Electronic device and push-type pop-up locking assembly

By designing a multi-stage linked push-type pop-up locking component, the problems of single structure and complex operation in the existing technology are solved, a user-friendly automatic locking and releasing function is realized, which adapts to scenes with small space and improves the user experience of electronic devices.

CN120035075BActive Publication Date: 2025-09-16XIAN GLORY TERMINAL CO LTD
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Patent Information

Application Number
CN202510369611.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-03-27
Publication Date
2025-09-16
Estimated Expiration
2045-03-27

AI Technical Summary

Technical Problem

The existing push-type pop-up locking assembly has a simple structure, lacks novel design, is not simple to operate and lacks interactivity.

Method used

A push-type pop-up locking assembly is designed, which includes a mounting platform unit and a locking and releasing unit. Through the multi-stage linkage of the platform body, locking block and unlocking block, automatic switching between locking and releasing is achieved, reducing space requirements, and automatic reset is achieved through electromagnets or electric drive components.

Benefits of technology

It improves the user experience, is easy to operate, highly interactive, adapts to scenarios with small spaces, reduces space occupancy, and achieves structural compactness and automatic reset of the locking component.

✦ Generated by Eureka AI based on patent content.

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Abstract

The embodiments of the present application disclose an electronic device and a push-type pop-up locking assembly. The push-type pop-up locking assembly can be applied to electronic devices such as mobile phones, tablet computers, and laptop computers, and is used to realize the switching of working modes of specific functional modules in electronic devices, which can increase the applicable scenarios of functional modules in electronic devices. The push-type pop-up locking assembly includes a mounting platform unit and at least one locking release unit. The mounting platform unit includes a platform body and an elastic reset member, and the platform body switches between a release position, a first locking position, and a first pressing position along a first direction. The locking release unit includes a locking mechanism and an unlocking mechanism. The locking mechanism includes a first locking block and a first elastic member; the first locking block switches between a second locking position and a first avoidance position along a second direction. The unlocking mechanism includes an unlocking block, and the unlocking block drives the first locking block to move to the first avoidance position. The structural design of the push-type pop-up locking assembly is novel, the operation is simple, and the interactivity is strong.
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Description

Technical Field

[0001] The present application relates to the technical field of electronic devices, and in particular to an electronic device and a push-type pop-up locking assembly. Background Art

[0002] Push-to-pop-out locking assemblies are commonly found in various mechanical components and can be used to conveniently install and remove components. However, the push-to-pop-out locking assemblies in related art have a relatively simple structure and lack novel designs.

[0003] Therefore, how to provide a solution to overcome or alleviate the above-mentioned defects is still a technical problem that needs to be solved urgently by those skilled in the art. Summary of the Invention

[0004] An embodiment of the present application provides an electronic device and a push-type pop-up locking assembly, wherein the push-type pop-up locking assembly has a novel structural design, simple operation, and strong interactivity.

[0005] In the first aspect, an embodiment of the present application provides a push-type pop-up locking assembly that can be applied to electronic devices in the form of mobile phones, tablet computers, laptop computers, etc., to realize the switching of working modes of specific functional modules in electronic devices, thereby increasing the applicable scenarios of functional modules in electronic devices and improving the user experience. The above-mentioned push-type pop-up locking assembly includes a mounting platform unit and at least one locking release unit. The mounting platform unit includes a platform body and an elastic reset member. The platform body can be displaced along a first direction to switch between a release position, a first locking position and a first pressing position, and the elastic reset member can drive the platform body to displace toward the release position. The locking release unit includes a locking mechanism and an unlocking mechanism. The locking mechanism includes a first locking block and a first elastic member; the first locking block can be displaced along a second direction to switch between a second locking position and a first avoidance position, and the second direction and the first direction are arranged at an angle. When the platform body moves from the release position to the first locking position, the platform body can drive the first locking block to move to the first avoidance position; when the platform body is in the first locking position, the first elastic member can drive the first locking block to move to the second locking position, and the first locking block can stop the platform body along the first direction. The unlocking mechanism includes an unlocking block, and when the platform body moves from the first locking position to the first pressing position, the platform body can drive the unlocking block to move along the first direction, and the unlocking block can drive the first locking block to move to the first avoidance position.

[0006] In the initial state, the platform may be in a released position, and the functional module waiting adjustment component may be installed on the platform.

[0007] When a pressing force is applied to the platform along the first direction, the platform can move from the release position to the first locking position. During this process, the platform can generate an unlocking drive for the first locking block, driving the first locking block to move to the first avoidance position, so that the platform can smoothly pass the first locking block along the first direction. At this time, the unlocking drive of the platform on the first locking block can be released, and the first locking block can be moved to the second locking position again. Under the action of the elastic reset member, the platform can be moved to the second locking position, and the first locking block can abut against the platform along the first direction, switching the component to be adjusted to the press-locked state.

[0008] When a second pressing force is applied to the platform in the first direction, the platform can move from the first locked position to the first pressed position. During this process, the platform can also drive the unlocking block to move in the first direction, so that the unlocking block drives the first locking block to move to the first avoidance position. In this way, the first locking block's stop on the platform can be released, and the platform can be moved back to the initial release position under the action of the elastic return member, switching the component to be adjusted to the press-to-pop-out state.

[0009] That is, in the embodiment of the present application, simply by applying two pressing forces to the platform, the platform can be automatically driven to switch between the first locking position and the released position, thereby adjusting the installation position of the adjustable component. This is simple to operate and highly interactive, which can greatly enhance the user experience. In addition, the push-type pop-up locking assembly in the embodiment of the present application has a novel structural design, which mainly achieves the locking and release of the platform through a multi-stage linkage of the platform, the first locking block, and the unlocking block. The first locking block is displaced in the second direction. Compared with the heart-shaped slide provided in the conventional solution, the travel of the platform in the first direction can be relatively short, which can reduce the installation space requirement in the first direction and can adapt to the use in scenarios where the space in the first direction is relatively small.

[0010] Based on the first aspect, the present application also provides a first implementation of the first aspect, wherein the unlocking mechanism further includes a second locking block and a second elastic member. The second locking block is capable of displacing in a second direction to switch between a third locking position and a second avoidance position. The second elastic member is capable of interacting with the second locking block to drive the second locking block toward the third locking position.

[0011] With this arrangement, when the platform is subjected to a secondary pressing force and displaced from the first locked position to the first pressed position, the unlocking block can also generate an unlocking drive for the second locking block, driving the second locking block to displace to the second avoidance position, so that the second locking block can avoid the unlocking block, and the unlocking block can smoothly pass over the second locking block along the first direction. When the platform is displaced to the first pressed position, the unlocking drive of the second locking block by the unlocking block is released, and the second locking block can be displaced to the third locked position under the action of the second elastic member. At this time, the second locking block can stop the unlocking block along the first direction. This ensures that the unlocking block continues to act on the first locking block, so that the first locking block can always be in the first avoidance position. Afterwards, under the action of the elastic return member, the displacement of the platform to the release position will not be stopped by the first locking block, so that the platform can smoothly switch to the release position.

[0012] It can be seen that by providing the second locking block and the second elastic member, the unlocking block can automatically lock the unlocking block in position after the unlocking block has unlocked the first unlocking block, thereby achieving interlocking between the second locking block, the unlocking block, and the first locking block, thereby achieving the technical purpose of preventing the platform from returning to its original position. In addition, the second locking block also moves in the second direction, and the provision of the second locking block does not occupy too much space in the first direction, thereby simultaneously achieving the technical purpose of reducing occupied space.

[0013] It should be understood that in some other embodiments of the embodiments of the present application, the locking release unit may not include the above-mentioned second locking block. In this case, the locking release unit may also include an electromagnet. When the platform moves to the first pressing position and the unlocking block drives the first locking block to move to the first avoidance position, the electromagnet can be triggered to start the function to magnetically lock the unlocking block. In this way, the unlocking block can also be kept in a position to continuously act on the first locking block.

[0014] Based on the first embodiment of the first aspect, the embodiment of the present application also provides a second embodiment of the first aspect, wherein the unlocking mechanism further includes a synchronization block, a third elastic member, and a fourth elastic member. The unlocking block is slidably assembled on the synchronization block along the first direction to switch between the first state position and the second state position relative to the synchronization block. The third elastic member is arranged between the unlocking block and the synchronization block. The synchronization block can be displaced along the first direction to switch between the initial position and the second pressed position, and the fourth elastic member can drive the synchronization block to displace toward the initial position.

[0015] When the synchronization block is in the initial position, the unlocking block is in the first state position, and the unlocking block can abut against the synchronization block in the first direction. When the platform is pressed and displaced from the first locking position to the first pressing position, the platform can drive the synchronization block to displace toward the second pressing position, and the unlocking block and the synchronization block can move synchronously. When the platform moves to the first pressing position, the synchronization block can be in the second pressing position, and the second locking block can be in the third locking position, thereby forming a stop for the unlocking block in the first direction.

[0016] When the external pressure acting on the platform is released, under the action of the elastic reset member and the fourth elastic member, the platform can be displaced toward the release position, and the synchronization block can be displaced toward the initial position. In this process, since the unlocking block is stopped by the second locking block, the unlocking block cannot be displaced synchronously with the synchronization block at the first time, but will be displaced relative to the synchronization block in the first direction. The elastic deformation of the third elastic member arranged between the synchronization block and the unlocking block can be increased to accumulate elastic potential energy until the unlocking block is displaced to the second state position relative to the synchronization block. At this time, the third elastic member has accumulated a relatively large elastic potential energy. The third elastic member can drive the unlocking block to generate an unlocking driving force on the second locking block again, so that the second locking block can be displaced to the second avoidance position to avoid the unlocking block in the first direction. Under the action of the third elastic member, the unlocking block can be displaced relative to the synchronization block to displace to the first state position. During the displacement of the unlocking block, the unlocking block can complete the unlocking of the first locking block, and the first locking block can be displaced to the first locking position. Moreover, when the unlocking block is relatively far away from the second locking block, the unlocking drive of the unlocking block on the second locking block can also be released, and the second locking block can also be displaced to the second locking position.

[0017] It can be seen that by configuring the synchronization block, the third elastic member, and the fourth elastic member, when the platform body moves toward the release position, the unlocking block can automatically unlock the second lock block, so that the second lock block's stop limit on the unlocking block can be automatically released, the unlocking block can automatically reset, and the first lock block and the second lock block can both automatically switch to the corresponding locked positions, thereby achieving automatic reset of the entire lock release unit. In the embodiment of the present application, a multi-level linkage relationship exists between the platform body, the first lock block, the unlocking block, the second lock block, and the synchronization block, and each level of linkage is automatically triggered, resulting in an ingenious structural design, simple operation, and strong interactivity.

[0018] In this embodiment, the selection of the third elastic member and the second elastic member and the elastic force configuration need to be designed so that when the unlocking block is displaced to the second state position relative to the synchronization block, the third elastic member can drive the second locking block to displace to overcome the elastic force of the second elastic member.

[0019] It should be understood that in some other embodiments of the present application, the unlocking mechanism may not include the aforementioned synchronization block. In this case, the lock release unit may further include an electric drive component that can be activated when the platform moves from the first pressed position to the released position to generate a driving force on the second locking block, thereby driving the second locking block to move to the second avoidance position, thereby also releasing the lock on the unlocking block.

[0020] In addition to using the third elastic member to drive the unlocking block, which in turn drives the second locking block to switch to the second avoidance position, the synchronization block can also generate a driving force on the second locking block. In other words, when the unlocking block moves relative to the synchronization block to the second state position, the synchronization block can also abut against the unlocking block to drive the unlocking block to generate a driving force on the second locking block. This is also feasible. In this case, the third elastic member is mainly used to achieve elastic reset of the unlocking block relative to the synchronization block.

[0021] Based on the second embodiment of the first aspect, the embodiment of the present application also provides a third embodiment of the first aspect, wherein the platform includes a platform body and a first protrusion. The first protrusion is provided on the outer edge of the platform body, and the first protrusion is capable of driving the synchronization block to move toward the second pressing position. By driving the synchronization block by the first protrusion, the possibility of displacement interference between the platform body and other components can be reduced; at the same time, it is also conducive to reducing the size of the platform body to reduce the weight of the platform body, thereby achieving a lightweight design and reducing costs.

[0022] Based on the third embodiment of the first aspect, the embodiment of the present application also provides a fourth embodiment of the first aspect, wherein in the second direction, a second guide groove extending along the first direction is provided at the end of the synchronization block close to the table body. The synchronization block also has an abutment portion, which is located on one side of the second guide groove in the first direction. The first protrusion can be plugged and assembled in the second guide groove along the first direction, and the first protrusion can drive the synchronization block to move through the abutment portion. Through the plug-in fit of the first protrusion and the second guide groove, the displacement of the table body along the first direction can also be guided.

[0023] Based on the third embodiment of the first aspect, the present application also provides a fifth embodiment of the first aspect, wherein the platform body further includes a second protrusion. The second protrusion is also disposed on the outer edge of the platform body and is capable of driving the first locking block to move toward the first avoidance position. By driving the first locking block via the second protrusion, the possibility of displacement interference between the platform body and other components can be reduced. This also facilitates reducing the size of the platform body, thereby reducing its weight, thereby achieving a lightweight design and lowering costs.

[0024] Based on any one of the first to fifth implementations of the first aspect, the embodiments of the present application further provide a sixth implementation of the first aspect, wherein the second locking block includes a connecting portion and two locking portions. The two locking portions are spaced apart along a third direction, the connecting portion is located between the two locking portions, and the third direction is arranged at an angle to the first direction and the second direction. An accommodating space can be formed between the two locking portions, and a portion of the first locking block can be located between the two locking portions, that is, can be located in the accommodating space, so that the accommodating space between the two locking portions can be used to install the first locking block, thereby improving the compactness of the installation of the first and second locking blocks.

[0025] Based on the sixth implementation of the first aspect, the embodiment of the present application further provides a seventh implementation of the first aspect, wherein the unlocking block includes a first unlocking portion and two second unlocking portions. The two second unlocking portions are respectively located on either side of the first unlocking portion in the third direction. The first unlocking portion is capable of driving the first locking block to a first avoidance position. The two second unlocking portions are capable of interacting with the two locking portions, respectively, and the two second unlocking portions are capable of driving the second locking block to a second avoidance position. In this way, the unlocking block can drive the first and second locking blocks separately.

[0026] It should be understood that in some other embodiments of the embodiments of the present application, the second locking block may include only one locking portion. In this case, the second locking block and the first locking block may be arranged in a third direction. Accordingly, the number of second unlocking portions in the unlocking block may also be only one, so that the structures of the second locking block and the unlocking block can be relatively simple.

[0027] Based on any one of the first to fifth implementations of the first aspect, the embodiments of the present application further provide an eighth implementation of the first aspect, wherein the push-to-pop-up locking assembly further includes a base unit, the mounting platform unit and the locking release unit are both mounted on the base unit, and the push-to-pop-up locking assembly can be installed and fixed via the base unit. The provision of the base unit can enhance the structural compactness and independence of the push-to-pop-up locking assembly provided in the embodiments of the present application, thereby facilitating its packaging, transportation, and installation.

[0028] Based on the eighth implementation of the first aspect, the present application also provides a ninth implementation of the first aspect, wherein the base unit includes a base bottom and a base peripheral portion. The base peripheral portion is provided with a guide fitting, and the platform is provided with a guide member. The guide member can be slidably assembled with the guide fitting along a first direction to guide the displacement of the platform along the first direction, thereby improving the directionality and stability of the platform displacement.

[0029] Based on the eighth implementation of the first aspect, the present embodiment further provides a tenth implementation of the first aspect, wherein the base unit includes a base bottom and a base peripheral portion. The base peripheral portion includes a mounting section, the first locking block and the second locking block are at least partially disposed within the mounting section, and the first elastic member and the second elastic member are also disposed within the mounting section, so that the locking mechanism can be integrated into the base unit through the mounting section, thereby improving the structural compactness of the locking mechanism in the embodiment of the present application.

[0030] Based on the tenth implementation method of the first aspect, the embodiment of the present application also provides an eleventh implementation method of the first aspect, wherein the installation section includes a first frame plate portion and a second frame plate portion spaced apart along the second direction, and the second frame plate portion is closer to the platform relative to the first frame plate portion. The first locking block includes a first guide portion and a first locking portion, the first guide portion is arranged between the first frame plate portion and the second frame plate portion, and the first locking portion overlaps the second frame plate portion along the first direction. The second locking block includes a second guide portion and a second locking portion, the second guide portion is arranged between the second frame plate portion and the second frame plate portion, and the second locking portion overlaps the second frame plate portion along the first direction. In this way, the space between the first frame plate portion and the second frame plate portion can be used to accommodate and assemble the first guide portion and the second guide portion, which can improve the compactness of the structure.

[0031] Based on the eleventh implementation manner of the first aspect, the embodiment of the present application further provides a twelfth implementation manner of the first aspect, wherein the dimension of the second frame plate portion in the first direction is smaller than the dimension of the first frame plate portion in the first direction. In this way, after the first locking portion and the second locking portion overlap along the first direction, the overall dimension of the combination of the second frame plate portion, the first locking portion, and the second locking portion in the first direction can be relatively small, which can reduce the space occupied in the first direction and help improve the structural compactness of the structure.

[0032] Based on the eleventh implementation of the first aspect, the embodiment of the present application further provides a thirteenth implementation of the first aspect, wherein the push-type pop-up locking assembly further includes a guide unit. The guide unit includes a first guide column and a second guide column, each of which is at least partially disposed in the installation section so as to enable integrated assembly through the installation section. The first guide portion and the first guide column slide in engagement with each other in the second direction, and the second guide portion and the second guide column slide in engagement with each other in the second direction. In this way, both the first locking block and the second locking block can be well guided, thereby ensuring the directionality and stability of the displacement of the first locking block and the second locking block.

[0033] Based on the twelfth or thirteenth implementation of the first aspect, the embodiment of the present application further provides a fourteenth implementation method of the first aspect, wherein the first guide column and the second guide column both include a main column segment and an insertion column segment. The main column segment and the insertion column segment are arranged along the second direction, and the area of ​​the cross section perpendicular to the axial direction of the insertion column segment is smaller than the area of ​​the cross section perpendicular to the axial direction of the main column segment. The second frame plate portion is provided with a second insertion portion, the inner circumference contour of the second insertion portion is adapted to the outer circumference contour of the insertion column segment, and the insertion column segment is inserted into the second insertion portion.

[0034] With such a configuration, the cross-sectional area of ​​the first insertion column segment can be relatively small, while the inner circumferential contour of the second insertion portion and the outer circumferential contour of the first insertion column segment can be adapted to each other, that is, the cross-sectional area of ​​the second insertion portion perpendicular to the second direction can also be smaller, so as to adapt to the second frame plate portion having a relatively smaller size in the first direction, thereby reducing the impact on the structural strength of the second frame plate portion.

[0035] Based on the thirteenth implementation method of the first aspect, the embodiment of the present application also provides the fifteenth implementation method of the first aspect, wherein the guide unit also includes a substrate, the first guide column and the second guide column are both connected to the substrate, and the substrate is connected to the first frame plate portion to realize the installation and fixation of the guide unit in the installation section.

[0036] Based on the first aspect and any one of the various embodiments of the first aspect, the embodiment of the present application further provides a sixteenth embodiment of the first aspect, wherein the push-type pop-up locking assembly further includes a support unit. The support unit includes a first support portion and a second support portion. The first support portion and the second support portion are respectively located on both sides of the first locking portion in the first direction, and both the first support portion and the second support portion can abut against the first locking portion along the first direction. The first support portion and the second support portion can both abut against the first locking portion along the first direction to support the first locking portion, thereby reducing the possibility of the first locking portion breaking when driven to perform an action, which is beneficial to ensuring the service life of the first locking block.

[0037] Based on the first aspect and any one of the various embodiments of the first aspect, the embodiment of the present application further provides a seventeenth embodiment of the first aspect, wherein the first locking block is provided with a first unlocking surface and a second unlocking surface, both of which are arranged at an angle to the first direction, the first unlocking surface and the second unlocking surface are spaced apart along the second direction, and the first unlocking surface is closer to the platform relative to the second unlocking surface; the platform can drive the first locking block toward the first avoidance position via the first unlocking surface, and the unlocking block can drive the first locking block toward the first avoidance position via the second unlocking surface. In this way, the platform and the unlocking block can drive the first locking block at different positions, respectively.

[0038] In a second aspect, embodiments of the present application further provide an electronic device, which may specifically be a mobile phone, a tablet computer, a laptop computer, or the like. The electronic device includes a housing, a functional module, and a push-to-pop-up locking assembly. The push-to-pop-up locking assembly is the push-to-pop-up locking assembly described in the first aspect and any of the embodiments of the first aspect, and the functional module is mountable to a housing.

[0039] When the functional module is pressed once, it is pressed into the housing, entering a locked state relative to the housing. When the functional module is pressed a second time, it is ejected relative to the housing, entering a released state relative to the housing. In this way, by pressing the functional module, the installation position of the functional module relative to the housing can be easily adjusted, thereby switching between different operating modes to better meet the user's usage needs.

[0040] Based on the second aspect, the present application also provides a first implementation of the second aspect, wherein the functional module has a first operating mode and a second operating mode. In the first operating mode, the platform is in a first locked position, and the functional module is in a pressed-lock state. In the second operating mode, the platform is in a released position, and the functional module is in a pop-up released state. In both operating modes, the installation position of the functional module relative to the housing in the first direction can be changed, thereby better meeting the different needs of users.

[0041] Based on the first implementation method of the second aspect, the embodiment of the present application also provides a second implementation method of the second aspect, wherein the functional module is a camera module, and the functional module also has a third working mode. In the third working mode, the camera module and the platform are separated, and the camera module is installed in the shell. At this time, the shooting direction of the camera module can change. For example, in the first working mode and the second working mode, the camera module can be used as a rear camera, while in the third working mode, the camera module can be used as a front camera. In this way, the front camera in traditional electronic devices can be eliminated, which can greatly reduce the cost of using electronic devices. At the same time, due to the cancellation of the front camera, the area of ​​the effective display area of ​​the display screen can also be increased, which is conducive to reducing the black border of the electronic device on the side of the display screen, and can better meet the user's viewing, reading and other related needs. In addition, it can also increase the aesthetics of the side where the display screen is located.

[0042] In this embodiment, the camera module and the platform may be connected in a detachable manner, such as a magnetic connection.

[0043] Based on the first implementation of the second aspect, the present application also provides a third implementation of the second aspect, wherein the functional module is a camera module, and the functional module further has a fourth operating mode. In the fourth operating mode, the camera module and the platform are separated, and the camera module and the housing are independent of each other. In the fourth operating mode, the camera module and the housing can be decoupled, and the placement and shooting direction of the camera module can be more flexible, which can better meet the increasingly diverse usage needs of users.

[0044] For example, the camera module can be directly held by the user to more flexibly adjust the shooting direction of the camera module. For another example, the camera module 3100 can also be placed on other supports such as a table, chair, or a special bracket to achieve long-range close-up shooting.

[0045] Based on the first implementation of the second aspect, the embodiment of the present application also provides a fourth implementation of the second aspect, in which the functional module is a heat dissipation module, and the heat dissipation module includes a heat dissipation base plate and a heat dissipation peripheral plate. The heat dissipation base plate is provided with a first heat dissipation hole, and the heat dissipation peripheral plate is provided with a second heat dissipation hole. In the first working mode, the first heat dissipation hole is in an exposed state, and the second heat dissipation hole is in a hidden state. The heat dissipation module can only dissipate heat through the first heat dissipation hole, and the heat dissipation efficiency is relatively low. In the second working mode, the first heat dissipation hole and the second heat dissipation hole are both in an exposed state, and the heat dissipation module can dissipate heat through the first heat dissipation hole and the second heat dissipation hole at the same time, which can achieve the technical effect of enhancing heat dissipation.

[0046] That is, by pressing the heat dissipation module, the working mode of the heat dissipation module can be adjusted, and the heat dissipation efficiency of the heat dissipation module can be adjusted to meet the heat dissipation requirements of the electronic device in different situations.

[0047] Based on the first implementation of the second aspect, the embodiment of the present application also provides a fifth implementation of the second aspect, in which the functional module is a sound output module, and the sound output module includes a first sound output hole and a second sound output hole. In the first working mode, the first sound output hole is in an exposed state, and the second sound output hole is in a hidden state. The sound output module mainly outputs sound through the first sound output hole. In the second working mode, both the first sound output hole and the second sound output hole are in an exposed state. The sound output module can output sound through the first sound output hole and the second sound output hole at the same time, so as to output sound at multiple different positions, thereby enhancing the sound output effect, improving the sound quality, and achieving a surround sound effect. BRIEF DESCRIPTION OF THE DRAWINGS

[0048] Figure 1 A schematic structural diagram of a functional module of an electronic device in a first working mode provided by an embodiment of the present application;

[0049] Figure 2A schematic structural diagram of a functional module of an electronic device in a third working mode provided by an embodiment of the present application;

[0050] Figure 3 for Figure 2 Rear view;

[0051] Figure 4 for Figure 1 Connection diagram of the functional module and the push-to-pop-out locking assembly;

[0052] Figure 5 This is an exploded view of the camera module;

[0053] Figure 6 A schematic structural diagram of a push-to-pop-up locking assembly provided in an embodiment of the present application;

[0054] Figure 7 Exploded view of the push-to-pop latch assembly, midframe, and display.

[0055] Figure 8 It is the connection structure diagram of the base body and the platform body;

[0056] Figure 9 This is the connection structure diagram of the base body and the mounting platform unit;

[0057] Figure 10 A diagram showing the connection structure of the platform, the locking and releasing unit, and the guide unit;

[0058] Figure 11 A diagram showing the connection structure of the guide unit, the mounting section, and the locking mechanism;

[0059] Figure 12 for Figure 11 A cross-sectional view perpendicular to the third direction;

[0060] Figure 13 It is a structural diagram of the installation section;

[0061] Figure 14 Schematic diagram of the structure of the first locking block;

[0062] Figure 15 A diagram showing the connection structure of the first locking block, the second locking block and the unlocking block;

[0063] Figure 16 A diagram showing the connection structure of the first locking block and the second locking block;

[0064] Figure 17 A diagram showing the connection structure of the guide unit, the mounting section, and the second locking block;

[0065] Figure 18 for Figure 17 A cross-sectional view perpendicular to the third direction;

[0066] Figure 19 The connection structure diagram of the synchronization block and the unlock block;

[0067] Figure 20 for Figure 19 A cross-sectional view perpendicular to the third direction;

[0068] Figure 21 It is the connection structure diagram of the synchronization block and the installation section;

[0069] Figure 22 for Figure 21 a sectional view perpendicular to the third direction;

[0070] Figure 23 This is a diagram showing the relative positions of the platform and the first locking block before the functional module is pressed and installed;

[0071] Figure 24 This is a diagram of the relative positions of the platform and the synchronization block before the functional module is pressed and installed;

[0072] Figure 25 This is a diagram showing the relative positions of the platform and the first locking block when the functional module is pressed and installed;

[0073] Figure 26 This is a diagram of the relative positions of the platform and the synchronization block when the functional module is pressed and installed;

[0074] Figure 27 The figure is a relative position diagram of the platform, the unlocking block and the first locking block when the functional module is further pressed;

[0075] Figure 28 The diagram shows the relative positions of the synchronization block, the unlocking block and the second locking block when the functional module is further pressed;

[0076] Figure 29 This is a diagram showing the relative positions of the platform, the unlocking block, and the first locking block when the functional module is just ejected;

[0077] Figure 30 This is a diagram showing the relative positions of the synchronization block, the unlocking block, and the second locking block when the functional module is just ejected;

[0078] Figure 31 The diagram shows the relative positions of the synchronization block, unlocking block, second locking block and the platform when the functional module is fully ejected;

[0079] Figure 32 The figure is a relative position diagram of the platform, the unlocking block and the first locking block when the functional module is fully ejected;

[0080] Figure 33 This is a schematic structural diagram of a functional module of another electronic device provided in an embodiment of the present application in a first working mode;

[0081] Figure 34 is a diagram showing the relative position of the functional module and the back cover in the first working mode;

[0082] Figure 35 is a diagram showing the relative position of the functional module and the back cover in the second working mode;

[0083] Figure 36 A schematic structural diagram of a functional module of another electronic device provided in an embodiment of the present application in a first working mode;

[0084] Figure 37 This is a structural diagram of a functional module of another electronic device provided in an embodiment of the present application in a second working mode.

[0085] Reference numerals:

[0086] 100-Electronic equipment;

[0087] 1000 - housing; 1100 - back cover; 1110 - decorative bracket; 1120 - back cover body; 1200 - middle frame; 1210 - first mounting hole; 1300 - third support portion;

[0088] 2000-display screen;

[0089] 3000 - Functional module; 3100 - Camera module; 3110 - Magnetic component; 3120 - Camera body; 3130 - Protective lens; 3200 - Heat dissipation module; 3210 - Heat dissipation base plate; 3211 - First heat dissipation hole; 3220 - Heat dissipation peripheral plate; 3221 - Second heat dissipation hole; 3300 - Sound output module; 3310 - First sound output hole; 3320 - Second sound output hole;

[0090] 4000-Push-type pop-up locking assembly; 4100-Mounting platform unit; 4110-Platform; 4111-Platform body; 4112-First protrusion; 4113-Second protrusion; 4114-Guide; 4120-Elastic return member; 4130-First fastener; 4131-Head; 4132-Rod; 4140-Stop seat; 4141-Stop base plate; 4142-Stop peripheral plate; 4150-Pad; 4200-Lock release unit; 4210-Locking mechanism; 4211-First locking block; 4211A-First guide portion; 4211B-First locking portion; 4211B1-Thick plate portion; 4211B11-Guide protrusion; 4211B2-Thin plate portion; 4211B21-First unlocking Surface; 4211B3-transition plate portion; 4211B31-second unlocking surface; 4211B4-first flange; 4211B41-first avoidance gap; 4211B5-second flange; 4212-first elastic member; 4220-unlocking mechanism; 4221-unlocking block; 4221A-first unlocking portion; 4221A1-fourth unlocking surface; 4221A2-third avoidance gap; 4221B-second unlocking portion; 4221B1-fifth unlocking surface; 4221C-first positioning column; 4222-second locking block; 4222A-connecting portion; 4222A1-second avoidance gap; 4222B-locking portion; 4222B1-second guide portion; 4222B2-second locking portion; 4222B21 -Third unlocking surface; 4222C -Accommodating space; 4223 -Second elastic member; 4224 -Synchronizing block; 4224A -Second guide groove; 4224B -Abutting portion; 4224C -Accommodating cavity; 4224D -First plate portion; 4224D1 -First through hole; 4224E -Second plate portion; 4224E1 -First positioning hole; 4224E2 -Second through hole; 4224F -End plate portion; 4224F1 -Third mounting hole; 4224G -Ear plate portion; 4224G1 -Second positioning hole; 4225 -Third elastic member; 4226 -Fourth elastic member; 4300 -Base unit; 4310 -Base body; 4311 -Bottom of base; 4311A -Second positioning column; 4311B -Fourth avoidance gap ;4312-seat periphery;4312A-guide fitting;4312B-installation section;4312B1-first frame plate;4312B11-first insertion portion;4312B12-large size portion;4312B13-second installation hole;4312B2-second frame plate;4312B21-second insertion portion;4312B22-first guide groove;4312B3-third frame plate;4313-accommodation cavity;4320-mounting seat;4330-third fastener;4400-guide unit;4410-first guide column;4411-first main body column section;4412-first insertion column section;4420-second guide column;4421-second main body column section;4422-second insertion column section;4430 - base plate; 4440 - second fastener; 4500 - support unit; 4510 - first support portion; 4520 - second support portion. DETAILED DESCRIPTION

[0091] In order to enable those skilled in the art to better understand the technical solution of the present application, the present application is further described in detail below with reference to the accompanying drawings and specific embodiments.

[0092] In the embodiments of this application, the terms "first," "second," "third," "fourth," and "fifth" are used for descriptive purposes only and should not be understood to indicate or imply relative importance or implicitly specify the number of the technical features indicated. Therefore, a feature specified as "first," "second," "third," "fourth," or "fifth" may explicitly or implicitly include one or more of the features.

[0093] In the description of the embodiments of the present application, it should be noted that, unless otherwise clearly specified and limited, the terms "installed", "connected" and "connected" should be understood in a broad sense. For example, "connection" can be a detachable connection or a non-detachable connection; it can be a direct connection or an indirect connection through an intermediate medium.

[0094] The directional terms mentioned in the embodiments of the present application, such as "inside" and "outside", etc., are only references to the directions in the drawings. Therefore, the directional terms used are for better and clearer explanation and understanding of the embodiments of the present application, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation on the embodiments of the present application.

[0095] In the description of the embodiments of the present application, the terms "comprises," "includes," or any other variations thereof are intended to encompass non-exclusive inclusion, such that a process, method, article, or apparatus comprising a series of elements includes not only those elements but also other elements not explicitly listed, or elements inherent to such process, method, article, or apparatus. In the absence of further limitations, an element defined by the phrase "comprising a ..." does not preclude the presence of other identical elements in the process, method, article, or apparatus comprising the element.

[0096] The embodiments of the present application relate to an electronic device, which may include a handheld device, an in-vehicle device, a wearable device, a computing device, or other processing device connected to a wireless modem. The electronic device may also include a cellular phone, a smart phone, a personal digital assistant (PDA), a tablet PC, a laptop computer, a video camera, a video recorder, a camera, a smart watch, a smart wristband, an augmented reality (AR) device, a virtual reality (VR) device, and an in-vehicle computer. The embodiments of the present application do not impose any particular restrictions on the specific form of the above-mentioned electronic device. For ease of understanding, the following description mainly takes the electronic device as an example.

[0097] Please refer to Figure 1-Figure 5 , Figure 1 A schematic structural diagram of a functional module of an electronic device in a first working mode provided by an embodiment of the present application; Figure 2 A schematic structural diagram of a functional module of an electronic device in a third working mode provided by an embodiment of the present application; Figure 3 for Figure 2 Rear view; Figure 4 for Figure 1 Connection diagram of the functional module and the push-to-pop-out locking assembly; Figure 5 The figure shows an exploded view of the camera module.

[0098] like Figure 1-Figure 3 As shown, the electronic device 100 may include a housing 1000 , a display screen 2000 , and a functional module 3000 . In some implementations, the functional module 3000 may specifically be a camera module 3100 .

[0099] The housing 1000 is formed with a receiving space for arranging various components of the electronic device 100, such as the aforementioned camera module 3100. At the same time, the housing 1000 can also play a role in protecting the electronic device 100. The display screen 2000 can be installed in the housing 1000. In some implementations, such as Figure 4 As shown, the housing 1000 includes a back cover 1100 and a middle frame 1200, and the display screen 2000 may be fixed on the middle frame 1200. The housing 1000 may be made of metal, plastic, ceramic or glass.

[0100] Furthermore, the housing 1000 also basically determines the appearance of the electronic device 100. Figure 1-Figure 3 In the implementation of the embodiment of the present application, the housing 1000 can be substantially rectangular, and the four corners of the rectangle can be provided with transition structures such as rounded corners. In addition, in some other implementations of the embodiment of the present application, the housing 1000 can also be square, circular, oval, or some other special shapes; or the housing 1000 can also be foldable, so that the electronic device 100 can take on more structural shapes.

[0101] The display screen 2000 can be a liquid crystal display (LCD) screen, an organic light emitting diode (OLED) display screen, etc., wherein the OLED display screen can be a flexible display screen or a rigid display screen. The display screen 2000 can be a regular screen, or a special-shaped screen, a folding screen, etc. For example, the display screen 2000 can be relatively freely rotated and folded to form an arc, a sphere, a cylinder, etc. The display screen 2000 can be set on the front of the electronic device 100, or on the back of the electronic device 100, or on both the front and back of the electronic device 100. The front of the electronic device 100 can be understood as the side opposite to the back cover 1100. The back of the electronic device 100 can be understood as the side where the back cover 1100 is located.

[0102] Take the display screen 2000 provided on the front of the electronic device 100 as an example. In terms of the layout range, the display screen 2000 can cover all areas on the front of the electronic device 100, that is, a full-screen electronic device 100 can be formed. In this case, the display screen 2000 not only has a display function, but also usually has a touch function, that is, the electronic device 100 can be operated by clicking on the display screen 2000. Alternatively, the display screen 2000 can also only cover a partial area on the front of the electronic device 100. In this case, the display screen 2000 can have a touch function or only a display function; when it only has a display function, the area of ​​the housing 1000 where the display screen 2000 is not provided can be configured with corresponding human-machine operating elements such as buttons to operate the electronic device 100. These human-machine operating elements can be provided at any position such as the front, back or side of the electronic device 100.

[0103] The camera module 3100 is used to capture still images or videos. When the camera module 3100 is located on the front of the electronic device 100, it can be used to capture scenes on the front side of the electronic device 100. When the camera module 3100 is located on the back side of the electronic device 100, it can be used to capture scenes on the back side of the electronic device 100. The camera module 3100 can be used to capture scenes at different distances, such as far, close, or macro, and is not particularly limited in the embodiments of the present application.

[0104] In the embodiments of this application, Figure 4 As shown, the electronic device 100 also includes a push-type pop-up locking assembly 4000, which is installed on the housing 1000, specifically on the middle frame 1200. The camera module 3100 can be installed on the push-type pop-up locking assembly 4000. When the camera module 3100 is pressed once, the camera module 3100 can be pressed relative to the housing 1000 to be in a pressed-in locked state relative to the housing 1000. When the camera module 3100 is pressed a second time, the camera module 3100 can be popped out relative to the housing 1000 to be in a pop-up released state relative to the housing 1000. In this way, by applying pressure to the camera module 3100, the installation position of the camera module 3100 relative to the housing 1000 can be easily adjusted, thereby being able to switch between different operating modes to better meet the user's usage needs.

[0105] For ease of description, the embodiments of the present application may define a first direction X, a second direction Y, and a third direction Z. The first direction X is the direction in which the camera module 3100 is pressed down and popped up; the second direction Y and the first direction X may be set at an angle, and the third direction Z and the first direction X may also be set at an angle, and the second direction Y and the third direction Z may also be set at an angle. The angles mentioned here may all be 90 degrees, etc., and are not limited here. The specific angles may be determined based on usage needs, etc.

[0106] Based on the configuration of the aforementioned push-to-pop-up locking assembly 4000, the camera module 3100 in the embodiment of the present application can include at least a first operating mode and a second operating mode. In the first operating mode, the camera module 3100 can be in a pressed-in, locked position relative to the housing 1000. In the second operating mode, the camera module 3100 can be in a pop-up, released position relative to the housing 1000. In both operating modes, the installation position of the camera module 3100 relative to the housing 1000 in the first direction X can be varied, thereby better meeting the varying needs of users. For example, when the camera module 3100 is in the second operating mode, since the camera module 3100 pops out from the housing 1000, the user can conveniently manually adjust the focal length, aperture, and shooting direction of the camera module 3100 (for example, a rotating base can be added to the camera module 3100 to adjust the shooting direction by controlling the rotation of the rotating base). This increases the adjustability of the camera module 3100 to better meet the user's shooting needs.

[0107] In some implementations, the camera module 3100 and the push-to-pop-up locking assembly 4000 may be connected using a relatively difficult-to-detach connection method, such as welding or bonding. In this implementation, it is difficult for a user to separate the camera module 3100 and the push-to-pop-up locking assembly 4000, and the camera module 3100 is not easily lost. The camera module 3100 may only have the aforementioned first and second operating modes.

[0108] In other implementations, the camera module 3100 and the push-to-pop-up locking assembly 4000 may also be connected by a relatively easy-to-detach connection method, such as a magnetic connection, a threaded connection, a screw connection, etc.; taking the magnetic connection as an example, combined with Figure 4 and Figure 5 The camera module 3100 may include a magnetic component 3110 and a camera body 3120. The magnetic component 3110 may be mounted on the camera body 3120, specifically on the interior or exterior surface of the camera body 3120. The magnetic component 3110 may be a samarium cobalt magnet, a neodymium iron boron magnet, a ferrite magnet, or the like. In this implementation, the user can relatively easily separate the camera module 3100 from the push-to-pop-up locking assembly 4000 to more flexibly adjust the position and posture of the camera module 3100 during use, thereby enabling the electronic device 100 provided in the embodiment of the present application to have a wider range of application scenarios.

[0109] In a specific scenario, such as Figure 1 As shown, when the camera module 3100 and the push-type pop-up locking assembly 4000 are connected, the camera module 3100 can be installed on the back of the electronic device 100. In this case, the camera module 3100 can be used as a rear camera. The back cover 1100 can include a decorative bracket 1110 and a back cover body 1120. The decorative bracket 1110 can be installed on the back cover body 1120 by bonding or other methods. The camera module 3100 can be inserted into the decorative bracket 1110 along a first direction. After the camera module 3100 and the push-type pop-up locking assembly 4000 are separated, as shown in FIG. Figure 2 and Figure 3As shown, the camera module 3100 can be connected to the housing 1000 by means of magnetism or the like, and the shooting direction of the camera module 3100 can be adjusted to act as a front camera. In this way, the electronic device 100 does not need to be provided with a dedicated front camera, which can greatly reduce the cost of using the electronic device 100. At the same time, due to the cancellation of the front camera, the area of ​​the effective display area of ​​the display screen 2000 can also be increased, which is conducive to reducing the black edge of the electronic device 100 on the side of the display screen 2000, and can better meet the user's viewing, reading and other related needs. In addition, it can also increase the aesthetics of the side where the display screen 2000 is located.

[0110] It should be understood that Figure 1-Figure 3 The installation position of the camera module 3100 is only for reference. When the camera module 3100 is used as a rear camera, refer to Figure 1 The orientation and position relationship in the back cover 1100 can be installed in the middle area of ​​the upper side of the back cover 1100, or can be installed in the upper left corner, upper right corner and other areas of the back cover 1100. When the camera module 3100 is used as a front camera, refer to Figure 2 and Figure 3 The orientation and position relationship in the shell 1000 can be installed in the middle area of ​​the upper side of the shell 1000, or in other areas of the upper side of the shell 1000, or in areas such as the left side, right side and lower side of the shell 1000.

[0111] In addition, in the above scenario, the camera module 3100 installed in the housing 1000 may not be used as a front camera, and the camera module 3100 may also have other shooting directions. During specific use, the user can adjust the camera module 3100 according to the needs of use.

[0112] In the embodiment of the present application, the operating mode in which the camera module 3100 and the push-to-pop-up locking assembly 4000 are separated and the camera module 3100 is installed in the housing 1000 is referred to as the third operating mode. In the third operating mode, the camera module 3100 can still be installed in the housing 1000, which can provide relatively good shooting stability; at the same time, it can have more shooting directions. This allows the electronic device 100 provided in the embodiment of the present application to achieve the functions of multiple camera modules in the related art through only one camera module 3100, which can significantly reduce the structural complexity and cost of the electronic device 100.

[0113] In another specific scenario, after the camera module 3100 and the push-type pop-up locking assembly 4000 are separated, the camera module 3100 may no longer be installed on the housing 1000, but may be directly held by the user to more flexibly adjust the shooting direction of the camera module 3100. Alternatively, the user may place the camera module 3100 on other supports such as a table, a chair, or a special stand to achieve long-distance close-up photography; for example, when the user is photographing a dangerous subject such as a lion or a tiger, to ensure safety, the user may place the camera module 3100 relatively close to the subject, while the user himself can be in a safe position relatively far away from the subject to operate the camera module 3100, thereby effectively ensuring the user's safety and, at the same time, obtaining relatively clear images or videos.

[0114] In the embodiment of the present application, the operating mode in which the camera module 3100 and the push-to-pop-up locking assembly 4000 are separated and the camera module 3100 is not installed in the housing 1000 is referred to as the fourth operating mode. In the fourth operating mode, the camera module 3100 and the housing 1000 can be decoupled, and the placement and shooting direction of the camera module 3100 can be more flexible, which can better meet the increasingly diverse usage needs of users.

[0115] In some implementations, such as Figure 5 As shown, the camera module 3100 may further include a protective lens 3130. The protective lens 3130 is disposed on the housing 1000 and can cover the camera body 3120 to protect the camera body 3120. The material of the protective lens 3130 can be glass, sapphire, ceramic, etc., and is not particularly limited in this embodiment of the application.

[0116] In each of the above-mentioned implementations, the camera body 3120 may include only one lens assembly, or the camera body 3120 may include at least two lens assemblies, and this is not particularly limited in the embodiments of the present application. When the camera body 3120 includes at least two lens assemblies, the lens assemblies may be identical; or the lens assemblies may be different, for example, the lens optical parameters of the lenses of the lens assemblies may be different, the lens settings may be different, the lens shapes may be different, etc. In addition, the number of camera modules 3100 is also not limited, and may be one, two, three, or more.

[0117] It should be understood that Figures 1-4The structure illustrated in the figure does not constitute a specific limitation on the electronic device 100. The electronic device 100 may include more or fewer components than shown. For example, the electronic device 100 may also include one or more components such as a battery, a flash, a fingerprint recognition module, an earpiece, buttons, sensors, and control components. The electronic device 100 may also be arranged in a different arrangement than shown in the figure. The control component may include a motherboard and a chip. The motherboard may be a printed circuit board (PCB). The chip may be mounted on the motherboard. The core of the chip may be, for example, a central processing unit (CPU) or a graphics processing unit (GPU). The chip and the camera module 3100 may be connected in a communication manner. The specific communication connection method may be a wireless connection method such as Bluetooth connection to accommodate the position adjustment of the camera module 3100 relative to the housing 1000.

[0118] Please refer to Figure 6-Figure 9 , Figure 6 A schematic structural diagram of a push-to-pop-up locking assembly provided in an embodiment of the present application; Figure 7 Exploded view of the push-to-pop latch assembly, midframe, and display. Figure 8 It is the connection structure diagram of the base body and the platform body; Figure 9 This is a diagram showing the connection structure between the base unit and the mounting table unit.

[0119] like Figure 6 and Figure 7 As shown, the embodiment of the present application further provides a push-type pop-up locking assembly 4000 , which includes a mounting platform unit 4100 , at least one locking release unit 4200 and a base unit 4300 .

[0120] In some implementations, combined with Figure 8 and Figure 9 The mounting platform unit 4100 includes a platform body 4110 , an elastic return member 4120 , a first fastener 4130 , a stopper 4140 and a pad 4150 .

[0121] The platform 4110 is the main structure of the mounting platform unit 4100, and the aforementioned camera module 3100 can be specifically connected to the platform 4110. Depending on the connection method, the platform 4110 can be made of different materials or different structures. Taking magnetic connection as an example, the platform 4110 can be prepared using a ferromagnetic material that can be adsorbed by the magnetic component 3110. Taking threaded connection as an example, one of the platform 4110 and the camera module 3100 can be provided with a stud, and the other of the platform 4110 and the camera module 3100 can be provided with a threaded hole, and the stud can be connected to the threaded hole to achieve a threaded connection between the camera module 3100 and the platform 4110.

[0122] The stage 4110 is configured to be displaceable along the first direction X to switch between a release position, a first locking position, and a first pressing position.

[0123] When the platform 4110 is in the released position, the camera module 3100 may be in a pop-up release state. When the platform 4110 is in the first locked position, the camera module 3100 may be in a pressed-in lock state. To switch the camera module 3100 from the pressed-lock state to the pop-up release state, a pressing force may be applied to the camera module 3100 along the first direction X. The camera module 3100 may then move the platform 4110 to the first pressed position. The pressing force may then be released. At this point, the elastic return member 4120 may generate a driving force on the platform 4110 to cause the platform 4110 to move toward the released position.

[0124] The elastic return member 4120 can be specifically a spring. There are many types of springs, and they are relatively easy to obtain and select. They also have relatively good elastic deformation and elastic recovery capabilities, and can better meet the application requirements of the embodiments of this application. Alternatively, the elastic return member 4120 can be an elastomer made of a material with relatively good elastic deformation capabilities, such as rubber or latex, which is also feasible.

[0125] The first fastener 4130 can be a screw, for example, and can include a head 4131 and a rod 4132. The rod 4132 can pass through the platform 4110 and connect to the base unit 4300 to secure the platform 4110 to the base unit 4300. The rod 4132 can also guide the displacement of the platform 4110 along the first direction X to ensure the directionality and stability of the displacement of the platform 4110. The head 4131 is used to limit the displacement of the platform 4110 in the first direction X, thereby largely preventing the platform 4110 and the first fastener 4130 from detaching.

[0126] The stopper 4140 can be connected to the platform 4110. The specific connection method can be welding, bonding, etc., which is not limited here, as long as the connection reliability requirements are guaranteed. The stopper 4140 can be located on the side of the platform 4110 facing the head 4131. The stopper 4140 can be barrel-shaped, including a stopper base plate 4141 and a stopper peripheral plate 4142. The stopper 4140 can be connected to the platform 4110 via the stopper peripheral plate 4142.

[0127] The elastic return member 4120 can be arranged between the stop seat 4140 and the base unit 4300 and can partially extend into the stop seat 4140. One end of the elastic return member 4120 can abut against the stop base plate 4141, and the other end of the elastic return member 4120 can abut against the base unit 4300. The stop peripheral plate 4142 can guide the telescopic deformation of the elastic return member 4120 to reduce the radial movement of the elastic return member 4120 during the telescopic process. When the elastic return member 4120 adopts a spring, the elastic return member 4120 can be assembled on the rod 4132 in an outer sleeve, and the rod 4132 can also guide the telescopic deformation of the elastic return member 4120 to reduce the radial movement of the elastic return member 4120 during the telescopic process. Through the cooperation of the stop peripheral plate 4142 and the rod 4132, the telescopic deformation of the elastic return member 4120 can be more stable.

[0128] The pad portion 4150 can be made of a material with certain cushioning properties, such as foam, and can be fixed to the side of the head portion 4131 facing away from the base 4110 by bonding or other connection methods. In actual use, the first fastener 4130 can be in contact with other components of the electronic device 100 (such as the decorative bracket 1110) through the pad portion 4150, which can achieve vibration buffering between the first fastener 4130 and other components. This can largely prevent the first fastener 4130 from loosening due to factors such as vibration during use, and the resulting loosening and damage of other components.

[0129] The base unit 4300 may include a base body 4310. The base body 4310 may be mounted on the middle frame 1200. The specific mounting method may be, for example, screw connection, clamping, bonding, etc., which is not limited here, as long as the reliability of the installation can be met. In some implementations, such as Figure 7As shown, the middle frame 1200 may be provided with a first mounting hole 1210, and the base body 4310 may be at least partially embedded in the first mounting hole 1210; in this way, the installation of the base body 4310 and the middle frame 1200 can be more compact, which can effectively reduce the installation space occupied in the first direction X, and further reduce the size of the electronic device 100 in the first direction X, which is conducive to the thinning design of the electronic device 100 in the first direction X. It should be understood that in some other implementations of the embodiments of the present application, the first mounting hole 1210 may not be provided, which does not affect the installation and fixation of the base body 4310 to the middle frame 1200.

[0130] The base body 4310 may include a seat bottom 4311 and a seat periphery 4312, and the seat periphery 4312 may be arranged in the outer edge area of ​​the seat bottom. The seat bottom 4311 and the seat periphery 4312 may be an integrally formed one-piece structure, such as an integral injection molding, etc., so as to simplify the molding method of the base body 4310. Alternatively, the seat bottom 4311 and the seat periphery 4312 may be manufactured separately and then assembled. The specific assembly process may be, for example, bonding, welding, or fusion. The seat bottom 4311 and the seat periphery 4312 may be enclosed to form a receiving cavity 4313, and the platform 4110 may be arranged in the receiving cavity 4313 to improve the installation compactness between the platform 4110 and the base body 4310. At the same time, the base bottom 4311 and the base periphery 4312 can both protect the platform 4110, reducing the possibility of interference with the installation and displacement of the platform 4110 by other components of the electronic device 100, thereby ensuring the reliable operation of the platform 4110. The aforementioned first fastener 4130 can be specifically connected to the base bottom 4311.

[0131] Please continue to refer to Figure 8 The platform 4110 may include a platform body 4111. A guide member 4114 may be provided on the outer edge of the platform body 4111. A guide fitting 4312A may be provided on the seat periphery 4312. The guide member 4114 may be pluggably assembled with the guide fitting 4312A along the first direction X to guide the displacement of the platform 4110 along the first direction X, thereby improving the directionality and stability of the displacement of the platform 4110.

[0132] One of the guide member 4114 and the guide mating member 4312A may be a protruding member, while the other may be a recessed member, to facilitate interlocking of the guide member 4114 and the guide mating member 4312A. The number and placement of the guide members 4114 and the guide mating member 4312A are not limited herein. In practical applications, those skilled in the art may select the appropriate one based on their specific needs, as long as it meets the requirements.

[0133] The outer edge of the table body 4111 may also be provided with a first protrusion 4112 and a second protrusion 4113, the functions of which will be described later. The seat peripheral plate 4312 also has a mounting section 4312B for mounting at least some components of the lock release unit 4200, which will also be described in detail later.

[0134] It should be understood that the above description of the specific structural forms of the mounting platform unit 4100 and the base unit 4300 is mainly for illustration in conjunction with the accompanying drawings, and is not intended to limit the scope of implementation of the electronic device 100 and the push-type pop-up locking assembly 4000 provided in the embodiments of the present application. In some other implementations of the embodiments of the present application, the mounting platform unit 4100 and the base unit 4300 may also adopt other structural forms. For example, the mounting platform unit 4100 may not include the stopper 4140. In this way, the number of parts of the mounting platform unit 4100 can be relatively small, the structural form of the mounting platform unit 4100 can be relatively simple, and the cost can be relatively low. In this case, the elastic return member 4120 can be directly disposed between the platform body 4110 and the base unit 4300, and the two ends of the elastic return member 4120 can respectively abut against the platform body 4110 and the base unit 4300. For another example, the pad portion 4150 is primarily used to provide vibration damping between the first fastener 4130 and other components within the electronic device 100. However, when the first fastener 4130 does not contact other components within the electronic device 100, the pad portion 4150 may not be provided. This allows the mounting platform unit 4100 to have a relatively small number of components, a relatively simple structure, and relatively low cost. For another example, the base body 4310 may not include the seat perimeter 4312, but may instead include only the seat bottom 4311. In this case, the base body 4310 may also have a simpler structure. For another example, the guide member 4114 and guide mating member 4312A may not be provided, and the platform body 4110 may be guided solely by the rod portion 4132.

[0135] In addition, in some other implementations of the embodiments of the present application, the base unit 4300 may not be provided as a whole. In this case, the mounting platform unit 4100 and the locking release unit 4200 may be directly installed on the middle frame 1200, and the structural form of the push-type pop-up locking assembly 4000 provided in the embodiments of the present application may be simpler.

[0136] The locking and releasing unit 4200 is used to achieve press-locking and elastic release of the mounting platform unit 4100. Its specific structure will be described in detail below. In actual application, the number of locking and releasing units 4200 can be one, two, three, or more, and the specific number can be determined based on the actual use needs. It should be understood that when the number of locking and releasing units 4200 is greater than one, each locking and releasing unit 4200 can be arranged around the periphery of the platform 4110 so that the platform 4110 can be locked or released at different areas on the periphery of the platform 4110, which is conducive to improving the reliability of locking the platform 4110.

[0137] Please refer to Figure 10 , Figure 10 This is a diagram of the connection structure of the platform body, locking and releasing unit and guide unit.

[0138] like Figure 10 As shown, the locking and releasing unit 4200 includes a locking mechanism 4210 and an unlocking mechanism 4220 .

[0139] The locking mechanism 4210 includes a first locking block 4211 and a first elastic member 4212. The first locking block 4211 can be displaced along the second direction Y to switch between the second locking position and the first avoidance position. When the platform 4110 is pressed from the self-release position and displaced toward the first locking position, the platform 4110 can drive the first locking block 4211 to move to the first avoidance position, so that the first locking block 4211 can avoid the platform 4110; during this process, the elastic deformation of the first elastic member 4212 and the elastic return member 4120 can increase to accumulate elastic potential energy. When the platform 4110 moves to the first locking position, the platform 4110 releases the unlocking drive of the first locking block 4211, and the elastic potential energy accumulated by the first elastic member 4212 can be released to drive the first locking block 4211 to move to the second locking position. When the external pressure on the platform 4110 is released, the first locking block 4211 can abut against the platform 4110 along the first direction X under the action of the elastic return member 4120, thereby locking the platform 4110 and the camera module 3100 can be in a pressed and locked state.

[0140] The platform 4110 can specifically drive the first locking block 4211 via the second protrusion 4113. In this way, the possibility of displacement interference between the platform 4110 and other components during displacement of the platform 4110 along the first direction X can be relatively small. This also helps reduce the size of the platform 4110, thereby reducing its weight, thereby achieving a lightweight design for the electronic device 100 and reducing costs. It should be understood that in some other implementations of the present application, the second protrusion 4113 may not be provided. In this case, the platform 4110 can directly drive the first locking block 4211 via the platform body 4111.

[0141] The specific structure of the first elastic member 4212 may be consistent with that of the aforementioned elastic return member 4120 , and a repeated description thereof will not be given here.

[0142] The unlocking mechanism 4220 includes an unlocking block 4221. When the platform 4110 is displaced from the first locking position to the first pressing position, the platform 4110 can generate a driving force on the unlocking block 4221 to drive the unlocking block 4221 to displace along the first direction X. The unlocking block 4221 can also generate a driving force on the first locking block 4211 to drive the first locking block 4211 to switch to the first avoidance position, so that the first locking block 4211 can avoid the platform 4110. In this process, the deformation of the elastic return member 4120 can continue to increase to accumulate elastic potential energy. When the external pressure on the platform 4110 is released, the elastic potential energy accumulated by the elastic return member 4120 can be released to drive the platform 4110 to displace to the release position, and the camera module 3100 can be in a pop-up release state.

[0143] That is to say, through the cooperation of the platform 4110, the locking mechanism 4210 and the unlocking mechanism 4220, the platform 4110 can be reliably switched between the release position, the first locking position and the first pressed position, thereby enabling the camera module 3100 to be switched between the pressed locking state and the pop-up release state, and better realizing the position adjustment of the camera module 3100 relative to the shell 1000.

[0144] Furthermore, in the embodiment of the present application, the locking of the platform 4110 in the first locking position is achieved through the cooperation between the platform 4110 and the first locking block 4211, and the displacement of the platform 4110 to the release position is achieved through the cooperation between the platform 4110, the unlocking block 4221, and the first locking block 4211. The locking release unit 4200 does not need to be provided with a heart-shaped sliding groove of the locking release unit in the related art, so that the displacement stroke of the platform 4110 in the first direction X can be relatively short, which can effectively reduce the installation space occupied by the push-to-pop-up locking assembly 4000 in the first direction.

[0145] In some implementations, the unlocking mechanism 4220 may further include a second locking block 4222 and a second elastic member 4223. The specific structure of the second elastic member 4223 may be consistent with the aforementioned elastic return member 4120, and a repeated description thereof will not be given here.

[0146] The second locking block 4222 can be displaced along the second direction Y to switch between the third locking position and the second avoidance position. When the platform 4110 is pressed and displaced from the first locking position to the first pressing position, the unlocking block 4221 can also generate a driving force on the second locking block 4222 to drive the second locking block 4222 to the second avoidance position, so that the second locking block 4222 can avoid the unlocking block 4221; during this process, the elastic deformation of the second elastic member 4223 and the elastic return member 4120 can increase to accumulate elastic potential energy. When the platform 4110 is displaced to the first pressing position, the unlocking block 4221 can pass over the second locking block 4222 in the first direction X, and the unlocking drive of the unlocking block 4221 on the second locking block 4222 is released. The elastic potential energy accumulated by the second elastic member 4223 can be released to drive the second locking block 4222 to automatically move to the third locking position. At this time, the second locking block 4222 can stop the unlocking block 4221 along the first direction X, thereby ensuring that the unlocking block 4221 continuously acts on the first locking block 4211, so that the first locking block 4211 can always be in the first avoidance position. In this way, under the action of the elastic return member 4120, the displacement of the platform 4110 toward the release position will not be stopped by the first locking block 4211, so that the platform 4110 can smoothly switch to the release position.

[0147] It can be seen that through the setting of the second locking block 4222 and the second elastic member 4223, the unlocking block 4221 can also automatically lock the position of the unlocking block 4221 by the second locking block 4222 after completing the driving unlocking of the first unlocking block 4221, and can achieve interlocking between the second locking block 4222, the unlocking block 4221 and the first locking block 4211, thereby achieving the technical purpose of avoiding the return of the platform 4110.

[0148] In some implementations, the unlocking mechanism 4220 may further include a synchronization block 4224, a third elastic member (not shown), and a fourth elastic member 4226. The specific structures of the third elastic member and the fourth elastic member 4226 may be consistent with the aforementioned elastic return member 4120, and a repeated description thereof will not be given here.

[0149] The unlocking block 4221 can be slidably assembled with the synchronization block 4224 along the first direction X to switch between the first state position and the second state position relative to the synchronization block 4224. The third elastic member is disposed between the unlocking block 4221 and the synchronization block 4224. The synchronization block 4224 can be displaced along the first direction X to switch between the initial position and the second pressed position. The fourth elastic member 4226 can interact with the synchronization block 4224.

[0150] When the synchronization block 4224 is in the initial position, the unlocking block 4221 is in the first state position. At this time, the unlocking block 4221 can abut against the synchronization block 4224 along the first direction X. When the platform 4110 is pressed and displaced from the first locking position to the first pressing position, the platform 4110 can drive the synchronization block 4224 to displace toward the second pressing position, and the unlocking block 4221 and the synchronization block 4224 can be displaced synchronously. During this process, the elastic deformation of the fourth elastic member 4226 can increase to accumulate elastic potential energy, while the deformation of the third elastic member does not change significantly. When the platform 4110 is displaced to the first pressing position, the synchronization block 4224 can be in the second pressing position, and the second locking block 4222 can be in the third locking position, forming a stop for the unlocking block 4221 in the first direction X.

[0151] When the external pressure applied to the platform 4110 is released, the platform 4110 can be displaced toward the release position under the action of the elastic return member 4120 and the fourth elastic member 4226, and the synchronization block 4224 can be displaced toward the initial position. During this process, because the unlocking block 4221 is stopped by the second locking block 4222, the unlocking block 4221 cannot immediately move synchronously with the synchronization block 4224. Instead, it will move relative to the synchronization block 4224 in the first direction X. The elastic deformation of the third elastic member disposed between the synchronization block 4224 and the unlocking block 4221 can increase to accumulate elastic potential energy until the unlocking block 4221 moves relative to the synchronization block 4224 to the second state position. At this time, the third elastic member has accumulated a relatively large amount of elastic potential energy, and the third elastic member can drive the unlocking block 4221 to generate an unlocking driving force on the second locking block 4222 again, so that the second locking block 4222 can be displaced to the second avoidance position to avoid the unlocking block 4221 in the first direction X. Under the action of the third elastic member, the unlocking block 4221 can be displaced relative to the synchronization block 4224 to move to the first state position. During the displacement process of the unlocking block 4221, the unlocking block 4221 can complete the unlocking of the first locking block 4211, and the first locking block 4211 can be displaced to the first locking position again. Moreover, when the unlocking block 4221 is relatively far away from the second locking block 4222, the unlocking drive of the unlocking block 4222 on the second locking block 4222 can also be released, and the second locking block 4222 can also be displaced to the second locking position.

[0152] It can be seen that through the setting of the synchronization block 4224, the third elastic member and the fourth elastic member 4226, when the platform 4110 moves to the release position, the unlocking block 4221 can automatically realize the driven unlocking of the second locking block 4222, so that the stop limit of the second locking block 4222 on the unlocking block 4221 can be automatically released, the unlocking block 4221 can be automatically reset, and the first locking block 4211 and the second locking block 4222 can both automatically switch to the corresponding locking position, thereby realizing the automatic reset of the entire locking release unit 4200.

[0153] In the embodiment of the present application, when the camera module 3100 applies a single pressure to the platform 4110, the platform 4110 can be displaced from the release position to the first locked position. During this process, the first locking block 4211 can automatically avoid and stop the platform 4110, thereby locking the platform 4110 in the first locked position. When the camera module 3100 applies a second pressure to the platform 4110 and then releases the second pressure, the synchronization block 4224, the unlocking block 4221, and the second locking block 4222 can all automatically operate to automatically move the platform 4110 to the release position. During the entire process, the user only needs to provide two pressures, and all components in the lock-release unit 4200 can automatically operate, making the operation simple and highly interactive.

[0154] Furthermore, the lock-release unit 4200 achieves automatic locking and releasing by cooperating with a first locking block 4211, a second locking block 4222, an unlocking block 4221, and a synchronization block 4224. This is completely different from the related art solution that uses a heart-shaped slide, and provides a completely new push-to-pop-out lock assembly 4000. Furthermore, the push-to-pop-out lock assembly 4000 can effectively reduce the pressing stroke of the platform 4110, thereby reducing the installation space required and facilitating a thinner design of the electronic device 100 in the first direction X.

[0155] It should be understood that the above description of the specific structural form of the locking and releasing unit 4200 is mainly based on the illustrations shown in the accompanying drawings, and it cannot be used as a limitation on the scope of implementation of the electronic device 100 and the push-type pop-up locking assembly 4000 provided in the embodiment of the present application. In some other implementation methods of the embodiment of the present application, the locking and releasing unit 4200 may also adopt other structural forms.

[0156] For example, the unlocking mechanism 4220 may also not include the above-mentioned second locking block 4222 and synchronization block 4224. In this implementation, the locking and releasing unit 4200 may further include an electromagnet. When the platform 4110 moves to the first pressing position and the unlocking block 4221 drives the first locking block 4211 to move to the first avoidance position, the electromagnet can be triggered to start a function to magnetically lock the unlocking block 4221. In this way, the unlocking block 4221 can also be maintained in a position where it continuously acts on the first locking block 4211. In addition, the locking and releasing unit 4200 may further include a third elastic member. When the platform 4110 moves from the first pressing position to the release position, the electromagnet can release the magnetic lock on the unlocking block 4221, and the third elastic member can drive the unlocking block 4221 to automatically reset.

[0157] For another example, the unlocking mechanism 4220 may also not include the aforementioned synchronization block 4224. In this implementation, the lock release unit 4200 may further include an electric drive component. When the platform 4110 moves from the first pressed position to the released position, the electric drive component can be activated to generate a driving force on the second lock block 4222, thereby driving the second lock block 4222 to move to the second avoidance position, thereby also releasing the lock on the unlocking block 4221. The unlocking block 4221 can still be used in conjunction with the aforementioned third elastic member. When the second lock block 4222 is released, the third elastic member can drive the unlocking block 4221 to automatically reset.

[0158] Please refer to Figure 11-14 , Figure 11 A diagram showing the connection structure of the guide unit, the mounting section, and the locking mechanism; Figure 12 for Figure 11 A cross-sectional view perpendicular to the third direction; Figure 13 It is a structural diagram of the installation section; Figure 14 It is a structural diagram of the first locking block.

[0159] In some implementations, such as Figure 11 and Figure 12 As shown, a portion of the first locking block 4211 can be arranged in the installation section 4312B, and the first elastic member 4212 can also be arranged in the installation section 4312B, so as to realize the integrated assembly of the locking mechanism 4210 in the base unit 4300 through the installation section, thereby improving the structural compactness of the locking mechanism 4210 in the embodiment of the present application.

[0160] The mounting section 4312B may include a first frame plate portion 4312B1 and a second frame plate portion 4312B2 spaced apart along the second direction Y, wherein the second frame plate portion 4312B2 may be closer to the platform 4110 than the first frame plate portion 4312B1. In some implementations, the mounting section 4312B may further include two third frame plate portions 4312B3 spaced apart along the third direction Z, and both third frame plate portions 4312B3 may be connected to the first frame plate portion 4312B1 and the second frame plate portion 4312B2. In this case, the mounting section 4312B may have a frame-like structure, which may have high structural strength and stability.

[0161] It should be understood that in some other implementations of the present invention, the mounting section 4312B may include only the first frame plate portion 4312B1 and the second frame plate portion 4312B2, that is, the mounting section 4312B may not include the third frame plate portion 4312B3. In this case, the structure of the mounting section 4312B may be relatively simple. Alternatively, only one of the two third frame plate portions 4312B3 may be provided.

[0162] The first locking block 4211 may include a first guide portion 4211A and a first locking portion 4211B. The first guide portion 4211A and the first locking portion 4211B may be arranged along the second direction Y. The first guide portion 4211A may be disposed between the first frame plate portion 4312B1 and the second frame plate portion 4312B2, so that the space between the first frame plate portion 4312B1 and the second frame plate portion 4312B2 can be utilized for accommodating assembly, thereby improving the compactness of the structure. The first locking portion 4211B may overlap the second frame plate portion 4312B2 along the first direction X. The second frame plate portion 4312B2 can support the first locking portion 4211B, thereby reducing the possibility of the first locking portion 4211B being damaged by bending, deformation, or breaking during the displacement of the first locking block 4211 along the second direction Y, thereby facilitating the service life of the first locking block 4211.

[0163] The dimension of the second frame plate portion 4312B2 in the first direction X can be smaller than the dimension of the first frame plate portion 4312B1 in the first direction X. In this way, after the first locking portion 4211B overlaps along the first direction X, the overall dimension of the combination of the second frame plate portion 4312B2 and the first locking portion 4211B in the first direction X can be relatively small, which can reduce the space occupied in the first direction X and help improve the structural compactness of the structure.

[0164] A first guide structure may be further provided between the first locking portion 4211B and the second frame plate portion 4312B2 to provide sliding guidance for the displacement of the first locking block 4211 in the second direction Y, thereby reducing the possibility of the first locking block 4211 moving in the third direction Y. In some implementations, such as Figure 13 and Figure 14 As shown, the first locking portion 4211B can be provided with a guide protrusion 4211B11 on one side toward the second frame plate portion 4312B2, and the second frame plate portion 4312B2 can be provided with a first guide groove 4312B22 on one side toward the first locking portion 4211B. The first guide structure can include the above-mentioned guide protrusion 4211B11 and the first guide groove 4312B22. During specific assembly, the guide protrusion 4211B11 can be inserted into the first guide groove 4312B22 to form a guide fit. In addition, the provision of the guide protrusion 4211B11 can also be used to enhance the structural strength of the first locking portion 4211B. It should be understood that in some other implementations of the present application, the guide protrusion 4211B1 can also be provided on the second frame plate portion 4312B2, and then the first guide groove 4312B22 can be provided on the first locking portion 4211B. This is also feasible.

[0165] The first locking portion 4211B may be provided with a first unlocking surface 4211B21 and a second unlocking surface 4211B31. Both the first unlocking surface 4211B21 and the second unlocking surface 4211B31 are arranged at an angle to the first direction X. The first unlocking surface 4211B21 and the second unlocking surface 4211B31 are spaced apart along the second direction Y. The first unlocking surface 4211B21 is closer to the platform 4110 than the second unlocking surface 4211B31. In a specific application, the platform 4110 can interact with the first unlocking surface 4211B21 to drive the first locking block 4211 to the first avoidance position via the first unlocking surface 4211B21, while the unlocking block 4221 can interact with the second unlocking surface 4211B31 to drive the first locking block 4211 to the first avoidance position via the second unlocking surface 4211B31.

[0166] Still Figure 11 、 Figure 12 and Figure 14As shown, the first locking portion 4211B may include a thick plate portion 4211B1 and a thin plate portion 4211B2 arranged along the second direction Y. The thick plate portion 4211B1 is configured to connect to the first guide portion 4211A to enhance the structural strength of the connection between the first locking portion 4211B and the first guide portion 4211A. The thick plate portion 4211B1 and the thin plate portion 4211B2 may be connected via a transition plate portion 4211B3 to accommodate the thickness variation between the thick plate portion 4211B1 and the thin plate portion 4211B2. It should be understood that the thickness in the embodiments of the present application refers to the dimension of each component in the first direction X. The first unlocking surface 4211B21 may be formed at the end of the thin plate portion 4211B2 facing away from the transition plate portion 4211B3. The second unlocking surface 4211B31 may be formed on the transition plate portion 4211B3.

[0167] The thickness variation between the thick plate portion 4211B1 and the thin plate portion 4211B2 creates an installation space (not labeled in the figure) on the side of the thin plate portion 4211B2 facing away from the base unit 4300 in the first direction X. The unlocking block 4221 can utilize this installation space to move in the first direction X, thereby improving the installation compactness between the unlocking block 4221 and the first locking block 4211 and reducing the installation space occupied in the first direction X.

[0168] The end of the thin plate portion 4211B2 facing away from the transition plate portion 4211B3 may also be provided with a first flange 4211B4 and a second flange 4211B5. The first flange 4211B4 may be located on the side of the thin plate portion 4211B2 facing away from the base unit 4300 in the first direction X, while the second flange 4211B5 may be located on the side of the thin plate portion 4211B2 facing the base unit 4300 in the first direction X. Both the first flange 4211B4 and the second flange 4211B5 may be used to enhance the structural strength of the thin plate portion 4211B2. The aforementioned first unlocking surface 4211B21 may also extend to the first flange 4211B4 to increase the area in which the first unlocking surface 4211B21 is provided. It should be understood that in some other implementations of the present invention, either the first flange 4211B4 or the second flange 4211B5 may be provided, or neither may be provided.

[0169] In some implementations, the push-to-pop-up locking assembly 4000 provided in the embodiment of the present application may further include a guide unit 4400 .

[0170] The guide unit 4400 may include a first guide post 4410 and a second guide post 4420. Both the first guide post 4410 and the second guide post 4420 may be at least partially disposed within the mounting section 4312B for integrated assembly within the mounting section 4312B. The first guide portion 4211A and the first guide post 4410 slidably engage in the second direction Y to guide the displacement of the first locking block 4211 along the second direction Y, thereby ensuring the directionality and stability of the displacement of the first locking block 4211. The second guide post 4420 is used to provide sliding guidance with the second locking block 4222. For details, please refer to the relevant description below.

[0171] The structures of the first guide column 4410 and the second guide column 4420 can be basically the same.

[0172] Taking the first guide column 4410 as an example, Figure 12 As shown, the first guide column 4410 may include a first main column section 4411 and a first insertion column section 4412, and the first main column section 4411 and the first insertion column section 4412 may be arranged along the second direction Y. The first frame plate portion 4312B1 may be provided with a first insertion portion 4312B11. The second frame plate portion 4312B2 may be provided with a second insertion portion 4312B21. During specific assembly, the first main column section 4411 may be plugged into the first insertion portion 4312B11, and the first insertion column section 4412 may be plugged into the second insertion portion 4312B21. In this way, the first guide column 4410 can be supported by both the first frame plate portion 4312B1 and the second frame plate portion 4312B2, forming a simply supported beam structure, which can largely ensure the installation reliability and stability of the first guide column 4410.

[0173] The cross-sectional area of ​​the first insertion column segment 4412 perpendicular to the second direction Y can be smaller than the cross-sectional area of ​​the first main column segment 4411 perpendicular to the second direction Y, that is, the cross-sectional area of ​​the first insertion column segment 4412 can be relatively small. The inner circumference of the second insertion portion 4312B21 and the outer circumference of the first insertion column segment 4412 can be adapted to each other, that is, the cross-sectional area of ​​the second insertion portion 4312B21 perpendicular to the second direction Y can also be smaller, so as to adapt to the second frame plate portion 4312B2 with a relatively small size in the first direction X, thereby reducing the impact on the structural strength of the second frame plate portion 4312B2. In some implementations, such as Figure 12 As shown, the first main column section 4411 can be cylindrical, the first insertion column section 4412 can be semi-cylindrical, and accordingly, the second insertion portion 4312B21 can be a semi-circular hole.

[0174] The guide unit 4400 may further include a base plate 4430. The first guide post 4410 and the second guide post 4420 may both be located on the same side of the base plate 4430 in the second direction Y. The first guide post 4410, the second guide post 4420, and the base plate 4430 may all be integrally formed, such as by integral injection molding. Alternatively, the first guide post 4410, the second guide post 4420, and the base plate 4430 may be prepared separately and then assembled. The specific assembly process may be, for example, bonding, welding, riveting, clamping, threaded connection, screw connection, etc., which is not limited here, as long as it can ensure the reliability of the assembly and other relevant requirements.

[0175] The base plate 4430 is used to connect with the first frame plate portion 4312B1 so as to realize the installation and fixation of the guide unit 4400 in the installation section 4312B. Specifically, the guide unit 4400 may further include a second fastener 4440, which may be a screw or the like; Figure 13 The first frame plate portion 4312B1 may be provided with a second mounting hole 4312B13, which may specifically be a threaded hole; the second fastener 4440 may pass through the substrate 4430 and may be connected to the mounting frame 4312B13 to connect and fix the substrate 4430 and the first frame plate portion 4312B1.

[0176] The area of ​​the first frame plate portion 4312B1 where the second mounting hole 4312B13 is provided can be relatively larger in the second direction Y than other areas, thereby forming an oversized portion 4312B12 on the first frame plate portion 4312B1. The second mounting hole 4312B13 can be specifically provided in the oversized portion 4312B12 to increase the size of the second mounting hole 4312B13, thereby more reliably connecting the second fastener 4440 to the first frame plate portion 4312B1. Furthermore, the provision of the oversized portion 4312B12 can also isolate and protect the tail end of the second fastener 4440 (the end closest to the second frame plate portion 4312B2), thereby preventing the tail end of the second fastener 4440 from being exposed, thereby largely preventing the second fastener 4440 from causing scratches on other components or operators.

[0177] It should be understood that the above description of the specific structural form of the guide unit 4400 is primarily based on the accompanying drawings and is not intended to limit the scope of implementation of the electronic device 100 and the push-to-pop-up locking assembly 4000 provided in the embodiments of the present application. In other implementations of the embodiments of the present application, the guide unit 4400 may also adopt other structural forms. For example, the base plate 4430 and the first frame plate portion 4312B1 may be connected using other connection methods such as bonding, clamping, welding, riveting, etc., as long as the reliability requirements of the connection can be guaranteed. For another example, the guide unit 4400 may not include the base plate 4430. In this case, the structure of the guide unit 4400 can be relatively simple, and the first guide post 4410 and the second guide post 4420 can be installed and fixed separately. Taking the first guide post 4410 as an example, the first guide post 4410 can be directly connected and fixed to the first frame plate portion 4312B1 through bonding, interference fit, etc. For another example, the first guide column 4410 and the second guide column 4420 may not be inserted into the second frame plate portion 4312B2. In this case, the second insertion portion 4312B21 may not be provided, the structural form of the second frame plate portion 4312B2 may be relatively simple, and the dimensions of the first guide column 4410 and the second guide column 4420 in the second direction Y may be relatively short.

[0178] When the first elastic member 4212 is a spring, the first elastic member 4212 can be externally mounted on the first guide column 4410. The first guide column 4410 can also guide the expansion and contraction deformation of the first elastic member 4212, thereby reducing the radial movement of the first elastic member 4212 during the expansion and contraction process.

[0179] In some implementations, the push-to-pop-up locking assembly 4000 provided in the embodiment of the present application may further include a supporting unit 4500 .

[0180] Combined with the aforementioned Figure 7 and Figure 10 The support unit 4500 may include a first support portion 4510 and a second support portion 4520. The first support portion 4510 may be located on a side of the first locking block 4211 facing away from the base unit 4300 in the first direction X, and the second support portion 4520 may be located on a side of the first locking block 4211 facing the base unit 4300 in the first direction X. Both the first support portion 4510 and the second support portion 4520 may abut against the first locking portion 4211B along the first direction X to support the first locking portion 4211B, thereby reducing the possibility of the first locking portion 4211B breaking when driven, thereby facilitating the service life of the first locking block 4211.

[0181] Combined with the aforementioned Figure 4The first support portion 4510 can be connected to the decorative bracket 1110 so that the decorative bracket 1110 abuts the first support portion 4510, and then the first support portion 4510 abuts the first locking portion 4211B. In addition, the first support portion 4510 and the decorative bracket 1110 can also be an integrated structure, such as an integral injection molding. It should be understood that the first support portion 4510 can also be provided on other components. For example, the first support portion 4510 can also abut against the rear cover body 1120 or be an integrated structure with the rear cover body 1120.

[0182] Combine Figure 12 , the second support portion 4520 can be located on the seat bottom 4311. The second support portion 4520 and the seat bottom 4311 can be an integral structure, such as integrally injection molded. Alternatively, the second support portion 4520 and the seat bottom 4311 can be manufactured separately and then assembled through bonding, clamping, riveting, threading, or other connection methods. In short, one end of the second support portion 4520 can be in contact with the seat bottom 4311, and the other end of the second support portion 4520 can be in contact with the first locking portion 4211B.

[0183] Combine Figure 13 The first flange 4211B may be provided with a first avoidance notch 4211B41 for avoiding the first support portion 4510, thereby largely avoiding the possibility of interference between the first flange 4211B and the first support portion 4510. It should be understood that the first avoidance notch 4211B41 is not a required structure, which is specifically related to the location of the first support portion 4510 and the travel of the first locking block 4211. When there is no interference between the first support portion 4510 and the first flange 4211B, the first avoidance notch 4211B41 may not be provided.

[0184] It should be understood that in some other implementations of the embodiment of the present application, the first support portion 4510 and the second support portion 4520 may be selectively provided so as to simplify the structure of the support unit 4500 .

[0185] Please refer to Figure 15-18 , Figure 15 A diagram showing the connection structure of the first locking block, the second locking block and the unlocking block; Figure 16 A diagram showing the connection structure of the first locking block and the second locking block; Figure 17 A diagram showing the connection structure of the guide unit, the mounting section, and the second locking block; Figure 18 for Figure 17 A cross-sectional view perpendicular to the third direction.

[0186] In some implementations, such as Figure 15 and Figure 16As shown, the second locking block 4222 may include a connecting portion 4222A and two locking portions 4222B.

[0187] The two locking portions 4222B may be spaced apart along the third direction Z, and the connecting portion 4222A may be located between the two locking portions 4222B. The connecting portion 4222A and the two locking portions 4222B may be integrally formed, such as by integral injection molding. Alternatively, the connecting portion 4222A and the two locking portions 4222B may be prepared separately and then assembled by bonding, welding, clamping, screwing, or threading.

[0188] The second locking block 4222 may form an accommodating space 4222C between the two locking portions 4222B. A portion of the first locking block 4211 may be located in the accommodating space 4222C, so that the first locking block 4211 can be installed using the accommodating space 4222C between the two locking portions 4222B, thereby improving the compactness of the installation of the first locking block 4211 and the second locking block 4222.

[0189] The locking portion 4222B may include a second guide portion 4222B1 and a second locking portion 4222B2 , and the second guide portion 4222B1 and the second locking portion 4222B2 may be arranged along the second direction Y.

[0190] Combine Figure 18 and Figure 19 The second guide portion 4222B1 can be disposed between the second frame plate portion 4312B2 and the second frame plate portion 4312B2, so that the space between the first frame plate portion 4312B1 and the second frame plate portion 4312B2 can be used for assembly, thereby improving the compactness of the structure. The second locking portion 4222B2 can overlap the second frame plate portion 4312B2 along the first direction X. The second frame plate portion 4312B2 can support the second locking portion 4222B2, thereby reducing the possibility of the second locking portion 4222B2 being damaged in the form of bending, deformation, or breakage during the displacement of the second locking block 4222 in the second direction Y, thereby facilitating the service life of the second locking block 4222.

[0191] The dimension of the second frame plate portion 4312B2 in the first direction X can be smaller than the dimension of the first frame plate portion 4312B1 in the first direction X. In this way, after the second locking portion 4222B2 overlaps along the first direction X, the overall dimension of the combination of the second frame plate portion 4312B2 and the second locking portion 4222B2 in the first direction X can be relatively small, which can reduce the space occupied in the first direction X and help improve the structural compactness of the structure.

[0192] A second guide structure may also be provided between the second locking portion 4222B2 and the second frame plate portion 4312B2 to provide sliding guidance for the displacement of the first locking block 4211 in the second direction Y, thereby reducing the possibility of the first locking block 4211 moving in the third direction Y. The specific form of the second guide structure can be found in the aforementioned description of the first guide structure and will not be repeated here.

[0193] The second locking portion 4222B2 may be provided with a third unlocking surface 4222B21 at its end proximal to the platform 4110 in the second direction Y. The third unlocking surface 4222B21 may be arranged at an angle to the first direction X. In a specific application, when the synchronization block 4224 moves along the first direction X toward the second pressed position, the unlocking block 4221 may drive the second locking block 4222 to move to the second avoidance position via the third unlocking surface 4222B21.

[0194] The second guide post 4420 can include a second main column segment 4421 and a second insertion column segment 4422 arranged along the second direction Y. The second main column segment 4421 can be inserted into the first insertion portion 4312B11, and the second insertion column segment 4422 can be inserted into the second insertion portion 4312B21. The structures of the second main column segment 4421 and the second insertion column segment 4422, as well as related alternatives to the second guide post 4420, can all be referenced to the aforementioned description of the first guide post 4410 and will not be repeated here.

[0195] The second guide portion 4222B1 can form a sliding guide with the second guide post 4420, specifically with the second main column section 4421, to ensure the sliding directionality and stability of the second locking block 4222 along the second direction Y. When the second elastic member 4223 is a spring, the second elastic member 4223 can be externally mounted on the second guide post 4420. The second guide post 4420 can also guide the expansion and contraction deformation of the second elastic member 4223, thereby reducing radial movement of the second elastic member 4223 during expansion and contraction.

[0196] Combine Figure 17 The connecting portion 4222A may further be provided with a second avoidance notch 4222A1, which may avoid the first guide post 4410 and thus largely avoid installation interference between the connecting portion 4222A and the first guide post 4410. Figure 15 The aforementioned first elastic member 4212 can also be partially arranged in the second avoidance gap 4222A1, so as to utilize the second avoidance gap 4222A1 for integrated assembly, thereby greatly improving the structural compactness of the locking release unit 4200 in the embodiment of the present application.

[0197] In some implementations, the unlocking block 4221 may include a first unlocking portion 4221A and two second unlocking portions 4221B. The two second unlocking portions 4221B may be located on either side of the first unlocking portion 4221A in the third direction Z. The first unlocking portion 4221A can drive the first locking block 4211 to the first avoidance position. The two second unlocking portions 4221B can interact with the two locking portions 4222B to drive the second locking block 4222 to the second avoidance position.

[0198] The first unlocking portion 4221A may have a fourth unlocking surface 4221A1. The second unlocking portion 4221B may have a fifth unlocking surface 4221B1. Both the fourth unlocking surface 4221A1 and the fifth unlocking surface 4221B1 may be arranged at an angle to the first direction X. In a specific application, the first unlocking portion 4221A may drive the first locking block 4211 via the fourth unlocking surface 4221A1 to move the first locking block 4211 to the first avoidance position. When the platform 4110 moves from the first pressed position to the release position and the synchronization block 4224 moves from the second pressed position to the original position, the second unlocking portion 4221B may drive the second locking block 4222 via the fifth unlocking surface 4221B1 to move the second locking block 4222 to the second avoidance position.

[0199] The first unlocking portion 4221A may also be provided with a third relief notch 4221A2 to provide relief for the first support portion 4510, thereby largely avoiding installation interference between the unlocking block 4221 and the first support portion 4510. It is understood that the third relief notch 4221A2 is not a required feature and is specifically related to the installation positions of the unlocking block 4221 and the first support portion 4510.

[0200] The second unlocking portion 4221B may be provided with a first positioning column 4221C. The first positioning column 4221C is used to guide the displacement of the unlocking block 4221 in the first direction X, so as to ensure the directionality and stability of the displacement of the unlocking block 4221.

[0201] It should be understood that the above description of the specific structural forms of the second locking block 4222 and the unlocking block 4221 is primarily based on the accompanying drawings and is not intended to limit the scope of implementation of the electronic device 100 and the push-to-pop-up locking assembly 4000 provided in the embodiments of the present application. In other implementations of the embodiments of the present application, the second locking block 4222 and the unlocking block 4221 may also adopt other structural forms as long as they meet the requirements of use. For example, the second locking block 4222 may include only one second locking portion 4222B2. In this case, the second locking block 4222 and the first locking block 4211 may be arranged in the third direction Z. Accordingly, the number of second unlocking portions 4221B in the unlocking block 4221 may also be only one, thereby maintaining a relatively simple structure for both the second locking block 4222 and the unlocking block 4221. For another example, either the fourth unlocking surface 4221A1 or the second unlocking surface 4211B31 may be provided alternatively.

[0202] Please refer to Figures 19-22 , Figure 19 The connection structure diagram of the synchronization block and the unlock block; Figure 20 for Figure 19 A cross-sectional view perpendicular to the third direction; Figure 21 It is the connection structure diagram of the synchronization block and the installation section; Figure 22 for Figure 21 A cross-sectional view perpendicular to the third direction.

[0203] In some implementations, such as Figure 19 and Figure 20 As shown, the synchronization block 4224 may include a first plate portion 4224D, a second plate portion 4224E, and two end plate portions 4224F. The first plate portion 4224D and the second plate portion 4224E may be arranged relative to each other along a first direction X, and the two end plate portions 4224F may be arranged relative to each other along a third direction Z. The synchronization block 4224 may be an integrally formed, one-piece structure, such as an integral injection molding. Alternatively, at least some of the plate portions in the synchronization block 4224 may be prepared separately and then assembled by welding, bonding, clamping, riveting, screw connection, or other connection methods, which is also feasible.

[0204] In the first direction X, the first plate portion 4224D is spaced away from the base unit 4300 relative to the second plate portion 4224E. A receiving cavity 4224C may be formed between the first plate portion 4224D, the second plate portion 4224E, and the two end plate portions 4224F. The unlocking block 4221 may be at least partially disposed within this receiving cavity 4224C for integrated assembly with the synchronization block 4424. The first locking portion 4211B of the first locking block 4211 may also extend into this receiving cavity 4224C and may be located on the side of the first unlocking portion 4221A facing the base unit 4300, thereby fully utilizing the interior space of the receiving cavity 4224C for installation and further enhancing the compactness of the structure.

[0205] The second plate portion 4224E may be provided with a first positioning hole 4224E1. The first positioning post 4221C may be inserted into the first positioning hole 4224E1 and may slide within the first positioning hole 4224E1 to guide the displacement of the unlocking block 4221 along the first direction X. The third elastic member 4225 may be disposed between the second unlocking portion 4221B and the second plate portion 4224E. If the third elastic member 4225 is a spring, it may be mounted over the first positioning post 4221C. The first positioning post 4221C can guide the expansion and contraction of the third elastic member 4225, thereby reducing radial movement of the third elastic member 4225 during expansion and contraction.

[0206] Combine Figure 19 It can be seen that when the number of the second unlocking parts 4221B is two, the number of the first positioning columns 4221C can also be two. Through the positioning guidance of the two positioning columns 4221C, the stability of the unlocking block 4221 relative to the synchronization block 4224 in the first direction X can be greatly improved.

[0207] When the unlocking block 4221 is in the first position relative to the synchronization block 4224, the unlocking block 4221 can abut against the first plate portion 4224D along the first direction X. At this time, when the synchronization block 4224 moves from the initial position to the second pressed position, the unlocking block 4221 can move synchronously with the synchronization block 4224. When the unlocking block 4221 is in the second position relative to the synchronization block 4224, a gap can exist between the unlocking block 4221 and the first plate portion 4224D in the first direction X, allowing the third elastic member 4225 to accumulate relatively large elastic potential energy.

[0208] The first plate portion 4224D may also be provided with a first through-hole 4224D1, through which the first support portion 4510 may be inserted, so as to avoid the first support portion 4510 through the first through-hole 4224D1. Furthermore, the cooperation between the first support portion 4510 and the first through-hole 4224D1 may also guide the displacement of the synchronization block 4224 along the first direction X.

[0209] Similarly, the second plate portion 4224E is also provided with a second through hole 4224E2. Figure 21 The second support portion 4520 can be inserted into the second through hole 4224E2 so as to avoid the second support portion 4520. At the same time, the cooperation between the second support portion 4520 and the second through hole 4224E2 can also guide the displacement of the synchronization block 4224 along the first direction X.

[0210] The end plate portion 4224F may be provided with a third mounting hole 4224F1. Figure 22 The base unit 4300 may further include a mounting seat 4320 and a third fastener 4330. The mounting seat 4320 may be connected to the base 4311. The specific connection method may be, for example, bonding, snap-fitting, screw connection, riveting, welding, etc., which is not limited here, as long as it can meet the requirements of use; of course, the mounting seat 4320 and the base 4311 may also be an integrally formed one-piece structure. The end plate portion 4224F may be plugged into the mounting seat 4320 through the third mounting hole 4224F1. The third fastener 4330 may specifically be a screw, which may be connected to the mounting seat 4320. The head of the third fastener 4330 may stop and limit the end plate portion 4224D, thereby reducing the possibility of the synchronization block 4224 detaching from the mounting seat 4320. The plug-in cooperation between the third mounting hole 4224F1 and the mounting seat 4320 can guide the displacement of the synchronization block 4224 along the first direction X.

[0211] The end plate portion 4224F may also be provided with a lug portion 4224G. The lug portion 4224G and the end plate portion 4224F may also be integrally formed, such as by integral injection molding. Alternatively, the lug portion 4224G may be manufactured separately and then assembled with the end plate portion 4224F. Specific assembly methods, such as bonding, clamping, screw connection, riveting, welding, etc., are not limited here, as long as they meet the requirements of use.

[0212] The ear plate portion 4224G may be provided with a second positioning hole 4224G1. The seat bottom portion 4311 may be provided with a second positioning post 4311A. The second positioning post 4311A can be inserted into the second positioning hole 4224G1, thereby guiding the displacement of the synchronization block 4224 along the first direction X. The fourth elastic member 4226 may be specifically provided between the ear plate portion 4224G and the seat bottom portion 4311. Furthermore, when the fourth elastic member 4226 is a spring, the fourth elastic member 4226 may be fitted over the second positioning post 4311A. The second positioning post 4311A can guide the expansion and contraction deformation of the fourth elastic member 4226, thereby reducing radial movement of the fourth elastic member 4226 during expansion and contraction.

[0213] like Figure 22 As shown, in the second direction Y, the end of the synchronization block 4224 near the platform 4110 may be provided with a second guide groove 4224A extending along the first direction X. Furthermore, the synchronization block 4224 may also have an abutment portion 4224B, which may be located on a side of the second guide groove 4224A near the base unit 4300 along the first direction X. The first protrusion 4112 of the platform 4110 can be plugged into and assembled with the second guide groove 4224A along the first direction X. The plug-in fit between the first protrusion 4112 and the second guide groove 4224A can also guide the displacement of the platform 4110 along the first direction X. When the platform 4110 moves from the first locking position to the first pressed position, the first protrusion 4112 can abut against the abutment portion 4224B, thereby driving the synchronization block 4224 to move via the abutment portion 4224B. By driving the synchronization block 4224 via the first protrusion 4112, the possibility of displacement interference between the platform 4110 and other components can be reduced. This also helps reduce the size and weight of the platform 4110, thereby achieving a lightweight design for the electronic device 100 and reducing costs. It should be understood that in some other implementations of the present invention, the first protrusion 4112 may not be provided. In this case, the platform 4110 can directly drive the synchronization block 4224 via the platform body 4111.

[0214] The seat bottom 4311 may be provided with a fourth relief notch 4311B. When the synchronization block 4224 is in the second pressed position, at least a portion of the abutment portion 4224B may be located within the fourth relief notch 4311B, thereby providing relief for the abutment portion 4224B. This allows a portion of the travel of the synchronization block 4224 along the first direction X to overlap with the space occupied by the seat bottom 4311 in the first direction X, significantly enhancing the compactness of the structure and reducing the installation space occupied in the first direction X of the push-to-pop-up locking assembly 4000 provided in this embodiment of the present application.

[0215] It should be understood that the above description of the specific structural forms of the unlocking block 4221 and the synchronization block 4224 is primarily based on the accompanying drawings and is not intended to limit the scope of implementation of the electronic device 100 and the push-to-pop-up locking assembly 4000 provided in the embodiments of the present application. In other implementations of the embodiments of the present application, the unlocking block 4221 and the synchronization block 4224 may also adopt other structural forms. For example, the synchronization block 4224 may not include the lug portion 4224G, and accordingly, the base 4311 may not include the second positioning post 4311A. In this case, the structures of the synchronization block 4224 and the base 4311 can be relatively simple, and the fourth elastic member 4226 can be assembled into a sleeve on the mounting base 4320. For another example, the second guide groove 4224A may not be provided. In this case, the synchronization block 4224 may only be provided with the abutment portion 4224B to simplify the structure of the synchronization block 4224. For another example, the unlocking block 4221 may not be provided with the first positioning column 4221C, and accordingly, the second plate portion 4224E may not be provided with the first positioning hole 4224E1, and a rail-groove sliding fitting structure may be adopted between the unlocking block 4221 and the synchronization block 4224.

[0216] Please refer to Figure 23-Figure 32 , Figure 23 This is a diagram showing the relative positions of the platform and the first locking block before the functional module is pressed and installed; Figure 24 This is a diagram of the relative positions of the platform and the synchronization block before the functional module is pressed and installed; Figure 25 This is a diagram showing the relative positions of the platform and the first locking block when the functional module is pressed and installed; Figure 26 This is a diagram of the relative positions of the platform and the synchronization block when the functional module is pressed and installed; Figure 27 The figure is a relative position diagram of the platform, the unlocking block and the first locking block when the functional module is further pressed; Figure 28 The relative positions of the synchronization block, the unlocking block and the second locking block when the functional module is further pressed; Figure 29 This is a diagram showing the relative positions of the platform, the unlocking block, and the first locking block when the functional module is just ejected; Figure 30 This is a diagram showing the relative positions of the synchronization block, the unlocking block, and the second locking block when the functional module is just ejected; Figure 31 The diagram shows the relative positions of the synchronization block, unlocking block, second locking block and the platform when the functional module is fully ejected; Figure 32 This is a diagram of the relative positions of the platform, the unlocking block and the first locking block when the functional module is fully ejected.

[0217] In order to more clearly understand the working process of the push-type pop-up locking assembly 4000 provided in the embodiment of the present application, the following will also be combined with Figure 23-Figure 32 The stroke changes of each component in the push-type pop-up locking assembly 4000 provided in the embodiment of the present application at different stages are described.

[0218] like Figure 23 and Figure 24 As shown, when the camera module 3100 is in an elastically released state, that is, when no pressing force is applied to the camera module 3100, the platform 4110 may be in a released position. The platform 4110 is located on a side of the first locking block 4211 facing away from the base unit 4300 in the first direction X, and the first locking block 4211 is in a second locked position. The synchronization block 4224 is in an initial position, and there may be a gap between the platform 4110 and the abutment portion 4224B in the first direction X.

[0219] When a user applies a pressing force along the first direction X to the camera module 3100, the camera module 3100 can drive the platform 4110 to move toward the base unit 4300. During this process, the platform 4110 can interact with the first unlocking surface 4211B21 to drive the first locking block 4211 to move to the first avoidance position, allowing the platform 4110 to smoothly pass over the first locking block 4211 along the first direction X. At this point, the unlocking drive of the first locking block 4211 by the platform 4110 can be released, and the first locking block 4211 can be moved to the second locking position again.

[0220] Then, the user can release the pressure applied to the camera module 3100. Figure 25 and Figure 26 As shown, under the action of the elastic reset member 4120, the platform 4110 can be displaced to the second locking position, and the first locking block 4211 can abut against the platform 4110 along the first direction X to displace the camera module 3100 to the pressed locking state. Figure 26 As shown, the first protrusion 4112 abuts against the abutment portion 4224B, and there may also be a gap between the first protrusion 4112 and the abutment portion 4224B in the first direction X. In short, the first protrusion 4112 does not generate any force on the synchronization block 4224.

[0221] When the user applies a secondary pressing force along the second direction X to the camera module 3100, the camera module 3100 can drive the platform 4110 to continue to move toward the base unit 4300. During this process, the first protrusion 4112 can interact with the abutment portion 4224B to drive the synchronization block 4224 to move toward the base unit 4300. The unlocking block 4221 is in the first state position relative to the synchronization block 4224, so the unlocking block 4221 can move synchronously with the synchronization block 4224. The unlocking block 4221 can drive the first locking block 4211 to move to the first avoidance position, and the unlocking block 4221 can also drive the second locking block 4222 to move to the second avoidance position until the unlocking block 4221 can pass over the second locking block 4222 in the first direction X. At this time, as Figure 27 and Figure 28 As shown, the unlocking drive of the second locking block 4222 by the unlocking block 4221 can be released, and the second locking block 4222 can be displaced to the second locking position to stop the unlocking block 4221 in the first direction X. The platform 4110 can be in the first pressing position, the synchronization block 4224 can be in the second pressing position, and the abutment portion 4224B can at least partially extend into the fourth avoidance gap 4311B.

[0222] Then, the secondary pressing force applied by the user to the camera module 3100 can be released. Figure 29 and Figure 30 As shown, under the action of the elastic return member 4120 and the fourth elastic member 4226, the platform 4110 can be displaced toward the release position, and the synchronization block 4224 can be displaced toward the initial position. However, because the second lock block 4222 has not yet released its stop on the unlocking block 4221 in the first direction X, the unlocking block 4221 cannot be displaced synchronously with the synchronization block 4224. The unlocking block 4221 and the synchronization block 4224 can be displaced relative to each other, and the elastic deformation of the third elastic member 4225 can be increased. Precisely because the second lock block 4222 blocks the unlocking block 4221, the unlocking block 4221 can continuously control the first lock block 4211 in the first avoidance position, preventing the first lock block 4211 from blocking the platform 4110, allowing the platform 4110 to be smoothly displaced to the release position, thereby moving the camera module 3100 to the pop-up release state.

[0223] When the relative displacement between the unlocking block 4221 and the synchronization block 4224 reaches a certain level, the unlocking block 4221 can be in the second state position relative to the synchronization block 4224, and the third elastic member 4225 can accumulate relatively large elastic potential energy. The third elastic member 4225 can drive the second locking block 4222 to move to the second avoidance position again through the unlocking block 4221, thereby releasing the lock on the unlocking block 4221. Figure 31 and Figure 32 As shown, under the action of the third elastic member 4225, the unlocking block 4221 can return to the first state position relative to the synchronization block 4224. At the same time, the unlocking drive of the unlocking block 4221 for the first locking block 4211 and the second locking block 4222 is released, the first locking block 4211 can return to the first locking position, and the second locking block 4222 can return to the second locking position. The entire push-type pop-up locking assembly 4000 can return to the state before a pressing force is applied.

[0224] That is, in the embodiment of the present application, simply by applying two pressing forces to the camera module 3100, the camera module 3100 can be driven to move between the pressed lock state and the pop-up release state. This simple operation and strong interactivity can significantly enhance the user experience. The first locking block 4211, unlocking block 4221, second locking block 4222, and synchronization block 4224 in the lock-release unit 4200 are linked in a multi-stage manner, resulting in a compact structure and ingenious design. Without the heart-shaped slide grooves commonly found in related art, the travel of the platform 4110 in the first direction X can be relatively short, reducing installation space and adapting to use in scenarios where space in the first direction X is relatively small.

[0225] It should be understood that when the unlocking block 4221 is in the second state position relative to the synchronization block 4224, the second plate portion 4224E of the synchronization block 4224 can also abut against the unlocking block 4221 along the first direction X. At this time, even if the elastic potential energy accumulated by the third elastic member 4225 is not large enough, the synchronization block 4224 can also drive the unlocking block 4221 to overcome the limit lock of the second lock block 4222; in this implementation method, the function of the third elastic member 4225 is mainly to drive the unlocking block 4221 to reset relative to the synchronization block 4224.

[0226] Please refer to Figure 33-Figure 35 , Figure 33 This is a schematic structural diagram of a functional module of another electronic device provided in an embodiment of the present application in a first working mode; Figure 34 is a diagram showing the relative position of the functional module and the back cover in the first working mode; Figure 35 This is a diagram of the relative positions of the functional module and the back cover in the second working mode.

[0227] In some implementations, such as Figure 33-Figure 35 As shown, in the embodiment of the present application, the above-mentioned functional module 3000 can also be a heat dissipation module 3200.

[0228] The heat dissipation module 3200 can be specifically installed on the back cover 1100. In addition, the back cover 1100 can also be provided with a third support portion 1300. When the electronic device 100 provided in the embodiment of the present application is placed on a support surface such as a desktop, the third support portion 1300 can support the electronic device 100, so that a certain gap can be formed between the back cover 1100 and the support surface. This gap can serve as a heat dissipation gap to facilitate heat dissipation of the electronic device 100.

[0229] The heat dissipation module 3200 may include a heat dissipation base plate 3210 and a heat dissipation peripheral plate 3220. The heat dissipation base plate 3210 may be provided with a first heat dissipation hole 3211. The heat dissipation peripheral plate 3220 may be provided with a second heat dissipation hole 3221. The shapes of the first heat dissipation hole 3211 and the second heat dissipation hole 3221 are not limited and may be elongated, square, circular, or other special shapes.

[0230] In the first working mode, that is, when the heat dissipation module 3200 is in the pressed and locked state, Figure 34 As shown, the heat dissipation module 3200 can be pressed into the housing 1000, the second heat dissipation hole 3221 can be in a hidden state, and the first heat dissipation hole 3211 can be in an exposed state, and the heat dissipation module 3200 can dissipate heat through the first heat dissipation hole 3211. In the second working mode, that is, when the heat dissipation module 3200 is in a pop-up release state, as shown in FIG. Figure 35 As shown, a portion of the heat dissipation module 3200 can pop out relative to the shell 1000, and the first heat dissipation hole 3211 and the second heat dissipation hole 3221 can both be in an exposed state. The heat dissipation module 3200 can dissipate heat through the first heat dissipation hole 3211 and the second heat dissipation hole 3221 at the same time, which can achieve the technical effect of enhancing heat dissipation.

[0231] That is, by pressing the heat dissipation module 3200 , the working mode of the heat dissipation module 3200 can be adjusted, and the heat dissipation efficiency of the heat dissipation module 3200 can be adjusted to meet the heat dissipation requirements of the electronic device 100 in different situations.

[0232] Please refer to Figure 36 and Figure 37 , Figure 36 This is a schematic structural diagram of a functional module of another electronic device provided in an embodiment of the present application in a first working mode; Figure 37 This is a structural diagram of a functional module of another electronic device provided in an embodiment of the present application in a second working mode.

[0233] In some implementations, such as Figure 36 and Figure 37 As shown, in the embodiment of the present application, the functional module 3000 may also be a sound output module 3300 , and the sound output module 3300 may be specifically installed in the housing 1000 .

[0234] The sound module 3300 may include a first sound outlet 3310 and a second sound outlet 3320. In a first operating mode, i.e., when the sound module 3300 is in a push-lock state, the sound module 3300 may be pressed into the housing 1000, the second sound outlet 3320 may be concealed, and the first sound outlet 3310 may be exposed. The sound module 3300 primarily emits sound through the first sound outlet 3310. In a second operating mode, i.e., when the sound module 3300 is in a pop-up release state, a portion of the sound module 3300 may be ejected relative to the housing 1000, and both the first sound outlet 3310 and the second sound outlet 3320 may be exposed. The sound module 3300 can emit sound simultaneously through the first sound outlet 3310 and the second sound outlet 3320, thereby emitting sound from multiple different locations. This enhances the sound effect and improves the sound quality, thereby achieving a surround sound effect.

[0235] That is, by pressing the sound module 3300 , the working mode of the sound module 3300 can be adjusted, and then the sound output position of the sound module 3300 can be adjusted to meet the sound playback requirements of the electronic device 100 in different situations.

[0236] In addition to the aforementioned camera module 3100 , heat dissipation module 3200 , and sound output module 3300 , the functional module 3000 in the embodiment of the present application may also be other structural modules, such as a subscriber identity module (SIM) card module, etc., which is not limited here.

[0237] The above is only a preferred embodiment of the present application. It should be pointed out that for ordinary technicians in this technical field, several improvements and modifications can be made without departing from the principles of the present application. These improvements and modifications should also be regarded as the scope of protection of the present application.

Claims

1. A push-to-pop-up locking assembly, characterized in that: The mounting platform unit comprises a mounting platform unit and at least one locking and releasing unit, wherein the mounting platform unit comprises a platform body and an elastic reset member, wherein the platform body can be displaced in a first direction to switch between a release position, a first locking position and a first pressing position, and the elastic reset member can drive the platform body to be displaced toward the release position; The locking and releasing unit includes a locking mechanism and an unlocking mechanism; The locking mechanism includes a first locking block and a first elastic member; the first locking block is capable of being displaced in a second direction to switch between a second locking position and a first avoidance position, the second direction being arranged at an angle to the first direction; when the platform is displaced from the release position to the first locking position, the platform is capable of driving the first locking block to be displaced to the first avoidance position; When the platform is located at the first locking position, the first elastic member can drive the first locking block to move to the second locking position, and the first locking block can stop the platform along the first direction; The unlocking mechanism includes an unlocking block, and when the platform body moves from the first locking position to the first pressing position, the platform body can drive the unlocking block to move along the first direction, and the unlocking block can drive the first locking block to move to the first avoidance position; The unlocking mechanism also includes a second locking block and a second elastic member; the second locking block can be displaced along the second direction to switch between the third locking position and the second avoidance position, and the second elastic member can drive the second locking block to move toward the third locking position; when the platform body is displaced from the first locking position to the first pressed position, the unlocking block can also drive the second locking block to move to the second avoidance position; when the platform body is displaced to the first pressed position, the second locking block is in the third locking position, and the second locking block can stop the unlocking block along the first direction.

2. The push-to-pop-up locking assembly according to claim 1, wherein: The unlocking mechanism further includes a synchronization block, a third elastic member and a fourth elastic member; The unlocking block is slidably assembled on the synchronization block along the first direction to switch between a first state position and a second state position relative to the synchronization block, and the third elastic member is provided between the unlocking block and the synchronization block; the synchronization block is capable of displacing along the first direction to switch between an initial position and a second pressed position, and the fourth elastic member is capable of driving the synchronization block to displace toward the initial position; When the synchronization block is in the initial position, the unlocking block is in the first state position, and the unlocking block can abut against the synchronization block along the first direction; When the platform body is displaced from the first locking position to the first pressed position, the platform body can drive the synchronization block to be displaced toward the second pressed position, and the unlocking block and the synchronization block can be displaced synchronously; when the unlocking block is switched from the first state position to the second state position relative to the synchronization block, the elastic deformation of the third elastic member increases, and the third elastic member can drive the second locking block to be displaced to the second avoidance position through the unlocking block.

3. The push-to-pop-up locking assembly according to claim 2, wherein: The platform includes a platform body and a first protrusion, wherein the first protrusion is provided on an outer edge of the platform body, and the first protrusion can drive the synchronization block to move toward the second pressing position.

4. The push-to-pop-up locking assembly according to claim 3, wherein: In the second direction, the end of the synchronization block close to the platform is provided with a second guide groove extending along the first direction; The synchronization block further has an abutment portion, which is located on one side of the second guide groove in the first direction. The first protrusion can be plugged and assembled in the second guide groove along the first direction, and the first protrusion can drive the synchronization block to move through the abutment portion.

5. The push-to-pop-up locking assembly according to claim 3, wherein: The platform body further includes a second protrusion, which is also arranged on the outer edge of the platform body. The second protrusion can drive the first locking block to move toward the first avoidance position.

6. The push-to-pop-up locking assembly according to any one of claims 1 to 5, characterized in that: The second locking block includes a connecting portion and two locking portions, the two locking portions are arranged at intervals along the third direction, the connecting portion is located between the two locking portions, the third direction and the first direction and the second direction are all arranged at an angle, and a part of the first locking block is also located between the two locking portions.

7. The push-to-pop-up locking assembly according to claim 6, wherein: The unlocking block includes a first unlocking portion and two second unlocking portions, the two second unlocking portions are respectively located on both sides of the first unlocking portion in the third direction, the first unlocking portion can drive the first locking block to move to the first avoidance position, the two second unlocking portions can respectively interact with the two locking portions, and the two second unlocking portions can drive the second locking block to move to the second avoidance position.

8. The push-to-pop-up locking assembly according to any one of claims 1 to 5, characterized in that: It also includes a base unit, the mounting platform unit and the locking release unit are both mounted on the base unit, and the push-type pop-up locking assembly can be installed and fixed through the base unit.

9. The push-to-pop-up locking assembly according to claim 8, wherein: The base unit includes a seat bottom and a seat periphery, the seat periphery is provided with a guide fitting, the platform is provided with a guide, and the guide can be slidably assembled on the guide fitting along the first direction.

10. The push-to-pop-up locking assembly according to claim 8, wherein: The base unit includes a seat bottom and a seat periphery, the seat periphery includes an installation section, the first locking block and the second locking block are at least partially arranged in the installation section, and the first elastic member and the second elastic member are also arranged in the installation section.

11. The push-to-pop-up locking assembly according to claim 10, wherein: The installation section includes a first frame plate portion and a second frame plate portion spaced apart along the second direction, the second frame plate portion being closer to the platform relative to the first frame plate portion; The first locking block includes a first guide portion and a first locking portion, the first guide portion is arranged between the first frame plate portion and the second frame plate portion, and the first locking portion overlaps the second frame plate portion along the first direction; the second locking block includes a second guide portion and a second locking portion, the second guide portion is arranged between the second frame plate portion and the second frame plate portion, and the second locking portion overlaps the second frame plate portion along the first direction.

12. The push-to-pop-up locking assembly according to claim 11, wherein: A dimension of the second frame plate portion in the first direction is smaller than a dimension of the first frame plate portion in the first direction.

13. The push-to-pop-up locking assembly according to claim 11, wherein: It also includes a guide unit, which includes a first guide column and a second guide column, the first guide column and the second guide column are both at least partially arranged in the installation section, the first guide portion and the first guide column slide together in the second direction, and the second guide portion and the second guide column slide together in the second direction.

14. The push-to-pop-up locking assembly according to claim 13, wherein: The first guide column and the second guide column both include a main column section and an inserted column section, the main column section and the inserted column section are arranged along the second direction, the area of ​​the cross section of the inserted column section perpendicular to the axial direction is smaller than the area of ​​the cross section of the main column section perpendicular to the axial direction, the second frame plate portion is provided with a second insertion portion, the inner peripheral contour of the second insertion portion is adapted to the outer peripheral contour of the inserted column section, and the inserted column section is inserted into the second insertion portion.

15. The push-to-pop-up locking assembly according to claim 13, wherein: The guide unit further includes a base plate, the first guide column and the second guide column are both connected to the base plate, and the base plate is connected to the first frame plate portion.

16. The push-to-pop-up locking assembly according to claim 11, wherein: It also includes a support unit, which includes a first support part and a second support part, the first support part and the second support part are respectively located on both sides of the first locking part in the first direction, and the first support part and the second support part can both abut against the first locking part along the first direction.

17. The push-to-pop-up locking assembly according to any one of claims 1 to 5, characterized in that: The first locking block is provided with a first unlocking surface and a second unlocking surface, the first unlocking surface and the second unlocking surface are both arranged at an angle to the first direction, the first unlocking surface and the second unlocking surface are spaced apart along the second direction, and the first unlocking surface is closer to the platform than the second unlocking surface; The platform can drive the first locking block to move toward the first avoidance position through the first unlocking surface, and the unlocking block can drive the first locking block to move toward the first avoidance position through the second unlocking surface.

18. An electronic device, characterized in that: The device comprises a shell, a functional module and a push-type pop-up locking assembly, wherein the push-type pop-up locking assembly is the push-type pop-up locking assembly according to any one of claims 1 to 17, and the functional module can be installed on the platform.

19. The electronic device according to claim 18, characterized in that: The functional module has a first working mode and a second working mode. In the first working mode, the platform is in the first locking position. In the second working mode, the platform is in the releasing position.

20. The electronic device according to claim 19, characterized in that: The functional module is a camera module, and the functional module further has a third working mode. In the third working mode, the camera module and the platform are separated, and the camera module is installed in the housing.

21. The electronic device according to claim 19, characterized in that: The functional module is a camera module, and the functional module further has a fourth working mode. In the fourth working mode, the camera module and the platform are separated, and the camera module and the shell are independent of each other.

22. The electronic device according to claim 19, characterized in that: The functional module is a heat dissipation module, which includes a heat dissipation base plate and a heat dissipation peripheral plate. The heat dissipation base plate is provided with a first heat dissipation hole, and the heat dissipation peripheral plate is provided with a second heat dissipation hole. In the first working mode, the first heat dissipation hole is in an exposed state, and the second heat dissipation hole is in a hidden state; In the second operating mode, both the first heat dissipation hole and the second heat dissipation hole are in an exposed state.

23. The electronic device according to claim 19, characterized in that: The functional module is a sound output module, which includes a first sound output hole and a second sound output hole. In the first working mode, the first sound output hole is in an exposed state and the second sound output hole is in a hidden state. In the second working mode, both the first sound output hole and the second sound output hole are in an exposed state.

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