surface of the synchronization block at at least one end in the third direction, so that the first slot section and the second slot section have a first slot opening and a second slot opening respectively, facilitating assembly of the second elastic member and the first sliding body in the first sliding groove. The synchronization block is provided with a first baffle and a second baffle to block the first slot opening and the second slot opening respectively, preventing the first sliding body or the first elastic member from being pulled out of the first sliding groove, thereby improving the reliability of movement of the first sliding body in the first sliding groove and improving the stability of installation of the first elastic member in the first sliding groove.

[0033] In some embodiments of the first aspect of the present application, the first sliding body is provided with a through hole, the through hole is in communication with the second sliding groove, and the through hole penetrates the surface of the first sliding body facing the first locking member;

[0034] The second locking member includes a sliding rod and a limiting baffle, the sliding rod extends in the first direction, the sliding rod is slidingly fitted in the second sliding groove, and the sliding rod is arranged in the through hole, facilitating at least part of the sliding rod to extend out of the second sliding groove and cooperate with the first locking member, so as to realize locking and unlocking between the first locking member and the second locking member.

[0035] The limiting baffle is located in the second sliding groove, the limiting baffle is fixed to the sliding rod and protrudes from the outer circumferential surface of the sliding rod, and the limiting baffle is used to abut and cooperate with the groove wall surface of the second sliding groove away from the first locking member. The groove wall surface of the second sliding groove can limit the second locking member in the first direction, preventing the second locking member from being pulled out of the second sliding groove.

[0036] In some embodiments of the first aspect of the present application, the second sliding groove can penetrate the end surface of the synchronization block away from the first locking member, so that the second sliding groove has a third slot opening, facilitating assembly of the third elastic member and the second locking member in the first sliding groove. The main body portion is provided with a third baffle to block the third slot opening, which can prevent the third elastic member or the second locking member from being pulled out of the second sliding groove, thereby improving the reliability of movement of the second locking member in the second sliding groove and improving the stability of installation of the second elastic member in the second sliding groove.

[0037] In some embodiments of the first aspect of the present application, the second locking portion is located on the side of the first locking portion away from the mounting base, and the second locking portion is spaced apart from the first locking portion in the second direction.

[0038] By locating the second locking portion on the side of the first locking portion away from the mounting base, when the second locking member is switched from the first locking position to the second locking position, at least part of the supporting member can move in a direction away from the mounting base, and the functional module arranged on the supporting member also moves in a direction away from the mounting base, ensuring that at least part of the functional module can be popped out of the housing.

[0039] The first locking portion and the second locking portion are arranged in the second direction to ensure that the second locking member can move along the annular path when moving relative to the first locking member, thereby realizing the irreversible movement of the second locking member.

[0040] In some embodiments of the first aspect of the present application, the first path includes a first guide groove, a second guide groove and a third guide groove which are in communication with each other; in the second direction, the first guide groove is located on the side of the first locking portion away from the second locking portion; the second guide groove is located on the side of the first guide groove away from the mounting base; and the third guide groove extends in the second direction and is located on the side of the second guide groove away from the mounting base. In this way, the first guide groove, the second guide groove and the third guide groove can guide the movement of the second locking member along the first path.

[0041] In some embodiments of the first aspect of the present application, the second path includes a fourth guide groove, a fifth guide groove and a sixth guide groove; in the third direction, the fourth guide groove is located on the side of the second locking portion close to the mounting base, and in the second direction, the fourth guide groove is located on the side of the first locking portion close to the second locking portion; in the third direction, the fifth guide groove is located on the side of the fourth guide groove close to the mounting base, and the fifth guide groove is located on the side of the first locking portion close to the mounting base; and the sixth guide groove is located on the side of the fifth guide groove away from the mounting base; and the third direction is perpendicular to the first direction and the second direction.

[0042] The fourth guide groove, the fifth guide groove and the sixth guide groove can guide the movement of the second locking member along the second path.

[0043] In some embodiments of the first aspect of the present application, the first path includes a first guide groove, a second guide groove and a third guide groove which are in communication with each other; in the second direction, the first guide groove is located on the side of the first locking portion away from the second locking portion; the second guide groove is located on the side of the first guide groove away from the mounting base; and the third guide groove extends in the second direction and is located on the side of the second guide groove away from the mounting base. In this way, the first guide groove, the second guide groove and the third guide groove can guide the movement of the second locking member along the first path.

[0044] The second path comprises a fourth guide slot, a fifth guide slot and a sixth guide slot; in the third direction, the fourth guide slot is located on the side of the second locking portion close to the mounting base, and in the second direction, the fourth guide slot is located on the side of the first locking portion close to the second locking portion; in the third direction, the fifth guide slot is located on the side of the fourth guide slot close to the mounting base, and the fifth guide slot is located on the side of the first locking portion close to the mounting base; the sixth guide slot is located on the side of the fifth guide slot away from the mounting base; and the third direction is perpendicular to the first direction and the second direction.

[0045] The first guide slot, the second guide slot, the third guide slot, the fourth guide slot, the fifth guide slot and the sixth guide slot can be spliced to form at least part of the annular path, and guide the second locking member to move along the annular path.

[0046] In some embodiments of the first aspect of the present application, the first locking portion comprises a first locking slot, and the first locking slot has a first stop surface, a second stop surface and a third stop surface; when the second locking member is in the first locking position, the first stop surface abuts the second locking member in the first direction, and the first stop surface is located on the side of the second locking member away from the support member; the second stop surface abuts the second locking member in the second direction, and the second stop surface is located on the side of the second locking member close to the second locking portion; and the third stop surface abuts the second locking member in the third direction, and the third stop surface is located on the side of the second locking member away from the mounting base.

[0047] Therefore, the first locking slot can limit the second locking member in the first direction and limit the movement of the second locking member in the first direction away from the support member; the first locking slot can limit the second locking member in the second direction and limit the movement of the second locking member in the second direction close to the second locking portion; and the first locking slot can limit the second locking member in the third direction and limit the movement of the second locking member in the third direction away from the mounting base. In this way, the reliability of the locking cooperation between the second locking member and the first locking portion can be ensured, thereby ensuring the stability of the support member in the reset state.

[0048] In some embodiments of the first aspect of the present application, the first locking member comprises a first guide slot, and in the second direction, the first guide slot is located on the side of the first locking slot away from the second locking portion; the first guide slot comprises a first guide surface and a first bottom wall surface, the first guide surface is connected to the slot wall surface of the first locking slot, and the first guide surface is located on the side of the first locking slot away from the second locking portion, and in the direction from the first locking portion to the mounting base, the first guide surface extends away from the first locking portion; and the first bottom wall surface is connected to the first guide surface, and the first bottom wall surface is recessed away from the support member relative to the first stop surface.

[0049] The first guide surface extends towards a direction away from the first locking portion from a direction pointing to the mounting base, the first guide surface can guide the second locking member in the first locking position to move into the first guide groove, and the third elastic member can drive the second locking member to abut against the first bottom wall surface; and a step can be formed between the first bottom wall surface and the first stop surface, so that the second locking member can be prevented from moving reversely into the first locking groove, and the reliability of the movement of the second locking member along the first path can be improved.

[0050] In some embodiments provided in the first aspect of the present application, the first locking member further comprises a second guide groove, the second guide groove has a second bottom wall surface and a second guide surface, the second bottom wall surface faces the support member, and the second bottom wall surface is recessed relative to the first stop surface towards a direction away from the support member; in the second direction, the second guide surface is located on a side of the second bottom wall surface close to the first locking portion, and the second guide surface is connected between the first stop surface and the second bottom wall surface, and the second guide surface is used for abutting against the second locking member in the second direction.

[0051] By abutting the second guide surface against the second locking member in the second direction, the second guide groove can limit the second locking member in the second direction, and limit the movement of the second locking member in the second direction towards the direction close to the second locking portion. Therefore, when the second locking member moves in the second guide groove, the second locking member can be prevented from moving into the first locking groove.

[0052] In some embodiments provided in the first aspect of the present application, the first locking member further comprises a transition groove, the transition groove comprises a first transition surface, the first transition surface faces the support member, and the first transition surface is connected to the second bottom wall surface, and in a direction pointing from the mounting base to the first locking portion, the first transition surface extends obliquely towards a direction close to the support member.

[0053] According to the above, in order to prevent the second locking member from moving reversely along the annular path, the first bottom wall surface is recessed relative to the first stop surface towards a direction away from the support member, and the second bottom wall surface is recessed relative to the first stop surface towards a direction away from the support member.

[0054] It can be understood that there is a step structure of gradual recess on the annular path, so that on the annular path, there should also be a bottom wall surface extending along the extension direction of the road section towards the direction close to the support member.

[0055] Therefore, by extending the first transition surface towards the direction close to the support member, conditions can be provided for forming a step structure on the annular path, and the locking function of the first locking portion and the second locking portion can be facilitated, the limiting function of the second guide surface can also be facilitated, the second locking member can be prevented from moving reversely, and the support member can be switched between the pop-up state and the reset state.

[0056] In some embodiments of the first aspect of the present application, the first locking member further comprises a third guide slot, the third guide slot has a third bottom wall surface and a third guide surface, the third bottom wall surface faces the support member, the third guide surface faces the mounting base, and the third guide surface is located on a side of the third bottom wall surface away from the mounting base; in the second direction, the second locking portion is located on a side of the third guide slot away from the second guide slot.

[0057] When the second locking member is in the third guide slot, the third bottom wall surface can abut against the second locking member in the first direction, and the third bottom wall surface is located on a side of the second locking member away from the support member; the third guide surface abuts against the second locking member in the third direction, and the third guide surface is located on a side of the second locking member away from the mounting base.

[0058] In this way, the third guide slot can limit the second locking member in the first direction and limit the second locking member from extending in the first direction away from the support member; the third guide slot can also limit the second locking member in the third direction and limit the second locking member from moving in the third direction away from the mounting base.

[0059] By locating the second locking portion on a side of the third guide slot away from the second guide slot in the second direction, the third guide slot is used to guide the second locking member to move along the second section to the second locking position.

[0060] In some embodiments of the first aspect of the present application, the second locking portion comprises a second locking slot, the second locking slot has a first locking surface, a second locking surface, and a third locking surface; when the second locking member is in the second locking position, the first locking surface abuts against the second locking member in the first direction, and the first locking surface is located on a side of the second locking member away from the support member; the second locking surface abuts against the second locking member in the third direction, and the second locking surface is located on a side of the second locking member away from the mounting base; the third locking surface abuts against the second locking member in the second direction, and the third locking surface is located on a side of the second locking member away from the first locking portion.

[0061] The second locking slot can limit the second locking member in the first direction and limit the second locking member from moving in the first direction away from the support member; the second locking slot can also limit the second locking member in the second direction and limit the second locking member from moving in the second direction away from the first locking portion; the first locking slot can limit the second locking member in the third direction and limit the second locking member from moving in the third direction away from the mounting base, so as to ensure the reliability of the locking cooperation between the second locking member and the first locking portion, thereby ensuring the stability of the support member in the popped-up state.

[0062] In some embodiments of the first aspect of the present application, the first locking member further comprises a fourth guide groove having a fourth bottom wall surface and a fourth guide surface, the fourth bottom wall surface faces the support, and in a direction from the second locking portion to the first locking portion, the fourth bottom wall surface extends towards the support. Similarly to the first transition surface extending towards the support, the fourth bottom wall surface extending towards the support can also provide conditions for forming a stepped structure on the annular path.

[0063] In a direction from the second locking portion to the mounting base, the fourth guide surface extends towards the first locking portion; the fourth guide surface is connected to a side of the fourth bottom wall surface away from the first locking portion, when the second locking member is located in the fourth guide groove, the fourth bottom wall surface abuts the second locking member in the first direction, and the fourth bottom wall surface is located on a side of the second locking member away from the support; the second locking member abuts the fourth guide surface in the second direction, and the fourth guide surface is located on a side of the second locking member away from the first locking portion.

[0064] The fourth guide surface and the fourth bottom wall surface are used to guide the movement of the second locking member along the third path segment; and the fourth guide groove can limit the second locking member in the first direction, and limit the movement of the second locking member in the first direction towards the support; the fourth guide groove can also limit the second locking member in the second direction, and limit the movement of the second locking member in the second direction towards the first locking portion.

[0065] In some embodiments of the first aspect of the present application, the first locking member further comprises a fifth guide groove having a fifth bottom wall surface and a fifth guide surface connected thereto, the fifth bottom wall surface faces the support, and the fifth bottom wall surface is recessed relative to the fourth bottom wall surface away from the support, and the fifth guide surface is connected to the fourth guide surface.

[0066] By recessing the fifth bottom wall surface relative to the fourth bottom wall surface away from the support, a step can be formed between the fifth bottom wall surface and the fourth bottom wall surface, and when the second locking member abuts the fifth bottom wall surface, the third elastic member can be in a compressed state with a large elastic force, which can avoid the second locking member moving in reverse along the third path segment into the fourth guide groove, and improve the reliability of the movement of the second locking member along the second path.

[0067] In some embodiments of the first aspect of the present application, when the second locking member is located in the fifth guide groove, the fifth bottom wall surface is located on a side of the second locking member away from the support. The fifth guide surface can abut against the second locking member in the second direction, and the fifth guide surface is located on a side of the second locking member close to the second locking portion. In this way, the fifth guide groove can limit the second locking member in the first direction and prevent the second locking member from moving in the first direction away from the support; and the fifth guide groove can limit the second locking member in the second direction and prevent the second locking member from moving in the second direction towards the second locking portion.

[0068] In some embodiments of the first aspect of the present application, the first locking member further comprises a sixth guide groove, the sixth guide groove has a sixth bottom wall surface and a sixth guide surface, the sixth bottom wall surface faces the support, and the sixth bottom wall surface is connected to the fifth bottom wall surface. In a direction from the mounting base to the first locking portion, the sixth guide surface extends towards a direction away from the second locking portion. The first locking portion comprises a first locking groove, the first locking groove has a third stop surface, the third stop surface abuts against the second locking member in a third direction, and the third stop surface is located on a side of the second locking member away from the mounting base.

[0069] The sixth guide surface is connected between the fifth guide surface and the third stop surface, and the sixth guide surface is used to abut against the second locking member in the second direction.

[0070] By extending the sixth guide surface towards the direction away from the second locking portion in the direction from the mounting base to the first locking portion, the sixth guide surface can guide the second locking member to move along the fourth path segment, and the sixth guide surface can guide the second locking member to move from the sixth guide groove to the first locking groove. By abutting the sixth guide surface against the second locking member in the second direction, the sixth guide groove can limit the second locking member in the second direction and prevent the second locking member from moving in the second direction towards the second locking portion, i.e., prevent the second locking member from moving in the reverse direction.

[0071] In some embodiments of the first aspect of the present application, the sixth bottom wall surface is recessed relative to the fourth bottom wall surface in a direction away from the support. When the second locking member is located in the sixth guide groove, the sixth bottom wall surface abuts against the second locking member in the first direction, and the sixth bottom wall surface is located on a side of the second locking member away from the support. The sixth guide surface abuts against the second locking member in the second direction, and the sixth guide surface is located on a side of the second locking member close to the second locking portion.

[0072] A step can be formed between the sixth bottom wall surface and the fourth bottom wall surface, and when the second locking member abuts against the sixth bottom wall surface, the third elastic member can be in a compressed state and have a large elastic force. In this way, the second locking member in the sixth guide groove can be prevented from moving into the fourth guide groove, and the reliability of the second locking member moving along the fourth path segment can be improved.

[0073] In a second aspect, the present application provides an electronic device, which comprises the pop-up locking mechanism according to any one of the technical solutions described above, and further comprises a shell and a functional module. The shell has a mounting port, and the mounting base is fixed to the shell. The functional module is arranged on the support and detachably connected with the support. When the support is in the reset state, the functional module is accommodated in the shell. When the support is in the pop-up state, at least part of the functional module is popped out of the mounting port to the outside of the shell.

[0074] By means of the support being in the pop-up state, at least part of the functional module is popped out of the mounting port to the outside of the shell, the functional module is conveniently taken off from the support, and is applied to other scenes.

[0075] The other technical effects brought by the various design manners of the second aspect can be referred to the technical effects brought by the various design manners of the first aspect, and will not be described herein again.

[0076] In some embodiments of the second aspect provided in the present application, the functional module is at least one of a camera module, an earphone and a stylus, which is widely applicable. BRIEF DESCRIPTION OF DRAWINGS

[0077] Figure 1 FIG. 1 is a structural schematic diagram of an electronic device according to some embodiments of the present application;

[0078] Figure 2 FIG. 2 is an exploded view of a partial structure of the electronic device shown in FIG. 1; Figure 1

[0079] FIG. 3 is a partial cross-sectional structural schematic diagram of the electronic device shown in FIG. 1 at A-A line; Figure 3 Figure 1 FIG. 4 is a structural schematic diagram of a decorative piece of the electronic device shown in FIG. 1;

[0080] Figure 4 Figure 2 FIG. 5 is a cooperation schematic diagram of a functional module and a pop-up locking mechanism of the electronic device according to some embodiments of the present application;

[0081] Figure 5 FIG. 6 is a cooperation schematic diagram of the functional module and the shell of the electronic device according to some embodiments of the present application, in which the support is in the reset state;

[0082] Figure 6 FIG. 7 is a cooperation schematic diagram of the functional module and the shell of the electronic device according to some embodiments of the present application, in which the support is in the pop-up state; Figure 1

[0083] Figure 7 Figure 2

[0084] Figure 8 ​​​​​This is a schematic diagram of the structure of an electronic device according to other embodiments of this application, wherein the camera module is disposed on the outer side of the frame;

[0085] Figure 9 According to Figure 8 A schematic diagram of the electronic device from another angle;

[0086] Figure 10 This is a schematic diagram illustrating the interaction between the camera module and the frame in some embodiments of this application;

[0087] Figure 11 This is an exploded view of a portion of the structure of an electronic device according to some embodiments of this application;

[0088] Figure 12 This is a perspective view of a camera module according to some embodiments of this application;

[0089] Figure 13 According to Figure 12 A schematic diagram of part of the structure of the camera module shown;

[0090] Figure 14 This is a schematic diagram illustrating the cooperation between the camera module and the pop-out locking mechanism of an electronic device according to other embodiments of this application;

[0091] Figure 15 This is a schematic diagram of a partial structure of an electronic device according to other embodiments of this application;

[0092] Figure 16 This is a perspective view of a camera module according to other embodiments of this application;

[0093] Figure 17 This is a schematic diagram showing the relative positions of the support member of the pop-out locking mechanism in the related technology with the mounting base under different working states;

[0094] Figure 18 A perspective view of the pop-out locking mechanism of some embodiments of this application;

[0095] Figure 19 This is a schematic diagram illustrating the interaction between functional modules and the housing in some embodiments of this application. Figure 3 The support component is in the first pressed state;

[0096] Figure 20 According to Figure 18 The exploded view of the pop-out locking mechanism is shown.

[0097] Figure 21 Three-dimensional representation of the first locking member in some embodiments of this application Figure 1 ;

[0098] Figure 22 Three-dimensional representation of the first locking member in some embodiments of this applicationFigure 2 ;

[0099] Figure 23 for Figure 22 Enlarged view of the circled area at point B;

[0100] Figure 24 This is a partial cross-sectional structural diagram of the pop-out locking mechanism in some embodiments of this application. Figure 1 ;

[0101] Figure 25 This is a schematic diagram illustrating the cooperation between the first locking member and the second locking member in some embodiments of this application. Figure 1 ;

[0102] Figure 26 This is a partial cross-sectional structural diagram of the pop-out locking mechanism in some embodiments of this application. Figure 2 ;

[0103] Figure 27 This is a schematic diagram illustrating the cooperation between the first locking member and the second locking member in some embodiments of this application. Figure 2 ;

[0104] Figure 28 This is a partial cross-sectional structural diagram of the pop-out locking mechanism in some embodiments of this application. Figure 3 ;

[0105] Figure 29 This is a schematic diagram illustrating the cooperation between the first locking member and the second locking member in some embodiments of this application. Figure 3 ;

[0106] Figure 30 This is a schematic diagram illustrating the cooperation between the first locking member and the second locking member in some embodiments of this application. Figure 4 ;

[0107] Figure 31 This is a partial structural schematic diagram of the pop-out locking mechanism in some embodiments of this application;

[0108] Figure 32 This is a schematic diagram illustrating the cooperation of the second locking member, the first sliding body, and the synchronization block in some embodiments of this application;

[0109] Figure 33 This is a schematic diagram illustrating the cooperation between the synchronization block and the first and second baffles in some embodiments of this application;

[0110] Figure 34 According to Figure 33 The diagram shows a cross-sectional view of the electronic device at the DD line.

[0111] Figure Labels

[0112] 100. Electronic devices;

[0113] 1, screen: 11, light-transmitting cover plate; 12, display screen;

[0114] 2, shell; 20, accommodating space; 21, back cover; 211, through hole; 212, second mounting column; 213, second mounting hole; 214, second fixing hole; 215, accommodation gap; 216, first positioning hole; 22, frame; 221, magnetic attraction part; 222, first via hole; 223, first patch; 224, support protrusion; 225, matching groove; 23, decoration piece; 230, mounting port; 231, first fixing hole; 232, accommodation groove; 233, first positioning column; 3, mainboard;

[0115] 40, pop-up locking mechanism;

[0116] 4, first locking piece; 4a, first locking part; 4b, second locking part; 401, locking main body; 402, fixed part; 403, fourth mounting hole; 404, fourth positioning hole; 411, first locking groove; 4111, first stop surface; 4112, second stop surface; 4113, third stop surface; 412, first guide groove; 4121, first guide surface; 4122, first bottom wall surface; 4123, first opening; 413, second guide groove; 4131, second bottom wall surface; 4132, second guide surface; 414, transition groove; 4141, first transition surface; 415, third guide groove; 4151, third bottom wall surface; 416, second locking groove; 4161, first locking surface; 4163, third locking surface; 417, fourth guide groove; 4171, fourth bottom wall surface; 4172, fourth guide surface; 418, fifth guide groove; 4181, fifth bottom wall surface; 4182, fifth guide surface; 4183, second limiting surface; 419, sixth guide groove; 4191, sixth bottom wall surface; 4192, sixth guide surface;

[0117] R1, first path; R11, first section; R12, second section; R121, first sub-section; R122, second sub-section; R2, second path; R21, third section; R22, fourth section; P1, first locking position; P2, second locking position; P3, first unlocking position; P4, second unlocking position;

[0118] 42, second locking piece; 421, slide rod; 422, limiting baffle;

[0119] 43, mounting base; 430, mounting base; 431, first mounting column; 4311, first mounting hole; 432, first connecting lug; 4321, first connecting hole; 433, second connecting lug; 4331, second connecting hole; 434, limiting fence; 4341, avoiding gap; 435, mounting space; 436, third mounting column; 4361, third mounting hole; 4362, third positioning column; 437, third connecting lug; 438, fourth connecting lug; 439, first containing groove;

[0120] 44, support; 45, support plate; 451, second connecting part;

[0121] 46, synchronization block; 460, first sliding groove; 461, first slot section; 462, second slot section; 463, first side wall surface; 464, first groove; 465, first slot; 466, second slot; 467, second containing groove; 468, third containing groove; 46a, synchronization block main body; 46b, first connecting arm; 46c, second connecting arm; 47, first sliding body; 470, main body part; 471, second sliding groove; 472, through hole; 473, third slot; 474, sliding part; 475, second side wall surface; 476, second groove; 477, first sliding part; 478, second sliding part;

[0122] 481, first baffle; 482, second baffle; 483, third baffle;

[0123] 50, function module; 5, camera module; 5a, light entrance surface; 51, protective shell; 52, bottom plate; 53, first frame; 531, stepped groove; 54, second patch; 55, containing space; 56, third power coil; 57, mounting groove; 581, first magnet; 582, fourth magnet; 59, protective lens;

[0124] 6, rotating assembly; 61, rotating shaft; 610, rotating shaft main body; 611, first limiting part; 612, second limiting part; 62, shaft sleeve; 621, first connecting part; 622, positioning protrusion; 623, shaft sleeve main body; 63, second rotating shaft; S1, first axis; S2, central axis;

[0125] 71, first elastic member; 711, spring main body; 712, first torsional arm; 713, second torsional arm; 72, second elastic member; 73, third elastic member; 74, first fastener; 75, second fastener; 76, third fastener;

[0126] 8, connector; 81, first contact part; 811, first contact; 82, second contact part; 821, second contact;

[0127] 91, first power supply coil; 92, second power supply coil; 93, antenna plate; 94, electrical connection structure; 95, third magnet; 96, first circuit board; 97, second circuit board; 98, third circuit board. DETAILED DESCRIPTION

[0128] In the embodiments of the present application, the terms "first", "second", "third", "fourth", "fifth" are only used for descriptive purposes and cannot be construed as indicating or implying relative importance or implying the number of the technical features indicated. Therefore, the features defined with "first", "second", "third", "fourth", "fifth" can explicitly or implicitly include one or more of the features.

[0129] In the embodiments of the present application, the terms "include", "contain" or any other variants thereof are intended to cover non-exclusive inclusion, so that the process, method, article or device including a series of elements not only includes those elements, but also includes other elements not explicitly listed or inherent to such process, method, article or device. Without more limitations, the element defined by the sentence "including a" does not exclude the presence of other identical elements in the process, method, article or device including the element.

[0130] In the description of the embodiments of the present application, "and / or" is only a description of the association relationship of the associated objects, which means that there can be three relationships, for example, A and / or B can represent the three cases of A alone, A and B together, and B alone.

[0131] In the embodiments of the present application, unless otherwise specified, the description of "parallel" means approximately parallel within a certain error range, and the error range can be a range with an angle deviation of less than or equal to 5° from absolute parallel. The description of "perpendicular" means approximately perpendicular within a certain error range, and the error range can be a range with an angle deviation of less than or equal to 5° from absolute perpendicular.

[0132] For ease of understanding, before the electronic device in the embodiments of the present application is described in detail, the related terms involved in the embodiments of the present application are first described.

[0133] Abutment: refers to the mutual contact of two structural members, and the two structural members have extrusion force between them.

[0134] Connection: can refer to direct connection between two structural members, or indirect connection between two structural members. Indirect connection can be connection through certain intermediate medium or means, rather than direct physical contact.

[0135] Towards: refers to the positive direction of two structural parts, or the relative direction between two structural parts with a certain angle.

[0136] Orthographic projection: refers to the projection of the projection line perpendicular to the projection plane.

[0137] The present application provides an electronic device, specifically, the electronic device can be a user equipment (UE) or a terminal device, etc. For example, the electronic device can be a portable android device (PAD), a mobile phone, a notebook computer, a personal digital assistant (PDA), a handheld device with wireless communication function, a computing device, a vehicle-mounted device, a wearable device, a virtual reality (VR) terminal device (such as VR glasses), an augmented reality (AR) terminal device (such as AR glasses), etc. Mobile terminal or fixed terminal. For the convenience of explanation below, the electronic device 100 is taken as an example of a tablet computer, but this cannot be understood as a limitation of the present application.

[0138] Please see Figures 1-3 , Figure 1 for the structure diagram of the electronic device 100 of some embodiments of the present application; Figure 2 for the exploded view of the partial structure of the electronic device 100 shown in Figure 1 ; Figure 3 for the partial cross-sectional structure diagram of the electronic device 100 shown in Figure 1 at A-A line. Among them, "at A-A line" refers to the plane at A-A line and the arrows at both ends of A-A line, and the similar description of the drawing in the following should be understood in the same way, and the following will not be repeated.

[0139] The electronic device 100 includes a screen 1, a shell 2, a mainboard 3 (shown by the dashed line in the figure), a pop-up locking mechanism 40 and a functional module 50. Figure 1

[0140] It can be understood that Figures 1-3 some components included in the electronic device 100 are shown schematically, and the actual shape, actual size, actual position and actual structure of these components are not limited by Figure 1 , Figure 2 and Figure 3 . In some other examples, the electronic device 100 can also not include the screen 1.

[0141] ​The electronic device 100 is substantially rectangular and flat. Based on this, in order to facilitate the description of each of the embodiments below, an XYZ coordinate system is established, and the length direction of the electronic device 100 is defined as the X-axis direction, the width direction of the electronic device 100 is defined as the Y-axis direction, and the thickness direction of the electronic device 100 is defined as the Z-axis direction.

[0142] It can be understood that the coordinate system of the electronic device 100 can be flexibly set according to actual needs, and is not specifically limited here. In some other embodiments, the shape of the electronic device 100 can also be a square flat, a rhombic flat, a circular flat, an elliptical flat, or a special-shaped flat, and the like, and is not specifically limited here.

[0143] The screen 1 is used to display images, videos, and the like. Please refer to Figure 3 , the screen 1 can include a light-transmitting cover plate 11 and a display screen 12, and the light-transmitting cover plate 11 and the display screen 12 are stacked. The light-transmitting cover plate 11 is mainly used to protect and prevent dust from entering the display screen 12. The material of the light-transmitting cover plate 11 includes but is not limited to glass, ceramic, and plastic. The display screen 12 can adopt a flexible display screen or a rigid display screen. For example, the display screen 12 can be an organic light-emitting diode display screen, an active-matrix organic light-emitting diode (AMOLED) display screen, a micro light-emitting diode display screen, a micro organic light-emitting diode display screen, a quantum dot light-emitting diode display screen, or a liquid crystal display screen, and the like.

[0144] The shell 2 is used to protect the internal electronic devices of the electronic device 100, and can be used to support the screen 1. The material of the shell 2 includes but is not limited to metal, ceramic, plastic, and glass. The shell 2 has a receiving space 20. For example, the shell 2 can include a back cover 21, a frame 22, and a decorative piece 23.

[0145] Please refer to Figure 2 and Figure 3 , the back cover 21 can be flat, and the back cover 21 is located on the side of the display screen 12 away from the light-transmitting cover plate 11 and is spaced apart from the display screen 12 along the third direction (for example, the Z-axis direction in Figure 3 ). The frame 22 is located between the back cover 21 and the screen 1, and is arranged along the edge of the back cover 21 and the edge of the screen 1.

[0146] The frame 22 can be fixed to the edge of the back cover 21, and the receiving space 20 described above can be formed between the frame 22 and the back cover 21. For example, the frame 22 can be fixedly connected to the back cover 21 by adhesive; or the frame 22 can also be an integral molding structure with the back cover 21, that is, the frame 22 and the back cover 21 are an integral structure.

[0147] In some embodiments, the frame 22 is annular. Exemplarily, the frame 22 can be a torus. In other embodiments, the frame 22 can also be non-annular. In this case, the frame 22 can be arranged only on one side, two sides or three sides of the back cover 21.

[0148] The decoration 23 is arranged on the side of the back cover 21 facing away from the screen 1, and is fixedly connected with the back cover 21. Please refer to Figure 3 and Figure 4 , Figure 4 is a structural schematic view of the decoration 23 of the electronic device 100 shown in Figure 2

[0149] Exemplarily, the side of the decoration 23 facing the back cover 21 is provided with a first fixing hole 231, and the back cover 21 is provided with a second fixing hole 214. The first fastener 74 is adapted to be arranged in the second fixing hole 214 and the first fixing hole 231, so as to fix the decoration 23 to the back cover 21. The first fixing hole 231 can be a plurality of holes arranged along the circumference of the back cover 21, and the second fixing hole 214 is also a plurality of holes corresponding to the plurality of first fixing holes 231. In this way, the first fastener 74 arranged in the second fixing hole 214 and the first fixing hole 231 can improve the mounting stability between the decoration 23 and the back cover 21.

[0150] The side of the decoration 23 facing the back cover 21 is also provided with a first positioning column 233, and the back cover 21 is provided with a first positioning hole 216. The first positioning column 233 is adapted to be inserted into the first positioning hole 216, so as to position the decoration 23 on the back cover 21, facilitate the fixing operation between the decoration 23 and the back cover 21, and further enhance the mounting stability between the decoration 23 and the back cover 21.

[0151] The mainboard 3 is accommodated in the accommodation space 20. The mainboard 3 is used to integrate electronic components. Exemplarily, the electronic components can include at least one of a processor (which can also be referred to as a chip), an antenna module, a Bluetooth module, a WiFi module, a GPS module, a charging module, or a screen 1 display and operation module, a resistor, a capacitor, an inductor, a potentiometer, a tube, a mechanical and electrical component, a semiconductor discrete device, a power supply, a switch, a micro motor, an electronic transformer, a relay, a universal serial bus (USB) device.

[0152] Continuing to refer to Figure 2 and Figure 3 ​The pop-up locking mechanism 40 is fixed to the shell 2. The pop-up locking mechanism 40 can include a mounting seat 43. The pop-up locking mechanism 40 can be fixed to the shell 2 through the mounting seat 43. The shell 2 can be provided with a through hole 211. For example, the through hole 211 is arranged on the back cover 21. The through hole 211 can be opposite to and in communication with the mounting port 230 in the third direction (i.e., the Z-axis direction). A part of the mounting seat 43 can pass through and be accommodated in the through hole 211. In this way, the mounting seat 43 and the shell 2 can be more compact. The mounting seat 43 can effectively reduce the space occupied in the third direction. In turn, the size of the electronic device 100 in the third direction can be reduced. This is beneficial to the thin design of the electronic device 100 in the third direction. In other embodiments, the shell 2 can also not be provided with the through hole 211.

[0153] With reference to Figure 2 and Figure 4 The back cover 21 can also be provided with a relief gap 215. The relief gap 215 can pass through the back cover 21 in the thickness direction of the back cover 21. The relief gap 215 can be in communication with the through hole 211. The surface of the decorative piece 23 facing the back cover 21 can be provided with a relief groove 232. The relief gap 215 and the relief groove 232 can be opposite in the third direction. The relief gap 215 and the relief groove 232 can provide relief for part of the structure of the pop-up locking mechanism 40 (for example, the first locking piece, the synchronization block and other structures in the following description). This is helpful to improve the compactness of the overall structure of the electronic device.

[0154] With reference to Figure 2 and Figure 3 In some embodiments, the mounting seat 43 can be fixed to the back cover 21. The mounting seat 43 can be fixed to the back cover 21 by means of threaded connection, clamping, welding or gluing.

[0155] At least part of the mounting seat 43 is located in the accommodation space 20. For example, part of the mounting seat 43 is located in the accommodation space 20. Alternatively, the mounting seat 43 is entirely located in the accommodation space 20. In this way, the space in the shell 2 can be effectively utilized. The compactness of the structure between the mounting seat 43 and the shell 2 can be increased. The size of the electronic device 100 in the third direction can be further reduced. This is beneficial to the lightweight design of the electronic device 100.

[0156] Figure 1 and Figure 2 The positions where the through hole 211 and the pop-up locking mechanism 40 are arranged are only illustrative. The through hole 211 and the pop-up locking mechanism 40 can be arranged at any position along the circumference of the back cover 21. For example, the through hole 211 and the pop-up locking mechanism 40 can also be arranged at the middle region of the back cover 21.

[0157] In some embodiments, with reference to Figure 2 and Figure 3The mounting seat 43 can include a mounting base 430 and a first mounting post 431 provided on the mounting base 430. The mounting base 430 can be located on the side of the back cover 21 facing the screen 1.

[0158] In some embodiments, the mounting base 430 can be in a plate shape, for example, a rectangular plate shape, a circular plate shape or other shapes, which are not particularly limited herein.

[0159] The first mounting post 431 protrudes from the surface of the mounting base 430 facing away from the screen 1. Both the mounting base 430 and the first mounting post 431 are accommodated in the accommodating space 20. The first mounting post 431 has a first mounting hole 4311. The back cover 21 can be provided with a second mounting post 212 provided on the side of the back cover 21 facing the mounting base 430. The second mounting post 212 abuts against the first mounting post 431 in the third direction. The second mounting post 212 has a second mounting hole 213. The second fastener 75 can be arranged in the first mounting hole 4311 and the second mounting hole 213 to fix the mounting seat 43 to the back cover 21. For example, the second fastener 75 can be a bolt.

[0160] The abutment of the second mounting post 212 against the first mounting post 431 in the third direction allows the mounting base 430 to be spaced apart from the back cover 21 in the third direction, facilitating the arrangement of other structures in the space between the mounting base 430 and the back cover 21. The second mounting post 212 and the first mounting post 431 can also provide support for the mounting base 430 and the back cover 21.

[0161] Referring to Figure 2 and Figure 3 In some embodiments, the first mounting post 431 can be a plurality of posts arranged along the circumference of the mounting base 430. The second mounting post 212 can have the same number of posts as the first mounting post 431 and can correspond to the first mounting post 431 one-to-one.

[0162] Of course, in other embodiments, the first mounting post 431 can not be provided on the mounting base 430. The first mounting hole 4311 can be directly formed on the mounting base 430, and the mounting seat 43 can be fixedly connected to the back cover 21 by the first fastener 74. Alternatively, the second mounting post 212 can not be provided on the back cover 21. The second mounting hole 213 can be directly formed on the back cover 21, and the mounting seat 43 can be fixedly connected to the back cover 21 by the first fastener 74.

[0163] Referring to Figure 2 and Figure 3The mounting base 430 can further include a limiting fence 434 arranged on the mounting base 430, the limiting fence 434 being arranged on the side of the mounting base 430 facing the back cover 21 and extending along the circumference of the mounting base 430. The mounting base 430 and the limiting fence 434 can be formed integrally, which can simplify the assembly of the pop-up locking mechanism 40. Alternatively, the mounting base 430 and the limiting fence 434 can be formed separately, and the limiting fence 434 can be fixed to the mounting base 430 by bonding, welding or clamping, etc., which facilitates the maintenance or replacement of the limiting fence 434 or the mounting base 430.

[0164] At least part of the limiting fence 434 can abut against the back cover 21, and abut against the side of the back cover 21 facing the mounting base 430, and the limiting fence 434 and the mounting base 430 define a mounting space 435 therebetween. For example, part of the limiting fence 434 abuts against the back cover 21; or the entire limiting fence 434 abuts against the back cover 21.

[0165] Referring to Figure 2 and Figure 3 The pop-up locking mechanism 40 can further include a support member 44, which can be arranged on the side of the mounting base 430 facing away from the screen 1, and the support member 44 can move relative to the mounting base 43. At least part of the support member 44 can be accommodated in the mounting space 435, for example, part of the support member 44 is accommodated in the mounting space 435; or the entire support member 44 is located in the mounting space 435. By accommodating at least part of the support member 44 in the mounting space 435, the compactness of the overall structure of the pop-up locking mechanism 40 can be improved; and both the mounting base 430 and the limiting fence 434 can protect the support member 44, which can reduce the possibility of mutual interference between other structural members in the electronic device 100 and the support member 44, and is conducive to ensuring the normal function of the support member 44.

[0166] When the back cover 21 is provided with the through hole 211, the through hole 211 can be opposite to and communicate with the mounting space 435, so that the support member 44 can move relative to the through hole 211. By abutting at least part of the limiting fence 434 against the back cover 21, the mounting space 435 and the through hole 211 can jointly constitute the movement space of the support member 44, so that the movement space of the support member 44 can be increased, and the occupation of the space in the housing 2 by the support member 44 in the third direction can be reduced.

[0167] Referring to Figure 3In some embodiments, the orthographic projection of the through hole 211 on the mounting base 430 can cover the orthographic projection of the mounting space 435 on the mounting base 430. It can be understood that the hole wall of the through hole 211 can be located at the outer circumferential side of the mounting space 435; or the hole wall of the through hole 211 can be connected to the inner circumferential wall of the mounting space 435 (i.e., the inner circumferential wall of the limiting enclosure 434). In this way, the through hole 211 can avoid the support 44, so as to reduce the possibility of the back cover 21 interfering with the movement of the support 44.

[0168] In other embodiments, at least part of the limiting enclosure 434 can pass through and be accommodated in the through hole 211, which can further enhance the stability of the cooperation between the mounting seat 43 and the back cover 21.

[0169] It should be noted that the shape of the through hole 211 can be consistent with the shape of the mounting space 435, so that the through hole 211 not only has the effect of avoiding the support 44 and increasing the movement space of the support 44, but also does not need to be too large in size to ensure the structural strength of the back cover 21.

[0170] Referring to Figure 2 In some embodiments, one or more avoiding notches 4341 can be arranged on the circumference of the limiting enclosure 434, which are used to avoid the connecting structure between the support 44 and other structural members outside the mounting space 435, so as to facilitate the connection between the support 44 and other structural members outside the mounting space 435.

[0171] In other embodiments, on the circumference of the limiting enclosure 434, the limiting enclosure 434 can also be a fully enclosed structure, and the support 44 can be arranged on the inner wall of the mounting space 435.

[0172] Referring to Figure 5 , Figure 5 FIG. 4 is a schematic view of the cooperation between the functional module 50 of the electronic device 100 and the pop-up locking mechanism 40 according to some embodiments of the present application. The functional module 50 can be mounted on the support 44 of the pop-up locking mechanism 40, and the functional module 50 can be arranged on the side of the support 44 facing the mounting port 230. The functional module 50 can move synchronously with the support 44. The functional module 50 can be electrically connected with the mainboard 3, and can receive signals from the mainboard 3 or send signals to the mainboard 3.

[0173] In some embodiments, the functional module 50 and the support 44 are detachably connected, so as to facilitate the disassembly and assembly of the functional module 50, so as to apply the functional module 50 to different scenes. For example, the connection between the functional module 50 and the support 44 can be at least one of magnetic connection, clamping connection or threaded connection.

[0174] Referring to Figure 5 and combiningFigure 3 For example, the support 44 is made of metal (e.g. stainless steel), and the functional module 50 includes a first magnet 581. The functional module 50 and the support 44 are magnetically connected by the first magnet 581 and the support 44. Alternatively, the functional module 50 is made of metal, and the support 44 includes a second magnet. The functional module 50 and the support 44 are magnetically connected by the second magnet and the functional module 50. Alternatively, the functional module 50 and the support 44 each include a first magnet 581 and a second magnet. The functional module 50 and the support 44 are magnetically connected by the first magnet 581 and the second magnet.

[0175] In some embodiments, the support 44 has a reset state and a pop-up state. Please refer to Figure 6 and Figure 3 , Figure 6 for the cooperation between the functional module 50 and the shell 2 in some embodiments of the present application Figure 1 , in which the support 44 is in the reset state. When the support 44 is in the reset state, the functional module 50 disposed on the support 44 can be accommodated in the shell 2.

[0176] Please refer to Figure 7 and Figure 3 , Figure 7 for the cooperation between the functional module 50 and the shell 2 in some embodiments of the present application Figure 2 , in which the support 44 is in the pop-up state. When the support 44 is switched to the pop-up state, at least part of the functional module 50 can be popped out of the mounting port 230 to the outside of the shell 2. For example, part of the functional module 50 is extended out of the mounting port 230 to the outside of the shell 2; or the entire functional module 50 is extended out of the mounting port 230 to the outside of the shell 2.

[0177] By allowing at least part of the functional module 50 to be popped out of the mounting port 230 to the outside of the shell 2, the functional module 50 can be easily removed from the entire machine and applied to other scenarios; and the functional module 50 can be easily installed on the support 44 and accommodated in the shell 2 by applying a one-time pressing force.

[0178] In some embodiments, the functional module 50 can be a camera module 5 for taking photos or videos. In other embodiments, the functional module 50 can also be a headset or a stylus.

[0179] Please refer to Figure 6 and Figure 7 and Figure 3Taking camera module 5 as an example, camera module 5 is mounted on support member 44. When support member 44 is in the reset state, camera module 5 can be accommodated inside housing 2, and the light-incident surface 5a of camera module 5 faces mounting port 230. At this time, camera module 5 can be used as a rear camera. When support member 44 is in the pop-up state, at least part of camera module 5 can pop out of housing 2 from mounting port 230. This allows camera module 5 to be removed from support member 44 and applied to other scenarios. For example, camera module 5 can be mounted on the outside of housing 2, where the outside of housing 2 refers to the side of housing 2 that faces away from accommodating space 20.

[0180] In some other embodiments, the camera module 5 can be removed from the support 44 and is not housed in the housing 2. It can be placed directly on the hand, on a table, or in other locations to take pictures, which provides good flexibility in use.

[0181] Taking the camera module 5 located on the outside of the housing 2 as an example, refer to... Figure 8 and Figure 9 , Figure 8 This is a schematic diagram of the structure of an electronic device 100 according to other embodiments of this application, wherein the camera module 5 is disposed on the outer side of the frame 22; Figure 9 According to Figure 8 This is a schematic diagram of the electronic device 100 from another angle. After being removed from the support member 44, the camera module 5 can be positioned on the outside of the frame 22, which is the side of the frame 22 facing away from the accommodating space 20. The light-incident surface 5a of the camera module 5 can face away from the back cover 21, at which point the camera module 5 can function as a front-facing camera. Therefore, the electronic device 100 does not need a dedicated front-facing camera, which helps reduce the operating cost of the electronic device 100.

[0182] Understandably, in order to house a front-facing camera, the electronic device 100 needs to have a hole cut into the screen 1 or a non-display area reserved. This results in the front-facing camera occupying a portion of the screen 1's display area, leading to a larger black border and a smaller screen-to-body ratio. Therefore, by placing the camera module 5 on the bezel 22 as a front-facing camera, the electronic device 100 does not need a dedicated front-facing camera, which also helps to reduce the black border of the screen 1 and increase the screen-to-body ratio.

[0183] Figure 8 The placement of the camera module 5 on the outer side of the bezel 22 is merely illustrative. When the camera module 5 is used as a front-facing camera, it can be placed at any position on the outer side of the bezel 22, depending on the user's needs.

[0184] In addition, the camera module 5 arranged outside the shell 2 is not only used as a front camera, but also can have other shooting directions. When the camera module 5 is used, the user can adjust the direction of the light entrance surface 5a of the camera module 5 according to the use requirement.

[0185] When the camera module 5 needs to be used as a rear camera, the camera module 5 can be installed on the support 44, and the support 44 is reset to the reset state by pressing the camera module 5, and the camera module 5 is accommodated in the shell 2.

[0186] According to the above, the camera module 5 can be arranged on the frame 22 after being removed from the support 44. The following is an introduction to the fixing mode of the camera module 5 and the frame 22:

[0187] Please refer to Figure 10 , Figure 10 The figure shows the cooperation between the camera module 5 and the frame 22 of some embodiments of the present application. The frame 22 includes a magnetic attraction part 221, and the inner side wall of the magnetic attraction part 221 is provided with a third magnet 95. The camera module 5 includes a fourth magnet 582. When the support 44 is in the pop-up state, the camera module 5 is adapted to be removed from the support 44 and magnetically attracted to the magnetic attraction part 221, so as to realize the magnetic attraction connection between the camera module 5 and the frame 22. The connection and disconnection operations of the camera module 5 and the frame 22 are relatively convenient, and the reliability of the connection between the camera module 5 and the frame 22 can be ensured. For example, the third magnet 95 can be fixed to the inner side wall of the magnetic attraction part 221 by adhesive.

[0188] In some other embodiments, the magnetic attraction part 221 can not be provided with the third magnet 95. The magnetic attraction part 221 can be made of metal material, so that the fourth magnet 582 and the magnetic attraction part 221 can be magnetically attracted to each other, and the camera module 5 can be installed outside the frame 22.

[0189] For example, the metal material can include iron, cobalt, nickel and alloys thereof, which can ensure the structural strength of the magnetic attraction part 221 while ensuring the magnetic attraction between the magnetic attraction part 221 and the fourth magnet 582.

[0190] Please refer to Figure 10 and in combination with Figure 5 The electronic device 100 can charge the camera module 5 in a wireless charging mode. The electronic device 100 can include a first power supply coil 91 and a second power supply coil 92. The first power supply coil 91 and the second power supply coil 92 are arranged in the shell 2. The first power supply coil 91 and the second power supply coil 92 can be electrically connected to the mainboard 3 through the electrical connection structure 94 and a flexible circuit board (not shown in the figure). The first power supply coil 91 is adjacent to the support 44, and the second power supply coil 92 is adjacent to the magnetic attraction part 221.

[0191] The camera module 5 can include a third power supply coil 56, when the camera module 5 is arranged on the support 44, the third power supply coil 56 is adjacent to the first power supply coil 91, the third power supply coil 56 induces the alternating magnetic field generated by the first power supply coil 91 and generates induced current to realize the power supply of the first power supply coil 91 to the third power supply coil 56, thereby realizing the power supply to the camera module 5.

[0192] Continuing to refer to Figure 10 , when the camera module 5 is arranged on the magnetic attraction part 221, the third power supply coil 56 is adjacent to the second power supply coil 92, the third power supply coil 56 induces the alternating magnetic field generated by the second power supply coil 92 and generates induced current to realize the power supply of the second power supply coil 92 to the third power supply coil 56, thereby realizing the power supply to the camera module 5. This charging method does not need to connect the charging wire, so it is convenient and safe and reliable to use.

[0193] In some embodiments, the second direction of the second power supply coil 92 is provided with third magnets 95 on opposite sides, and the second direction of the third power supply coil 56 is provided with fourth magnets 582 on opposite sides, when the camera module 5 is arranged on the magnetic attraction part 221, the third magnets 95 and the fourth magnets 582 are magnetically attracted and matched, which can improve the position alignment accuracy of the second power supply coil 92 and the third power supply coil 56, and reduce the alignment difficulty of the second power supply coil 92 and the third power supply coil 56.

[0194] Continuing to refer to Figure 10 , the electronic device 100 further includes an antenna board 93, the antenna board 93 is arranged in the shell 2 and is electrically connected with the main board. The antenna board 93 can receive the electric signal to be sent from the processor of the main board and convert it into electromagnetic wave radiation, and the antenna board 93 can also convert the received electromagnetic wave into an electric signal and send it to the processor.

[0195] One end of the antenna board 93 is adjacent to the support 44 and the other end is adjacent to the magnetic attraction part 221. The electronic device 100 can perform signal transmission to the camera module 5 arranged on the support 44 through the antenna board 93, and the electronic device 100 can also perform signal transmission to the camera module 5 arranged on the magnetic attraction part 221 through the antenna board 93.

[0196] Please refer to Figure 10 and Figure 11 , Figure 11An exploded view of a part of the structure of the electronic device 100 according to some embodiments of the present application; in some embodiments, when the magnetic attraction part 221 is made of metal, the magnetic attraction part 221 is provided with a first through hole 222, which is a through hole 211. The magnetic attraction part 221 is provided with a first patch 223 to block or shield the first through hole 222. The first patch 223 is made of non-metal material, and the first patch 223 can be fixed to the magnetic attraction part 221 by adhesive.

[0197] It should be noted that metal materials have the property of shielding electromagnetic fields, so the magnetic attraction part 221 made of metal can easily shield electrical signals. When the camera module 5 is arranged on the magnetic attraction part 221, the magnetic attraction part 221 can easily affect the power supply efficiency of the second power supply coil 92 to the third power supply coil 56, and can also affect the signal transmission effect of the antenna plate 93.

[0198] Therefore, by providing the first through hole 222 in the magnetic attraction part 221, the shielding effect of the magnetic attraction part 221 can be effectively reduced to ensure the power supply efficiency of the second power supply coil 92 to the third power supply coil 56, and the signal transmission effect of the antenna plate 93 to the camera module 5 can also be ensured. In addition, by providing the first patch 223 made of non-metal material to block the first through hole 222, the transmission of signals between the entire machine and the camera module 5 is not affected, and the dust or water vapor from the outside can also be prevented from entering the housing 2.

[0199] Continuing to refer to Figure 11 In some embodiments, the hole wall of the first through hole 222 can be provided with a support protrusion 224 protruding from the hole wall surface of the first through hole 222, and the support protrusion 224 can extend along the circumference of the first through hole 222. The first patch 223 can be accommodated in the first through hole 222 and supported on the support protrusion 224. The outer circumferential side of the first patch 223 and the hole wall of the first through hole 222 are connected by adhesive, and the first patch 223 and the support protrusion 224 are connected by adhesive. In this way, the superimposed thickness of the first patch 223 and the magnetic attraction part 221 can be reduced, and the gap between the first patch 223 and the first through hole 222 can be sealed to prevent dust or water vapor from the outside from entering the housing 2.

[0200] In other embodiments, the magnetic attraction part 221 can be provided with an annular groove that penetrates the hole wall of the first through hole 222 and penetrates the surface of the magnetic attraction part 221 facing away from the accommodation space 20. A part of the first patch 223 is accommodated in the annular groove and connected to the groove wall surface of the annular groove by adhesive. In this way, the superimposed thickness of the first patch 223 and the magnetic attraction part 221 can be reduced, which is beneficial to the miniaturization design of the electronic device 100.

[0201] Please refer to Figure 12 and Figure 13 , Figure 12This is a perspective view of camera module 5 according to some embodiments of this application; Figure 13 According to Figure 12 The diagram shows a partial structure of the camera module 5. In some embodiments, the camera module 5 may include a protective shell 51, and a third power supply coil 56 may be disposed inside the protective shell 51. When the protective shell 51 is made of metal, it has a second through hole 211. The protective shell 51 has a second patch 54 to block or cover the second through hole. The second patch 54 is made of non-metallic material and can be fixed to the protective shell 51 with adhesive. The way the second patch 54 cooperates with the protective shell 51 can be referred to the way the first patch 223 cooperates with the magnetic part 221 as described above, and will not be repeated here.

[0202] By creating a second via in the protective shell 51, the shielding effect of the protective shell 51 can be effectively reduced, thus ensuring the power supply efficiency of the second power supply coil 92 to the third power supply coil 56, and also ensuring the signal transmission effect of the antenna board 93 to the camera module 5. In addition, by using a second patch 54 made of non-metallic material to block the second via, the signal transmission between the whole device and the camera module 5 is not affected, and external dust or moisture is prevented from entering the protective shell 51.

[0203] The materials of the first patch 223 and the second patch 54 mentioned above can be ABS engineering plastic, polycarbonate (PC), carbon fiber composite material, etc.

[0204] Of course, when the magnetic suction part 221 is made of a non-metallic material that does not have the function of shielding electromagnetic fields, the magnetic suction part 221 may not have the first through hole 222; when the protective shell 51 is made of a non-metallic material that does not have the function of shielding electromagnetic fields, the protective shell 51 may not have the second through hole.

[0205] See Figure 14 , Figure 14 This is a schematic diagram of the cooperation between the camera module 5 and the pop-out locking mechanism 40 of an electronic device in some other embodiments of this application; in some other embodiments, the camera module 5 and the housing 2 may not be provided with a power supply coil. The housing 2 is provided with a first circuit board 96 and a second circuit board 97. The first circuit board 96 and the second circuit board 97 can be electrically connected to the motherboard 3 through a flexible circuit board (not shown in the figure). The first circuit board 96 is adjacent to the support member 44, and the second circuit board 97 is adjacent to the magnetic suction part 221.

[0206] The camera module 5 may include a third circuit board 98. When the camera module 5 is placed on the support member 44, the third circuit board 98 is adjacent to the first circuit board 96, which can realize charging and signal transmission of the camera module 5. When the camera module 5 is placed on the magnetic suction part 221, the third circuit board 98 is adjacent to the second circuit board 97, which can realize charging and signal transmission of the camera module 5.

[0207] In this way, the first circuit board 96 and the third circuit board 98 can be connected via Bluetooth or WiFi, and the second circuit board 97 and the third circuit board 98 can also be connected via Bluetooth or WiFi, so as to enable the motherboard 3 to supply power and transmit signals to the camera modules 5 located in different positions.

[0208] In other embodiments, please refer to the following: Figures 14-16 , Figure 15 This is a schematic diagram of a portion of the structure of an electronic device 100 according to other embodiments of this application; Figure 16 This is a perspective view of a camera module 5 according to other embodiments of this application. When the camera module 5 is disposed on the magnetic part 221, the third circuit board 98 and the second circuit board 97 can be electrically connected through the connector 8, so that the second circuit board 97 can supply power to the camera module 5 and transmit signals.

[0209] For example, the connector 8 described above is a contact connector. Connector 8 may include a first contact portion 81 and a second contact portion 82. The first contact portion 81 may be disposed on the camera module 5, and the first contact portion 81 has at least one first contact 811. The second contact portion 82 may be disposed on the magnetic suction portion 221, and the second contact portion 82 has at least one second contact 821. At least a portion of the second contact 821 is located on the side of the magnetic suction portion 221 facing away from the accommodating space 20. When the camera module 5 is magnetically attracted to the magnetic suction portion 221, the first contact 811 and the second contact 821 contact and are electrically connected, thereby enabling the camera module 5 to be electrically connected to the motherboard 3, thus realizing data transmission between the camera module 5 and the motherboard 3.

[0210] Third magnets 95 are provided on opposite sides of the second contact portion 82 in the second direction, and fourth magnets 582 are provided on opposite sides of the first contact portion 81 in the second direction. When the camera module 5 is placed on the magnetic suction portion 221, the third magnets 95 and the fourth magnets 582 magnetically attract each other, and the first contact 811 and the second contact 821 automatically contact and connect electrically, facilitating data transmission. Furthermore, this improves the positional alignment accuracy of the first contact portion 81 and the second contact portion 82, reducing the difficulty of aligning them.

[0211] See Figure 15 and Figure 16, a portion of the second contact portion 82 is located in the first via hole 222 of the magnetic attraction portion 221, and a cooperation groove 225 is formed between the second contact portion 82 and the hole wall of the first via hole 222; at least a portion of the first contact portion 81 protrudes from the outer surface of the protective shell 51 of the camera module 5, and the portion of the first contact portion 81 protruding from the protective shell 51 can be accommodated in the cooperation groove 225, so that the first contact 811 and the second contact 821 are automatically contacted and electrically connected, and the cooperation stability of the first contact portion 81 and the second contact portion 82 can be enhanced, further enhancing the stability of the camera module 5 installed on the frame 22.

[0212] The connector 8 described above can be a Pogo Pin connector.

[0213] The other structures of the camera module 5 will be briefly introduced as follows:

[0214] Please refer to Figure 13 and Figure 14 In some embodiments, the camera module 5 can further include a camera body (not shown in the drawings), and the protective shell 51 has an accommodation space 55, and the camera body is located in the accommodation space 55. The first magnet 581 and the fourth magnet 582 described above can be arranged in the accommodation space 55, which improves the compactness of the overall structure of the camera module 5.

[0215] For example, the bottom wall of the accommodation space 55 is provided with a mounting groove 57, and at least a portion of the first magnet 581 can be accommodated in the mounting groove 57, so as to improve the space utilization in the protective shell 51 and improve the stability of the installation of the first magnet 581 in the protective shell 51. The first magnet 581 can be connected with the groove wall of the mounting groove 57 by adhesive, so as to further improve the stability of the installation of the first magnet 581 in the protective shell 51.

[0216] The protective shell 51 includes a bottom plate 52 and a first frame 53, and the first frame 53 can be fixed to the edge of the bottom plate 52, and the accommodation space 55 described above can be formed between the first frame 53 and the bottom plate 52. For example, the first frame 53 can be fixedly connected to the bottom plate 52 by adhesive; or the first frame 53 can also be an integral structure with the bottom plate 52, that is, the first frame 53 and the bottom plate 52 are an integral structure. The second via hole described above can be formed in the first frame 53.

[0217] Please refer to Figure 13 In some embodiments, the first frame 53 is annular. For example, the first frame 53 can be approximately a rectangular ring; or the first frame 53 can also be approximately a circular ring. In other embodiments, the first frame 53 can also be non-annular. In this case, the first frame 53 can be arranged only on one side, two sides or three sides of the edge of the bottom plate 52.

[0218] The camera body can include a lens group, a sensor, and a PCB circuit board, the sensor and the PCB circuit board are electrically connected, and the PCB circuit board is electrically connected with the mainboard 3. External light can be refracted and converged on the sensor through the lens group, the sensor can convert the optical signal into an electrical signal, and the electrical signal is sent to the mainboard 3 through the PCB circuit board.

[0219] Of course, the camera body can also include other electronic components, which will not be described here.

[0220] Referring to Figure 12 and Figure 13 , the camera module 5 can also include a protective lens 59 disposed on the protective shell 51, and the protective lens 59 and the protective shell 51 together protect the camera body and other electronic components in the accommodation space 55. The material of the protective lens 59 can be glass, acrylic or sapphire, etc., and the present application embodiment is not specially limited.

[0221] In some embodiments, the end surface of the end of the first frame 53 away from the bottom plate 52 is provided with a stepped groove 531, the stepped groove 531 penetrates the end surface of the first frame 53 away from the bottom plate 52, and penetrates the side wall surface of the first frame 53 facing the accommodation space 55, and a part of the protective lens 59 is accommodated in the stepped groove 531 and fixed to the inner wall surface of the stepped groove 531. In this way, the stability of the cooperation between the protective lens 59 and the protective shell 51 can be improved, and it is beneficial to reduce the size of the camera module 5 in the arrangement direction of the bottom plate 52 and the protective lens 59, and it is beneficial to the lightweight design of the camera module 5.

[0222] The protective lens 59 can be fixed to the inner wall surface of the stepped groove 531 by adhesive, and the adhesive can seal the gap between the protective lens 59 and the inner wall surface of the stepped groove, so that an enclosed space can be formed between the protective lens 59 and the protective shell 51 to prevent dust or water vapor from contacting the camera body, thereby avoiding damage to the camera body and affecting the imaging effect, to ensure the performance of the camera module 5.

[0223] The pop-up locking mechanism in the related art occupies a large space in the pop-up movement direction of the support for carrying the functional module, that is, the functional module occupies a large space in the pop-up movement direction.

[0224] In order to solve the problem that the functional module occupies a large space in the pop-up movement direction, the related art also proposes a pop-up locking mechanism, please refer to Figure 17 , Figure 17 is a schematic view of the relative position between the support 44 of the pop-up locking mechanism in the related art and the mounting base 430 in different working states; Figure 17 The support 44 and the functional module 50 in (a) are in a reset state, Figure 17The support 44 in the middle (b) is in the pop-up state with the functional module 50. The support of the pop-up locking mechanism switches between various working states through translational movement along the Z-axis direction, and the space occupied in the movement direction is small. However, the translational movement of the support is easily affected by uneven external force distribution. When the external force (for example, the pressing force of the fingers) acts on the support to make the support move translationally, the forces on various points of the support are different, so that the translational speeds of various points of the support are quite different, resulting in inconsistent movement amplitudes of various regions of the support, and poor movement stability of the support. In this way, when the functional module carried on the support moves with the support, the movement stability of the functional module is poor. Moreover, the structure of the pop-up locking mechanism in the related art is relatively complex, the assembly efficiency of the pop-up locking mechanism is low, and the cost is high.

[0225] To solve the above technical problems, an embodiment of the present application proposes a pop-up locking mechanism 40, please refer to Figure 18 , Figure 18 is a perspective view of the pop-up locking mechanism 40 of some embodiments of the present application; the pop-up locking mechanism 40 comprises a mounting base 430 and a support 44. In the present embodiment, the structure of the mounting seat 43 can be designed with reference to the structure of the mounting seat 43 in any of the above embodiments, which will not be described here.

[0226] In some embodiments, the support 44 can rotate relative to the mounting base 430 about the first axis S1 to switch the support 44 between the reset state and the pop-up state. The first axis S1 is parallel to the X-axis direction in the coordinate system shown in FIG. 1. Figure 18

[0227] It should be understood that the support 44 rotates relative to the mounting base 430, and the support 44 and the mounting base 430 have a rotation shaft 61 supporting the rotation of the support 44, and the central axis of the rotation shaft 61 is parallel to the first axis S1. The concentricity of the rotation shaft 61 is good, and when the external force acts on the support 44 to make it rotate about the rotation shaft 61, even if the forces on various points of the support 44 are uneven, all points on the support 44 still have the same angular velocity and angular acceleration, which can solve the problem of inconsistent speeds of various points in translational movement, and make the support 44 have good movement stability.

[0228] Therefore, compared with driving the functional module 50 to pop up translationally by the support 44 moving translationally along the Z-axis direction, the support 44 in the present embodiment can rotate relative to the mounting base 430 about the first axis S1, which can not only realize the pop-up function of the pop-up locking mechanism 40, but also enhance the movement stability of the support 44, and further enhance the stability of the movement of the functional module 50. In addition, it is not necessary to additionally add a balance structure to guide the movement of the support 44, which can simplify the structure of the pop-up locking mechanism 40, improve the assembly efficiency of the pop-up locking mechanism 40, and reduce the cost. ​

[0229] In addition to the reset state and the pop-up state, the support 44 has a first pressing state and a second pressing state. When a first pressing force is applied to the support 44 in the reset state, the support 44 can switch to the first pressing state. When the first pressing force is removed, the support 44 can switch to the pop-up state. When a second pressing force is applied to the support 44 in the pop-up state, the support 44 can switch to the second pressing state. When the second pressing force is removed, the support 44 can switch to the pop-up state.

[0230] It should be noted that the first pressing force and the second pressing force can be the same or different, which is not limited herein. The direction of the pressing force can be from the support 44 to the mounting base 430.

[0231] According to the above, when the support 44 switches to the pop-up state, at least part of the functional module 50 can pop out from the mounting port 230 to the outside of the shell 2. When the support 44 is in the reset state, the functional module 50 arranged on the support 44 can be accommodated in the shell 2.

[0232] Please refer to Figure 19 , Figure 19 for the cooperation of the functional module 50 of some embodiments of the present application and the shell 2 Figure 3 , the support 44 can be in the first pressing state. In the process of switching the support 44 from the reset state to the first pressing state, the functional module 50 can move towards the inside of the shell 2. In the process of switching the support 44 from the pop-up state to the second pressing state, the functional module 50 can move towards the inside of the shell 2.

[0233] Thus, two pressings on the support 44 can switch the support 44 between different states, and then the position of the functional module 50 relative to the shell 2 can be adjusted to better meet the different use requirements of the user, and the operation is simple.

[0234] Please refer to Figure 20 , Figure 20 for the exploded view of the pop-up locking mechanism according to Figure 18 . In some embodiments, the pop-up locking mechanism 40 further comprises a rotating assembly 6, which can comprise the rotating shaft 61 described above. The rotating assembly 6 can further comprise a shaft sleeve 62, which can be sleeved on the outer periphery of the rotating shaft 61. The shaft sleeve 62 comprises a first connecting portion 621 and a shaft sleeve main body 623 connected thereto. The support 44 comprises a second connecting portion 451, which is fixedly connected with the first connecting portion 621. The fixed connection between the second connecting portion 451 and the first connecting portion 621 can be clamping, welding or adhesive connection, etc.

[0235] The support member 44 includes a support plate 45 for supporting the functional module 50. The support plate 45 includes a second connecting portion 451. One of the first connecting portion 621 and the second connecting portion 451 is provided with a positioning protrusion 622, and the other is provided with a third positioning hole. The positioning protrusion 622 is adapted to be inserted into the third positioning hole to position the rotating shaft 61 on the support plate 45, so as to facilitate the fixing operation between the rotating shaft 61 and the support plate 45.

[0236] In some embodiments, the mounting base 430 is provided with a first connecting hole 4321 and a second connecting hole 4331 opposite in the second direction. The rotating shaft 61 is adapted to be inserted into the first connecting hole 4321 and the second connecting hole 4331. The shaft sleeve body 623 is sleeved on the outer periphery of the rotating shaft 61 to realize the rotating connection between the support member 44 and the mounting base 43.

[0237] In some embodiments, the side of the mounting base 430 facing the back cover 21 is provided with a first connecting lug 432 and a second connecting lug 433. The first connecting lug 432 and the second connecting lug 433 are arranged in the second direction. The first connecting lug 432 is provided with the first connecting hole 4321, and the second connecting lug 433 is provided with the second connecting hole 4331. The rotating shaft 61 includes a rotating shaft body 610, a first limiting portion 611 and a second limiting portion 612 connected with each other. The first limiting portion 611 and the second limiting portion 612 are respectively located at opposite ends of the rotating shaft body 610 in the axial direction. The rotating shaft body 610 is inserted into the first connecting hole 4321 and the second connecting hole 4331. The first limiting portion 611 is adapted to abut against the side of the first connecting lug 432 facing away from the second connecting lug 433. The second limiting portion 612 is adapted to abut against the side of the second connecting lug 433 facing away from the first connecting lug 432, so as to limit the rotating shaft 61 and prevent the rotating shaft 61 from being pulled out of the first connecting hole 4321 and / or the second connecting hole 4331, thereby ensuring the reliability of the cooperation between the rotating shaft 61, the mounting base 43 and the support member 44.

[0238] Referring to Figure 18 and Figure 20 In some embodiments, the first connecting lug 432 and the second connecting lug 433 can be fixed to the limiting enclosure 434 to ensure the stability of the structure of the first connecting lug 432 and the second connecting lug 433. For example, the first connecting lug 432 and the second connecting lug 433 are respectively arranged on opposite sides of the avoiding gap 4341 along the extension direction of the avoiding gap 4341. The avoiding gap 4341 can avoid the first connecting portion 621 and the second connecting portion 451 to facilitate the connection between the support member 44 and the shaft sleeve 62.

[0239] The rotating assembly 6 can be one or more, wherein "more" refers to two or more. When the rotating assembly 6 is more, the rotating assemblies 6 can be arranged in the second direction, so that the rotating cooperation between the support 44 and the mounting base 43 can be more stable.

[0240] With reference to the drawings again, Figure 18 In some embodiments, the pop-up locking mechanism 40 further comprises a first locking member 4 and a second locking member 42, the first locking member 4 is fixed to the mounting base 430, and the first locking member 4 is arranged in the first direction with the support 44. The first locking member 4 and the mounting base 430 can be fixedly connected by clamping, welding, bonding or fastener connection and the like.

[0241] With reference to the drawings again, Figure 20 And Figure 21 , Figure 21 The first locking member of some embodiments of the application Figure 1 For example, when the first locking member 4 and the mounting base 430 are connected by a fastener, the first locking member 4 comprises a locking body 401 and a fixing portion 402 connected with each other, and the fixing portion 402 is arranged on one side of the locking body 401 in the second direction; or, the fixing portion 402 has two, and the two fixing portions 402 are arranged on opposite sides of the locking body 401 in the second direction. The locking body 401 and the fixing portion 402 can be an integral structure, and the fixing portion 402 can also be connected with the locking body 401 by clamping, welding or adhesive connection and the like.

[0242] For example, the mounting base 43 further comprises a third mounting column 436 arranged on the mounting base 430, the third mounting column 436 protrudes from the surface of the mounting base 430 away from the screen 1, and the third mounting column 436 is opposite to the fixing portion 402 in the third direction. The third mounting column 436 has a third mounting hole 4361, the fixing portion 402 has a fourth mounting hole 403, and the third fastener 76 is adapted to be arranged in the fourth mounting hole 403 and the third mounting hole 4361 to achieve the fixed connection between the first locking member 4 and the mounting base 430. This fixed connection has strong connection reliability and is convenient for disassembly.

[0243] One of the fixing portion 402 and the mounting base 430 can be formed with a third positioning column 4362, and the other can be formed with a fourth positioning hole 404, the third positioning column 4362 is adapted to be inserted into the fourth positioning hole 404 to achieve the installation and positioning of the fixing portion 402 on the mounting base 430, and facilitate the installation operation of the first locking member 4 on the mounting base 430.

[0244] For example, the third positioning column 4362 can be arranged on the third mounting column 436 and protrude from the surface of the third mounting column 436 facing the fixing portion 402, and the fourth positioning hole 404 is formed in the fixing portion 402.

[0245] With reference to Figure 20 and Figure 21 In some embodiments, the second locking member 42 is arranged on the support member 44, the second locking member 42 cooperates with the first locking member 4, and the second locking member 42 has the first locking position P1, the second locking position P2, the first unlocking position P3, and the second unlocking position P4 relative to the first locking member 4. The second locking member 42 can move relative to the support member 44 in the first direction and the second direction, that is, the second locking member 42 can move relative to the mounting base 430 in the first direction and the second direction, and rotate relative to the mounting base 430 about the first axis S1, so that the second locking member 42 can move relative to the first locking member 4 between the first locking position P1, the second locking position P2, the first unlocking position P3, and the second unlocking position P4.

[0246] The first direction is parallel to the Y-axis direction in the X-Y-Z coordinate system, and the second direction is parallel to the X-axis direction in the X-Y-Z coordinate system. Figure 20 The first direction is parallel to the Y-axis direction in the X-Y-Z coordinate system, and the second direction is parallel to the X-axis direction in the X-Y-Z coordinate system. Figure 20 The first direction, the second direction, and the third direction are perpendicular to each other.

[0247] According to the above, the first locking member 4 and the support member 44 are arranged in the first direction, and such an arrangement makes the first locking member 4 and the support member 44 occupy less space in the third direction (i.e., the Z-axis direction). By rotating the second locking member 42 relative to the mounting base 430 about the first axis S1, and moving the second locking member 42 relative to the mounting base 430 in the first direction and the second direction, the support member 44 can be switched between the reset state, the first pressing state, the pop-up state, and the second pressing state. In this way, the movement stroke of the support member 44 in the third direction is small, and the support member 44 occupies less space in the third direction when moving. In summary, when the pop-up locking mechanism 40 of the embodiments of the present application is applied to the electronic device 100, the pop-up locking mechanism 40 occupies less space in the third direction (i.e., the thickness direction of the electronic device 100) of the electronic device 100, which is conducive to the slim design of the electronic device 100.

[0248] With reference to Figure 20 and Figure 21 The first locking member 4 has the first locking portion 4a and the second locking portion 4b. For example, the relative positional relationship between the first locking portion 4a and the second locking portion 4b is that the first locking portion 4a and the second locking portion 4b can be arranged at intervals in the second direction; the first locking portion 4a and the mounting base 430 can be arranged in the third direction, the second locking portion 4b and the mounting base 430 can be arranged in the third direction, and the second locking portion 4b is located on the side of the first locking portion 4a away from the mounting base 430.

[0249] In the first locking position P1, the second locking member 42 is in locking cooperation with the first locking portion 4a, and the supporting member 44 is in the reset state; in the second locking position P2, the second locking member 42 is in locking cooperation with the second locking portion 4b, and the supporting member 44 is in the pop-up state. By locking cooperation between the second locking member 42 and the first locking portion 4a, the stability of the supporting member 44 in the reset state can be ensured; by locking cooperation between the second locking member 42 and the second locking portion 4b, the stability of the supporting member 44 in the pop-up state can be ensured.

[0250] Therefore, by locating the second locking portion 4b on the side of the first locking portion 4a away from the mounting base 430, when the second locking member 42 is switched from the first locking position P1 to the second locking position P2, at least part of the supporting member 44 can be ensured to move towards the direction away from the mounting base 430, and the functional module 50 also moves towards the direction away from the mounting base 430, so that at least part of the functional module 50 can be popped out of the shell 2. By spacing the first locking portion 4a and the second locking portion 4b in the second direction, the second locking member 42 can move along the annular path when moving relative to the first locking member 4, thereby realizing the irreversible movement path of the second locking member 42.

[0251] When the supporting member 44 is in the first pressing state, the second locking member 42 is located at the first unlocking position P3, and the second locking member 42 is disengaged from the first locking portion 4a; when the supporting member 44 is in the second pressing state, the second locking member 42 is located at the second unlocking position P4, and the second locking member 42 is disengaged from the second locking portion 4b.

[0252] By pressing twice, different cooperation modes between the first locking member 4 and the second locking member 42 can be realized to realize locking and unlocking of the second locking member 42. Therefore, the first locking member 4 not only includes a locking structure (for example, the first locking portion 4a and the second locking portion 4b), but also includes an unlocking structure. The first locking member 4 has both locking and unlocking functions, and the pop-up locking mechanism 40 does not need to additionally add an unlocking structure to unlock the locking cooperation between the second locking member 42 and the first locking member 4, so that the structure of the pop-up locking mechanism 40 is simpler, and the cost can be further reduced.

[0253] Referring to Figure 21 In some embodiments, when the second locking member 42 moves relative to the first locking member 4 from the first locking position P1 to the second locking position P2, the second locking member 42 moves along the first path R1; when the second locking member 42 moves relative to the first locking member 4 from the second locking position P2 to the first locking position P1, the second locking member 42 moves along the second path R2. The first path R1 and the second path R2 are spliced into an annular path. It should be noted that, Figure 21 the solid arrow in the above figure indicates the first path R1, Figure 21The middle dotted arrow indicates the second path R2. The first locking position P1 is the starting point of the first path R1, and the first locking position P1 is the ending point of the second path R2; the second locking position P2 is the ending point of the first path R1, and the second locking position P2 is the starting point of the second path R2.

[0254] For example, the first unlocking position P3 is located on the first path R1, and the second unlocking position P4 is located on the second path R2.

[0255] When the pressing force is applied to the support 44, the change of the positional relationship of the second locking member 42 relative to the first locking member 4 is as follows: when the first pressing force is applied to the second locking member 42 located at the first locking position P1, the second locking member 42 can move to the first unlocking position P3, and when the first pressing force is removed, the second locking member 42 can move to the second locking position P2; when the second pressing force is applied to the second locking member 42 located at the second locking position P2, the second locking member 42 can move to the second unlocking position P4, and when the second pressing force is removed, the second locking member 42 can move to the first locking position P1, thereby forming a closed loop.

[0256] In this way, the movement path of the second locking member 42 is different under different positions of the second locking member 42 relative to the first locking member 4, and the first path R1 and the second path R2 are spliced into a loop-shaped path, which indicates that the movement path of the second locking member 42 is irreversible, so that when the pressing force is removed, the second locking member 42 located at the first unlocking position P3 can be prevented from returning to the first locking position P1, and the second locking member 42 located at the second unlocking position P4 can be prevented from returning to the second locking position P2, to ensure the reliability of the switching movement of the second locking member 42 between the first locking position P1 and the second locking position P2.

[0257] Referring to Figure 21 In some embodiments, the first path R1 can include a first path segment R11 and a second path segment R12, and the second path R2 can include a third path segment R21 and a fourth path segment R22. The first locking position P1 is the starting point of the first path segment R11, the first unlocking position P3 is the ending point of the first path segment R11 and the starting point of the second path segment R12, the second locking position P2 is the ending point of the second path segment R12 and the starting point of the third path segment R21, the second unlocking position P4 is the ending point of the third path segment R21 and the starting point of the fourth path segment R22, and the first locking position is the ending point of the fourth path segment R22.

[0258] The first path section R11 is located on the side of the first locking portion 4a away from the second locking portion 4b, and extends towards the direction away from the second locking portion 4b from the first locking portion 4a to the mounting base 430. The second path section R12 can include a first sub-path section R121 and a second sub-path section R122. The first sub-path section R121 is connected to the side of the first path section R11 away from the first locking portion 4a, and extends towards the direction close to the second locking portion 4b from the mounting base 430 to the second locking portion 4b. The second sub-path section R122 is connected to the side of the first sub-path section R121 close to the second locking portion 4b, and extends along the second direction.

[0259] The third path section R21 is located on the side of the second locking portion 4b close to the first locking portion 4a, and extends towards the direction close to the first locking portion 4a from the second locking portion 4b to the mounting base 430. The fourth path section R22 is connected to the side of the third path section R21 away from the first locking portion 4a, and extends towards the direction away from the second locking portion 4b from the mounting base 430 to the first locking portion 4a.

[0260] Referring to Figure 18 and Figure 20 In some embodiments, the ejection locking mechanism 40 further includes a first elastic member 71, a second elastic member 72, a third elastic member 73, and a first sliding body 47. The first sliding body 47 is arranged on the support member 44 and in sliding cooperation with the support member 44. The second locking member 42 is arranged on the first sliding body 47 and in sliding cooperation with the first sliding body 47. The first elastic member 71 is connected to the support member 44 and the mounting base 430, and is used to drive the support member 44 to rotate about the first axis S1 relative to the mounting base 430. The first sliding body 47 arranged on the support member 44 can rotate about the first axis S1, and when the first sliding body 47 rotates relative to the mounting base 430, the first sliding body 47 can also move relative to the mounting base 430 along the third direction.

[0261] The second elastic member 72 is connected to the first sliding body 47 and the support member 44, and can elastically deform along the second direction. The second elastic member 72 is used to drive the first sliding body 47 to move along the second direction relative to the support member 44. The third elastic member 73 is connected to the first sliding body 47 and the second locking member 42, and can elastically deform along the first direction. The third elastic member 73 is used to drive the second locking member 42 to move along the first direction relative to the support member 44.

[0262] In summary, the first elastic member 71 can drive the second locking member 42 to move relative to the first locking member 4 along the third direction, the second elastic member 72 can drive the second locking member 42 to move relative to the first locking member 4 along the second direction, and the third elastic member 73 can drive the second locking member 42 to move relative to the first locking member 4 along the first direction.

[0263] By setting the first elastic member 71, the second elastic member 72 and the third elastic member 73 to control the movement of the support member 44, the support member 44 can be switched between various working states, without the need to set a complex electromagnetic control device to control the locking and unlocking of the support member, so that the ejection locking mechanism 40 is simple in structure and low in cost.

[0264] Referring to Figure 20 and Figure 21 , in combination with the extension directions of the respective path segments of the first path R1 and the second path R2, the driving actions of the first elastic member 71, the second elastic member 72 and the third elastic member 73 on the second locking member 42 are as follows:

[0265] When a one-time pressing force is applied to the second locking member 42 located at the first locking position P1, that is, a pressing force is applied to the support member 44, the second locking member 42 moves along the first path segment R11 to the first unlocking position P3, at this time, the first elastic member 71 and the second elastic member 72 are in a compressed state and have a large elastic force; when the applied pressing force is removed, the elastic force of the first elastic member 71 and the second elastic member 72 can drive the second locking member 42 to move along the second path segment R12 to the second locking position P2.

[0266] When a one-time pressing force is applied to the second locking member 42 located at the second locking position P2, that is, a pressing force is applied to the support member 44, the second locking member 42 moves along the third path segment R21 to the second unlocking position P4, at this time, the first elastic member 71 and the second elastic member 72 are in a compressed state and have a large elastic force; when the applied pressing force is removed, the elastic force of the first elastic member 71 and the second elastic member 72 can drive the second locking member 42 to move along the fourth path segment R22 to the first locking position P1.

[0267] It should be noted that when the second locking member 42 moves along the annular path, the first elastic member 71, the second elastic member 72 and the third elastic member 73 can always be in a compressed state, which ensures the reliability of the connection between the first elastic member 71 and the mounting base 430 and the support member 44, and also ensures the reliability of the connection between the second elastic member 72 and the first sliding body 47 and the support member 44, and also ensures the reliability of the connection between the third elastic member 73 and the second locking member 42 and the first sliding body 47.

[0268] When the second locking member 42 is located at the first unlocking position P3 and the second unlocking position P4, the compression amount of the first elastic member 71 reaches the maximum and the compression amount of the second elastic member 72 reaches the maximum, at which time the first elastic member 71 and the second elastic member 72 accumulate greater elastic potential energy.

[0269] The specific structure of the first locking member 4 will be described below.

[0270] Referring to Figures 21-23 , Figure 22 A perspective view of the first locking member 4 of some embodiments of the present application Figure 2 ; A perspective view of the first locking member 4 of some embodiments of the present application Figure 23 A perspective view of the first locking member 4 of some embodiments of the present application Figure 22 The first locking member 4 comprises a first locking groove 411, a first guide groove 412, a second guide groove 413, a transition groove 414, a third guide groove 415, a second locking groove 416, a fourth guide groove 417, a fifth guide groove 418, and a sixth guide groove 419 which are in communication with each other.

[0271] When the second locking member 42 is located at the first locking position P1, the second locking member 42 is located at the first locking groove 411, and the support member 44 is in the reset state; when the second locking member 42 is located at the first unlocking position P3, the second locking member 42 is located at the first guide groove 412, and the support member 44 is in the first pressing state; when the second locking member 42 is located at the second locking position P2, the second locking member 42 is located at the second locking groove 416, and the support member 44 is in the pop-up state; when the second locking member 42 is located at the second unlocking position P4, the second locking member 42 is located at the fifth guide groove 418, and the support member 44 is in the second pressing state.

[0272] For example, the second guide groove 413, the transition groove 414, and the third guide groove 415 are located at the second path segment R12; the fourth guide groove 417 is located at the third path segment R21; and the sixth guide groove 419 is located at the fourth path segment R22.

[0273] The following content please refer to Figures 23-25 , Figure 24 A partial cross-sectional structure schematic of the pop-up locking mechanism 40 of some embodiments of the present application Figure 1 ; A partial cross-sectional structure schematic of the pop-up locking mechanism 40 of some embodiments of the present application Figure 25 A partial cross-sectional structure schematic of the pop-up locking mechanism 40 of some embodiments of the present application Figure 1 .

[0274] In some embodiments, the first locking portion 4a comprises the first locking groove 411, the first locking groove 411 has a first stop surface 4111, a second stop surface 4112, and a third stop surface 4113, and the first stop surface 4111, the second stop surface 4112, and the third stop surface 4113 are connected to each other.

[0275] When the second locking member 42 is in the first locking position P1, the first stop surface 4111 abuts against the second locking member 42 in the first direction, and the first stop surface 4111 is located on the side of the second locking member 42 away from the support member 44; the second stop surface 4112 abuts against the second locking member 42 in the second direction, and the second stop surface 4112 is located on the side of the second locking member 42 close to the second locking portion 4b; and the third stop surface 4113 abuts against the second locking member 42 in the third direction, and the third stop surface 4113 is located on the side of the second locking member 42 away from the mounting base 430.

[0276] Thus, the first locking groove 411 can limit the second locking member 42 in the first direction, and limit the movement of the second locking member 42 in the first direction away from the support member 44; the first locking groove 411 can limit the second locking member 42 in the second direction, and limit the movement of the second locking member 42 in the second direction close to the second locking portion 4b; and the first locking groove 411 can limit the second locking member 42 in the third direction, and limit the movement of the second locking member 42 in the third direction away from the mounting base 430. In this way, the reliability of the locking cooperation between the second locking member 42 and the first locking portion 4a can be ensured, thereby ensuring the stability of the support member 44 in the reset state.

[0277] The following content can be referred to Figure 26 and Figure 27 in combination with Figure 22 , Figure 26 the partial cross-sectional structure of the pop-up locking mechanism 40 of some embodiments of the present application Figure 2 ; Figure 27 the cooperation between the first locking member 4 and the second locking member 42 of some embodiments of the present application Figure 2 .

[0278] In some embodiments, the first guide groove 412 is located on the first path R1, and in the second direction, the first guide groove 412 is located on the side of the first locking groove 411 away from the second locking portion 4b. The first guide groove 412 includes a first guide surface 4121 and a first bottom wall surface 4122, Figure 22 The area enclosed by the dashed line in the first guide groove 412 is the first bottom wall surface 4122. The first guide surface 4121 is connected to the groove wall surface of the first locking groove 411, and the first guide surface 4121 is located on the side of the first locking groove 411 away from the second locking portion 4b, and in the direction from the first locking portion 4a to the mounting base 430, the first guide surface 4121 extends away from the first locking portion 4a.

[0279] The first guide surface 4121 can be connected to the second stop surface 4112 of the first locking groove 411, and the second stop surface 4112 is connected between the third stop surface 4113 and the first guide surface 4121. Since the extending directions of the third stop surface 4113 and the first guide surface 4121 are different, at least part of the second stop surface 4112 can be arranged as an arc surface, so as to realize smooth transition between the third stop surface 4113 and the first guide surface 4121, and ensure the smoothness of the movement of the first locking piece 4 along the first path segment R11.

[0280] When the support piece 44 is in the first pressing state, the second locking piece 42 is located in the first guide groove 412, and the first bottom wall surface 4122 abuts against the second locking piece 42 in the first direction, and the first bottom wall surface 4122 is located on the side of the second locking piece 42 away from the support piece 44. Therefore, the first guide groove 412 can limit the second locking piece 42 in the first direction, and limit the movement of the second locking piece 42 in the first direction away from the support piece 44.

[0281] In some embodiments, referring to Figure 27 , the side of the first guide groove 412 close to the mounting base 430 has a first opening 4123, and the first opening 4123 can penetrate the surface of the fifth guide groove 418 facing the mounting base 430. When the second locking piece 42 is located in the first guide groove 412, the second locking piece 42 can abut against the mounting base 430 in the third direction, and the mounting base 430 limits the second locking piece 42 in the third direction, thereby limiting the movement stroke of the support piece 44 in the third direction.

[0282] In other embodiments, the side of the first guide groove 412 close to the mounting base 430 has a first limiting surface, and the first limiting surface is connected to the side of the first guide surface 4121 away from the second stop surface 4112. When the support piece 44 is in the first unlocking state, the first limiting surface abuts against the second locking piece 42 in the third direction, and the first limiting surface is located on the side of the second locking piece 42 close to the mounting base 430. Therefore, the first guide groove 412 can also limit the second locking piece 42 in the third direction, so as to limit the movement of the second locking piece 42 in the third direction close to the mounting base 430, thereby limiting the movement stroke of the support piece 44 in the third direction.

[0283] In some embodiments, referring to Figure 22 and Figure 27The first bottom wall surface 4122 is connected to the first guide surface 4121, and the first bottom wall surface 4122 is recessed relative to the first stop surface 4111 in a direction away from the support 44. When the second locking member 42 moves from the first locking groove 411 to the first guide groove 412, the third elastic member 73 can drive the second locking member 42 to move in the third direction, and the second locking member 42 moves in a direction away from the support 44, so that the second locking member 42 abuts against the first bottom wall surface 4122.

[0284] By recessing the first bottom wall surface 4122 relative to the first stop surface 4111 in a direction away from the support 44, a step can be formed between the first bottom wall surface 4122 and the first stop surface 4111, and when the second locking member 42 abuts against the first bottom wall surface 4122, the third elastic member 73 can be in a compressed state and have a large elastic force, which can prevent the second locking member 42 from moving reversely into the first locking groove 411 and improve the reliability of the movement of the second locking member 42 along the first path R1.

[0285] Referring to Figure 22 In some embodiments, the second guide groove 413 is located on the first path R1 and is located on a side of the first guide groove 412 away from the mounting base 430. The second guide groove 413 has a second bottom wall surface 4131 and a second guide surface 4132. The second bottom wall surface 4131 faces the support 44, and the second bottom wall surface 4131 is recessed relative to the first stop surface 4111 in a direction away from the support 44. Figure 22 The area enclosed by the dashed line in the second guide groove 413 is the second bottom wall surface 4131.

[0286] When the second locking member 42 is located in the second guide groove 413, the second bottom wall surface 4131 abuts against the second locking member 42 in the first direction, and the second bottom wall surface 4131 is located on a side of the second locking member 42 away from the support 44. Thus, the second guide groove 413 can limit the second locking member 42 in the first direction and limit the second locking member 42 from extending in a direction away from the support 44 in the first direction.

[0287] In the second direction, the second guide surface 4132 is located on a side of the second bottom wall surface 4131 close to the first locking portion 4a, and the second guide surface 4132 is connected between the first stop surface 4111 and the second bottom wall surface 4131. The second guide surface 4132 is used to abut against the second locking member 42 in the second direction, so that the second guide groove 413 can limit the second locking member 42 in the second direction and limit the second locking member 42 from moving in a direction close to the second locking portion 4b in the second direction. Thus, when the second locking member 42 moves in the second guide groove 413, the second locking member 42 can be prevented from moving into the first locking groove 411.

[0288] Referring to Figure 22 In some embodiments, the transition groove 414 is located on the side of the second guide groove 413 away from the mounting base 430. The transition groove 414 comprises a first transition surface 4141 facing the support 44, and the first transition surface 4141 is connected to the second bottom wall surface 4131. When the second locking member 42 is located in the transition groove 414, the first transition surface 4141 abuts the second locking member 42 in the first direction, and the first transition surface 4141 is located on the side of the second locking member 42 away from the support 44. Figure 22 The area enclosed by the dashed line in the transition groove 414 of

[0289] Referring to Figure 22 In some embodiments, the third guide groove 415 is located on the first path R1, and the third guide groove 415 extends in the second direction, and the third guide groove 415 is located on the side of the second guide groove 413 away from the mounting base 430. The third guide groove 415 has a third bottom wall surface 4151 facing the support 44, and the third bottom wall surface 4151 is connected to the second bottom wall surface 4131. The third guide surface faces the mounting base 430, and the third guide surface is located on the side of the third bottom wall surface 4151 away from the mounting base 430. Figure 22 The area enclosed by the dashed line in the third guide groove 415 of

[0290] When the second locking member 42 is in the third guide groove 415, the third bottom wall surface 4151 abuts the second locking member 42 in the first direction, and the third bottom wall surface 4151 is located on the side of the second locking member 42 away from the support 44; the third guide surface abuts the second locking member 42 in the third direction, and the third guide surface is located on the side of the second locking member 42 away from the mounting base 430.

[0291] Thus, the third guide groove 415 can limit the second locking member 42 in the first direction, and limit the second locking member 42 from extending in the first direction away from the support 44; the third guide groove 415 can also limit the second locking member 42 in the third direction, and limit the second locking member 42 from moving in the third direction away from the mounting base 430.

[0292] In the second direction, the second locking portion 4b is located on the side of the third guide groove 415 away from the second guide groove 413, and the third guide groove 415 is used to guide the second locking member 42 to move to the second locking position P2 along the second path segment R12.

[0293] The following content refers to Figure 28 and Figure 29 and in combination with Figure 22 , Figure 28Partial cross-sectional structure of the pop-up locking mechanism 40 of some embodiments of the present application Figure 3 ; Figure 29 Cooperation between the first locking part 4 and the second locking part 42 of some embodiments of the present application Figure 3 .

[0294] In some embodiments, the second locking part 4b comprises a second locking groove 416, which has a first locking surface 4161 connected to the third bottom surface 4151, a second locking surface connected to the third guide surface, and a third locking surface 4163. Figure 22 The area enclosed by the dashed line in the second locking groove 416 is the first locking surface 4161.

[0295] When the second locking part 42 is in the second locking position P2, the first locking surface 4161 abuts the second locking part 42 in the first direction, and the first locking surface 4161 is located on the side of the second locking part 42 away from the support part 44; the second locking surface abuts the second locking part 42 in the third direction, and the second locking surface is located on the side of the second locking part 42 away from the mounting base 430; the third locking surface 4163 abuts the second locking part 42 in the second direction, and the third locking surface 4163 is located on the side of the second locking part 42 away from the first locking part 4a.

[0296] Therefore, the second locking groove 416 can limit the second locking part 42 in the first direction and restrict the movement of the second locking part 42 in the first direction away from the support part 44; the second locking groove 416 can limit the second locking part 42 in the second direction and restrict the movement of the second locking part 42 in the second direction away from the first locking part 4a; the first locking groove 411 can limit the second locking part 42 in the third direction and restrict the movement of the second locking part 42 in the third direction away from the mounting base 430, to ensure the reliability of the locking cooperation between the second locking part 42 and the first locking part 4a, thereby ensuring the stability of the support part 44 in the pop-up state.

[0297] Referring to Figure 22 In some embodiments, the fourth guide groove 417 is located on the second path R2, and in the third direction, the fourth guide groove 417 is located on the side of the second locking part 4b close to the mounting base 430; in the second direction, the fourth guide groove 417 is located on the side of the first locking part 4a away from the first guide groove 412.

[0298] The fourth guide groove 417 has a fourth bottom surface 4171 and a fourth guide surface 4172, the fourth bottom surface 4171 faces the support part 44, and the fourth bottom surface 4171 is connected to the third bottom surface 4151. Figure 22The area circled by the dotted line in the fourth guide groove 417 is a fourth bottom wall surface 4171.

[0299] The fourth guide surface 4172 is connected to the side of the fourth bottom wall surface 4171 away from the first locking portion 4a, and extends toward the first locking portion 4a in the direction from the second locking portion 4b toward the mounting base 430. The fourth guide surface 4172 and the fourth bottom wall surface 4171 are used to guide the movement of the second locking member 42 along the third path segment R21.

[0300] When the second locking member 42 is located in the fourth guide groove 417, the fourth bottom wall surface 4171 abuts the second locking member 42 in the first direction, and the fourth bottom wall surface 4171 is located on the side of the second locking member 42 away from the support member 44; the second locking member 42 abuts the fourth guide surface 4172 in the second direction, and the fourth guide surface 4172 is located on the side of the second locking member 42 away from the first locking portion 4a. Thus, the fourth guide groove 417 can limit the second locking member 42 in the first direction, and limit the movement of the second locking member 42 in the first direction toward the support member 44; the fourth guide groove 417 can also limit the second locking member 42 in the second direction, and limit the movement of the second locking member 42 in the second direction toward the first locking portion 4a.

[0301] Referring to Figure 22 and Figure 30 , Figure 30 the cooperation between the first locking member 4 and the second locking member 42 in some embodiments of the present application Figure 4 ; in some embodiments, the fifth guide groove 418 is located on the second path R2, and in the third direction, the fifth guide groove 418 is located on the side of the fourth guide groove 417 close to the mounting base 430, and the fifth guide groove 418 is located on the side of the first locking groove 411 close to the mounting base 430.

[0302] The fifth guide groove 418 has a fifth bottom wall surface 4181 and a fifth guide surface 4182 connected thereto, and the fifth guide surface 4182 is connected to the fourth guide surface 4172 and located on the side of the fourth guide surface 4172 away from the second locking portion 4b. The fifth bottom wall surface 4181 faces the support member 44, and the fifth bottom wall surface 4181 is recessed relative to the fourth bottom wall surface 4171 in the direction away from the support member 44. Figure 22 The area circled by the dotted line in the fifth guide groove 418 is the fifth bottom wall surface 4181.

[0303] When the second locking member 42 moves from the fourth guide slot 417 to the fifth guide slot 418, the third elastic member 73 can drive the second locking member 42 to move in the third direction, and the second locking member 42 moves away from the support member 44, so that the second locking member 42 abuts against the fifth bottom wall surface 4181.

[0304] By the fifth bottom wall surface 4181 being recessed away from the fourth bottom wall surface 4171, a step can be formed between the fifth bottom wall surface 4181 and the fourth bottom wall surface 4171, and when the second locking member 42 abuts against the fifth bottom wall surface 4181, the third elastic member 73 can be in a compressed state and have a large elastic force, so that the second locking member 42 can be prevented from moving in the third direction to the fourth guide slot 417, and the reliability of the movement of the second locking member 42 in the second direction R2 can be improved.

[0305] When the second locking member 42 is located in the fifth guide slot 418, the fifth bottom wall surface 4181 is located on the side of the second locking member 42 away from the support member 44. The fifth guide surface 4182 can abut against the second locking member 42 in the second direction, and the fifth guide surface 4182 is located on the side of the second locking member 42 close to the second locking portion 4b.

[0306] Therefore, the fifth guide slot 418 can limit the second locking member 42 in the first direction and limit the movement of the second locking member 42 in the first direction away from the support member 44; and the fifth guide slot 418 can limit the second locking member 42 in the second direction and limit the movement of the second locking member 42 in the second direction toward the second locking portion 4b.

[0307] Referring to Figure 22 In some embodiments, the fifth guide slot 418 further has a second limiting surface 4183 connected to the side of the fifth guide surface 4182 away from the fourth guide surface 4172. When the second locking member 42 is located in the fifth guide slot 418, the second limiting surface 4183 can abut against the second locking member 42 in the third direction, and the second limiting surface 4183 is located on the side of the second locking member 42 close to the mounting base 430. In this way, the fifth guide slot 418 can further limit the second locking member 42 in the third direction and limit the movement of the second locking member 42 in the third direction toward the mounting base 430, i.e., limit the movement stroke of the support member 44 in the third direction.

[0308] In some other embodiments, the side of the fifth guide slot 418 close to the mounting base 430 can be a second opening, which can pass through the surface of the fifth guide slot 418 facing the mounting base 430. When the second locking piece 42 is located in the fifth guide slot 418, the second locking piece 42 can abut against the mounting base 430 in the third direction, and the mounting base 430 limits the movement of the second locking piece 42 in the third direction, thereby limiting the movement stroke of the support piece 44 in the third direction.

[0309] Referring to Figure 22 and Figure 23 In some embodiments, the sixth guide slot 419 is in communication with the fifth guide slot 418, and the sixth guide slot 419 is located at the side of the fifth guide slot 418 away from the mounting base 430. The sixth guide slot 419 has a sixth bottom wall surface 4191 and a sixth guide surface 4192. The sixth bottom wall surface 4191 is connected to the fifth bottom wall surface 4181, the sixth bottom wall surface 4191 faces the support piece 44, and the sixth bottom wall surface 4191 is recessed relative to the fourth bottom wall surface 4171 in a direction away from the support piece 44. Figure 22 The area enclosed by the dashed line in the sixth guide slot 419 is the sixth bottom wall surface 4191.

[0310] In the direction from the mounting base 430 to the first locking portion 4a, the sixth guide surface 4192 extends in a direction away from the second locking portion 4b, and the sixth guide surface 4192 can guide the movement of the second locking piece 42 along the fourth path segment R22, and the first elastic piece 71 and the second elastic piece 72 jointly drive the second locking piece 42 to move along the sixth guide surface 4192.

[0311] When the second locking piece 42 is located in the sixth guide slot 419, the sixth bottom wall surface 4191 abuts against the second locking piece 42 in the first direction, and the sixth bottom wall surface 4191 is located at the side of the second locking piece 42 away from the support piece 44; the sixth guide surface 4192 abuts against the second locking piece 42 in the second direction, and the sixth guide surface 4192 is located at the side of the second locking piece 42 close to the second locking portion 4b.

[0312] Therefore, the sixth guide slot 419 can limit the second locking piece 42 in the first direction, and limit the movement of the second locking piece 42 in the first direction away from the support piece 44; the sixth guide slot 419 can limit the second locking piece 42 in the second direction, and limit the movement of the second locking piece 42 in the second direction toward the second locking portion 4b.

[0313] In combination with the sixth bottom wall surface 4191 being recessed in a direction away from the support 44 relative to the fourth bottom wall surface, a step can be formed between the sixth bottom wall surface 4191 and the fourth bottom wall surface 4171, and when the second locking member 42 abuts against the sixth bottom wall surface 4191, the third elastic member 73 can be in a compressed state and have a greater elastic force, so that movement of the second locking member 42 in the sixth guide groove 419 to the fourth guide groove 417 can be avoided, and the reliability of movement of the second locking member 42 along the fourth path segment R22 can be improved.

[0314] Referring to Figure 22 and Figure 23 In some embodiments, the sixth guide surface 4192 is connected between the fifth guide surface 4182 and the third stop surface 4113, and the sixth guide surface 4192 can guide movement of the second locking member 42 to the third stop surface 4113. The first stop surface 4111 is recessed in a direction away from the support 44 relative to the sixth bottom wall surface 4191, and the third elastic member 73 can drive the second locking member 42 to move in a third direction to abut against the first stop surface 4111, so that the second locking member 42 is locked with the first locking portion 4a to avoid reverse movement of the second locking member 42 to the sixth guide groove 419.

[0315] In some embodiments, in a direction from the mounting base 430 to the first locking portion 4a, the first transition surface 4141 extends in a direction close to the support 44. When the second locking member 42 moves along the first transition surface 4141, the third elastic member 73 can be in a gradually compressed state. The third bottom wall surface 4151 is convex to the first transition surface 4141.

[0316] In a direction from the second locking portion 4b to the mounting base 430, the fourth bottom wall surface 4171 extends in a direction close to the support 44, and an end of the fourth bottom wall surface 4171 away from the second locking portion 4b is convex to the third bottom wall surface 4151. The fourth bottom wall surface 4171 is convex to the first locking surface 4161. When the second locking member 42 moves along the third path segment R21, the third elastic member 73 can be in a gradually compressed state.

[0317] According to the above, in order to prevent reverse movement of the second locking member 42 along the annular path, the first stop surface 4111 is recessed in a direction away from the support 44 relative to the sixth bottom wall surface 4191, the first bottom wall surface 4122 is recessed in a direction away from the support 44 relative to the first stop surface 4111, and the second bottom wall surface 4131 is recessed in a direction away from the support 44 relative to the first stop surface 4111. It can be understood that there is a stepped structure of gradual recesses on the annular path, so that there should also be a bottom wall surface extending in a direction close to the support 44 along the extension direction of the path segment on the annular path.

[0318] Therefore, by extending the fourth bottom wall surface 4171 towards the direction close to the support member 44 through the first transition surface 4141, the fourth bottom wall surface 4171 protruding from the recessed sixth bottom wall surface 4191, the first stop surface 4111 and the second guide groove 413, conditions for forming a stepped structure on the annular path are provided, and the locking function of the first locking portion 4a and the second locking portion 4b is facilitated, and the limiting function of the second guide surface 4132 and the sixth guide surface 4192 is facilitated, preventing the second locking member 42 from moving in the reverse direction, thereby achieving the switching of the support member 44 between the pop-up state and the reset state.

[0319] In addition, by extending the first transition surface 4141 towards the direction close to the support member 44, the transition between the recessed stepped structure and the protruding fourth bottom wall surface 4171 is achieved, so that the size of the fourth bottom wall surface 4171 extending towards the support member 44 is not too large, and the inclination angle of the fourth bottom wall surface 4171 relative to the XZ plane is not too large, which helps to reduce the friction between the second locking member 42 and the fourth bottom wall surface 4171, making the pressing process more labor-saving.

[0320] The following will be described with reference to Figures 22-30 , the process of the second locking member 42 moving along the annular path is summarized as follows:

[0321] When the second locking member 42 is in the first locking position P1, the first stop surface 4111 abuts against the side of the second locking member 42 away from the support member 44, limiting the movement of the second locking member 42 in the first direction towards the direction away from the support member 44; the second stop surface 4112 abuts against the side of the second locking member 42 close to the second locking portion 4b, limiting the movement of the second locking member 42 in the second direction towards the direction close to the second locking portion 4b; and the third stop surface 4113 abuts against the side of the second locking member 42 away from the mounting base 430, limiting the movement of the second locking member 42 in the third direction towards the direction away from the mounting base 430.

[0322] Under the action of the first pressing force, the second locking member 42 moves along the second stop surface 4112 and the first guide surface 4121; until the second locking member 42 moves to the first unlocking position P3, the second locking member 42 is released from pressing, and the elastic force of the first elastic member and the second elastic member drives the second locking member 42 to move along the second guide groove 413 and the transition groove 414, and the second guide surface 4132 limits the second locking member 42 in the second direction.

[0323] When the second locking member 42 is moved by the transition groove 414 to the third guide groove 415, the third guide surface abuts against the side of the second locking member 42 away from the mounting base 430, limiting the movement of the second locking member 42 in the third direction toward the direction away from the mounting base 430. And the elastic force of the second elastic member drives the second locking member 42 to move in the second direction into the second locking groove 416, so that the second locking member 42 is in the second locking position P2.

[0324] When the second locking member 42 is in the second locking position P2, the first locking surface 4161 abuts against the side of the second locking member 42 away from the support member 44, limiting the movement of the second locking member 42 in the first direction toward the direction away from the support member 44; the second locking surface abuts against the side of the second locking member 42 away from the mounting base 430, limiting the movement of the second locking member 42 in the third direction toward the direction away from the mounting base 430; the third locking surface 4163 abuts against the side of the second locking member 42 away from the first locking portion 4a, limiting the movement of the second locking member 42 in the second direction toward the direction away from the first locking portion 4a.

[0325] Under the action of the second pressing force, the second locking member 42 moves along the fourth guide surface 4172 until the second locking member 42 moves to the second unlocking position P4, and the second limiting surface 4183 abuts against the side of the second locking member 42 close to the mounting base 430, limiting the movement of the second locking member 42 in the third direction toward the mounting base 430.

[0326] When the second locking member 42 is released from the pressing, the elastic force of the first elastic member 71 drives the second locking member 42 to move in the second direction into the sixth guide groove 419, and the sixth guide surface 4192 is located on the side of the second locking member 42 close to the second locking portion 4b, limiting the movement of the second locking member 42 in the second direction toward the direction close to the second locking portion 4b. Then, the first elastic member 71 drives the second locking member 42 to move along the sixth guide surface 4192, and the third elastic member 73 drives the second locking member 42 to move into the first locking groove 411, so that the second locking member 42 is in the first locking position P1.

[0327] The specific cooperation structure of the first elastic member 71 with the support member 44 and the mounting base 430 will be described below.

[0328] In some embodiments, referring to Figure 31 , Figure 31Figure 6 is a schematic view of a partial structure of the ejecting locking mechanism 40 according to some embodiments of the present application. One end of the first elastic member 71 is connected to the support member 44 and the other end is connected to the mounting base 430. When a pressing force is applied to the support member 44, the support member 44 transmits the force to the first elastic member 71, so that the first elastic member 71 is elastically deformed, and the first elastic member 71 has a greater elastic force. When the pressing force is removed, the elastic force of the first elastic member 71 acts on the support member 44 to drive the support member 44 to rotate relative to the mounting base 430 about the first axis S1. Thus, the structure for driving the support member 44 to rotate is relatively simple, has a low cost and is easy to install.

[0329] According to the above, the second locking member 42 is arranged on the support member 44, and the first locking member 4 is fixed to the mounting base 430. The first elastic member 71 drives the support member 44 to rotate relative to the mounting base 430 about the first axis S1. Thus, the first elastic member 71 can drive the second locking member 42 to rotate relative to the first locking member 4 about the first axis S1, and the second locking member 42 moves in the third direction, which helps to realize the movement of the second locking member 42 relative to the first locking member 4 along the second path segment R12 to the second locking position P2, and also helps to realize the movement of the second locking member 42 relative to the first locking member 4 along the fourth path segment R22 to the first locking position P1.

[0330] The specific structure of the first elastic member 71 is as follows:

[0331] Referring to Figure 31 , the first elastic member 71 can be a torsion spring, which includes a spring body 711 and first and second torsion arms 712 and 713 located at both ends of the spring body 711. The central axis of the spring body 711 is parallel to the second direction. The first torsion arm 712 abuts against the support member 44, and the second torsion arm 713 abuts against the mounting base 430. When the support member 44 moves towards the mounting base 430 under the pressing force, the first torsion arm 712 is elastically deformed and rotates in a positive direction about the central axis under the force. When the pressing force is removed, the first torsion arm 712 is elastically deformed and rotates in a reverse direction about the central axis, and the first torsion arm 712 drives the support member 44 to rotate under the elastic force.

[0332] It should be understood that the central axis S2 of the spring body 711 is parallel to the second direction, and the first torsion arm 712 occupies less space in the third direction (i.e., the Z-axis direction) when moving, so that the torsion spring driving support 44 is arranged to move relative to the mounting base 430, and the elastic force of the torsion spring is sufficient to drive the support 44 to move, while the deformation process of the torsion spring does not excessively occupy the space in the third direction, which is suitable for a scene where the space in the third direction is small. When the ejection locking mechanism 40 with the first elastic member 71 is applied to the electronic device 100, the ejection locking mechanism 40 occupies less space in the third direction, which is beneficial to the thin design of the electronic device 100.

[0333] In other embodiments, the first elastic member 71 can also be a compression spring, a tension spring, or other elastic body with elastic return capability, which will not be described here.

[0334] The structure of the mounting base 430 cooperating with the first elastic member 71 is as follows:

[0335] Referring to Figure 31 , the side of the mounting base 430 facing the back cover 21 is provided with a third connecting lug 437 and a fourth connecting lug 438, both of which are fixed to the side of the limiting fence 434 facing away from the mounting space 435, and the third connecting lug 437 and the fourth connecting lug 438 are spaced apart in the second direction. The third connecting lug 437, the fourth connecting lug 438, and the limiting fence 434 define a first accommodating groove 439, and the spring body 711 is accommodated in the first accommodating groove 439, and at least part of the second torsion arm 713 is accommodated in the first accommodating groove 439 and abuts against the limiting fence 434, so as to ensure the stability of the cooperation between the first elastic member 71 and the mounting base 430.

[0336] The ejection locking mechanism 40 further comprises a second rotating shaft 63, and the spring body 711 can be sleeved on the outer periphery of the second rotating shaft 63. The structure of the second rotating shaft 63 can be designed with reference to the structure of the rotating shaft 61 described above, and the cooperation structure of the second rotating shaft 63 with the third connecting lug 437 and the fourth connecting lug 438 can be designed with reference to the cooperation structure of the rotating shaft 61 with the first connecting lug 432 and the second connecting lug 433, which will not be described here.

[0337] The structure of the support 44 cooperating with the first elastic member 71 is as follows:

[0338] Please refer to Figure 32 and combine Figure 18 , Figure 32FIG. 6 is a schematic view of the cooperation of the second locking member 42, the first sliding body 47 and the synchronization block 46 according to some embodiments of the present application. The support member 44 comprises the synchronization block 46, which is fixed to one end of the support plate 45 close to the first locking member 4, i.e., the synchronization block 46 is fixed to one end of the support plate 45 away from the second connecting portion 451. The positioning structure and connection manner of the synchronization block 46 and the support plate 45 can refer to the positioning structure and connection manner of the shaft sleeve 62 and the support plate 45, which will not be described herein again.

[0339] The synchronization block 46 is provided with a second accommodating groove 467, which penetrates the end faces of the opposite ends of the synchronization block 46 along the first direction. At least part of the first torsion arm 712 is accommodated in the second accommodating groove 467 and abuts against the second accommodating groove 467, so as to ensure the stability of the cooperation between the first elastic member 71 and the support member 44.

[0340] In some embodiments, the second locking member 42 is provided with the first elastic member 71 on both sides in the second direction. When the elastic force of the first elastic member 71 acts on the support member 44, the stress of each region of the support member 44 is more uniform, so as to improve the stability of the movement of the support member 44, thereby improving the stability of the movement of the functional module 50 provided on the support member 44.

[0341] It should be understood that when the first elastic member 71 has a plurality of first elastic members, the first accommodating groove 439 also has a plurality of first accommodating grooves, and the number of the first accommodating grooves is the same as and corresponds to the number of the first elastic members.

[0342] For example, referring to FIG. 6, Figures 32-34 The synchronization block 46 comprises a synchronization block body 46a and first and second connecting arms 46b and 46c fixed to the synchronization block body 46a, and the first and second connecting arms 46b and 46c are respectively arranged at the opposite ends of the synchronization block body 46a along the second direction. The second locking member 42 can be arranged on the synchronization block body 46a. When the second locking member 42 is provided with the first elastic member 71 on both sides in the second direction, the second accommodating groove 467 for accommodating the first torsion arm 712 is arranged on each of the first and second connecting arms 46b and 46c.

[0343] It should be noted that when the support member 44 is in the first and second pressing states, the first and second connecting arms 46b and 46c are located on the side away from the limiting enclosure 434 of the third and fourth connecting lugs 437 and 438, so as to avoid the third and fourth connecting lugs 437 and 438 affecting the movement of the synchronization block 46. In addition, the synchronization block body 46a is located in the avoiding gap 4341 of the limiting enclosure 434, so as to avoid the limiting enclosure 434 affecting the movement of the synchronization block 46.

[0344] The specific connection structure between the second elastic element 72, the first sliding body 47, and the support element 44 will be described below.

[0345] Please see Figure 33 , Figure 34 This is a schematic diagram illustrating the cooperation between the synchronization block 46, the first baffle 481, and the second baffle 482 in some embodiments of this application. Figure 33 According to Figure 34 The diagram shows a cross-sectional view of the electronic device 100 at the DD line.

[0346] In some embodiments, the synchronization block 46 of the support member 44 has a first groove 460 extending along a second direction, and the first groove 460 may be disposed on the synchronization block body 46a, with the first sliding body 47 slidingly engaged with the first groove 460. The first groove 460 can limit the movement trajectory of the first sliding body 47. Since the second locking member 42 is disposed on the first sliding body 47, the first groove 460 can also limit the movement trajectory of the second locking member 42, preventing the second locking member 42 from deviating from the path when it moves in conjunction with the first locking member 4.

[0347] In some embodiments, the first slider 47 includes a main body 470 and a sliding part 474. The sliding part 474 is connected to the main body 470 and is located on opposite sides of the main body 470 in the second direction. The sliding part 474 is slidably engaged with the first groove 460.

[0348] The second elastic element 72 is disposed in the first slide groove 460. One end of the second elastic element 72 is connected to the inner wall surface of the first slide groove 460, and the other end of the second elastic element 72 is connected to the first sliding body 47, so that the elastic force of the second elastic element 72 drives the first sliding body 47 to move along the first slide groove 460, thereby realizing that the elastic force of the second elastic element 72 drives the second locking element 42 to move in the second direction.

[0349] The second locking member 42 is driven to move in the second direction by the second elastic member 72, which helps the second locking member 42 to move to the second locking position P2 relative to the first locking member 4 along the second road segment R12, and also helps the second locking member 42 to move to the first locking position P1 relative to the first locking member 4 along the fourth road segment R22.

[0350] See Figure 32The side wall surface of the first sliding groove 460 in the second direction is a first side wall surface 463, and the surface of the first sliding body 47 opposite to the first side wall surface 463 in the second direction is a second side wall surface 475. The first side wall surface 463 can be provided with a first recess 464, and the second side wall surface 475 can be provided with a second recess 476. The opposite ends of the second elastic member 72 can be accommodated in the first recess 464 and the second recess 476 respectively, and the second elastic member 72 is fixedly connected with the inner walls of the first recess 464 and the second recess 476, so as to ensure the stability of the cooperation between the second elastic member 72 and the synchronous block 46 and the first sliding body 47. For example, the second elastic member 72 can be a spiral spring.

[0351] Referring to Figure 33 and Figure 32 The sliding part 474 can include a first sliding part 477 and a second sliding part 478, and the first sliding part 477 and the second sliding part 478 are respectively located on the opposite sides of the main body part 470 in the second direction. The first sliding groove 460 includes a first groove segment 461 and a second groove segment 462, and at least part of the first sliding part 477 moves along the first groove segment 461, and at least part of the second sliding part 478 moves along the second groove segment 462. One end of the second elastic member 72 is connected to the inner wall surface of the first groove segment 461, and the other end of the second elastic member 72 is connected to the first sliding part 477; or one end of the second elastic member 72 is connected to the inner wall surface of the second groove segment 462, and the other end of the second elastic member 72 is connected to the second sliding part 478.

[0352] The first sliding groove 460 penetrates the end surface of at least one end of the synchronous block 46 in the third direction, or the first sliding groove 460 penetrates the end surface of at least one end of the synchronous block 46 in the first direction, so that the first groove segment 461 and the second groove segment 462 respectively have a first slot 465 and a second slot 466, facilitating the assembly of the second elastic member 72 and the first sliding body 47 in the first sliding groove 460. The first sliding groove 460 is provided with a first baffle 481 and a second baffle 482 to block the first slot 465 and the second slot 466 respectively, to prevent the first sliding body 47 or the first elastic member 71 from being separated from the first sliding groove 460, so as to improve the reliability of the movement of the first sliding body 47 in the first sliding groove 460, and improve the stability of the installation of the first elastic member 71 in the first sliding groove 460.

[0353] For example, the first sliding slot 460 can pass through the end surface of the synchronization block 46 facing the first locking member 4; or, the first sliding slot 460 can pass through the end surface of the synchronization block 46 facing away from the first locking member 4; or, the first sliding slot 460 can pass through the end surfaces of the synchronization block 46 opposite to each other in the first direction; or, the first sliding slot 460 can pass through the end surface of the synchronization block 46 facing the mounting base 430; or, the first sliding slot 460 can pass through the end surface of the synchronization block 46 facing away from the mounting base 430; or, the first sliding slot 460 can pass through the end surfaces of the synchronization block 46 opposite to each other in the third direction.

[0354] It should be noted that the connection between the first baffle 481 and the second baffle 482 and the synchronization block 46 can be at least one of welding, bonding, clamping or threaded connection.

[0355] In other embodiments, the sliding part 474 is located on one side of the main part 470 in the second direction, one end of the second elastic member 72 is connected to the inner wall surface of the first sliding slot 460, and the other end of the second elastic member 72 is connected to the sliding part 474.

[0356] Of course, when the sliding part 474 is located on one side of the main part 470 in the second direction, in order to facilitate the assembly of the sliding part 474 and the first elastic member 71 to the first sliding slot 460, the first sliding slot 460 can also pass through at least one end surface of the synchronization block 46 in the third direction, or the first sliding slot 460 can also pass through at least one end surface of the synchronization block 46 in the first direction, so that the first sliding slot 460 has a first slot 465, and the synchronization block 46 can be provided with a first baffle 481 to block the slot.

[0357] In some embodiments, referring to Figure 32 , the main part 470 is located outside the first sliding slot 460, the thickness of the main part 470 in the third direction is greater than the size of the first sliding slot 460 in the third direction, and the side wall of the first sliding slot 460 is located on at least one side of the main part 470 in the second direction, which can limit the displacement of the first sliding body 47 in the second direction.

[0358] For example, when the first sliding slot 460 includes a first slot section 461 and a second slot section 462, the side wall of the first slot section 461 and the side wall of the second slot section 462 can limit the opposite sides of the first sliding body 47 in the second direction. When the first sliding slot 460 is located on one side of the main part 470 in the second direction, the side wall of the first sliding slot 460 can limit one side of the first sliding body 47 in the second direction.

[0359] In some embodiments, the first slot section 461 and the second slot section 462 have a third accommodating slot 468 accommodating the body part 470 therebetween, and the third accommodating slot 468 is in communication with the first sliding slot 460. When the second elastic member 72 drives the first sliding body 47 to move in the second direction, the body part 470 can move in the third accommodating slot 468. The third accommodating slot 468 penetrates the surface of the synchronizing block 46 on at least one side of the third direction towards the end surface of the first locking member 4, facilitating the movement of the second locking member 42 in the second direction.

[0360] With reference to the accompanying drawings, the specific structure of the synchronizing block 46 will be described in detail. Figure 34 The third accommodating slot 468 can also penetrate the surface of the synchronizing block 46 on at least one side of the third direction, allowing the body part 470 to move in the third direction, facilitating the movement of the body part 470 along the third accommodating slot 468; or the third accommodating slot 468 does not penetrate the surface of the synchronizing block 46 on both sides of the third direction, and the size of the third accommodating slot 468 in the third direction is greater than the thickness of the body part 470 in the third direction, thereby allowing the body part 470 to move in the third direction, facilitating the movement of the body part 470 along the third accommodating slot 468.

[0361] The specific connection structure of the third elastic member 73, the second locking member 42 and the first sliding body 47 will be described below.

[0362] With reference to the accompanying drawings, the specific structure of the synchronizing block 46 will be described in detail. Figure 34 In some embodiments, the first sliding body 47 has a second sliding slot 471 extending in the first direction, and a part of the second locking member 42 is accommodated in the second sliding slot 471 and is adapted to move along the second sliding slot 471. The second sliding slot 471 can define the movement track of the second locking member 42, preventing the second locking member 42 from deviating from the path when cooperating with the first locking member 4.

[0363] The third elastic member 73 is arranged in the second sliding slot 471, one end of the third elastic member 73 is connected to the inner wall surface of the second sliding slot 471, and the other end of the third elastic member 73 is connected to the second locking member 42. The third elastic member 73 can be elastically deformed in the first direction to drive the second locking member 42 to move in the first direction. For example, the third elastic member 73 can be connected to the inner wall surface of the second sliding slot 471 away from the second locking member 42.

[0364] With reference to the accompanying drawings, the specific structure of the synchronizing block 46 will be described in detail. Figure 34The first sliding body 47 is provided with a through hole 472, the through hole 472 is communicated with the second sliding groove 471, and the through hole 472 penetrates the surface of the first sliding body 47 towards the first locking part 4. The second locking part 42 comprises a sliding rod 421 and a limiting baffle 422, the sliding rod 421 extends in the first direction, the sliding rod 421 is slidingly fitted in the second sliding groove 471, and the sliding rod 421 is arranged in the through hole 472, so that at least part of the sliding rod 421 extends out of the second sliding groove 471 and is matched with the first locking part 4, to realize locking and unlocking between the first locking part 4 and the second locking part 42.

[0365] The limiting baffle 422 is located in the second sliding groove 471, the limiting baffle 422 is fixed on the sliding rod 421, and the limiting baffle 422 protrudes from the outer circumferential surface of the sliding rod 421, the limiting baffle 422 is used for abutting and matching with the groove wall surface of the second sliding groove 471 away from the first locking part 4, and the groove wall surface of the second sliding groove 471 can limit the second locking part 42 in the first direction, to prevent the second locking part 42 from being pulled out of the second sliding groove 471.

[0366] Referring to Figure 33 In some embodiments, the second sliding groove 471 can penetrate the end surface of the synchronous block 46 away from the first locking part 4, so that the second sliding groove 471 has a third slot 473.

[0367] In other embodiments, the second sliding groove 471 can penetrate the end surface of the main body part 470 at least at one end in the third direction, so that the second sliding groove 471 has a third slot 473. For example, the second sliding groove 471 can penetrate the end surface of the main body part 470 towards the mounting base 430; or the second sliding groove 471 can penetrate the end surface of the main body part 470 away from the mounting base 430; or the first sliding groove 460 can penetrate the end surfaces of the synchronous block 46 at opposite ends in the third direction.

[0368] By arranging the third slot 473 in the main body part 470, the third elastic part 73 and the second locking part 42 are facilitated to be assembled in the first sliding groove 460.

[0369] Referring to Figure 34 and ​ The main body part 470 is provided with a third baffle 483 to block the third slot 473, so as to prevent the third elastic part 73 or the second locking part 42 from being pulled out of the second sliding groove 471, to improve the reliability of the movement of the second locking part 42 in the second sliding groove 471, and to improve the stability of the installation of the second elastic part 72 in the second sliding groove 471.

[0370] In the case where the second sliding groove 471 penetrates the end surface of the main body part 470 away from the first locking part 4 to form the third slot 473, the third elastic part 73 can be fixed on the side of the third baffle 483 towards the first locking part 4.

[0371] It should be noted that the connection between the third baffle 483 and the main body 470 can be at least one of welding, bonding, clamping or threaded connection.

[0372] In the description of the present specification, specific features, structures, materials or characteristics can be combined in any one or more embodiments or examples in a suitable manner.

[0373] Finally, it should be noted that: the above examples are only used to illustrate the technical solutions of the present application, and not to limit them; although the present application has been described in detail with reference to the foregoing examples, those skilled in the art should understand: it can still modify the technical solutions recorded in the foregoing embodiments, or make equivalent replacement for part of the technical features; and these modifications or replacements do not make the essence of the corresponding technical solutions deviate from the spirit and scope of the technical solutions of the embodiments of the present application.

Claims

1. A pop-out locking mechanism, characterized in that, include: Mounting base; A support member is disposed on the mounting base, and the support member is rotatable relative to the mounting base about a first axis, so that the support member switches between a reset state and a pop-up state; A first locking member is fixed to the mounting base. The first locking member and the support member are arranged in a first direction, and the first locking member has a first locking part and a second locking part; the first direction is perpendicular to the first axis. A second locking member is disposed on the support member, and the second locking member is movable relative to the support member along a first direction and a second direction, so that the second locking member can move relative to the first locking member between a first locking position and a second locking position; the second direction is parallel to the first axis. In the first locked position, the second locking member is locked in place with the first locking part, and the support member is in the reset state; in the second locked position, the second locking member is locked in place with the second locking part, and the support member is in the pop-up state. When the second locking member moves from the first locking position to the second locking position relative to the first locking member, the second locking member moves along the first path; when the second locking member moves from the second locking position to the first locking position relative to the first locking member, the second locking member moves along the second path; the first path and the second path are joined together to form a circular path.

2. The pop-out locking mechanism according to claim 1, characterized in that, The pop-out locking mechanism includes a first elastic element, which is connected to the support member and the mounting base. The first elastic element is used to drive the support member to rotate relative to the mounting base about a first axis.

3. The pop-out locking mechanism according to claim 2, characterized in that, The support member also has a first pressing state and a second pressing state. When the support member is in the first pressing state, the second locking member is in the first unlocking position, the second locking member is disengaged from the first locking part, and the first elastic member is in a compressed state. When the support member is in the second pressing state, the second locking member is in the second unlocking position, the second locking member is disengaged from the second locking part, and the first elastic member is in a compressed state. The first unlocking position is located on the first path, and the second unlocking position is located on the second path.

4. The pop-out locking mechanism according to claim 2, characterized in that, The second locking member is provided with the first elastic member on both opposite sides in the second direction.

5. The pop-out locking mechanism according to claim 2, characterized in that, The first elastic element is a torsion spring, which includes a spring body and a first torsion arm and a second torsion arm located at both ends of the spring body. The central axis of the spring body is parallel to the second direction. The first torsion arm abuts against the support member, and the second torsion arm abuts against the mounting base.

6. The pop-out locking mechanism according to claim 1, characterized in that, The support member includes a support plate and a synchronizing block. The synchronizing block is fixed to one end of the support plate near the first locking member. The synchronizing block has a first sliding groove extending along the second direction. The pop-out locking mechanism further includes a first sliding body and a second elastic element, wherein the first sliding body is slidably engaged with the first slide groove; The second elastic element is disposed in the first groove. One end of the second elastic element is connected to the inner wall of the first groove, and the other end of the second elastic element is connected to the first sliding body. The second elastic element can undergo elastic deformation along the second direction to drive the first sliding body to move along the second direction.

7. The pop-out locking mechanism according to claim 6, characterized in that, The first sliding body has a second sliding groove extending along the first direction, a portion of the second locking member is accommodated in the second sliding groove and is adapted to move along the second sliding groove; a third elastic member is provided in the second sliding groove, one end of the third elastic member is connected to the inner wall surface of the second sliding groove, and the other end of the third elastic member is connected to the second locking member, the third elastic member can undergo elastic deformation along the first direction to drive the second locking member to move along the first direction.

8. The pop-out locking mechanism according to claim 7, characterized in that, The first sliding body includes: The main body portion has a second sliding groove, and the main body portion is located outside the first sliding groove; A sliding portion, the sliding portion being connected to the main body portion and located on at least one side of the main body portion in the second direction, the sliding portion being slidably engaged with the first sliding groove; The thickness of the main body in the third direction is greater than the size of the first groove in the third direction, and the third direction is perpendicular to the first direction and perpendicular to the second direction.

9. The pop-out locking mechanism according to claim 7, characterized in that, The first sliding body is provided with a through hole, which communicates with the second sliding groove and penetrates the surface of the first sliding body facing the first locking member; The second locking member includes a sliding rod and a limiting baffle. The sliding rod extends along the first direction and is slidably fitted into the second sliding groove, and the sliding rod passes through the through hole. The limiting baffle is located in the second sliding groove, is fixed to the sliding rod and protrudes from the outer peripheral surface of the sliding rod, and is used to abut against the groove wall surface of the second sliding groove opposite to the first locking member.

10. The pop-out locking mechanism according to any one of claims 1-9, characterized in that, The second locking portion is located on the side of the first locking portion away from the mounting base, and the second locking portion is spaced apart from the first locking portion in the second direction.

11. The pop-out locking mechanism according to claim 10, characterized in that, The first path includes a first guide groove, a second guide groove, and a third guide groove that are interconnected; in the second direction, the first guide groove is located on the side of the first locking portion away from the second locking portion; the second guide groove is located on the side of the first guide groove away from the mounting base; the third guide groove extends along the second direction and is located on the side of the second guide groove away from the mounting base. And / or, the second path includes a fourth guide groove, a fifth guide groove, and a sixth guide groove; in the third direction, the fourth guide groove is located on the side of the second locking portion closer to the mounting base, and in the second direction, the fourth guide groove is located on the side of the first locking portion closer to the second locking portion; in the third direction, the fifth guide groove is located on the side of the fourth guide groove closer to the mounting base, and the fifth guide groove is located on the side of the first locking portion closer to the mounting base; the sixth guide groove is located on the side of the fifth guide groove away from the mounting base; The third direction is perpendicular to the first direction and the second direction.

12. The pop-out locking mechanism according to claim 11, characterized in that, The first locking part includes a first locking groove, which communicates with the first guide groove. The first locking groove has a first stop surface, a second stop surface, and a third stop surface. When the second locking member is in the first locking position, the first stop surface abuts against the second locking member along the first direction, and the first stop surface is located on the side of the second locking member away from the support member; the second stop surface abuts against the second locking member along the second direction, and the second stop surface is located on the side of the second locking member closer to the second locking portion; the third stop surface abuts against the second locking member along the third direction, and the third stop surface is located on the side of the second locking member opposite to the mounting base.

13. The pop-out locking mechanism according to claim 12, characterized in that, The first locking member includes a first guide groove, which communicates with the first locking groove. In the second direction, the first guide groove is located on the side of the first locking groove away from the second locking portion. The first guide groove includes a first guide surface and a first bottom wall surface. The first guide surface is connected to the groove wall surface of the first locking groove, and the first guide surface is located on the side of the first locking groove away from the second locking part. In the direction from the first locking part to the mounting base, the first guide surface extends in a direction away from the first locking part. The first bottom wall surface is connected to the first guide surface, and the first bottom wall surface is recessed relative to the first stop surface in a direction away from the support member.

14. The pop-out locking mechanism according to claim 13, characterized in that, The first locking member further includes a second guide groove, the second guide groove having a second bottom wall surface and a second guide surface, the second bottom wall surface facing the support member, and the second bottom wall surface being recessed relative to the first stop surface in a direction away from the support member; in the second direction, the second guide surface is located on the side of the second bottom wall surface near the first locking portion, and the second guide surface is connected between the first stop surface and the second bottom wall surface, the second guide surface being used to abut against the second locking member in the second direction.

15. The pop-out locking mechanism according to claim 14, characterized in that, The first locking member further includes a transition groove, the transition groove including a first transition surface, the first transition surface facing the support member and connected to the second bottom wall surface, and the first transition surface extending obliquely toward the support member in the direction from the mounting base toward the first locking part.

16. The pop-out locking mechanism according to claim 14, characterized in that, The first locking member further includes the third guide groove, which has a third bottom wall surface and a third guide surface. The third bottom wall surface faces the support member, and the third guide surface faces the mounting base. The third guide surface is located on the side of the third bottom wall surface away from the mounting base. In the second direction, the second locking part is located on the side of the third guide groove away from the second guide groove.

17. The pop-out locking mechanism according to any one of claims 11-16, characterized in that, The second locking part includes a second locking groove, which communicates with the fourth guide groove. The second locking groove has a first locking surface, a second locking surface, and a third locking surface. When the second locking member is in the second locking position, the first locking surface abuts against the second locking member along the first direction, and the first locking surface is located on the side of the second locking member away from the support member; the second locking surface abuts against the second locking member along the third direction, and the second locking surface is located on the side of the second locking member away from the mounting base; the third locking surface abuts against the second locking member along the second direction, and the third locking surface is located on the side of the second locking member away from the first locking portion.

18. The pop-out locking mechanism according to claim 17, characterized in that, The first locking member further includes the fourth guide groove, which communicates with the second locking groove; the fourth guide groove has a fourth bottom wall surface and a fourth guide surface, the fourth bottom wall surface faces the support member, and in the direction from the second locking portion to the first locking portion, the fourth bottom wall surface extends toward the support member; in the direction from the second locking portion to the mounting base, the fourth guide surface extends toward the first locking portion. The fourth guide surface is connected to the side of the fourth bottom wall surface away from the first locking part. When the second locking member is located in the fourth guide groove, the fourth bottom wall surface abuts against the second locking member along the first direction, and the fourth bottom wall surface is located on the side of the second locking member away from the support member; the second locking member abuts against the fourth guide surface along the second direction, and the fourth guide surface is located on the side of the second locking member away from the first locking part.

19. The pop-out locking mechanism according to claim 18, characterized in that, The first locking member further includes the fifth guide groove, which has a fifth bottom wall surface and a fifth guide surface connected together. The fifth bottom wall surface faces the support member and is recessed relative to the fourth bottom wall surface in a direction away from the support member. The fifth guide surface is connected to the fourth guide surface.

20. The pop-out locking mechanism according to claim 19, characterized in that, The first locking member further includes the sixth guide groove, which has a sixth bottom wall surface and a sixth guide surface. The sixth bottom wall surface faces the support member and is connected to the fifth bottom wall surface. In the direction from the mounting base to the first locking part, the sixth guide surface extends in a direction away from the second locking part. The first locking part includes a first locking groove, the first locking groove having a third stop surface; the third stop surface abuts against the second locking member in a third direction, and the third stop surface is located on the side of the second locking member opposite to the mounting base; The sixth guide surface is connected between the fifth guide surface and the third stop surface, and the sixth guide surface is used to abut against the second locking member in the second direction.

21. An electronic device, characterized in that, include: A housing having a mounting port; The pop-out locking mechanism is the pop-out locking mechanism according to any one of claims 1-20, wherein the mounting base is fixed to the housing; A functional module is disposed on the support member and detachably connected to the support member; when the support member is in the reset state, the functional module is housed within the housing; when the support member is in the pop-up state, at least a portion of the functional module pops out of the housing from the mounting port.

22. The electronic device according to claim 21, characterized in that, The functional module is at least one of a camera module, an earphone, and a stylus.

Citation Information

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