A storage mechanism and electronic device

By designing a storage mechanism that utilizes sliders and connecting rods to store and retrieve the camera module, the problem of the camera module affecting the screen ratio is solved, thus achieving a thinner laptop and improved user experience.

CN118795983BActive Publication Date: 2025-11-28HONOR DEVICE CO LTD
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Patent Information

Application Number
CN202410685706.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-05-29
Publication Date
2025-11-28
Estimated Expiration
2044-05-29

AI Technical Summary

Technical Problem

The camera module of existing laptops is located on the bezel of the display area, which affects the reduction of the bezel size, resulting in a lower screen-to-body ratio and a poor user experience.

Method used

Design a storage mechanism including a base, a slider, and a connecting rod. The camera module can be stored and retrieved by sliding the slider. The design of the slider and connecting rod does not increase the thickness of the base. The structure of the groove and connecting rod ensures unidirectional movement of the slider, thereby improving the structural reliability.

Benefits of technology

It increases the screen-to-body ratio, reduces the thickness of electronic devices, and improves user experience and structural reliability.

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Abstract

The application provides a storage mechanism and an electronic device, and relates to the technical field of terminal devices. The application is used to solve the problem that the camera module of an electronic device affects the reduction of the size of a frame and reduces the user experience. The storage mechanism comprises a base, a sliding block and a connecting rod. The base has a first wall plate, the first wall plate is provided with an opening, and the base is provided with a sliding groove on the side away from the first wall plate. The sliding groove is provided with a first fixed point and a second fixed point. The sliding block is arranged at the opening, and an electronic device is detachably connected with the sliding block. The sliding block can slide relative to the base in the direction of approaching or moving away from the first wall plate between a first position and a second position. The connecting rod has a fixed end and a sliding end. The fixed end is connected with the sliding block, and the sliding end extends into the sliding groove. In the case that the sliding block is located at the first position, the electronic device is located outside the opening, and the sliding end is located at the first fixed point. In the case that the sliding block is located at the second position, the electronic device is located inside the opening, and the sliding end is located at the second fixed point.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of terminal equipment, in particular to a storage mechanism and electronic equipment. BACKGROUND

[0002] With the development of technology, users have higher and higher requirements for electronic equipment. For example, users have higher and higher requirements for the screen-to-body ratio and narrow frame of a notebook computer. However, the display part of the notebook computer is provided with a camera module, which is arranged on the frame of the display part, thereby affecting the reduction of the frame size of the display part and reducing the user experience. SUMMARY

[0003] Embodiments of the present application provide a storage mechanism and electronic equipment, which are used to solve the problem that the camera module of the electronic equipment affects the reduction of the frame size, affects the screen-to-body ratio, and reduces the user experience.

[0004] To achieve the above object, embodiments of the present application adopt the following technical solutions:

[0005] In a first aspect, a storage mechanism is provided, which is used to store electronic devices. The storage mechanism comprises a base, a sliding block, and a connecting rod. The base has a first wall plate, and an opening is arranged on the first wall plate. The base is provided with a sliding groove on a side away from the first wall plate, and the sliding groove has a first fixed point and a second fixed point. The sliding block is arranged at the opening, and the electronic device is detachably connected with the sliding block. The sliding block can slide relative to the base in a direction close to or away from the first wall plate between a first position and a second position. The connecting rod has a fixed end and a sliding end. The fixed end is connected with the sliding block, and the sliding end extends into the sliding groove. In the case that the sliding block is located at the first position, at least part of the electronic device is located outside the opening, and the sliding end is located at the first fixed point. In the case that the sliding block is located at the second position, the electronic device is located in the opening, and the sliding end is located at the second fixed point.

[0006] The storage mechanism provided by the first aspect of the present application is used to store electronic devices (for example, the electronic device can be a camera module, a microphone, or an external hard disk, etc.). The electronic device is detachably connected with the sliding block. Therefore, the opening controls the sliding of the sliding block, and the storage and taking-out use of the electronic device can be realized. In the case that the electronic device is a camera module, the screen-to-body ratio of the electronic equipment is improved, thereby improving the user experience.

[0007] And, the sliding groove of the storage mechanism is arranged on the base, the fixed end of the connecting rod is connected with the sliding block, the sliding block is arranged at the opening of the first wall plate, that is, along the thickness direction of the storage mechanism, the thickness dimension of the sliding block is less than the opening width of the first wall plate, that is, less than the thickness dimension of the base. The fixed end of the connecting rod is connected with the sliding block, and the thickness dimension of the base cannot be further increased. Therefore, the storage mechanism provided by the embodiment of the present application is more conducive to reducing the thickness dimension, thereby being conducive to reducing the thickness dimension of the electronic device and being conducive to the thinning of the electronic device.

[0008] In a possible implementation of the first aspect of the present application, the sliding groove comprises a first sliding section and a second sliding section, and both the first sliding section and the second sliding section are located between the first fixed point and the second fixed point. In the process that the sliding block slides from the first position to the second position, the sliding end slides along the first sliding section from the first fixed point to the second fixed point; in the process that the sliding block slides from the second position to the first position, the sliding end slides along the second sliding section from the second fixed point to the first fixed point. In this structure, when the sliding block moves to different positions, the sliding end of the connecting rod slides along different paths, so that the sliding end can be prevented from repeatedly moving in the sliding groove, and the reliability of the overall structure is improved.

[0009] In a possible implementation of the first aspect of the present application, along the distribution direction of the connecting rod and the base, the distance between the bottom surface of the end of the first sliding section close to the first fixed point and the connecting rod is greater than the distance between the bottom surface of the end of the second sliding section close to the first fixed point and the connecting rod. In this way, a step structure is formed between the end of the first sliding section and the end of the second sliding section, and the bottom surface of the end of the second sliding section is higher than the bottom surface of the end of the first sliding section. Therefore, in the process that the sliding block moves from the first position to the second position, the sliding end of the connecting rod can only slide along the first sliding section, and the reliability of the overall structure is improved.

[0010] In a possible implementation of the first aspect of the present application, the sliding groove further comprises a third sliding section, a first end of the third sliding section is in communication with the end of the first sliding section, and a second end of the third sliding section is in communication with the second fixed point; along the distribution direction of the connecting rod and the base, the distance between the bottom surface of the end of the first sliding section away from the first fixed point and the connecting rod is less than the distance between the bottom surface of the third sliding section and the connecting rod. In this way, a step structure is formed between the end of the first sliding section and the end of the third sliding section, and the bottom surface of the end of the first sliding section is higher than the bottom surface of the end of the third sliding section. Therefore, after the sliding end of the connecting rod enters the third sliding section, the sliding end cannot enter the first sliding section again, so that the sliding end can smoothly slide to the second fixed point, and the reliability of the overall structure is further improved.

[0011] In a possible implementation of the first aspect of the present application, the third sliding section extends in a direction away from the first fixed point along a direction from the first end of the third sliding section to the second end of the third sliding section. In this structure, when the sliding end of the connecting rod is at the second fixed point, the inner wall of the third sliding section can form a limit, so that the connecting rod and the sliding block can be kept at the second position.

[0012] In a possible implementation of the first aspect of the present application, the distance between the bottom surface of the second fixed point and the connecting rod is greater than the distance between the bottom surface of the third sliding section and the connecting rod along the distribution direction of the connecting rod and the base. In this way, a step structure is formed between the end of the second fixed section and the end of the third sliding section, and the bottom surface of the end of the third sliding section is higher than the bottom surface of the second fixed point. Therefore, after the sliding end of the connecting rod slides to the second fixed point, it cannot slide to the third sliding section any more, which is beneficial to further improve the reliability of the overall structure.

[0013] In a possible implementation of the first aspect of the present application, the sliding groove further comprises a fourth sliding section, the first end of the fourth sliding section is in communication with the second fixed point, and the second end of the fourth sliding section is in communication with the end of the second sliding section. The fourth sliding section extends in a direction away from the first fixed point along a direction from the first end of the fourth sliding section to the second end of the fourth sliding section. In this structure, the third sliding section and the fourth sliding section form an approximately V-shaped structure, and the second fixed point is the vertex of the V-shaped structure, so that the sliding end of the connecting rod can stay at the second fixed point, that is, the sliding block can be kept at the second position.

[0014] In a possible implementation of the first aspect of the present application, the distance between the bottom surface of the second end of the fourth sliding section and the connecting rod is less than the distance between the bottom surface of the end of the second sliding section in communication with the fourth sliding section and the connecting rod along the distribution direction of the connecting rod and the base. In this way, a step structure is formed between the end of the fourth sliding section and the end of the second sliding section, and the bottom surface of the end of the fourth sliding section is higher than the bottom surface of the end of the second sliding section. Therefore, after the sliding end of the connecting rod slides into the second sliding section, it cannot slide to the fourth sliding section any more, but can only slide to the first fixed point along the second sliding section, so that the reliability of the overall structure can be further improved.

[0015] Therefore, the sliding groove provided by the embodiments of the present application can enable the sliding end of the connecting rod to move in a single direction, that is, to slide from the first fixed point to the third sliding section along the first sliding section, to slide from the third sliding section to the second fixed point, to slide from the second fixed point to the second sliding section along the fourth sliding section, and to slide from the second sliding section to the first fixed point. Therefore, the sliding end of the connecting rod can be prevented from repeatedly moving in a certain area, that is, the electronic device can be stowed or popped out by pressing the electronic device once, which is beneficial to improve the reliability of the overall structure and thus improve the user experience.

[0016] In a possible implementation of the first aspect of the present application, the distance between the bottom surface of the fourth sliding section and the connecting rod gradually decreases from the first end of the fourth sliding section to the second end of the fourth sliding section along the distribution direction of the connecting rod and the base. In this structure, the bottom surface of the fourth sliding section forms an inclined rising structure, which can limit the sliding end of the connecting rod, thereby reducing the risk that the sliding end of the connecting rod directly slides into the second sliding section due to inertia after entering the second fixed point.

[0017] In a possible implementation of the first aspect of the present application, the side wall of the fourth sliding section away from the first fixed point is a circular arc surface, and the circular arc surface protrudes toward the first fixed point. In this structure, during the process that the sliding end of the connecting rod slides into the second sliding section from the second fixed point along the fourth sliding section, the movement distance of the sliding end of the connecting rod can be reduced, thereby reducing the distance that the user presses the electronic device inward, which is conducive to reducing the difficulty of the electronic device popping out and improving the user experience.

[0018] In a possible implementation of the first aspect of the present application, the base includes a base plate and a first wall plate, the base plate is fixedly connected with the first wall plate, the sliding groove is arranged on the side of the base plate away from the first wall plate, and the sliding channel is arranged on the base plate. The sliding block includes a sliding part and a limiting part, the limiting part is fixed on the sliding part, the electronic device is detachably connected with the sliding part, and the fixed end of the connecting rod is connected with the sliding part. The sliding part is arranged in a stack with the base plate, the limiting part is arranged in the sliding channel and can slide along the sliding channel. In this way, during the sliding process of the sliding block relative to the base, the limiting part can be limited by the inner wall of the sliding channel to reduce the risk of deviation of the sliding block from the sliding direction.

[0019] In a possible implementation of the first aspect of the present application, the base further includes a base table, the base table is fixed on the base plate and located at the end of the sliding channel away from the first wall plate, and the sliding groove is arranged on the base table. In this structure, the base table is arranged at the end of the sliding channel away from the first wall plate, and the base table can be fixedly connected with the base plate, for example, by adhesion, welding, clamping or threaded connection, or the base table can be integrally formed with the base plate.

[0020] In a possible implementation of the first aspect of the present application, the limiting part is provided with a avoiding gap, and the base table extends into the avoiding gap when the sliding block is located at the second position. In this structure, the sliding block can avoid collision with the base table during movement, which is conducive to improving the reliability of the overall structure.

[0021] In a possible implementation of the first aspect of the present application, the receiving mechanism further includes a cover plate, and the cover plate is buckled on the surface of the base table on which the sliding groove is arranged. In this structure, the sliding end of the connecting rod is located between the cover plate and the base table, thereby avoiding disengagement of the connecting rod from the base table during movement, and further improving the structural reliability.

[0022] In a possible implementation of the first aspect of the present application, the base station includes a first part and a second part, the first part is fixedly connected with the base plate, the second part is fixed on the first part, the sliding groove is arranged on the second part, and the material of the second part includes a PA material (Polyamide, also known as Nylon material) or a POM material (Polyformaldehyde). In this way, since such materials have good mechanical properties, wear resistance and the like, the wear resistance of the second part can be improved, and such materials have a smooth surface, that is, have a self-lubricating effect, thereby reducing the friction of the sliding end of the connecting rod when sliding in the sliding groove, so that the electronic device is easier to store or take out.

[0023] In a possible implementation of the first aspect of the present application, the base further includes a limiting plate, the limiting plate is fixed on the side of the base plate away from the limiting part, and the limiting part and the limiting plate are arranged in layers. In this way, the limiting part of the sliding block is located between the limiting plate and the base plate, thereby limiting the sliding block in the thickness direction of the storage mechanism, avoiding the end of the limiting part of the sliding block away from the sliding part from being warped in the thickness direction of the storage mechanism during movement, thereby ensuring the normal movement of the sliding block between the first position and the second position.

[0024] In a possible implementation of the first aspect of the present application, the storage mechanism further includes a limiting sheet, the limiting sheet is arranged on the sliding part, and the fixed end of the connecting rod is located between the limiting sheet and the sliding part. In this structure, the fixed end of the connecting rod can be limited to avoid separation of the fixed end of the connecting rod from the sliding block.

[0025] In a possible implementation of the first aspect of the present application, the limiting sheet is provided with positioning holes on both sides, the sliding part is provided with a positioning protrusion, and the positioning protrusion extends into the corresponding positioning hole. In this structure, the installation accuracy of the limiting sheet can be improved.

[0026] In a possible implementation of the first aspect of the present application, the storage mechanism further includes a guide rod, the guide rod is fixed on the base, the sliding block is provided with a guide hole, and the guide rod passes through the guide hole. In this structure, the sliding block can slide along the axial direction of the guide rod, thereby further reducing the risk of deviation of the sliding direction of the sliding block during movement.

[0027] In addition, the cross sections of the guide rod and the guide hole can be circular. Alternatively, the guide hole can be elliptical, and the guide rod can be circular, for example, the short side of the ellipse is parallel to the thickness direction of the storage mechanism, so that the limiting in the thickness direction of the storage mechanism can be formed to reduce the risk of relative rotation between the sliding block and the guide rod.

[0028] The cross-sectional shape of the guide hole and the guide rod can also adopt other possible shapes, for example, the cross-section of the guide hole and the guide rod is in the shape of an ellipse, a regular polygon or an irregular polygon, etc.

[0029] In a possible implementation of the first aspect of the present application, the receiving mechanism further comprises an elastic member, the elastic member is sleeved on the guide rod, and the sliding block compresses the elastic member when the sliding block is in the second position. In this way, when the sliding block moves from the second position to the first position, the electronic device is pushed out by the elastic force of the elastic member, which is beneficial to reduce the difficulty of taking out the electronic device.

[0030] In a possible implementation of the first aspect of the present application, two guide rods are arranged on the two sides of the sliding block along the sliding direction of the sliding block.

[0031] In a possible implementation of the first aspect of the present application, a metal block is arranged on one of the sliding block and the electronic device, a first magnetic member is arranged on the other of the sliding block and the electronic device, and the sliding block and the electronic device are connected by the metal block and the first magnetic member. That is, the electronic device and the sliding block are connected by adsorption, and an external force can separate them, and the electronic device can be adsorbed to the sliding block.

[0032] In a possible implementation of the first aspect of the present application, the receiving mechanism further comprises a detection assembly, which is used to detect whether the sliding block is in the second position.

[0033] In a possible implementation of the first aspect of the present application, the detection assembly comprises a second magnetic member and a Hall device, one of the second magnetic member and the Hall device is arranged on the sliding block, and the other of the second magnetic member and the Hall device is arranged on the base. When the sliding block is in the second position, the second magnetic member and the Hall device are arranged opposite to each other. In this structure, the change of the magnetic flux can be detected by the Hall device to determine whether the electronic device is received.

[0034] Alternatively, the detection assembly can also adopt an infrared receiver and an infrared emitter, one of the infrared emitter and the infrared receiver is arranged on the sliding block, and the other of the infrared emitter and the infrared receiver is arranged on the base. When the sliding block is in the second position, the infrared receiver can receive the infrared signal emitted by the infrared emitter to determine whether the sliding block is in the second position.

[0035] In a possible implementation of the first aspect of the present application, the material of the first wall plate comprises a PA material or a POM material. In this way, the wear of the electronic device can be reduced, which is beneficial to prolong the service life.

[0036] In a possible implementation of the first aspect of the present application, the base is in an integral molding structure.

[0037] Secondly, an electronic device is provided, comprising a housing, a storage mechanism, and electronic components. A storage opening is provided on the side wall of the housing. The storage mechanism is as described in any of the above technical solutions, and is disposed within the storage opening; the base of the storage mechanism is fixedly connected to the housing. The electronic components are detachably connected to the slider of the storage mechanism.

[0038] The electronic device provided in the second aspect of this application, by including the storage mechanism of any of the above technical solutions, is able to solve the same technical problem and achieve the same technical effect.

[0039] In one possible implementation of the second aspect of this application, the outer casing includes a first casing and a second casing, the first casing and the second casing are hinged together, and a storage opening is provided on the second casing.

[0040] In one possible implementation of the second aspect of this application, the electronic device further includes a display screen and a keyboard, with the display screen disposed in the first housing and the keyboard disposed in the second housing.

[0041] In one possible implementation of the second aspect of this application, the electronic device includes a camera module. Attached Figure Description

[0042] Figure 1 This is a structural diagram of an electronic device (in an open state) provided in an embodiment of this application;

[0043] Figure 2 This is a structural diagram of the electronic device (in a folded state) provided in an embodiment of this application;

[0044] Figure 3 for Figure 1 Enlarged view of the structure of region A;

[0045] Figure 4 An exploded view of another electronic device provided in the embodiments of this application;

[0046] Figure 5 for Figure 4 The provided structural diagram of the electronic device;

[0047] Figure 6 for Figure 4 and Figure 5 A structural diagram of the provided electronic device when the camera module pops out;

[0048] Figure 7 for Figure 6 A structural diagram of the provided electronic device after the camera module has been removed and it is in use.

[0049] Figure 8 An exploded view of the storage mechanism provided in the embodiments of this application;

[0050] Figure 9 Structure diagram of the receiving mechanism provided by the embodiment of the present application;

[0051] Figure 10 Structure diagram of the relative position between the slider of the receiving mechanism provided by the embodiment of the present application and the camera module when the slider is in the first position; Figure 9

[0052] Figure 11 Structure diagram of the relative position between the slider of the receiving mechanism provided by the embodiment of the present application and the camera module when the slider is in the second position; Figure 9

[0053] Figure 12 Enlarged structure diagram of the fixed hole on the fixed end of the connecting rod and the slider provided by the embodiment of the present application;

[0054] Figure 13 Structure diagram of the sliding end of the connecting rod provided by the embodiment of the present application when the sliding end is at the first fixed point of the sliding groove;

[0055] Figure 14 Structure diagram of another perspective of the embodiment of the present application; Figure 13

[0056] Figure 15 Structure diagram of the sliding end of the connecting rod provided by the embodiment of the present application when the sliding end is at one end of the first sliding section away from the first fixed end;

[0057] Figure 16 Structure diagram of the sliding end of the connecting rod provided by the embodiment of the present application when the sliding end is at one end of the third sliding section away from the second fixed point;

[0058] Figure 17 Structure diagram of the sliding end of the connecting rod provided by the embodiment of the present application when the sliding end is at one end of the third sliding section close to the second fixed point;

[0059] Figure 18 Structure diagram of the sliding end of the connecting rod provided by the embodiment of the present application when the sliding end is at the second fixed point;

[0060] Figure 19 Top view of the base provided by the embodiment of the present application; Figure 18

[0061] A-A partial sectional view of the embodiment of the present application; Figure 20 Figure 19 Structure diagram of another sliding groove provided by the embodiment of the present application;

[0062] Figure 21 Structure diagram of another receiving mechanism provided by the embodiment of the present application;

[0063] Figure 22

[0064] ​​​​​Figure 23 An exploded view of the slider, cover plate, limiting sheet and connecting rod provided for the embodiment of the present application;

[0065] Figure 24 An exploded view of the base provided for the embodiment of the present application;

[0066] Figure 25 A structural view of the slider provided for the embodiment of the present application;

[0067] Figure 26 A structural view of another storage mechanism (the slider is located at the second position) provided for the embodiment of the present application;

[0068] Figure 27 A B-B sectional view of Figure 26 ;

[0069] Figure 28 A C-C sectional view of Figure 26 ;

[0070] Figure 29 A D-D sectional view of Figure 26 ;

[0071] Figure 30 An exploded view of a camera module and a slider provided for the embodiment of the present application;

[0072] Figure 31 An E-E sectional view of Figure 26 .

[0073] Label: 01-electronic device; 10-display part; 11-display screen; 12-first shell; 12a-border area; 12b-light transmission hole; 20-keyboard part; 21-keyboard; 22-second shell; 22a-receiving opening; 30-hinge assembly; 40-camera module; 41-body; 42-positioning part; 43-first magnetic part; 50-receiving mechanism; 51-base; 100-first wall plate; 110-opening; 200-substrate; 210-slide; 220-limiting plate; 230-Hall device; 300-abutment; 310-slotted; 311-first fixed point; 312-second fixed point; 313-first sliding section; 314-second sliding section; 315-third sliding section; 315a-first connecting point; 315b-second connecting point; 316-fourth sliding section; 316a-third connecting point; 316b-first side wall; 320-first part; 330-second part; 52-sliding block; 400-sliding part; 410-fixing hole; 420-positioning protrusion; 430-positioning groove; 440-metal block; 450-second magnetic part; 500-limiting part; 600-sleeve; 610-guiding hole; 53-connecting rod; 53a-fixed end; 53b-sliding end; 54-guiding rod; 55-elastic part; 56-cover plate; 57-limiting sheet; 57a-first area; 57b-second area; 57c-positioning hole. DETAILED DESCRIPTION

[0074] The technical solutions in the embodiments of the present application will be described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only some of the embodiments of the present application, not all the embodiments.

[0075] Hereinafter, the terms "first", "second", and the like are only for descriptive purposes, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the indicated technical features. Therefore, the features defined with "first", "second", and the like can explicitly or implicitly include one or more of the features.

[0076] In addition, in the present application, the orientation terms "up", "down", and the like are defined with respect to the orientation of the components shown in the drawings. It should be understood that these directional terms are relative concepts, which are used for relative description and clarification, and can be changed accordingly according to the change of the orientation of the components placed in the drawings.

[0077] In the present application, unless otherwise explicitly specified and limited, the term "connection" should be understood broadly, for example, "connection" can be fixed connection, or detachable connection, or integral; can be directly connected, or indirectly connected through intermediate medium.

[0078] The embodiments of the present application provide an electronic device. Specifically, the electronic device can be a portable electronic device or other types of electronic devices. For example, the electronic device can be a notebook computer, a mobile phone, a tablet personal computer, a laptop computer, a personal digital assistant (PDA), a personal computer, a wearable device, etc. For the convenience of description, the electronic device is taken as a notebook computer for example in the following.

[0079] Specifically, refer to Figure 1 and Figure 2 , Figure 1 a structural diagram of an electronic device 01 (in an open state) provided by the embodiments of the present application, Figure 2 a structural diagram of an electronic device 01 (in a folded state) provided by the embodiments of the present application. The electronic device 01 can include a display part 10, a keyboard part 20 and a hinge assembly 30.

[0080] For the convenience of the following description, an XYZ coordinate system is established, and the width direction of the electronic device 01 is defined as the X-axis direction, the length direction of the electronic device 01 is defined as the Y-axis direction (i.e. parallel to the rotation axis direction of the hinge assembly 30), and the thickness direction of the electronic device 01 is defined as the Z-axis direction. The coordinate system of the electronic device 01 can be flexibly set according to actual needs, and the present application only gives an example, which cannot be considered as a special limitation to the present application.

[0081] It can be understood that Figure 1 and Figure 2 only schematically show some components included in the electronic device 01, and the actual shape, actual size, actual position and actual structure of these components are not limited by Figure 1 and Figure 2 .

[0082] The display part 10 is used to display images, videos, etc. The display part 10 can include a first housing 12 and a display screen 11, and the display screen 11 is fixed on the first housing 12, for example, the display screen 11 can be fixed on the first housing 12 by adhesion, clamping, threaded connection, etc. The display screen 11 is arranged on the side of the first housing 12 close to the keyboard part 20. The first housing 12 can be made of metal material, or can be made of plastic material, or can be partially made of metal material and partially made of plastic material. Therefore, the specific material of the first housing 12 is not specially limited in the present application.

[0083] In addition, the display screen 11 can be a flexible display screen or a rigid display screen. For example, the display screen 11 can be an organic light-emitting diode (OLED) display screen, an active-matrix organic light-emitting diode (AMOLED) display screen, a mini light-emitting diode display screen, a micro light-emitting diode display screen, a micro organic light-emitting diode display screen, a quantum dot light-emitting diode (QLED) display screen, or a liquid crystal display (LCD).

[0084] The keyboard portion 20 is used to edit or otherwise operate the content displayed on the display screen 11. The keyboard portion 20 can include a keyboard 21 and a second housing 22, which, together with the first housing 12, forms the outer shell of the electronic device 01. Exemplarily, the second housing 22 can include an upper shell and a bottom shell, the keyboard 21 being fixed to the upper shell, the upper shell being fixedly connected to the bottom shell, and the upper shell and the bottom shell being fixedly connected by, for example, bonding, clamping, screwing, or welding.

[0085] In addition, the second housing 22 has an accommodation space formed therein, in which the main board, CPU (central processing unit), graphics card, memory, fan, speaker, battery, and other electronic components of the electronic device 01 can be arranged.

[0086] The hinge assembly 30 is used to connect the display portion 10 and the keyboard portion 20, so that the two portions can rotate relative to each other, thereby enabling the electronic device 01 to switch between the folded state and the unfolded state. When the electronic device 01 is in the folded state (as shown in FIG. 1), the display portion 10 and the keyboard portion 20 are engaged with each other, the display screen 11 faces the keyboard 21, and both the display screen 11 and the keyboard 21 are hidden between the first housing 12 and the bottom shell of the second housing 22, thereby effectively protecting the display screen 11 and the keyboard 21. In this state, the electronic device 01 has a nearly board-like structure, which is convenient for carrying. Figure 2

[0087] ​In the case that the electronic device 01 is in the open state (as shown in Figure 1 , the display portion 10 rotates away from the keyboard portion 20 to form an included angle between the display portion 10 and the keyboard portion 20, so that the display screen 11 and the keyboard 21 are separated from each other, and the user can watch the image displayed on the display screen 11 and operate through the keyboard 21.

[0088] In addition, referring to Figure 3 , and in combination with Figure 1 , Figure 3 , the enlarged view of the A area structure of Figure 1 The electronic device 01 can further include a camera module 40 arranged on the display portion 10, and the light entrance surface of the camera module 40 is oriented in the same direction as the display screen 11 (i.e., the camera module 40 and the display screen 11 are both oriented towards the user when the electronic device 01 is in the open state).

[0089] Exemplarily, the camera module 40 can be arranged in the upper region of the display screen 11, and along the Y-axis direction, the camera module 40 is arranged at the middle position; a light transmission hole 12b can be formed on the first housing 12, and the camera module 40 is arranged at the light transmission hole 12b, i.e., the light entrance surface of the camera module 40 is opposite to the light transmission hole 12b. In this way, the camera module 40 can face the user directly, so that the user can use the camera module 40 for video call and shooting, which is beneficial to improve the user experience.

[0090] In addition, the size of the screen ratio of the electronic device 01 will also affect the user experience. The screen ratio is the ratio of the area of the display screen 11 of the electronic device 01 to the total area of the display surface of the electronic device 01, i.e., screen ratio = area of display screen 11 / (area of display screen 11 + area of frame region 12a), the larger the screen ratio, the smaller the area of the frame region 12a (i.e., the smaller the width of the frame region 12a around the display portion 10), thereby providing better visual effect to improve the user experience.

[0091] It should be noted that the frame region 12a is the part of the first housing 12 facing the user, which extends around the display screen 11 to effectively fix and protect the display screen 11.

[0092] However, since the camera module 40 is arranged in the first housing 12, i.e., the above-mentioned light transmission hole 12b is formed on the above-mentioned frame region 12a, the width of the frame region 12a is further reduced, resulting in a decrease in user experience.

[0093] Based on this, referring to Figure 4 and Figure 5 , Figure 4An exploded view of another electronic device 01 provided in this application embodiment. Figure 5 for Figure 4 The provided electronic device 01 is shown in the structural diagram. The electronic device 01 includes the aforementioned housing (i.e., the first housing 12 and the second housing 22) and a camera module 40. A storage opening 22a is provided on the side wall of the housing, and the storage opening 22a communicates with the internal cavity of the housing. The camera module 40 is stored in the storage opening 22a.

[0094] In some embodiments, the housing includes the first housing 12 and the second housing 22 described above. The receiving opening 22a can be formed on either the first housing 12 or the second housing 22. When the camera module 40 is needed, it can be removed (e.g., Figure 5 As shown in the figure, when not in use, the camera module 40 can be stored in the storage opening 22a.

[0095] In this embodiment, since the camera module 40 is housed within the storage opening 22a, it can be removed when needed. Therefore, there is no need to open a light-transmitting hole 12b on the first housing 12 (i.e., the aforementioned frame area 12a), thereby further reducing the width of the frame area 12a and facilitating a further increase in screen-to-body ratio.

[0096] It should be noted that in some other possible embodiments, the aforementioned storage opening 22a can also be used to store other electronic devices besides the camera module 40, such as a microphone or an external hard drive. Therefore, this application does not impose any special limitations on this. In the embodiments described below, the camera module 40 is used as the electronic device, and the storage opening 22a is located on the side wall of the second housing 22.

[0097] Based on this, please continue to refer to Figure 4 and Figure 5 The aforementioned electronic device 01 may further include a storage mechanism 50, which is disposed within the storage opening 22a. This storage mechanism 50 can be used to control the storage and removal of the camera module 40. Please refer to [link / reference]. Figure 6 and Figure 7 , Figure 6 for Figure 4 and Figure 5 A structural diagram of the camera module 40 of the provided electronic device 01 when it pops out. Figure 7 for Figure 6 The provided electronic device 01 has a structural diagram showing its use after the camera module is removed.

[0098] Specifically, please refer to Figure 8 and Figure 9 , Figure 8 An exploded view of the storage mechanism 50 provided in the embodiments of this application. Figure 9A structure diagram of the accommodation mechanism 50 provided by the embodiment of the present application is shown in FIG. 1.

[0099] The accommodation mechanism 50 can include a base 51, a sliding block 52, and a connecting rod 53. The base 51 is fixedly connected with the second housing 22, the sliding block 52 is slidingly connected with the base 51, the camera module 40 is detachably connected with the sliding block 52, one end of the connecting rod 53 is connected with the sliding block 52, and the other end of the connecting rod 53 is connected with the base 51. Figure 4 and Figure 5 The base 51 is fixedly connected with the second housing 22, the sliding block 52 is slidingly connected with the base 51, the camera module 40 is detachably connected with the sliding block 52, one end of the connecting rod 53 is connected with the sliding block 52, and the other end of the connecting rod 53 is connected with the base 51.

[0100] Specifically, the base 51 includes a first wall plate 100, a base plate 200, and a base 300. The first wall plate 100 is provided with an opening 110, the first wall plate 100 is fixed on the base plate 200, the base 300 is fixed on a side of the base plate 200 away from the first wall plate 100, and the base 300 is provided with a sliding groove 310.

[0101] The sliding block 52 is arranged at the opening 110 of the first wall plate 100, the sliding block 52 is arranged in a stack with the base plate 200, and the sliding block 52 can slide between a first position and a second position relative to the base 51 in a direction (i.e., a Y-axis direction in FIG. 1) approaching or away from the first wall plate 100. Figure 8 and Figure 9 The sliding block 52 is arranged at the opening 110 of the first wall plate 100, the sliding block 52 is arranged in a stack with the base plate 200, and the sliding block 52 can slide between a first position and a second position relative to the base 51 in a direction (i.e., a Y-axis direction in FIG. 1) approaching or away from the first wall plate 100.

[0102] Please continue to refer to Figure 8 and Figure 9 , and refer to Figure 10 and Figure 11 , Figure 10 a structure diagram of the relative position between the sliding block 52 of the accommodation mechanism 50 and the camera module 40 when the sliding block 52 is in the first position, Figure 9 a structure diagram of the relative position between the sliding block 52 of the accommodation mechanism 50 and the camera module 40 when the sliding block 52 is in the second position. In the case that the sliding block 52 is in the first position, at least part of the camera module 40 is located outside the opening 110 of the first wall plate 100. In the case that the sliding block 52 is in the second position, the camera module 40 is located inside the opening 110. Figure 11 Figure 9 The sliding block 52 is arranged at the opening 110 of the first wall plate 100, the sliding block 52 is arranged in a stack with the base plate 200, and the sliding block 52 can slide between a first position and a second position relative to the base 51 in a direction (i.e., a Y-axis direction in FIG. 1) approaching or away from the first wall plate 100.

[0103] Furthermore, one end of the connecting rod 53 is a fixed end 53a, the other end of the connecting rod 53 is a sliding end 53b, the fixed end 53a is connected with the sliding block 52, and the sliding end 53b extends into the sliding groove 310. The sliding groove 310 has a first fixed point 311 and a second fixed point 312, the sliding end 53b is located at the first fixed point 311, so that the sliding block 52 is kept in the first position, and the sliding end 53b is located at the second fixed point 312, so that the sliding block 52 is kept in the second position.

[0104] ​In some examples, the two ends of the connecting rod 53 can be bent to form a fixed end 53a and a sliding end 53b, respectively. The fixed end 53a is inserted into the fixed hole 410 on the sliding block 52, and the sliding end 53b is inserted into the sliding groove 310 on the base 300, so that the connecting rod 53 can slide synchronously with the sliding block 52.

[0105] In this way, since the camera module 40 (i.e., the electronic device) is detachably connected to the sliding block 52, by controlling the sliding of the sliding block 52, the camera module 40 can be easily stored and taken out for use. There is no need to open a light-transmitting hole 12b on the first housing 12 (i.e., the bezel area 12a), which is beneficial to reduce the width of the bezel area 12a, thereby improving the screen-to-body ratio of the electronic device 01.

[0106] Moreover, the sliding groove 310 is provided on the base 300 of the base 51, the fixed end 53a of the connecting rod 53 is connected to the sliding block 52, and the sliding block 52 is arranged at the opening 110 of the first wall plate 100 along the Z-axis direction. The thickness dimension of the sliding block 52 is smaller than the width of the opening 110 of the first wall plate 100 along the Z-axis direction, i.e., smaller than the thickness dimension of the base 51. The fixed end 53a of the connecting rod 53 is connected to the sliding block 52, and does not increase the size of the base 51 along the Z-axis direction.

[0107] Therefore, compared with the scheme in which the connecting rod 53 is fixedly connected to the base 51, and the sliding block 52 slides relative to the base 51 and the connecting rod 53 (the connecting rod 53 does not move synchronously with the sliding block 52) (in this scheme, the fixed end 53a of the connecting rod 53 increases the thickness dimension of the base 51). The storage mechanism 50 provided in the embodiment has the advantages of being more beneficial to reduce the thickness dimension, thereby being beneficial to reduce the thickness dimension of the electronic device 01, and being beneficial to the thinness of the electronic device 01.

[0108] It should be noted that the thickness direction of the storage mechanism 50 is the same as the thickness direction of the electronic device 01 (i.e., the Z-axis direction), the width direction of the storage mechanism 50 is the same as the width direction of the electronic device 01 (i.e., the X-axis direction), and the sliding direction of the sliding block 52 of the storage mechanism 50 is the same as the length direction of the electronic device 01 (i.e., the Y-axis direction). Moreover, in the case where the electronic device 01 is in the open state, the coordinate system takes the keyboard part 20 of the electronic device 01 as the main body.

[0109] In some embodiments, the fixed end 53a of the connecting rod 53 can be fixed in the fixed hole 410. During the sliding of the sliding end of the sliding rod 53 along the sliding groove 310, the connecting rod 53 can be deformed due to the soft material property of the connecting rod 53 itself. So as to adapt to the extension direction of the sliding groove 310 and realize sliding in the sliding groove 310.

[0110] For example, refer to Figure 12 ,Figure 12 The fixed end 53a of the connecting rod 53 provided in the embodiments of the present application and the fixed hole 410 on the sliding block 52 are provided with an enlarged structural view. At least one plane is formed on the side wall of the fixed end 53a, and one plane is formed on the inner wall of the fixed hole 410. When the fixed end 53a is inserted into the fixed hole, the plane on the fixed end 53a is opposite to the plane in the fixed hole 410, so that the limit is formed between the fixed end 53a and the fixed hole 410, so that the connecting rod 53 cannot rotate relative to the sliding block 52, that is, the two are fixed relative to each other.

[0111] Alternatively, the fixed end 53a can also be inserted into the fixed hole 410. During the sliding process of the sliding end 53a of the connecting rod 53 along the sliding groove 310, the fixed end 53a can rotate relative to the sliding block 52 in the fixed hole 410. Therefore, the present application does not make special limitation on this. In the following embodiments, the structure shown in the structure is taken as an example for description. Figure 12

[0112] In other embodiments, please refer back to Figures 8-11 The above-mentioned receiving mechanism 50 can also include a guide rod 54, which is arranged along the Y-axis direction. The sliding direction of the sliding block 52 can be limited through the guide rod 54. Among them, the guide rod 54 can be fixed on the base 51, and the guide hole 610 can be formed on the sliding block 52. The sliding block 52 is sleeved on the guide rod 54 through the guide hole 610, so that the sliding block 52 can only slide along the axial direction of the guide rod 54 (that is, the Y-axis direction).

[0113] Moreover, the above-mentioned guide rod 54 can be provided with a plurality of guide rods 54, for example, two guide rods 54 can be arranged along the X-axis direction. The guide holes 610 are formed on both sides of the sliding block 52 along the X-axis direction. The guide holes 610 on both sides of the sliding block 52 are sleeved on the corresponding guide rods 54, that is, the sliding block 52 is guided by the two guide rods 54 when sliding along the Y-axis direction, so as to facilitate the force balance of the sliding block 52 during sliding, and the overall structural reliability can be improved.

[0114] In a possible example, please continue to refer to Figures 8-11 The sleeve 600 can be provided on both sides of the sliding block 52. The inner cavity of the sleeve 600 forms the above-mentioned guide hole 610. The sleeve 600 is sleeved on the guide rod 54, so as to guide the sliding direction of the sliding block 52. The sleeve 600 and the sliding block 52 can be fixed by bonding, clamping, welding or threaded connection, or the sliding block 52 is an integral structure, and the sleeve 600 can be part of the sliding block 52. Therefore, the present application does not make special limitation on this. In the following embodiments, the sleeve 600 is taken as an example for description.

[0115] ​In addition, the storage mechanism 50 can further include an elastic member 55. When the sliding block 52 slides from the first position to the second position, the user applies pressure to the camera module 40 and the sliding block 52, and the elastic member 55 is compressed. When the sliding block 52 slides from the second position to the first position, the elastic member 55 provides an elastic force, so that the sliding block 52 slides from the second position to the first position, so that the camera module 40 extends out of the opening 110 of the first wall plate 100, that is, the camera module 40 extends out of the storage opening 22a of the electronic device 01, so as to facilitate the user to take out the camera module 40.

[0116] Exemplarily, the elastic member 55 can be a spring. The spring can be sleeved on the guide rod 54. When the sliding block 52 slides from the first position to the second position, the spring is compressed by the sliding block 52. When the sliding block 52 slides from the second position to the first position, the spring resets and applies an elastic force to the sliding block 52, so that the sliding block 52 slides to the first position.

[0117] In addition, when the guide rod 54 is provided with a plurality of guide rods, the spring can also be provided with a plurality of springs, and the plurality of springs are arranged one by one corresponding to the plurality of guide rods 54, so as to further improve the elastic force for driving the sliding block 52 to slide from the second position to the first position, and facilitate to further improve the reliability of the overall structure.

[0118] Based on this, the above is a description of the basic functions that can be achieved by the storage mechanism 50 provided by the embodiments of the present application. The specific structure of the storage mechanism 50 capable of achieving the basic functions will be described in detail below. Please refer to Figure 13 and Figure 14 , Figure 13 FIG. 4 is a structural view of the sliding end 53b of the connecting rod 53 in the first fixed point 311 of the sliding groove 310 provided by the embodiments of the present application, Figure 14 is Figure 13 a structural view from another perspective.

[0119] It should be noted that since the base 300 is formed with a limiting groove for limiting the connecting rod 53, as shown in Figure 8 and Figure 9 , the connecting rod 53 extends into the limiting groove from the notch on one side of the limiting groove (close to the first wall plate 100), and the sliding groove 310 is opened on the bottom surface of the limiting groove. In order to clearly show the structure of the sliding groove 310, the side wall part of the limiting groove is not shown in Figure 13 and the following part of the drawing, only the bottom part of the limiting groove is shown. And only the sliding end 53b of the connecting rod 53 is shown.

[0120] The sliding groove 310 can include a first sliding section 313 and a second sliding section 314, both of which are located between the first fixed point 311 and the second fixed point 312. During the sliding of the slider 52 from the first position to the second position, the sliding end 53b of the connecting rod 53 slides along the first sliding section 313 from the first fixed point 311 to the second fixed point 312 (as indicated by the arrow in Figure 13 FIG. 6). During the sliding of the slider 52 from the second position to the first position, the sliding end 53b slides along the second sliding section 314 from the second fixed point 312 to the first fixed point 311 (as indicated by the arrow in Figure 14 FIG. 7).

[0121] Therefore, the second fixed point 312 is located between the ends of the first sliding section 313 and the second sliding section 314 away from the first fixed point 311, and when the sliding end 53b moves in different directions, the sliding end 53b can slide along different paths, respectively, thereby avoiding repeated sliding of the sliding end 53b on the same path, which is beneficial to improve the structural reliability.

[0122] In some examples, please refer to Figure 13 and Figure 14 , along the distribution direction of the connecting rod 53 and the base 51, i.e., the Z-axis direction, the distance between the bottom surface of the end of the first sliding end 53b close to the first fixed point 311 and the connecting rod 53 can be greater than the distance between the bottom surface of the end of the second sliding section 314 close to the first fixed point 311 and the connecting rod 53. That is, the groove depth of the end of the first sliding section 313 close to the first fixed point 311 is greater than the groove depth of the end of the second sliding section 314 close to the first fixed point 311, so that the ends of the first sliding section 313 and the second sliding section 314 close to the first fixed point 311 form a stepped structure.

[0123] In this way, during the sliding of the slider 52 from the first position to the second position, the sliding end 53b of the connecting rod 53 can only slide along the first sliding section 313, i.e., the stepped structure formed by the two ends can prevent the sliding end 53b from entering the second sliding section 314, thereby avoiding the sliding end 53b from sliding along the second sliding section 314 to the second fixed point 312, which is beneficial to further improve the reliability of the overall structure.

[0124] On this basis, please refer to Figure 15 , Figure 15The structure diagram of the sliding end 53b of the connecting rod 53 provided by the embodiment of the present application when the sliding end 53b is at one end of the first sliding section 313 away from the first fixed point 311. The sliding groove 310 can further include a third sliding section 315, a first end of the third sliding section 315 is in communication with the end of the first sliding section 313 away from the first fixed point 311, and a second end of the third sliding section 315 is in communication with the second fixed point 312. In the direction of the Z axis, the distance between the bottom surface of the end of the first sliding section 313 away from the first fixed point 311 and the connecting rod 53 is less than the distance between the bottom surface of the third sliding section 315 and the connecting rod 53. That is, the groove depth of the end of the first sliding section 313 away from the first fixed point 311 is less than the groove depth of the third sliding section 315, so as to form a stepped structure between the end of the first sliding section 313 and the third sliding section 315.

[0125] In this way, after the sliding end 53b of the connecting rod 53 enters the third sliding section 315, the sliding end 53b cannot slide along the first sliding section 313 to the first fixed point 311, that is, the stepped structure between the first sliding section 313 and the third sliding section 315 prevents the sliding end 53b of the connecting rod 53 from entering the first sliding section 313 again, so that the sliding end 53b can only slide along the third sliding section 315 to the second fixed point 312.

[0126] And, referring to Figure 16 and Figure 17 , Figure 16 The structure diagram of the sliding end 53b of the connecting rod 53 provided by the embodiment of the present application when the sliding end 53b is at one end of the third sliding section 315 away from the second fixed point 312, Figure 17 The structure diagram of the sliding end 53b of the connecting rod 53 provided by the embodiment of the present application when the sliding end 53b is at one end of the third sliding section 315 close to the second fixed point 312. In the direction of the first end of the third sliding section 315 pointing to the second end of the third sliding section 315, the third sliding section 315 extends in the direction close to the first fixed point 311 (as shown by the direction of the arrow in Figure 16 The first connecting point 315a between the third sliding section 315 and the first sliding section 313, that is, in the direction of the Y axis, the second fixed point 312 is between the first connecting point 315a and the first fixed point 311, so that the third sliding section 315 can limit the sliding end 53b of the connecting rod 53, thereby avoiding the sliding end 53b from sliding along the third sliding section 315 to the first sliding section 313.

[0127] In some examples, along the Z-axis direction, the distance between the bottom surface of the second fixed point 312 and the connecting rod 53 can be greater than the distance between the bottom surface of the third sliding section 315 and the connecting rod 53, that is, the groove depth at the second fixed point 312 is greater than the groove depth of the third sliding section 315. When the sliding end 53b of the connecting rod 53 is at the second fixed point 312, the second fixed point 312 and the third sliding section 315 form a stepped structure to limit the sliding end 53b, so that the sliding end 53b of the connecting rod 53 cannot slide into the third sliding section 315 again, and can only slide to the second sliding section 314 (as shown by the arrow in FIG. 13). Figure 17

[0128] To further improve the reliability of the overall structure, please refer to Figure 16 and Figure 17 , the sliding groove 310 can further include a fourth sliding section 316, the first end of the fourth sliding section 316 is in communication with the second fixed point 312, and the second end of the fourth sliding section 316 is in communication with the end of the second sliding section 314. Along the direction from the first end of the fourth sliding section 316 to the second end of the fourth sliding section 316, the fourth sliding section 316 extends away from the first fixed point 311. Among them, the connecting point between the fourth sliding section 316 and the third sliding section 315 is referred to as the second connecting point 315b, and the connecting point between the fourth sliding section 316 and the second sliding section 314 is referred to as the third connecting point 316a.

[0129] In this structure, please refer to Figure 18 and Figure 19 , Figure 18 the structural diagram of the sliding end 53b of the connecting rod 53 provided by the embodiment of the present application is at the second fixed point 312, Figure 19 the top view of the abutment 300 provided by Figure 18 . Along the Y-axis direction, the second fixed point 312 is located between the third connecting point 316a and the first fixed point 311, so that the fourth sliding section 316 can limit the sliding end 53b of the connecting rod 53, that is, the second fixed point 312 is located at the vertex of the bending structure formed by the third sliding section 315 and the fourth sliding section 316 (as shown in FIG. 14, the third sliding section 315 and the fourth sliding section 316 form an approximate inverted V-shaped structure, and the second fixed point 312 is the vertex of the inverted V-shaped structure), so that the sliding end 53b of the connecting rod 53 can be kept at the second fixed point 312, thereby enabling the sliding block 52 to be kept at the second position. Figure 19

[0130] ​​And, along the Y-axis direction, the gap between the second connecting point 315b and the first connecting point 315a is less than or equal to the radius of the connecting rod 53. Wherein, when the cross section of the connecting rod 53 is other than circular, then the average value of the radial dimension of the cross section of the connecting rod 53 is used. Or, along the Y-axis direction, the second connecting point 315b can be located between the first connecting point 315a and the first fixed point 311.

[0131] In this way, when the sliding end 53b of the connecting rod 53 enters the third sliding section 315 from the first sliding section 313, that is, the sliding end 53b passes the first connecting point 315a and continues to move along the X-axis direction, the sliding end 53b will first abut against the inner wall of the third sliding section 315, that is, the second connecting point 315b can block the sliding end 53b to avoid the sliding end 53b directly sliding into the second sliding section 314 along the third sliding section 315 and the fourth sliding section 316 in some special cases, thereby further ensuring that the sliding end 53b can be kept at the second fixed point 312.

[0132] In addition, along the above-mentioned Z-axis direction, the distance between the second end bottom surface of the fourth sliding section 316 and the connecting rod 53 can be less than the distance between the end bottom surface of the second sliding section 314 and the connecting rod 53. That is, the groove depth of the second end of the fourth sliding section 316 is less than the groove depth of the end of the second sliding section 314 and the fourth sliding section 316, so as to form a stepped structure between the fourth sliding section 316 and the second sliding section 314.

[0133] When the slider 52 slides from the second position to the first position, the sliding end 53b of the connecting rod 53 starts from the second fixed point 312 and slides along the fourth sliding section 316 to the second sliding section 314. After the sliding end 53b of the connecting rod 53 enters the second sliding section 314, the sliding end 53b of the connecting rod 53 can only slide from the second sliding section 314 to the first fixed point 311 due to the blocking of the stepped structure formed between the second sliding section 314 and the fourth sliding section 316, thereby further improving the reliability of the overall structure.

[0134] In some examples, referring to Figure 20 , Figure 20 for Figure 19 A-A partial cross-sectional view, along the above-mentioned Z-axis direction, the distance between the bottom surface of the fourth sliding section 316 and the connecting rod 53 gradually decreases from the first end of the fourth sliding section 316 to the second end of the fourth sliding section 316, that is, the groove depth of the fourth sliding section 316 gradually decreases from the first end of the fourth sliding section 316 to the second end of the fourth sliding section 316, so as to form a gradually rising structure on the groove bottom of the fourth sliding section 316.

[0135] In this way, when the sliding end 53b of the connecting rod 53 slides to the second fixed point 312, the gradually rising structure formed by the groove bottom of the fourth sliding section 316 can reduce the distance of the sliding end 53b of the connecting rod 53 from inertia to continue to slide along the fourth sliding section 316, so as to reduce the risk of the sliding end 53b of the connecting rod 53 from inertia to directly slide into the second sliding section 314, so as to further ensure that the sliding end 53b of the connecting rod 53 can stay at the second fixed point 312, that is, to ensure that the sliding block 52 can be kept at the second position.

[0136] In addition, referring to Figure 21 , Figure 21 Another structure diagram of the sliding groove 310 provided by the embodiment of the present application is provided, and the side wall inside the fourth sliding section 316 of the sliding groove 310 away from the first fixed point 311 is a first side wall 316b. The first side wall 316b can be a circular arc surface, and the circular arc surface protrudes in the direction close to the first fixed point 311. When the sliding block 52 slides from the second position to the first position, the sliding end 53b of the connecting rod 53 slides from the second fixed point 312 to the second sliding section 314 along the fourth sliding section 316. In this process, since the first side wall 316b is a protruding circular arc surface, the sliding end 53b of the connecting rod 53 can be brought into abutment with the first side wall 316b as soon as possible, that is, the movement distance of the sliding end 53b of the connecting rod 53 in the direction away from the first fixed point 311 is reduced. Then, the sliding end 53b of the connecting rod 53 slides along the first side wall 316b and moves to the second sliding section 314.

[0137] Therefore, in this process, the first side wall 316b reduces the movement distance of the sliding end 53b of the connecting rod 53 in the direction away from the first fixed point 311, that is, the distance of the user pressing the camera module 40 to slide into the storage opening 22a of the electronic device 01 is reduced. Therefore, it is beneficial to reduce the difficulty of the user to take out the camera module 40, so that the user can press the camera module 40 (while driving the sliding block 52 to move) using only the finger pad without the aid of special tools, that is, the sliding end 53b of the connecting rod 53 can be moved from the second fixed point 312 to the second sliding section 314. Then, under the elastic force of the elastic member 55, the camera module 40 is ejected for the user to use.

[0138] In other possible examples, referring back to Figure 16 and Figure 17The groove depth of the first sliding section 313 of the sliding groove 310 gradually decreases from the end close to the first fixed point 311 to the end close to the third sliding section 315. And the groove depth of the second sliding section 314 of the sliding groove 310 gradually decreases from the end close to the fourth sliding section 316 to the end close to the first fixed point 311. So as to form a stepped structure between the first sliding section 313 and the third sliding section 315, between the fourth sliding section 316 and the second sliding section 314, and between the second sliding section 314 and the first sliding section 313, so as to avoid the problem of too thin bottom of part of the sliding groove 310, and facilitate to improve the reliability of the overall structure of the base 300.

[0139] It can be understood that the groove depth of the first sliding section 313 and the second sliding section 314 gradually decreases, which can form a gradually decreasing structure from one end to the other end. Or, the middle part region can also form a gradually decreasing structure. Therefore, the present application does not specially limit this.

[0140] Based on this, the movement process of the sliding end 53b of the connecting rod 53 relative to the base 300 during the sliding process of the slider 52 between the first position and the second position will be described below in conjunction with the drawings.

[0141] Specifically, when the slider 52 is in the first position (as shown in Figure 10 ), the camera module 40 is outside the electronic device 01 (as shown in Figure 6 ), and the sliding end 53b of the connecting rod 53 is at the first fixed point 311 (as shown in Figure 13 ). At this time, the user can press the camera module 40 to make the camera module 40 move inward, that is, the slider 52 moves from the first position to the second position under the pressure of the user.

[0142] At the same time, the connecting rod 53 moves synchronously with the slider 52, and the sliding end 53b of the connecting rod 53 moves from the first fixed point 311 to the second fixed point 312. Due to the stepped structure of the end of the first sliding section 313 and the second sliding section 314 close to the first fixed point 311, the sliding end 53b of the connecting rod 53 can only slide along the first sliding section 313 to the second fixed point 312 (as shown by the movement direction of the arrow). Figure 13

[0143] Next, the sliding end 53b of the connecting rod 53 slides to the first connecting point 315a (as shown in Figure 15 ), and when the sliding end 53b of the connecting rod 53 passes through the first connecting point 315a, that is, enters the third sliding section 315 from the first sliding section 313 (as shown in Figure 16 ​When the sliding end 53b of the connecting rod 53 enters the third sliding section 315, the user can feel a jolt when the sliding end 53b passes the step structure. When the sliding end 53b enters the third sliding section 315, the limiting force of the first sliding section 313 on the sliding end 53b disappears, so that the sliding end 53b moves along the X-axis direction under the elastic restoring force of the connecting rod 53 itself and hits the inner wall of the third sliding section 315, generating a prompt sound. Thus, the user can know that the external force can be removed. At the same time, the elastic member 55 is compressed by the sliding block 52.

[0144] Next, the sliding end 53b of the connecting rod 53 is in the third sliding section 315 and is subjected to the elastic force of the elastic member 55, so that the sliding block 52 is subjected to the elastic force of moving outward of the opening 110, and the connecting rod 53 is subjected to the same elastic force. Due to the step structure between the first sliding section 313 and the third sliding section 315, the sliding end 53b of the connecting rod 53 can only slide along the third sliding section 315 to the second fixed point 312 (as shown by the arrow in Figure 16 the figure) under the action of the elastic force. And under the limiting of the V-shaped structure formed by the third sliding section 315 and the fourth sliding section 316, the sliding end 53b of the connecting rod 53 is kept at the second fixed point 312, that is, the sliding block 52 stays at the second position.

[0145] And under the limiting effect of the limiting structure (as shown in Figure 19 the figure) formed by the relative positions of the first connecting point 315a and the second connecting point 315b, and the slope structure (as shown in Figure 20 the figure) formed by the gradually decreasing groove depth of the fourth sliding section 316, the risk of the sliding end 53b of the connecting rod 53 directly entering the second sliding section 314 due to inertia is reduced. At this point, the sliding block 52 moves to the second position, that is, the storage of the camera module 40 is completed (as shown in Figure 11 the figure).

[0146] When the camera module 40 needs to be taken out, the user can press the camera module 40 into the storage opening 22a again. Under the action of the pressure, the camera module 40 slides into the storage opening 22a, and the camera module 40 pushes the sliding block 52 and the connecting rod 53 to move in this direction. Due to the step structure between the second fixed point 312 and the third sliding section 315, the sliding end 53b of the connecting rod 53 can only slide along the fourth sliding section 316 to the second sliding section 314 (as shown by the arrow in Figure 17 the figure).

[0147] In this process, since the first side wall 316b of the fourth sliding section 316 is a circular arc surface (as shown inFigure 21 As shown, the movement distance of the sliding end 53b of the connecting rod 53 in this direction is shortened, so that the sliding end 53b of the connecting rod 53 can slide into the second sliding section 314 with a shorter movement distance, making it easier for the user to press the camera module 40 to pop it out. Furthermore, a stepped structure is also formed between the fourth sliding section 316 and the second sliding section 314. When the sliding end 53b of the connecting rod 53 enters the second sliding section 314, the user can feel the jolt of sliding down the step, and hear the sound of the connecting rod 53 hitting the inner wall of the second sliding section 314 under its own deformation restoring force, thus informing the user that the pressing pressure can be released, which helps improve the user experience.

[0148] Next, the sliding end 53b of the connecting rod 53 is located within the second sliding section 314. Under the elastic force of the elastic element 55, the sliding end 53b of the connecting rod 53 slides along the second sliding section 314 toward the first fixed point 311 (e.g., Figure 21 (As indicated by the middle arrow) that the slider 52 slides to the first position, pushing the camera module 40 outward from the storage opening 22a, i.e., the slider 52 moves to the first position and the camera module 40 pops out (as shown by the middle arrow). Figure 6 As shown), so that the user can remove the camera module 40 and use it (as shown). Figure 7 (As shown).

[0149] Based on the above embodiments, please refer to Figure 22 , Figure 22 This is a structural diagram of another storage mechanism 50 provided in an embodiment of this application. The base 300 of this storage mechanism 50 may also be provided with a cover plate 56. The cover plate 56 is fastened to the surface of the base 300 where the sliding groove 310 is provided, and the cover plate 56 is fixedly connected to the base 300. For example, the cover plate 56 and the base 300 can be interlocked through snap-fit ​​holes and snap-fit ​​protrusions, or they can be fixedly connected by adhesive or bolts. Therefore, this application does not impose any special limitations on this aspect.

[0150] The base 300 has a gap between the side of the base 300 closest to the first wall panel 100 and the cover plate 56, allowing the connecting rod 53 to extend between the base 300 and the cover plate 56, with the sliding end 53b of the connecting rod 53 extending into the slide groove 310. In this way, the cover plate 56 can limit the movement of the connecting rod 53, preventing it from separating from the slide groove 310, thus improving structural reliability.

[0151] In this embodiment, one end of the connecting rod 53 (i.e. the sliding end 53b described above) is limited by the cover plate 56 to avoid the connecting rod 53 from being separated from the base 300. Correspondingly, the other end of the connecting rod 53 (i.e. the fixed end 53a described above) can also be provided with a corresponding limiting structure, for example, a limiting piece 57 is arranged on the slider 52, and the other end of the connecting rod 53 is located between the slider 52 and the limiting piece 57.

[0152] In some examples, please continue to refer to Figure 22 , and refer to Figure 23 , Figure 23 The exploded view of the slider 52, the cover plate 56, the limiting piece 57 and the connecting rod 53 provided in the embodiments of the present application is shown in the figure. The fixed end 53a of the connecting rod 53 extends into the fixed hole 410 on the slider 52, the limiting piece 57 is connected with the slider 52, and the fixed end 53a of the connecting rod 53 is located between the limiting piece 57 and the slider 52, so that the fixed end 53a of the connecting rod 53 can be effectively limited by the limiting piece 57.

[0153] In addition, the limiting piece 57 can include a first region 57a and a second region 57b, the two sides of the second region 57b are provided with the first region 57a, the first region 57a is attached to the surface of the slider 52, and the second region 57b is arranged in a spaced manner with the surface of the slider 52, so that the fixed end 53a of the connecting rod 53 is located between the slider 52 and the second region 57b.

[0154] In this example, in order to facilitate the positioning and installation of the limiting piece 57, a positioning hole 57c can be formed on the first region 57a of the limiting piece 57, and a positioning protrusion 420 can be arranged on the slider 52, the positioning protrusion 420 extends into the corresponding positioning hole 57c, so as to form accurate positioning between the limiting piece 57 and the slider 52.

[0155] In other embodiments, please refer to Figure 24 , Figure 24 The exploded view of the base 51 provided in the embodiments of the present application is shown in the figure, the base 300 of the base 51 can include a first part 320 and a second part 330, the first part 320 is fixedly connected with the substrate 200, and the second part 330 is fixed on the first part 320, and the sliding groove 310 is formed on the second part 330. The material of the second part 330 can be PA material or POM material. Since these materials have the characteristics of self-lubrication and wear resistance, it is beneficial to reduce the wear between the sliding end 53b of the connecting rod 53 and the inner wall of the sliding groove 310, so as to reduce the risk of failure of the sliding structure formed by the connecting rod 53 and the base 300 due to excessive wear.

[0156] And, the first portion 320 of the abutment 300 and the substrate 200 can be made of the same material or different materials. The first portion 320 and the substrate 200 can be integrally formed or fixedly connected by bonding, clamping, welding, or threaded connection. Therefore, the application does not make special limitations on this.

[0157] In addition, during the movement of the camera module 40 along the slider 52, there is relative friction between the camera module 40 and the inner wall of the opening 110 of the first wall plate 100. Therefore, the first wall plate 100 of the base 51 can also be made of PA material or POM material to reduce the wear of the camera module 40 by the inner wall of the opening 110 of the first wall plate 100, which is beneficial to ensure the smooth appearance and aesthetic appearance of the camera module 40. In this way, as an independent component, the camera module 40 has a smooth overall surface and a good hand feel when the user holds and plays with it, thereby improving the user experience.

[0158] In another possible embodiment, the base 51 as a whole (including the first wall plate 100, the substrate 200, and the first portion 320 and the second portion 330 of the abutment 300) can be made of the same material and integrally formed. For example, the base 51 as a whole is made of a material with high strength and light weight. On the one hand, it can reduce the overall process difficulty, and on the other hand, it is beneficial to reduce the overall weight and facilitate the light weight of the electronic device 01.

[0159] On this basis, please continue to refer to Figure 24 , and in combination with Figure 25 , Figure 25 The structure diagram of the slider 52 provided by the embodiment of the application, the slider 52 can include a sliding part 400 and a limiting part 500, the limiting part 500 is fixed on the sliding part 400, the camera module 40 is detachably connected with the sliding part 400, the fixing hole 410 is opened on the sliding part 400, the limiting protrusion 420 is arranged on the sliding part 400, and the guide hole 610 is opened on the sliding part 400, that is, the sleeve 600 is fixedly connected with the sliding part 400.

[0160] The substrate 200 of the base 51 can be provided with a slide 210 extending along the Y-axis direction (i.e. the sliding direction of the slider 52). The sliding part 400 and the substrate 200 are stacked, the limiting part 500 is arranged in the slide 210 and can slide along the slide 210. In this way, the limiting part 500 of the slider 52 can be limited by the inner wall of the slide 210, so that the slider 52 slides along the Y-axis direction, and the risk that the slider 52 cannot slide normally due to the deviation of the sliding track from the Y-axis during the sliding process is reduced.

[0161] In some examples, the slide 210 is a hollow structure formed on the base plate 200, that is, the slide 210 is formed by the two opposite side walls of the hollow structure limiting the limiting portion 500 of the slider 52, so that the slide 210 can limit the limiting portion 500 at any position between the first position and the second position of the slider 52, thereby reducing the risk of sliding jam caused by tilting of the slider 52 during sliding.

[0162] In addition, please refer to Figure 26 、 Figure 27 and Figure 28 , Figure 26 is another structure diagram of the storage mechanism 50 (the slider 52 is located at the second position) provided by the embodiment of the present application, Figure 27 is a B-B sectional view of Figure 26 , Figure 28 is a C-C sectional view of Figure 26 . The base 51 can further include a limiting plate 220 fixed to the side of the base plate 200 away from the limiting portion 500, and the limiting portion 500 and the limiting plate 220 are stacked, so that the limiting portion 500 is further supported and limited in the Z-axis direction by the limiting plate 220 while sliding in the slide 210, thereby more favorably improving the structural reliability of the relative sliding between the slider 52 and the base 51.

[0163] Therefore, during the sliding of the slider 52 between the first position and the second position, the inner wall of the slide 210 can limit the limiting portion 500 of the slider in the X-axis direction, and the limiting plate 220 and the base plate 200 can limit the limiting portion 500 in the Z-axis direction. In this way, on the one hand, the sliding of the slider in the Y-axis direction can be ensured to avoid tilting and sliding jam. On the other hand, when the slider slides to the second position, the limiting plate 220 and the base plate 200 can limit the limiting portion 500 in the Z-axis direction to avoid the end of the limiting portion 500 away from the sliding portion 400 from being tilted, thereby favorably improving the reliability of the overall structure.

[0164] In other examples, the limiting portion 500 can further be provided with a relief gap (as shown in Figure 25 ), which is provided at the edge of the limiting portion 500 close to the base 300. When the slider 52 slides to the second position, the base 300 can extend into the relief gap. That is, the relief gap divides the limiting portion 500 into two parts, thereby forming a relief for the base 300 to avoid collision between the limiting portion 500 and the base 300 during sliding, so as to ensure normal sliding of the slider 52.

[0165] In this example, since the cover plate 56 is also arranged on the base 300, the cover plate 56 and the base 300 can be fixedly connected through the clamping structure. In some cases, the clamping structure between the cover plate 56 and the base 300 can be located on the side, which can cause the local width (i.e. the width along the X-axis direction) of the base 300 to increase. Therefore, the width of the above-mentioned avoiding gap along the X-axis direction can gradually increase in the direction of the base 300 along the first wall plate 100, so as to avoid the conflict between the limiting portion 500 of the slider 52 and the base 300 during the movement of the slider 52, thereby further improving the reliability of the overall structure.

[0166] On this basis, the detachable connection mode between the sliding portion 400 of the slider 52 and the camera module 40 is not unique. For example, the clamping structure of the spherical groove and the spherical protrusion can be used between the sliding portion 400 and the camera module 40 to realize the detachable connection of the two. Alternatively, magnetic members and metal blocks 440 can also be used to realize magnetic adsorption connection between the sliding portion 400 and the camera module 40.

[0167] Wherein, in the case of magnetic adsorption connection between the sliding portion 400 and the camera module 40, please refer to Figure 29 , Figure 29 for Figure 26 D-D cross-sectional view, a metal block 440 is arranged on one of the sliding portion 400 and the camera module 40, and a first magnetic member 43 is arranged on the other one of the sliding portion 400 and the camera module 40, so that the sliding portion 400 and the camera module 40 can be connected to each other by magnetic adsorption. The user only needs to exert a certain pulling force to separate the camera module 40 from the sliding portion 400.

[0168] In some examples, the above-mentioned metal block 440 is arranged on the sliding portion 400, and the first magnetic member 43 is arranged on the camera module 40. Under this structure, on the one hand, it is convenient for the sliding portion 400 and the camera module 40 to be connected to each other by magnetic adsorption, and on the other hand, since the first magnetic member 43 is arranged on the camera module 40, when the user takes out and uses the camera module 40, the camera module 40 can be adsorbed on the metal area of the electronic device 01 or the metal object around the user, thereby facilitating the fixation of the camera module 40, improving the convenience of use, and being beneficial to improve the user experience.

[0169] Wherein, the above-mentioned first magnetic member 43 can be embedded inside the camera module 40, or can be fixed on the surface of the camera module 40. At the same time, the above-mentioned metal block 440 can be embedded inside the sliding portion 400, or can be fixed on the surface of the sliding portion 400. Therefore, the present application does not make special limitation on this.

[0170] In addition, in order to facilitate the user to store the camera module 40, please refer to Figure 30 ,Figure 30 An exploded view of a camera module 40 and a slider 52 is provided for an embodiment of the present application. The camera module 40 can include a body 41 and a positioning portion 42, Figure 29 The first magnetic member 43 shown is arranged inside the body 41, and the sliding portion 400 is provided with a positioning groove 430 on the surface of the camera module 40, when the camera module 40 and the sliding portion 400 are connected by adsorption, the positioning portion 42 can be inserted into the positioning groove 430 first, and then under the adsorption force of the metal block 440 and the first magnetic member 43, the body 41 of the camera module 40 and the sliding portion 400 are connected by adsorption, thereby facilitating the convenience of storing the camera module 40.

[0171] In other embodiments, please refer to Figure 31 , Figure 31 For the E-E cross-sectional view of Figure 26 The detection assembly can be arranged between the slider 52 and the base 51, and the detection assembly is used to detect whether the slider 52 is in the second position. The detection assembly includes a second magnetic member 450 and a Hall device 230, one of the second magnetic member 450 and the Hall device 230 is arranged on the slider 52, and the other of the second magnetic member 450 and the Hall device 230 is arranged on the base 51, and the second magnetic member 450 and the Hall device 230 are arranged opposite to each other when the slider 52 is in the second position. Therefore, based on the change of the magnetic flux detected by the Hall device 230, it can be determined whether the slider 52 is in the second position.

[0172] Alternatively, the above-mentioned detection device can also include an infrared emitter and an infrared receiver, one of the infrared emitter and the infrared receiver is arranged on the slider 52, and the other of the infrared emitter and the infrared receiver is arranged on the base 51. When the slider 52 is in the second position, the infrared receiver can receive the infrared signal emitted by the infrared emitter, thereby determining whether the slider 52 is in the second position.

[0173] And the above-mentioned detection assembly can be electrically connected with the mainboard of the electronic device 01, and Figure 7 The display screen 11 shown can display whether the camera module 40 is stored, thereby facilitating the reduction of the risk of losing the camera module 40.

[0174] In the description of the present specification, specific features, structures, materials or characteristics can be combined in any one or more embodiments or examples in a suitable manner.

[0175] The above merely provides the specific implementation of the present application, but the protection scope of the present application is not limited to this. Any person skilled in the art can easily think of the changes or replacements within the technical range disclosed by the present application, which should be covered in the protection scope of the present application. Therefore, the protection scope of the present application should be subject to the protection scope of the claims.

Claims

1. A storage mechanism for accommodating electronic devices, characterized in that, include: A base having a first wall panel with an opening, and a sliding groove on the side of the base away from the first wall panel, the sliding groove having a first fixing point and a second fixing point; A slider is disposed at the opening, and the electronic device is detachably connected to the slider. The slider is capable of sliding relative to the base between a first position and a second position in a direction that is close to or far from the first wall panel. A connecting rod has a fixed end and a sliding end, the fixed end being connected to the slider, and the sliding end extending into the groove; Wherein, when the slider is in the first position, at least a portion of the electronic device is located outside the opening, and the sliding end is located at the first fixed point; when the slider is in the second position, the electronic device is located inside the opening, and the sliding end is located at the second fixed point. The slide rail includes a first sliding section, a second sliding section, a third sliding section, and a fourth sliding section. One end of the first sliding section is connected to the first fixed point, and the other end of the first sliding section is connected to the first end of the third sliding section. The connection point between the first sliding section and the third sliding section is a first connection point. The second end of the third sliding section is connected to the second fixed point. The first end of the fourth sliding section is connected to the second fixed point, and the connection point between the fourth sliding section and the third sliding section is a second connection point. The second end of the fourth sliding section is connected to one end of the second sliding section, and the second sliding section is connected to the first fixed point. The third sliding segment extends towards the first fixed point in the direction from the first end to the second end of the third sliding segment; the fourth sliding segment extends away from the first fixed point in the direction from the first end to the second end of the fourth sliding segment; the distance between the bottom surface of the fourth sliding segment and the connecting rod gradually decreases from the first end to the second end of the fourth sliding segment along the distribution direction of the connecting rod and the base. Along the sliding direction of the slider, the gap between the first connection point and the second connection point is less than or equal to the radius of the cross-section of the connecting rod.

2. The storage mechanism according to claim 1, characterized in that, Along the distribution direction of the connecting rod and the base, the distance between the bottom surface of the first sliding segment near the first fixed point and the connecting rod is greater than the distance between the bottom surface of the second sliding segment near the first fixed point and the connecting rod.

3. The storage mechanism according to claim 1, characterized in that, Along the distribution direction of the connecting rod and the base, the distance between the bottom surface of the first sliding segment away from the first fixed point and the connecting rod is less than the distance between the bottom surface of the third sliding segment and the connecting rod.

4. The storage mechanism according to claim 3, characterized in that, Along the distribution direction of the connecting rod and the base, the distance between the bottom surface of the second fixing point and the connecting rod is greater than the distance between the bottom surface of the third sliding segment and the connecting rod.

5. The storage mechanism according to any one of claims 1 to 4, characterized in that, Along the distribution direction of the connecting rod and the base, the distance between the bottom surface of the second end of the fourth sliding segment and the connecting rod is less than the distance between the bottom surface of the end of the second sliding segment that communicates with the fourth sliding segment and the connecting rod.

6. The storage mechanism according to any one of claims 1 to 4, characterized in that, The sidewall of the fourth sliding segment away from the first fixed point is an arc surface, and the arc surface protrudes towards the first fixed point.

7. The storage mechanism according to any one of claims 1 to 4, characterized in that, The base includes a base plate and the first wall plate. The base plate is fixedly connected to the first wall plate. The slide groove is disposed on the side of the base plate away from the first wall plate. The base plate is provided with a slide track. The slider includes a sliding part and a limiting part. The limiting part is fixed on the sliding part. The electronic device is detachably connected to the sliding part. The fixed end of the connecting rod is connected to the sliding part. The sliding part is stacked with the substrate. The limiting part is disposed in the slide rail and can slide along the slide rail.

8. The storage mechanism according to claim 7, characterized in that, The base also includes a base platform, which is fixed to the base plate and located at the end of the slide away from the first wall panel, and the slide groove is disposed on the base platform.

9. The storage mechanism according to claim 8, characterized in that, The limiting part is provided with a clearance notch, and when the slider is in the second position, the base extends into the clearance notch.

10. The storage mechanism according to claim 8, characterized in that, The storage mechanism also includes a cover plate, which is fastened to the surface of the base platform where the groove is formed.

11. The storage mechanism according to claim 8, characterized in that, The base includes a first part and a second part. The first part is fixedly connected to the substrate, and the second part is fixed on the first part. The slide is disposed on the second part, and the material of the second part includes PA material or POM material.

12. The storage mechanism according to claim 7, characterized in that, The base also includes a limiting plate, which is fixed to the side of the substrate away from the limiting part, and the limiting part and the limiting plate are stacked together.

13. The storage mechanism according to claim 7, characterized in that, The storage mechanism also includes a limiting piece, which is disposed on the sliding part, and the fixed end of the connecting rod is located between the limiting piece and the sliding part.

14. The storage mechanism according to claim 13, characterized in that, The limiting piece has positioning holes on both sides, and the sliding part has positioning protrusions that extend into the corresponding positioning holes.

15. The storage mechanism according to any one of claims 1 to 4, characterized in that, The storage mechanism also includes a guide rod, which is fixed to the base. The slider has a guide hole through which the guide rod passes.

16. The storage mechanism according to claim 15, characterized in that, The storage mechanism also includes an elastic element, which is sleeved on the guide rod. When the slider is in the second position, the slider compresses the elastic element.

17. The storage mechanism according to claim 15, characterized in that, Two guide rods are provided, and along the sliding direction of the slider, the two guide rods are respectively provided on both sides of the slider.

18. The storage mechanism according to any one of claims 1 to 4, characterized in that, A metal block is provided on one of the slider and the electronic device, and a first magnetic element is provided on the other of the slider and the electronic device. The slider and the electronic device are connected by adsorption between the metal block and the first magnetic element.

19. The storage mechanism according to any one of claims 1 to 4, characterized in that, The storage mechanism also includes a detection component for detecting whether the slider is located in the second position.

20. The storage mechanism according to claim 19, characterized in that, The detection component includes a second magnetic element and a Hall device. One of the second magnetic element and the Hall device is disposed on the slider, and the other of the second magnetic element and the Hall device is disposed on the base. When the slider is in the second position, the second magnetic element and the Hall device are disposed opposite to each other.

21. The storage mechanism according to any one of claims 1 to 4, characterized in that, The material of the first wall panel includes PA material or POM material.

22. The storage mechanism according to any one of claims 1 to 4, characterized in that, The base is a one-piece molded structure.

23. An electronic device, characterized in that, include: The outer casing has a storage opening on its side wall; The storage mechanism is the storage mechanism according to any one of claims 1 to 22, wherein the storage mechanism is disposed in the storage opening, and the base of the storage mechanism is fixedly connected to the outer shell; Electronic components are detachably connected to the slider of the storage mechanism.

24. The electronic device according to claim 23, characterized in that, The outer casing includes a first casing and a second casing, the first casing being hinged to the second casing, and the storage opening being provided on the second casing.

25. The electronic device according to claim 24, characterized in that, The electronic device further includes a display screen and a keyboard, the display screen being disposed in the first housing and the keyboard being disposed in the second housing.

26. The electronic device according to any one of claims 23 to 25, characterized in that, The electronic device includes a camera module.

Citation Information

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