Electronic device support

By designing a cross-moving unlocking and locking mechanism in the electronic device bracket, the problem of the clamp arm failing to reset due to the unlocking button getting stuck is solved, thus achieving a convenient device removal and usage experience.

CN224381138UActive Publication Date: 2026-06-19SHENZHEN BASEUS TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SHENZHEN BASEUS TECH CO LTD
Filing Date
2025-08-29
Publication Date
2026-06-19

AI Technical Summary

Technical Problem

When the unlock button of an existing electronic device holder becomes stuck, the clamping arm cannot reset properly, preventing the user from removing the device and resulting in a poor user experience.

Method used

An electronic device bracket was designed, which adopts a cross-moving structure of unlocking and locking components. The unlocking component is rotated by triggering a button, and the locking component can still be reset in an abnormal state. The clamping arm automatically clamps or opens under the action of the elastic component, so as to avoid the unlocking component blocking the locking component from resetting.

Benefits of technology

Even if the unlock button malfunctions, the locking mechanism can still reset, and the clamping arms will automatically clamp or open, making it easier to remove the device and improving the user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to electronic equipment accessory technical field discloses an electronic equipment support, including base, clamping mechanism and unlocking mechanism, clamping mechanism includes two clamping arms and first elastic part, two clamping arms are opposite and all along the first direction movably connected in base, and can be opposite close under the action of first elastic part, unlocking mechanism includes trigger button, unlocking part and locking part, and trigger button and locking part all along the second direction movably connected in base with first direction intersection, unlocking part connects trigger button and locking part, and unlocking part rotatably connected in trigger button, locking part has the locking position of abutting between two clamping arms and the unlocking position of separating the abutment of two clamping arms, unlocking part can drive locking part to move towards the unlocking position along with trigger button being driven, in unlocking position, locking part can be opposite unlocking part along the second direction and move, thereby locking part can normally reset to the locking position when trigger button appears the abnormal situation such as jam.
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Description

Technical Field

[0001] This utility model relates to the field of electronic device accessories technology, specifically to an electronic device bracket. Background Technology

[0002] With the continuous development of the electronic device bracket industry, users have increasingly higher requirements for electronic device brackets.

[0003] In related technologies, electronic device holders typically use an unlock button to move a locking structure and unlock two clamping arms. After unlocking, the two clamping arms move from an open state to a clamping state under the action of springs to clamp the electronic device. When the unlock button malfunctions or becomes stuck, the locking structure cannot reset properly, and the clamping arms remain in the clamping state, preventing the user from removing the electronic device from the holder, resulting in a poor user experience. Utility Model Content

[0004] An embodiment of this application provides an electronic device bracket, including a base, a clamping mechanism, and an unlocking mechanism. The clamping mechanism includes two clamping arms and a first elastic member. The two clamping arms are opposite to each other and movably connected to the base along a first direction, and can move closer to each other under the action of the first elastic member. The unlocking mechanism includes a trigger button, an unlocking member, and a locking member. The trigger button and the locking member are both movably connected to the base along a second direction, and the first and second directions intersect. The unlocking member connects the trigger button and the locking member, and is rotatably connected to the trigger button. The locking member has a locking position abutting between the two clamping arms and an unlocking position disengaging from the abutting between the two clamping arms. The unlocking member can be driven by the trigger button to move the locking member toward the unlocking position. In the unlocking position, the locking member can move relative to the unlocking member along the second direction.

[0005] The electronic device holder provided in the embodiments of this application has at least the following beneficial effects: the unlocking member can move towards the locking member when the trigger button is driven to move, thereby causing the locking member to move towards the unlock position. When the trigger button moves towards the locking member, it can drive the unlocking member to move synchronously. The unlocking member can then drive the locking member to move towards the unlock position to unlock the two clamping arms. The two clamping arms can automatically clamp the electronic device under the action of the first elastic member, eliminating the need for the user to manually pull the clamping arms apart, making it more convenient to use. When the locking member is in the unlock position, it is configured to move relative to the unlocking member in a second direction. This helps to prevent the unlocking member from blocking the locking member from resetting to the locked position. Even if the trigger button is stuck or in an abnormal state, the locking member is unaffected by the trigger button and the unlocking member, and can still move relative to the unlocking member to reset to the locked position, so that the two clamping arms can remain open, facilitating the user to remove the electronic device. Attached Figure Description

[0006] The present invention will be further described below with reference to the accompanying drawings and embodiments, wherein:

[0007] Figure 1 A schematic diagram of the structure of the electronic device bracket provided in an embodiment of the present invention is shown;

[0008] Figure 2 This is a cross-sectional structural diagram of the electronic device bracket when the locking member provided in the embodiment of the present invention is in the locked position;

[0009] Figure 3 This diagram shows a cross-sectional view of the electronic device bracket when the locking element is in the unlocked position according to an embodiment of the present invention.

[0010] Figure 4 This diagram shows a partially exploded view of the unlocking mechanism provided in an embodiment of the present invention.

[0011] Figure 5 This diagram shows a schematic of the electronic device bracket structure when the locking element is in the unlocked position according to an embodiment of the present invention.

[0012] Figure 6 This diagram shows a schematic of the electronic device bracket structure when the locking member provided in this embodiment is in the locked position.

[0013] Figure 7 This diagram shows a partially exploded structural schematic of the electronic device bracket provided in an embodiment of the present invention;

[0014] Figure 8 A partial structural schematic diagram of the electronic device bracket provided in an embodiment of this utility model is shown.

[0015] Figure label:

[0016] Electronic device bracket 10; base 100; mounting cavity 110; through groove 130;

[0017] Clamping mechanism 200; clamping arm 210; second guide groove 211; first elastic element 220; clamping space 230;

[0018] Unlocking mechanism 300; trigger button 310; unlocking component 320; abutting part 321; connecting part 323; driving part 325; first pushing surface 3253; first sliding surface 3255; locking component 330; slot 331; locking body 333; bayonet 3331; extension arm 335; second pushing surface 3353; second sliding surface 3355; second elastic component 340; third elastic component 350; first accommodating space 360;

[0019] Control component 400; pressure rod 410; pressing part 411; rotating part 413; pushing part 415; connecting rod 420; moving part 500; transmission groove 510; first guide groove 520; third guide groove 530; connecting rod 600; first guide post 610; second guide post 620;

[0020] Elastic arm 650; flexible component 700; fixed base 800; first direction X; second direction Y; third direction Z. Detailed Implementation

[0021] The embodiments of this utility model are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain this utility model, and should not be construed as limiting this utility model.

[0022] In the description of this utility model, "several" means one or more, "multiple" means two or more, "greater than," "less than," and "exceeding" are understood to exclude the stated number, while "above," "below," and "within" are understood to include the stated number. The use of "first" and "second" in the description is merely for distinguishing technical features and should not be construed as indicating or implying relative importance, or implicitly indicating the number of indicated technical features, or implicitly indicating the order of the indicated technical features.

[0023] In the description of this utility model, unless otherwise explicitly defined, terms such as "setting," "installation," and "connection" should be interpreted broadly, and those skilled in the art can reasonably determine the specific meaning of the above terms in this utility model in conjunction with the specific content of the technical solution.

[0024] In the description of this utility model, the terms "one embodiment," "some embodiments," "illustrative embodiment," "example," "specific example," or "some examples," etc., refer to specific features, structures, materials, or characteristics described in connection with that embodiment or example, which are included in at least one embodiment or example of this utility model. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.

[0025] Please see Figures 1 to 3 This application provides an electronic device bracket 10, including a base 100, a clamping mechanism 200, and an unlocking mechanism 300. The clamping mechanism 200 includes two clamping arms 210 and a first elastic member 220 (e.g., ...). Figure 6 and Figure 7 As shown, the unlocking mechanism 300 includes a trigger button 310, an unlocking component 320, and a locking component 330.

[0026] Both clamping arms 210 are movably connected to the base 100 along a first direction X, and the two clamping arms 210 are arranged opposite to each other, forming a clamping space 230 between them. The clamping space 230 can be used to accommodate electronic devices. Bringing the two clamping arms 210 closer together can reduce the clamping space 230 (e.g., ...). Figure 3 As shown), to clamp electronic devices; the two clamping arms 210 being relatively far apart can increase the clamping space 230 (as shown). Figure 2 (As shown), so that users can easily take away electronic devices.

[0027] The two clamping arms 210 are relatively close to each other, or one of the clamping arms 210 is relatively close to the other; the two clamping arms 210 are relatively far apart, or one of the clamping arms 210 is relatively far apart to each other.

[0028] Electronic devices can refer to mobile phones, tablets, or other electronic devices.

[0029] The two clamping arms 210 can be brought closer together under the action of the first elastic member 220, thereby enabling the two clamping arms 210 to automatically clamp the electronic device.

[0030] The first elastic element 220 can be a spring, elastic rope, elastic rubber or other elastic element.

[0031] The first elastic element 220 can be configured in multiple ways.

[0032] As an example, the first elastic element 220 can be connected between the two clamping arms 210 to drive the two clamping arms 210 closer to each other.

[0033] As another example, the first elastic element 220 can be connected between the base 100 and a clamping arm 210. The first elastic element 220 drives at least one clamping arm 210 to move, realizing relative movement between the two clamping arms 210. When the two clamping arms 210 need to move synchronously, the electronic device bracket 10 can also include a transmission component. The transmission component can drive the two clamping arms 210. When the first elastic element 220 drives one clamping arm 210 to move toward the other clamping arm 210, the other clamping arm 210 can move under the action of the transmission component, so that the first elastic element 220 can drive the two clamping arms 210 to move closer to each other.

[0034] As another example, there are two first elastic elements 220. Each clamping arm 210 and the base 100 can be connected to a first elastic element 220, so that the two first elastic elements 220 can drive the two clamping arms 210 to move closer to each other.

[0035] Please see Figures 2 to 4 The trigger button 310 is movably connected to the base 100 along the second direction Y. Specifically, the trigger button 310 can move towards the clamping arm 210 or away from the clamping arm 210 along the second direction Y.

[0036] The second direction Y intersects the first direction X. For example, the first direction X and the second direction Y can be perpendicular or approximately perpendicular.

[0037] The unlocking component 320 is connected to the trigger button 310 and the locking component 330. The unlocking component 320 is rotatably connected to the trigger button 310, so that the unlocking component 320 can rotate on the trigger button 310. The unlocking component 320 can move synchronously with the trigger button 310 to drive the locking component 330 to move.

[0038] The unlocking component 320 can be rotatably connected to the trigger button 310 by a hinge or other rotatable connection, without any specific limitation.

[0039] As an example, the unlocking element 320 is rotatably connected to the side of the trigger button 310 facing the base 100 via a first pivot axis set along the second direction Y or the third direction Z, and the unlocking element 320 is connected to the locking element 330. The third direction Z intersects the first direction X and the second direction Y respectively, for example, the third direction Z is perpendicular or approximately perpendicular to the first direction X and the second direction Y respectively.

[0040] Locking member 330 has a locking position (e.g.) Figure 2 (as shown) and unlock location (as shown) Figure 3 (As shown). In the locked position, the locking member 330 abuts against the two clamping arms 210 to prevent the two clamping arms 210 from getting closer to each other. Under the action of the first elastic member 220, the two clamping arms 210 abut against the locking member 330 respectively. At this time, the two clamping arms 210 are in an open state, making it convenient for the user to pick up and put down the electronic device. In the unlocked position, the locking member 330 disengages from abutting against the two clamping arms 210. Under the action of the first elastic member 220, the two clamping arms 210 get closer to each other. At this time, the two clamping arms 210 are in a clamping state to clamp the electronic device.

[0041] Understandably, when the locking member 330 disengages from the two clamping arms 210 under the action of the unlocking member 320, at least one clamping arm 210 partially moves into the path of the locking member 330 toward the locking position under the action of the first elastic member 220, thereby preventing the locking member 330 from resetting to the locking position, and thus the locking member 330 can remain in the unlocked position (e.g., Figure 3As shown, under the action of the first elastic member 220, the two clamping arms 210 are relatively close to each other, which can stably clamp the electronic device. In one embodiment, when the locking member 330 is in the unlocked position, both clamping arms 210 are partially located on the path of the locking member 330 moving towards the locked position.

[0042] The locking member 330 is movably connected to the base 100 along the second direction Y to switch between the locked position and the unlocked position. When the trigger button 310 moves toward the clamping arm 210 along the second direction Y, the unlocking member 320 can move synchronously with the trigger button 310, and the unlocking member 320 can drive the locking member 330 to move in the same direction. Specifically, the unlocking member 320 can be driven by the trigger button 310, and thus drive the locking member 330 to move toward the unlocked position.

[0043] Understandably, the trigger button 310 is located outside the clamping space 230, and the user manually presses the trigger button 310 to drive it to move toward the clamping arm 210. Alternatively, the trigger button 310 can be at least partially displaced within the clamping space 230. In this case, not only can the trigger button 310 be driven to move toward the clamping arm 210 by the user manually pressing it, but it can also move toward the clamping arm 210 under the pressure of the electronic device when the user places the electronic device in the clamping space 230. For ease of description, the following explanation will take the example of the trigger button 310 being at least partially located within the clamping space 230 and driven by the pressure of the electronic device.

[0044] When the locking member 330 is in the unlocked position, the locking member 330 can move relative to the clamping arm 210 in the second direction Y (e.g., Figure 3 As shown), this helps to prevent the unlocking element 320 from blocking the locking element 330 from resetting. When the trigger button 310 is in a driven state (e.g., the trigger button 310 is in a state where it is continuously pressed by the electronic device or the user) or when it is stuck or in an abnormal state for other reasons, the locking element 330 can still move relative to the unlocking element 320 to reset to the locked position, regardless of the trigger button 310 and the unlocking element 320, so that the two clamping arms 210 can be kept in the open state, making it convenient for the user to remove the electronic device.

[0045] As an example, when the trigger button 310 is driven to move the locking member 330 to the unlocked position, the two clamping arms 210 can partially move to the side of the locking member 330 facing the trigger button 310 to block the locking member 330 from resetting to the locked position. The locking member 330 can move relative to the unlocking member 320 along the second direction Y. At this time, only the clamping arms 210 block the locking member 330 from resetting to the locked position. When the two clamping arms 210 are driven to open (e.g., the user manually pulls open the two clamping arms 210 or the two clamping arms 210 are driven to open by other structural components), causing the two clamping arms 210 to disengage from the path of the locking member 330 resetting to the locked position, the locking member 330 can move towards the locked position. Therefore, even if the trigger button 310 is in a driven state or in an abnormal state such as jamming (e.g., the trigger button 310 is jammed by a foreign object), the locking member 330 can still stably reset to the locked position. When the driving force on the two clamping arms 210 disappears, the two clamping arms 210 can move under the action of the first elastic member 220 to abut against the two sides of the locking member 330 along the first direction X. The locking member 330 keeps the two clamping arms 210 in an open state, allowing the user to easily remove the electronic device. The two clamping arms 210 can be kept in an open state without continuous driving, and it is also convenient for the user to place the electronic device back into the clamping space 230 to press the trigger button 310 again, which helps to realize the cyclic use of the electronic device bracket 10.

[0046] In some embodiments, the unlocking mechanism 300 further includes a second elastic member 340, which is connected between the locking member 330 and the base 100. The second elastic member 340 is used to drive the locking member 330 to move to the locked position, so that the second elastic member 340 can drive the locking member 330 to automatically reset from the unlocked position to the locked position without the need for manual operation by the user, making it more convenient to use.

[0047] The second elastic element 340 can be a spring, elastic rubber, or other elastic element.

[0048] Unlocking component 320 has a first state (such as...) Figure 2 (as shown) and the second state (as shown) Figure 3 (As shown).

[0049] When the unlocking component 320 is in the first state, the unlocking component 320 abuts against the locking component 330, and the unlocking component 320 can drive the locking component 330 to move towards the unlock position.

[0050] When the unlocking member 320 is in the second state, the unlocking member 320 disengages from the locking member 330, and the locking member 330 can move relative to the unlocking member 320 towards the locked position under the action of the second elastic member 340, which helps to prevent the unlocking member 320 from blocking the locking member 330 from resetting to the locked position.

[0051] As an example, the unlocking element 320 can rotate about a first pivot to switch between a first state and a second state.

[0052] In some embodiments, when the unlocking member 320 is in the first state, the side of the unlocking member 320 near the trigger button 310 abuts against the trigger button 310. In this way, the trigger button 310 can provide support for the unlocking member 320, so that the unlocking member 320 can push the locking member 330 to move to the unlock position.

[0053] When the unlocking component 320 is in the second state, the unlocking component 320 rotates to the side of its proximity to the trigger button 310 and disengages from the trigger button 310.

[0054] Please see Figures 2 to 4 In some embodiments, the unlocking member 320 has a first pushing surface 3253, and the locking member may have a second pushing surface 3353.

[0055] When the unlocking member 320 is in the first state, the first pushing surface 3253 and the second pushing surface 3353 abut against each other. Thus, when the trigger button 310 is driven to move toward the locking member 330, the first pushing surface 3253 can push against the second pushing surface 3353 to drive the locking member 330 to move toward the unlock position.

[0056] As an example, when the trigger button 310 is in the pop-up state and the locking member 330 is in the locked position, the second pushing surface 3353 and the first pushing surface 3253 abut against each other. The first pushing surface 3253 and the second pushing surface 3353 are roughly parallel and in contact. When the trigger button 310 is driven to move toward the locking member 330, the first pushing surface 3253 can directly push the second pushing surface 3353 to drive the locking member 330 to move toward the unlocked position. The trigger button 310 does not need to move without a free stroke, which improves the user experience of the electronic device bracket 10.

[0057] The first pushing surface 3253 and the second pushing surface 3353 are both inclined relative to the moving plane where the clamping arm 210 is located. Thus, the first pushing surface 3253 and the second pushing surface 3353 are both inclined surfaces, and the first pushing surface 3253 and the second pushing surface 3353 can slide relative to each other.

[0058] During the process of the unlocking member 320 switching from the first state to the second state, when the first pushing surface 3253 pushes the second pushing surface 3353 to move the locking member 330 in the unlocking direction, the unlocking member 320 can rotate relative to the trigger button 310, or the unlocking member 320 can remain stationary relative to the trigger button 310. This embodiment does not impose specific limitations.

[0059] When the unlocking member 320 is in the second state, the first pushing surface 3253 and the second pushing surface 3353 are separated, so that the locking member 330 can move relative to the unlocking member 320 in the second direction to the locked position.

[0060] As an example, the first pushing surface 3253 is located on one side of the unlocking member 320 along the rotation direction. The angle between the first pushing surface 3253 and the plane perpendicular to the first direction X can be greater than or equal to 40 degrees and less than or equal to 60 degrees. The second pushing surface 3353 is parallel to and abuts against the first pushing surface 3253.

[0061] In some embodiments, the unlocking member 320 may have a first sliding surface 3255, and the locking member 330 may have a second sliding surface 3355.

[0062] The first pushing surface 3253 extends in a direction that intersects with the first sliding surface 3255. The first pushing surface 3253 and the first sliding surface 3255 are connected, or the first pushing surface 3253 and the first sliding surface 3255 may be spaced apart.

[0063] Along the second direction, the second push surface 3353 is located between the second slide surface 3355 and the trigger button 310. The extending direction of the second push surface 3353 and the extending direction of the second slide surface 3355 may intersect, the second push surface 3353 and the second slide surface 3355 may be connected, or the second push surface 3353 and the second slide surface 3355 may be spaced apart.

[0064] When the unlocking member 320 is in the second state, the first sliding surface 3255 and the second sliding surface 3355 are slidably in contact, which helps the locking member 330 to return to the locked position more smoothly.

[0065] When the locking element 330 is in the locked position, the unlocking element 320 is in the first state; when the locking element 330 is in the unlocked position, the unlocking element 320 can be in either the first state or the second state.

[0066] As an example, the movement process of the unlocking component 320 when it is in the unlocked position and in the first state is as follows:

[0067] When the trigger button 310 is driven to move toward the clamping arm 210, it causes the unlocking member 320 to move. The first pushing surface 3253 pushes against the second pushing surface 3353, causing the locking member 330 to move to the unlocked position. At this time, if the trigger button 310 continues to receive the driving force toward the clamping arm 210, the first pushing surface 3253 continues to push against the second pushing surface 3353. Since the locking member 330 is already in the unlocked position and has a tendency to move toward the locked position under the action of the second elastic member 340, the second pushing surface 3253 continues to push against the second pushing surface 3353. The reaction force applied by the abutment surface 3353 to the first abutment surface 3253 causes the unlocking member 320 to rotate. The first abutment surface 3253 and the second abutment surface 3353 continue to slide relative to each other until the first abutment surface 3253 disengages from the second abutment surface 3353. The unlocking member 320 rotates from the first state to the second state. The first sliding surface 3255 slidably contacts the second sliding surface 3355. At this time, if the two clamping arms 210 are driven to open, the locking member 330 can be smoothly reset to the locked position under the action of the second elastic member 340.

[0068] As another example, the movement process of the unlocking component 320 when it is in the unlocked position and in the second state is as follows:

[0069] When the trigger button 310 is driven to move toward the clamping arm 210, it causes the unlocking member 320 to move. The first pushing surface 3253 pushes against the second pushing surface 3353, causing the locking member 330 to move toward the unlocking position. During this process, as the trigger button 310 continues to move toward the clamping arm 210, the elastic restoring force of the second elastic member 340 continues to increase. The second pushing surface 3353 will react against the first pushing surface 3253 under the action of the second elastic member 340, causing the unlocking member 320 to rotate. The first pushing surface 3253 and the second pushing surface 3353 gradually slide relative to each other until they disengage. The unlocking member 320 gradually rotates from the first state to the second state. The first sliding surface 3255 slides into contact with the second sliding surface 3355. At the same time, the locking member 330 moves to the unlocking position under the action of the second elastic member 340.

[0070] In some embodiments, the first sliding surface 3255 and the second sliding surface 3355 can both be perpendicular to the moving plane where the clamping arm 210 is located, as long as the first sliding surface 3255 and the second sliding surface 3355 can slide relative to each other.

[0071] In some embodiments, the first sliding surface 3255 and the second sliding surface 3355 can both be inclined relative to the moving plane where the clamping arm 210 is located. In this way, the first sliding surface 3255 and the second sliding surface 3355 are both inclined surfaces, which can provide guidance for the locking member 330 to reset to the locking position, and help the locking member 330 move more stably and smoothly.

[0072] As an example, the first sliding surface 3255 is located on the side of the unlocking member 320 where the first pushing surface 3253 is provided. The angle between the first sliding surface 3255 and the plane perpendicular to the first direction X is greater than or equal to 10 degrees and less than or equal to 20 degrees. The second sliding surface 3355 is parallel to and abuts against the first sliding surface 3255.

[0073] In some embodiments, the number of unlocking components 320 can be two, and the locking component 330 includes a locking body 333 and two extension arms 335.

[0074] Both unlocking components 320 rotate relative to the trigger button 310. Alternatively, both unlocking components 320 can be rotatably connected to the trigger button 310; or one of the two unlocking components 320 can be rotatably connected to the trigger button 310, and the two unlocking components 320 are connected by a connecting structure, which allows one of the two unlocking components 320 to drive the other to rotate synchronously.

[0075] The rotating connection involved in this application can be a hinge or a connection achieved through the fit between a shaft and a hole, and there is no specific limitation on the latter.

[0076] As an example, each unlocking element 320 can be rotatably connected to the side of the trigger button 310 facing the locking element 330 via a first pivot, meaning that the rotation axes of the two unlocking elements 320 may not coincide.

[0077] As another example, the two unlocking components 320 can be rotatably connected to the trigger button 310 via a first pivot (e.g., Figure 4 As shown in the figure, the rotation axes of the two unlocking components 320 can be set collinearly, which helps to make the two unlocking components 320 more compact and can reduce the number of first rotating shafts, simplifying the assembly process.

[0078] The locking body 333 is connected to the base 100 via the second elastic member 340. The locking body 333 is used to abut against the two clamping arms 210 or to disengage from the abutment against the two clamping arms 210. Specifically, when the locking member 330 is in the locked position, the locking body 333 abuts against the two clamping arms 210; when the locking member 330 is in the unlocked position, the locking body 333 disengages from the abutment against the two clamping arms 210.

[0079] Both extension arms 335 protrude from the side of the locking body 333 facing the trigger button 310. Each unlocking member 320 corresponds to one extension arm 335. Each extension arm 335 has a second pushing surface 3353 and a second sliding surface 3355. Thus, when the trigger button 310 is driven to move towards the clamping arm 210, the two unlocking members 320 can simultaneously push against the two extension arms of the locking member 330 to drive the locking body 333 to move towards the unlock position. This helps the two unlocking members 320 to apply a more uniform pushing force to the locking member 330, making the movement of the locking member 330 more stable. During the process of the locking member 330 resetting to the locked position, the second sliding surface 3355 of each extension arm 335 can slide to contact the first sliding surface 3255 of the corresponding unlocking member 320, which helps the locking member 330 to reset more stably.

[0080] In some embodiments, the second pushing surface 3353 and the second sliding surface 3355 can both be provided on the side wall of the extension arm 335 facing the other extension arm 335, and the first pushing surface 3253 and the first sliding surface 3255 can both be provided on the side wall of the unlocking member 320 facing away from the other unlocking member 320, so that as the locking member 330 resets to the locked position, the two unlocking members 320 can move between the two extension arms 335, and the overall structure is more compact.

[0081] In some embodiments, two extension arms 335 are spaced apart to form a slot 331 into which two unlocking members 320 are inserted. Thus, when the locking member 330 is reset to the locked position, the slot 331 provides space for the two unlocking members 320 to move, which helps the locking member 330 to reset to the locked position more smoothly and stably, reduces the possibility of the unlocking member 320 being interfered with by other structures because it is located outside the slot 331, and makes the unlocking member 320 and the locking member 330 more compact.

[0082] It should be noted that the two extension arms 335 may protrude from the locking body 333 at intervals to form a slot 331 between the two extension arms 335. Alternatively, the locking member 330 may include an integrally formed locking body 333 and a protrusion. The protrusion may protrude from the side of the locking body 333 facing the trigger button 310, and the protrusion may have a slot 331 to form two extension arms 335. The opening of the slot 331 may be located at the end of the protrusion facing the trigger button 310, for the unlocking member 320 to enter the slot 331.

[0083] In some embodiments, the unlocking mechanism 300 further includes a third elastic member 350, which is used to drive the unlocking member 320 to rotate toward the corresponding extension arm 335. So when the unlocking member 320 is in the first state, the first pushing surface 3253 can always abut against the second pushing surface 3353 under the action of the third elastic member 350, which helps the unlocking member 320 to drive the locking member 330 to move toward the unlocked position more stably. When the unlocking member 320 is in the second state, the first sliding surface 3255 can always abut against the second sliding surface 3355 under the action of the third elastic member 350, which helps the locking member 330 to reset to the locked position more stably.

[0084] Understandably, the third elastic element 350 can drive the unlocking element 320 to rotate from the second state to the first state, so that the unlocking element 320 can automatically reset without manual operation.

[0085] The third elastic element 350 can be a spring, elastic rubber, or other elastic element.

[0086] The third elastic element 350 can be configured in various ways, and the number of the third elastic element 350 can be one, two or more.

[0087] As another example, there are two third elastic elements 350, each of which can be connected between an unlocking element 320 and a trigger button 310, so that the two third elastic elements 350 can provide the two unlocking elements 320 with a force to rotate toward the corresponding extension arm 335.

[0088] As an example, a first accommodating space 360 ​​can be defined between the two unlocking components 320 (e.g., Figure 4 As shown, the third elastic element 350 can be disposed within the first accommodating space 360 ​​and abut against the two unlocking elements 320 respectively. It drives the two unlocking elements 320 to rotate in opposite directions so that each unlocking element 320 abuts against its corresponding extension arm 335. This allows for better utilization of the space between the two unlocking elements 320, resulting in a more compact arrangement between the two unlocking elements 320 and the third elastic element 350. The installation of the third elastic element 350 is also more convenient. Furthermore, one third elastic element 350 can provide a force for the two unlocking elements 320 to rotate toward their respective extension arms 335, reducing the number of third elastic elements 350 required. Specifically, each unlocking element 320 can have a recessed mounting groove on the side facing the other unlocking element 320. The third elastic element 350 can be a spring, and both ends of the third elastic element 350 can be inserted into a corresponding mounting groove. The two unlocking elements 320 press the third elastic element 350. The third elastic element 350 can drive the two unlocking elements 320 to rotate in opposite directions through elastic restoring force, so as to provide each unlocking element 320 with a force to rotate toward the corresponding extension arm 335.

[0089] In some embodiments, the unlocking member 320 may include an abutment portion 321, a connecting portion 323, and a driving portion 325 (e.g., Figure 4 (As shown).

[0090] The connecting part 323 can be rotatably connected to the trigger button 310 by means of a shaft hole rotatable connection. The abutting part 321 can be connected to one side of the connecting part 323 along the radial direction. The driving part 325 is connected to the abutting part 321 and / or the connecting part 323 and is set at an angle with the abutting part 321, so that when the driving part 325 rotates, it can drive the abutting part 321 to rotate in the same direction.

[0091] Please see Figure 2 and Figure 4 When the unlocking member 320 has not yet rotated, the abutting part 321 can abut against the trigger button 310, and the driving part 325 abuts against the extension arm 335. Thus, the trigger button 310 can provide support for the abutting part 321, which helps the driving part 325 to stably push the extension arm 335 to drive the locking member 330 to move to the unlock position.

[0092] As an example, when the unlocking member 320 is in the first state, the abutting part 321 can extend along the first direction X, and the driving part 325 can extend along the second direction Y toward the locking member 330.

[0093] Please see Figures 3 to 4 When the locking member 330 is in the unlocked position, the extension arm 335 can move relative to the drive unit 325 along the second direction Y. The first pushing surface 3253 and the first sliding surface 3255 are both provided on the drive unit 325.

[0094] Please see Figure 2 and Figure 4 In some embodiments, the locking body 333 is provided with a latch 3331 at both ends along the first direction.

[0095] When the locking member 330 is in the locked position, each clamping arm 210 is engaged with a slot 3331. Thus, when the two clamping arms 210 open and the locking member 330 returns to the locked position under the action of the second elastic member 340, the two clamping arms 210 can be engaged with a slot 3331 respectively, thereby preventing the locking member 330 from continuing to move toward the trigger button 310 and thus disengaging from the lock on the two clamping arms 210. In this way, the locking member 330 can be stably locked between the two clamping arms 210.

[0096] In some embodiments, the unlocking mechanism 300 further includes a fourth elastic element connected between the trigger button 310 and the base 100, which drives the trigger button 310 to automatically reset to the pop-up state, eliminating the need for manual operation by the user and making it more convenient to use.

[0097] The fourth elastic element can be a spring, elastic rubber, or other elastic structure. There can be one, two, or more fourth elastic elements. When the trigger button 310 is driven to move towards the locking member 330, it can compress the fourth elastic element. The fourth elastic element can then automatically reset the trigger button 310 to its pop-up state through its elastic restoring force.

[0098] As an example, the angle between the first abutting surface 3253 and the plane perpendicular to the first direction X is greater than the angle between the first sliding surface 3255 and the plane perpendicular to the first direction X, and the angle between the second abutting surface 3353 and the plane perpendicular to the first direction X can also be greater than the angle between the first sliding surface 3255 and the plane perpendicular to the first direction X. Thus, the slopes of the first and second abutting surfaces 3253 are relatively steep, allowing the first abutting surface 3253 to more smoothly push against the second abutting surface 3353, thereby moving the locking member 330 from the locked position to the unlocked position. Conversely, the slopes of the first and second sliding surfaces 3255 are relatively small, which helps the trigger button 310 to more smoothly reset to the pop-up state under the action of the fourth elastic member.

[0099] Please see Figures 5 to 7 In some embodiments, the electronic device bracket 10 may also include a control element 400, a moving element 500, and a link 600.

[0100] The control component 400 is movably connected to the base 100 and is driven to the moving component 500, meaning that when the control component 400 moves relative to the base 100, it can drive the moving component 500 to move.

[0101] As an example, the link 600 can be rotatably connected to the base 100 via a second pivot axis set along the second direction Y.

[0102] The control element 400 is movably connected to the base 100, which may mean that the control element 400 is movable or rotatably connected to the base 100.

[0103] The connecting rod 600 is rotatably connected to the base 100, and both ends of the connecting rod 600 are respectively connected to the moving part 500 and the clamping arm 210. Thus, when the moving part 500 moves, it can drive the connecting rod 600 to rotate, and the rotation of the connecting rod 600 can drive the clamping arm 210 to move.

[0104] Specifically, the control component 400 can drive the moving component 500 to move along the third direction Z to drive the connecting rod 600 to rotate, which in turn drives the clamping arm 210 corresponding to the connecting rod 600 to move, so that the two clamping arms 210 are relatively far apart.

[0105] In a specific application, there can be one link 600, and the end of the link 600 away from the moving part 500 is connected to one of the clamping arms 210, driving one clamping arm 210 to move relative to the other clamping arm 210, so as to achieve relative separation between the two clamping arms 210.

[0106] The number of connecting rods 600 can also be two, with each connecting rod 600 having a corresponding clamping arm 210 connected to the end furthest from the moving part 500. When the control element 400 is driven to move the moving part 500, it can simultaneously drive the two connecting rods 600 to rotate, thereby pushing the two clamping arms 210 to move synchronously and move away from each other. Thus, the user can operate the control element 400 with one button to open the two clamping arms 210. The locking element 330 can automatically reset to the locked position under the action of the second elastic element 340, and the locking element 330 will re-abut between the two clamping arms 210, keeping the two clamping arms 210 in an open state. Even if the user releases the control element 400, the two clamping arms 210 will still be in an open state. In this way, the user can easily remove the electronic device without having to continuously operate the control element 400 before removing the electronic device. At the same time, the locking element 330 resetting to the locked position also prepares for the user to use the electronic device bracket 10 next time, thus enabling the cyclical use of the electronic device bracket 10 and providing a better user experience.

[0107] The movable component 500 can be configured in multiple ways.

[0108] As an example, the movable component 500 can be movably connected to the base 100 along the third direction Z, or the movable component 500 can be directly movably mounted on the connecting rod 600 along the third direction Z, which can be set according to the requirements.

[0109] In some embodiments, the control element 400 may include a pressing part 411, a rotating part 413, and a pushing part 415 connected in sequence.

[0110] As an example, the extending directions of the pressing part 411 and the pushing part 415 are arranged at an angle.

[0111] The rotating part 413 is rotatably connected to the base 100, so that when the pressing part 411 is driven to rotate, it can drive the pushing part 415 to rotate in the same direction.

[0112] As an example, the rotating part 413 is rotatably connected to the base 100 via a third rotating shaft arranged along the first direction X.

[0113] The pressing part 411 is located on the side of the base 100 opposite to the trigger button 310 to avoid interference with the trigger button 310, and the user can press the pressing part 411 more conveniently.

[0114] The movable component 500 may be provided with a transmission groove 510. The pushing part 415 may pass through the base 100 and be partially rotatably inserted into the transmission groove 510. When the pressing part 411 is driven, it can drive the pushing part 415 to rotate and push against the groove wall of the transmission groove 510, thereby driving the movable component 500 to move. When the movable component 500 moves, it can drive the connecting rod 600 to rotate, thereby driving the two clamping arms 210 to move away from each other. By setting the control component 400 as a lever structure, the user can easily drive the two clamping arms 210 to move away from each other by pressing the part 411, making the operation more effortless and convenient.

[0115] As an example, the movable member 500 and the locking member 330 are arranged opposite each other along the third direction Z. The pressing part 411 can be pressed to rotate towards the base 100, and the pushing part 415 rotates in the same direction as the pressing part 411 to drive the movable member 500 to move away from the locking member 330 along the third direction Z, thereby driving the two connecting rods 600 to rotate in opposite directions to drive the two clamping arms 210 to move in opposite directions.

[0116] Please see Figures 7 to 8 In some embodiments, the base 100 may be provided with a through groove 130 opposite to the transmission groove 510, and the electronic device bracket 10 may also include a spring arm 650.

[0117] The push part 415 passes through the through groove 130, and the elastic arm 650 is connected to the base 100 and is at least partially located in the through groove 130. The push part 415 abuts against the elastic arm 650, so that the push part 415 can always abut against the elastic arm 650 when rotating, which helps to avoid the push part 415 rotating without travel, prevents the control component 400 from shaking randomly, and improves the user experience of the electronic device bracket 10.

[0118] The elastic arm 650 can be integrally formed with the base 100, or it can be installed on the base 100 through other structures.

[0119] Please see Figures 5 to 7 In some embodiments, the control member 400 may include two pressure rods 410, each pressure rod 410 including a pressing part 411, a rotating part 413, and a pushing part 415, and the two pressure rods 410 may be spaced apart from each other along a first direction X. The moving member 500 may be provided with two spaced apart transmission grooves 510 along the first direction X, and the pushing part 415 of each pressure rod 410 may be rotatably inserted through the base 100 and partially rotatably inserted through a corresponding transmission groove 510.

[0120] The control component 400 also includes a connecting rod 420, which can be connected between the pressing portions 411 of the two pressure rods 410 to synchronize the movement of the two pressure rods 410 and help to move the moving component 500 more stably.

[0121] In some embodiments, the two pressure rods 410 and the connecting rod 420 can be integrally formed or separately connected, without specific limitation.

[0122] In some embodiments, the movable member 500 is provided with a first guide portion, and the connecting rod 600 is provided with a second guide portion, with each first guide portion connected to a second guide portion.

[0123] In this design, one of the first guide portion and the second guide portion is a first guide groove 520, and the other is a first guide post 610. The first guide groove 520 extends along the first direction X, and the first guide post 610 is slidably inserted into the first guide groove 520 along the first direction X. Thus, when the moving member 500 moves, it can push against the second guide portion through the first guide portion to drive the two connecting rods 600 to rotate in opposite directions, thereby driving the two clamping arms 210 to move away from each other and open the clamping arms 210. In addition, the first guide post 610 can move within the first guide groove 520 along the first direction X, which helps to avoid the situation where the moving member 500 and the connecting rods 600 get stuck.

[0124] In practical applications, the number of first guide parts can be one, two, or more. The number of first guide parts is the same as the number of second guide parts and they correspond one-to-one.

[0125] In some embodiments, each link 600 is provided with a third guide portion, and each clamping arm 210 is provided with a fourth guide portion. One of the third guide portion and the fourth guide portion is a second guide groove 211, and the other is a second guide post 620. The second guide groove 211 extends along the third direction Z, and the second guide post 620 is slidably inserted into the second guide groove 211 along the third direction Z. In this way, when the link 600 rotates, it can push against the fourth guide portion through the third guide portion to drive the two clamping arms 210 away from each other. In addition, the second guide post 620 slides in the second guide groove 211 along the third direction Z, which helps to avoid the link 600 and the clamping arm 210 getting stuck.

[0126] In practical applications, the number of third guide parts can be one, two, or more, and the number of fourth guide parts is the same as the number of third guide parts and corresponds one-to-one.

[0127] In some embodiments, the movable member 500 may also be provided with a third guide groove 530, which may extend along a third direction Z. The second rotating shaft may partially pass through the third guide groove 530, which helps to avoid interference between the movable member 500 and the second rotating shaft when the movable member 500 moves, and the movable member 500 moves more smoothly.

[0128] In practical applications, the number of third guide grooves 530 can be one, two, or more.

[0129] As an example, two third guide grooves 530 can be spaced apart from each other along the first direction X, and two first guide portions can also be spaced apart from each other along the first direction X. The two third guide grooves 530 can be disposed between the two first guide portions. Two transmission grooves 510 can also be spaced apart from each other along the first direction X, and each first guide portion can be located between a transmission groove 510 and a third guide groove 530, which helps to better optimize the structure of the moving member 500.

[0130] Please see Figure 3 and Figure 5 In some embodiments, the base 100 may be provided with a mounting cavity 110.

[0131] The locking element 330, the second elastic element 340, the moving element 500, and the connecting rod 600 can all be located within the mounting cavity 110 to reduce the possibility of damage from other external structures. Each clamping arm 210 is partially movably disposed within the mounting cavity 110 and partially extends outside the mounting cavity 110 to form a clamping space 230, and the trigger button 310 is at least partially located within the clamping space 230.

[0132] The control element 400 may be partially exposed in the mounting cavity 110 and located on the side of the base 100 opposite to the receiving space, so as to facilitate user operation and avoid interference with the trigger button 310.

[0133] The cavity wall of the mounting cavity 110 facing the trigger button 310 may have an opening, which can connect the mounting cavity 110 and the external space, and allow each unlocking component 320 to enter and exit the mounting cavity 110.

[0134] Please see Figure 1 In some embodiments, the electronic device bracket 10 may also include a flexible element 700 and a fixing base 800.

[0135] The flexible element 700 is connected between the fixed base 800 and the base 100. The fixed base 800 is used to fix to the external mounting wall. The flexible element 700 can be bent under external force to adjust the position of the electronic device for easy operation by the user.

[0136] The mounting base 800 can be fixed to the external mounting wall by means of magnetic attraction, adhesive, suction cup, etc.

[0137] In the electronic device bracket 10 provided in this application embodiment, the unlocking member 320 can move towards the locking member 330 as the trigger button 310 is driven to move towards the locking member 330. Thus, when the trigger button 310 is driven to move towards the locking member 330, the unlocking member 320 can move synchronously. The unlocking member 320 can drive the locking member 330 to move towards the unlocking position to unlock the two clamping arms 210. The two clamping arms 210 can automatically clamp the electronic device under the action of the first elastic member 220, without the user having to manually pull the clamping arms 210 apart, making it more convenient to use. When the locking member 330 is in the unlocked position, the locking member 330 is set to be movable relative to the unlocking member 320 in the second direction Y. This helps to prevent the unlocking member 320 from blocking the locking member 330 from resetting to the locked position. Even if the trigger button 310 is in an abnormal state such as being stuck, the locking member 330 can still move relative to the unlocking member 320 to reset to the locked position, so that the two clamping arms 210 can be kept in the open state, making it convenient for the user to remove the electronic device.

[0138] The embodiments of the present invention have been described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of the present invention. Furthermore, the embodiments of the present invention and the features thereof can be combined with each other unless otherwise specified.

Claims

1. An electronic device support, characterized by, include: Base; The clamping mechanism includes two clamping arms and a first elastic element. The two clamping arms are opposite to each other and are movably connected to the base along a first direction, and can move closer to each other under the action of the first elastic element. as well as The unlocking mechanism includes a trigger button, an unlocking component, and a locking component. The trigger button and the locking component are both movably connected to the base along a second direction, where the first direction and the second direction intersect. The unlocking component connects the trigger button and the locking component, and the unlocking component is rotatably connected to the trigger button; The locking member has a locking position abutting between the two clamping arms and an unlocking position disengaging from the abutting between the two clamping arms; The unlocking component can be driven by the trigger button, which in turn moves the locking component toward the unlocking position; at the unlocking position, the locking component can move relative to the unlocking component along the second direction.

2. The electronic device holder of claim 1, wherein, The unlocking mechanism further includes a second elastic element, which is connected between the base and the locking element; the unlocking element has a first state and a second state; In the first state, the unlocking member abuts against the locking member, and the unlocking member can drive the locking member to move towards the unlocking position; In the second state, the unlocking member disengages from the locking member, and the locking member can move relative to the unlocking member toward the locking position under the action of the second elastic member.

3. The electronic device holder of claim 2, wherein, The unlocking component has a first pushing surface, and the locking component has a second pushing surface; Both the first pushing surface and the second pushing surface are inclined relative to the moving plane where the clamping arm is located; In the first state, the first pushing surface and the second pushing surface abut against each other; In the second state, the first pushing surface and the second pushing surface are separated.

4. The electronic device bracket according to claim 3, characterized in that, The unlocking member has a first sliding surface, and the first pushing surface intersects with the extending direction of the first sliding surface; the locking member has a second sliding surface, and the second pushing surface intersects with the extending direction of the second sliding surface; Along the second direction, the second pushing surface is located between the second sliding surface and the trigger button; In the second state, the first sliding surface and the second sliding surface are in slidable contact.

5. The electronic device bracket according to claim 4, characterized in that, Both the first sliding surface and the second sliding surface are inclined relative to the moving plane where the clamping arm is located.

6. The electronic device bracket according to claim 4, characterized in that, The number of unlocking components is two, and both unlocking components rotate relative to the trigger button; The locking element includes a locking body and two extension arms; the locking body is connected to the base via the second elastic element and is used to abut against the two clamping arms or to disengage from the abutment against the two clamping arms. Both extension arms protrude from the side of the locking body facing the trigger button. Each unlocking component corresponds to one extension arm, and each extension arm has a second pushing surface and a second sliding surface.

7. The electronic device bracket according to claim 6, characterized in that, Both the second pushing surface and the second sliding surface are located on the side wall of the extension arm facing the other extension arm.

8. The electronic device bracket according to claim 7, characterized in that, The two extension arms are spaced apart to form a slot into which the two unlocking elements can be inserted.

9. The electronic device bracket according to claim 6, characterized in that, The unlocking mechanism also includes a third elastic element, which is used to drive the unlocking element to rotate toward the corresponding extension arm.

10. The electronic device bracket according to claim 6, characterized in that, The locking body has slots at both ends along the first direction; when the locking member is in the locked position, each of the clamping arms is engaged with one of the slots.

11. The electronic device bracket according to any one of claims 1 to 10, characterized in that, The electronic device bracket further includes a control component, a movable component, and a connecting rod; the connecting rod is rotatably connected to the base, and both ends of the connecting rod are respectively driven to the movable component and a clamping arm; the control component is movably connected to the base and driven to the movable component. The control component is driven to move the moving component along a third direction to rotate the connecting rod, thereby causing the two clamping arms to move away from each other; the third direction intersects with the first direction and the second direction respectively.

12. The electronic device bracket according to claim 11, characterized in that, The control component includes a pressing part, a rotating part, and a pushing part connected in sequence; the rotating part is rotatably connected to the base, and the pressing part is located on the side of the base opposite to the trigger button; the moving part is provided with a transmission groove, and the pushing part passes through the base and is partially rotatably inserted into the transmission groove; The pressing part, when driven, can rotate the pushing part to push against the wall of the transmission groove, thereby moving the moving part.

13. The electronic device bracket according to claim 12, characterized in that, The base is provided with a through groove opposite to the transmission groove, and the pushing part passes through the through groove; the electronic device bracket also includes a spring arm, the spring arm is connected to the base and is at least partially located in the through groove; the pushing part abuts against the spring arm.

14. The electronic device bracket according to claim 11, characterized in that, The moving part is provided with a first guide portion, and the connecting rod is provided with a second guide portion. One of the first guide portion and the second guide portion is a first guide groove, and the other is a first guide post. The first guide groove extends along the first direction, and the first guide post is slidably inserted into the first guide groove along the first direction. The connecting rod is provided with a third guide portion, and the clamping arm is provided with a fourth guide portion. One of the third guide portion and the fourth guide portion is a second guide groove, and the other is a second guide post. The second guide groove extends along the third direction, and the second guide post is slidably inserted into the second guide groove along the third direction.

15. The electronic device bracket according to claim 11, characterized in that, The base is provided with a mounting cavity, and the locking member, the moving member and the connecting rod are all located in the mounting cavity; Each of the clamping arms is partially movably disposed within the mounting cavity and partially extends outside the mounting cavity to form a clamping space, and the trigger button is at least partially located in the clamping space; the control element is partially exposed outside the mounting cavity and is located on the side of the base opposite to the clamping space.

16. The electronic device bracket according to claim 11, characterized in that, The electronic device bracket also includes a flexible element and a fixed base. The flexible element is connected between the fixed base and the base, and the fixed base is used to fix it to an external mounting wall.