Magnetic attraction assembly and electronic equipment support

By designing an adjustable magnetic suction component, the problem of inconvenient removal caused by excessive magnetic force in the existing technology is solved, realizing effortless removal of the device and improved stability.

CN223895563UActive Publication Date: 2026-02-10SHENZHEN BASEUS TECH CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202520812305.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-27
Publication Date
2026-02-10
Estimated Expiration
2035-04-27

AI Technical Summary

Technical Problem

Existing magnetic electronic device holders have excessive magnetic force when supporting light or heavy equipment, making it inconvenient for users to remove the equipment and potentially causing changes in the position or angle of the holder.

Method used

Design a magnetic attraction assembly that uses a lever to drive a separator to switch between an extended and retracted position, adjusting the magnetic attraction force to facilitate removal of the device. The assembly includes a housing, a separator, a lever, and a connecting component for transmission. The magnetic attraction force is adjustable using inclined planes and elastic elements.

Benefits of technology

The magnetic attraction force is adjustable, making it easier for users to remove the device and improving its stability, thus preventing the bracket position from changing during the removal process.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223895563U_ABST
    Figure CN223895563U_ABST
Patent Text Reader

Abstract

The utility model provides a magnetic assembly and an electronic equipment support, the magnetic assembly comprises a housing, a magnet, a separating member and a driving lever, the outer surface of the housing comprises a magnetic surface, the magnet is fixed in the housing, and the separating member is movably connected with the housing and comprises an ejection surface used for pushing electronic equipment; one end of the driving lever is exposed out of the shell, the driving lever is in transmission connection with the separating part, and the driving lever can rotate relative to the shell so that the separating part can be switched between an ejection position and a withdrawing position; when the separating piece is located at the ejection position, the ejection face is located outside the shell and protrudes relative to the magnetic attraction face. The magnetic attraction force between the magnetic attraction assembly and the electronic equipment can be adjusted, and the convenience of taking down the electronic equipment by a user is improved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the field of electronic device accessories technology, and in particular to a magnetic suction component and an electronic device bracket. Background Technology

[0002] Magnetic electronic device stands have magnetic components that use the magnetic force of magnets to hold electronic devices (such as mobile phones, tablets, etc.). However, to securely hold and support electronic devices, the magnetic force of the magnetic components is usually quite strong. In particular, to accommodate various electronic device models, manufacturers currently design electronic device stands with the heaviest mobile phone the stand can support as a reference. The magnetic force of the magnetic components needs to be able to hold the heaviest electronic device, which results in the magnetic components of the stand exerting too much force on the electronic device when supporting lighter electronic devices.

[0003] As a result, when users need to remove electronic devices from the holder, they need to exert considerable force to pull the devices off. Furthermore, during the removal process, the holder may be pulled along with the device, causing changes in its position or angle. Therefore, the convenience of removing electronic devices from magnetic holders is relatively low. Utility Model Content

[0004] This invention aims to solve at least one of the technical problems existing in the prior art. To this end, this invention proposes a magnetic attraction component with adjustable magnetic force between it and electronic devices, which improves the ease with which users can remove electronic devices.

[0005] A magnetic suction assembly according to a first aspect of the present invention includes: a housing, the outer surface of which includes a magnetic suction surface facing an electronic device; a magnet fixed inside the housing; a separating member movably connected to the housing, the separating member including a push-out surface for pushing the electronic device; and a lever, one end of which protrudes outside the housing and is throttle-connected to the separating member, the lever being rotatable relative to the housing to switch the separating member between a push-out position and a retracted position; when the separating member is in the push-out position, the push-out surface is located outside the housing and protrudes relative to the magnetic suction surface; when the separating member is in the retracted position, the push-out surface is recessed relative to the magnetic suction surface or flush with the magnetic suction surface.

[0006] The magnetic suction assembly according to the first aspect of this utility model has at least the following beneficial effects: If a user needs to remove an electronic device, the user can first move a lever to move the separating member to the ejected position, thereby causing the ejected surface to eject the electronic device. After the electronic device is ejected, the distance between the electronic device and the magnetic suction surface increases. Since the magnet and the outer casing are fixed to each other, the distance between the magnet and the magnetic suction surface is fixed. As the distance between the electronic device and the magnetic suction surface increases, the magnetic attraction between the magnet and the electronic device decreases. Because the magnetic attraction between the electronic device and the magnet decreases, it is easier for the user to remove the electronic device from the magnetic suction assembly. Therefore, the magnetic attraction between the magnetic suction assembly and the electronic device in this embodiment is adjustable, making it convenient for the user to remove the electronic device.

[0007] According to some embodiments of the present invention, the outer surface of the housing further includes a back side and a side side, the back side and the magnetic surface are opposite to each other, the side side is located between the back side and the magnetic surface, the back side and the magnetic surface are both connected to the side side, and the lever extends from the side side to the outside of the housing.

[0008] According to some embodiments of the present invention, the axis of rotation of the lever relative to the housing is a reference line, and the separating member moves along the reference line when it moves between the ejected position and the retracted position.

[0009] According to some embodiments of this utility model, the magnetic attraction assembly further includes a connecting member, the lever is connected to the separating member via the connecting member, the connecting member is located inside the housing and fixed to the lever; the separating member includes a first abutting portion, the connecting member includes a second abutting portion, when the connecting member rotates together with the lever in a first direction, the second abutting portion can push the first abutting portion, so that the separating member moves from the retracted position to the ejected position; when the connecting member rotates together with the lever in a second direction, the separating member moves from the ejected position to the retracted position, the first direction being opposite to the second direction.

[0010] According to some embodiments of the present invention, the first abutting portion includes a first inclined surface that is inclined circumferentially along the connector, and the first inclined surface abuts against the second abutting portion; or, the second abutting portion includes a second inclined surface that is inclined circumferentially along the connector, and the second inclined surface abuts against the first abutting portion; or, the first abutting portion includes a first inclined surface that is inclined circumferentially along the connector, and the second abutting portion includes a second inclined surface that is inclined circumferentially along the connector, and the first inclined surface and the second inclined surface are in contact with each other.

[0011] According to some embodiments of the present invention, the magnetic suction assembly includes a plurality of the separating members, and the connecting member includes a plurality of the second abutting portions, each of the second abutting portions being correspondingly provided with one of the separating members. When the connecting member rotates, all the separating members move synchronously relative to the outer shell.

[0012] According to some embodiments of the present invention, both the magnetic suction surface and the ejector surface are planar; and / or, when the separating member is in the ejector position, the protrusion distance of the ejector surface relative to the magnetic suction surface is not less than 2 mm.

[0013] According to some embodiments of the present invention, the magnetic suction assembly further includes an elastic element, and both the outer shell and the separating element are connected to the elastic element. The elastic force of the elastic element is used to drive the separating element to move from the ejected position to the retracted position.

[0014] According to some embodiments of the present invention, the separating member is disposed around the periphery of the magnet, and the top protruding surface is disposed around the periphery of the magnetic attraction surface; wherein, the magnetic attraction assembly includes a plurality of separating members disposed at intervals from each other, the separating members being arc-shaped, and the plurality of separating members together surrounding the magnet; or, the magnetic attraction assembly includes a single ring-shaped separating member.

[0015] According to some embodiments of the present invention, the magnetic attraction assembly further includes a pin, which is located inside the housing and is inserted into the housing. One end of the lever located inside the housing is rotatably sleeved on the outside of the pin.

[0016] According to some embodiments of the present invention, the outer surface of the outer shell forms a stepped groove, a portion of the separating member is accommodated in the stepped groove, the bottom wall of the stepped groove is provided with a guide hole, and the separating member includes a guide post, which is slidably disposed in the guide hole.

[0017] An electronic device bracket according to a second aspect embodiment of the present invention includes a magnetic suction component as described in the first aspect embodiment.

[0018] The electronic device holder according to the second aspect of the present invention has at least the following advantages: the electronic device holder can fix and support electronic devices by magnetic attraction, and the magnetic attraction between the holder and the electronic devices is adjustable, making it convenient for users to remove electronic devices from the electronic device holder.

[0019] Additional aspects and advantages of this invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Attached Figure Description

[0020] The present invention will be further described below with reference to the accompanying drawings and embodiments, wherein:

[0021] Figure 1 This is a schematic diagram of a magnetic suction assembly according to an embodiment of the present invention (the detachment is in the retracted position).

[0022] Figure 2 A schematic diagram of the magnetic suction assembly when the separating component is in the ejected position;

[0023] Figure 3 This is an exploded view of the magnetic attraction assembly;

[0024] Figure 4 A schematic diagram of the process by which the separating component pushes out the electronic device;

[0025] Figure 5 This is a schematic diagram of the separable component;

[0026] Figure 6 This is a schematic diagram of the connector;

[0027] Figure 7 This is a schematic diagram illustrating the movement of the two inclined planes during the process of the separating component ejecting the electronic device.

[0028] Figure 8 This is a schematic diagram illustrating the working principle of an elastic element.

[0029] Figure 9 This is a side view of an electronic device bracket according to an embodiment of the present invention.

[0030] Reference numerals: 101-Magnetic suction assembly, 102-Housing shell, 103-Separating part, 104-Toggle lever, 105-Allowing opening, 106-Magnetic suction surface, 107-Top protruding surface, 108-Elastic element, 109-Guide post, 110-Step groove, 111-Guide hole, 112-Magnet, 113-Pin shaft, 114-Baseline, 115-Connecting part, 116-Bottom cover, 117-Upper shell, 118-Electronic device, 119-Gap, 120-First abutment part, 121-First inclined surface, 122-Second abutment part, 123-Second inclined surface, 124-Back side, 125-Side side, 126-Limiting screw, 127-Electronic device bracket, 128-Bracket body. Detailed Implementation

[0031] 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.

[0032] In the description of this utility model, it should be understood that the directional descriptions, such as up, down, front, back, left, right, etc., indicate the directional or positional relationship based on the directional or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.

[0033] 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.

[0034] 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.

[0035] Figure 1 and Figure 2 A magnetic suction assembly 101 according to an embodiment of the present invention is shown. For example... Figure 1 As shown, the magnetic assembly 101 includes a housing 102, a separating member 103, and a lever 104. The outer surface of the housing 102 includes a magnetic surface 106, which is used to face the electronic device 118. Figure 1 In this configuration, the magnetic surface 106 is the top surface of the housing 102. The separating member 103 is movably connected to the housing 102 and is movable relative to the housing 102, thereby pushing the electronic device 118. The separating member 103 includes a protruding surface 107 for engaging with the electronic device 118. Figure 1 In the middle, the ejector surface 107 is the top surface of the separator 103; in Figure 1 and Figure 2 In the process, the separating member 103 moves to different positions, and the separating member 103 can move in the up-down direction.

[0036] It should be noted that, in Figures 1 to 8 In the diagram, the magnetic component 101 is placed horizontally for ease of illustration of its structure. In actual use, the magnetic component 101 can also be in a vertical position, or in an angled position relative to the horizontal plane (e.g., ...). Figure 9 (As shown).

[0037] Figure 3 An exploded view of the magnetic component 101 is shown below. Figure 3As shown, the outer casing 102 includes an upper casing 117 and a bottom cover 116. The upper casing 117 and the bottom cover 116 can be connected by snap-fit, adhesive, screw connection, etc. After the upper casing 117 and the bottom cover 116 are connected, the outer casing 102 forms a cavity. The materials of the upper casing 117, the bottom cover 116, and the separating member 103 can all be plastic, or made of a metal material that will not be attracted by the magnet 112. The magnetic attraction assembly 101 also includes a magnet 112, which is fixed inside the outer casing 102. For example, the magnet 112 can be bonded to the inner surface of the upper casing 117. In this embodiment, the magnet 112 is ring-shaped and is composed of multiple arc-shaped magnets spliced ​​together. In other embodiments not shown, the shape of the magnet 112 can also be circular, rectangular, etc. Figure 6 As shown, magnet 112 is located inside housing 102, and at one end of the cavity near magnetic surface 106, i.e., at the upper end of the cavity. This arrangement increases the magnetic attraction between magnet 112 and electronic device 118 near magnetic surface 106. When electronic device 118 approaches magnetic surface 106, the magnetic attraction between magnet 112 and electronic device 118 drives electronic device 118 closer to magnetic surface 106. Furthermore, the magnetic attraction of magnet 112 fixes electronic device 118 to magnetic surface 106.

[0038] like Figure 1 and Figure 2 As shown, one end of the lever 104 protrudes outside the housing 102, and the lever 104 is drive-connected to the separating member 103. How the lever 104 and the separating member 103 are drive-connected will be explained in detail below. The lever 104 can rotate relative to the housing 102, thereby switching the separating member 103 between an extended position and a retracted position. This switching can be simply the separating member 103 moving from the retracted position to the extended position, or simply the separating member 103 moving from the extended position to the retracted position, or the separating member 103 moving from the extended position to the retracted position and then back to the extended position. Figure 3 As shown, the magnetic assembly 101 also includes a pin 113 located inside the housing 102 and inserted into the housing 102. For example, the pin 113 is inserted into the bottom cover 116 of the housing 102. One end of the lever 104 located inside the housing 102 is fitted onto the outside of the pin 113, so that the lever 104 can rotate about the pin 113, thereby allowing it to rotate relative to the housing 102. Figure 1 In the middle, the separating member 103 is in the retracted position, at which time the ejector surface 107 is flush with the magnetic suction surface 106. Figure 2 In the middle, the separating member 103 is in the ejected position, the ejected surface 107 is located outside the housing 102, and the ejected surface 107 protrudes relative to the magnetic surface 106.

[0039] During the movement of the separating member 103 from the retracted position to the ejected position, the separating member 103 can separate the electronic device 118 from the magnetic surface 106. Please refer to... Figure 4 , Figure 4 The diagram illustrates the state when the magnetic assembly 101 and the electronic device 118 are interconnected. The electronic device 118 can be a mobile phone, tablet, earphones, smartwatch, smart bracelet, etc. When the user does not need to remove the electronic device 118, the interaction between the electronic device 118 and the magnetic assembly 101 is as follows: Figure 4 As shown in (a), at this time, the separating member 103 is in the retracted position, the magnetic surface 106 is in contact with the surface of the electronic device 118, and the ejecting surface 107 is also in contact with the surface of the electronic device 118. When the user needs to remove the electronic device 118, the user can first move the lever 104 (for example, move the lever 104 to the right) to move the separating member 103 upward to the ejecting position. Figure 4 As shown in (b), when the separating member 103 moves to the ejected position, since the ejected surface 107 protrudes relative to the magnetic surface 106, the ejected surface 107 lifts the electronic device 118, creating a gap 119 between the electronic device 118 and the magnetic surface 106, or in other words, increasing the distance between the electronic device 118 and the magnetic surface 106. As mentioned above, since the magnet 112 and the housing 102 are fixed to each other, the distance between the magnet 112 and the magnetic surface 106 is fixed. As the distance between the electronic device 118 and the magnetic surface 106 increases, the magnetic attraction between the magnet 112 and the electronic device 118 decreases. Because the magnetic attraction between the electronic device 118 and the magnet 112 decreases, it is easier for the user to remove the electronic device 118 from the magnetic assembly 101. Therefore, the magnetic attraction between the magnetic assembly 101 and the electronic device 118 in this embodiment is adjustable, making it convenient for the user to remove the electronic device 118.

[0040] In the embodiments described above, when the separating member 103 is in the retracted position, the ejector surface 107 is flush with the magnetic suction surface 106. In other embodiments not shown, when the separating member 103 is in the retracted position, the ejector surface 107 may be recessed relative to the magnetic suction surface 106. "The ejector surface 107 may be recessed relative to the magnetic suction surface 106" can mean that the ejector surface 107 is located below the magnetic suction surface 106 and does not contact the electronic device 118. As long as the separating member 103 can eject the electronic device 118 during its movement to the ejector position, the magnetic attraction between the magnetic suction assembly 101 and the electronic device 118 can be adjusted, thereby facilitating the user to remove the electronic device 118.

[0041] exist Figures 1 to 4In the illustrated embodiment, both the magnetic suction surface 106 and the ejection surface 107 are planar. The magnetic suction surface 106 is used to contact the electronic device 118, and its planar design allows the magnetic suction assembly 101 to stably support the electronic device 118. Because the ejection surface 107 is planar, the electronic device 118 can still be stably supported by the separating member 103 when it ejects it. Furthermore, since the ejection surface 107 and the magnetic suction surface 106 are flush when the separating member 103 is in the retracted position, both surfaces contact and support the electronic device 118, resulting in a larger contact area between the electronic device 118 and the magnetic suction assembly 101. This improves the stability of the magnetic suction assembly 101's support for the electronic device 118. Additionally, the planar design of the magnetic suction surface 106 and the ejection surface 107 also helps reduce the shape complexity and manufacturing difficulty of the magnetic suction assembly 101. In other embodiments not shown, the magnetic suction surface 106 and the ejection surface 107 can also be curved surfaces.

[0042] In some embodiments, when the separating member 103 is in the ejected position, the protrusion distance of the ejected surface 107 relative to the magnetic suction surface 106 is not less than 2 mm. Figure 4 For example, the aforementioned protrusion distance can also be understood as the dimension of the gap 119 in the up-down direction. Since the protrusion distance is not less than 2mm, after the separator 103 pushes out the electronic device 118, the magnetic attraction between the magnet 112 and the electronic device 118 can change significantly, thus making it easier for the user to remove the electronic device 118.

[0043] It should be noted that in some embodiments, when the separating member 103 is in the ejected position, the magnetic attraction between the magnet 112 and the electronic device 118 can still keep the magnetic attraction component 101 and the electronic device 118 attracted, so as to prevent the electronic device 118 from falling off the magnetic attraction component 101 when the user does not grab the electronic device 118, thereby preventing the electronic device 118 from falling and being damaged.

[0044] The following explains how lever 104 drives separator 103.

[0045] like Figure 3 As shown, the axis of rotation of the lever 104 relative to the housing 102 is reference line 114, and the central axis of the pin 113 is also reference line 114. The separating member 103 moves along reference line 114 when moving between the ejected and retracted positions. Figure 3 Taking the direction as an example, the baseline 114 is a straight line extending in the up-down direction. The lever 104 can rotate left and right, and the separator 103 can move up and down. Under the above configuration, the movement path of the lever 104 when rotating does not interfere with the movement path of the separator 103, and both the lever 104 and the separator 103 can move smoothly.

[0046] like Figure 8 As shown, the outer surface of the housing 102 also includes a back surface 124 and a side surface 125. The back surface 124 faces away from the magnetic surface 106. The side surface 125 is located between the back surface 124 and the magnetic surface 106. The upper and lower ends of the side surface 125 are connected to the magnetic surface 106 and the back surface 124, respectively, and the side surface 125 surrounds the edge of the magnetic surface 106. The side surface 125 is provided with a clearance opening 105 (the clearance opening 105 is shown in the image). Figure 2 As shown), the lever 104 passes through the clearance opening 105 and extends from the side 125 to the outside of the housing 102. In the above arrangement, the lever 104 is located on the side 125 and not on the magnetic surface 106, so the electronic device 118, which is interconnected with the magnetic assembly 101, does not easily obstruct the user's access to and operation of the lever 104.

[0047] like Figure 3 As shown, a stepped groove 110 is formed on the outer surface of the outer shell 102. More specifically, the stepped groove 110 may be formed on the outer surface of the upper shell 117 of the outer shell 102. A portion of the separator 103 is accommodated within the stepped groove 110. A guide hole 111 is provided on the bottom wall of the stepped groove 110, and the separator 103 includes a guide post 109, which is slidably disposed within the guide hole 111. In this way, the separator 103 can slide up and down relative to the outer shell 102, the sliding engagement between the guide post 109 and the guide hole 111 guides the movement of the separator 103, and the stepped groove can also position and guide the separator 103.

[0048] like Figure 3 As shown, the magnetic attraction assembly 101 also includes a connector 115, which is located inside the housing 102 and fixedly connected to the lever 104. A pin 113 passes through both the lever 104 and the connector 115, and the connector 115 can also rotate around the pin 113. The lever 104 and the connector 115 can rotate synchronously. The separating member 103 includes a first abutment portion 120 (e.g., ...). Figure 5 As shown), the connector 115 includes a second abutment portion 122 (as shown). Figure 6 As shown, when the connecting member 115 rotates together with the lever 104 in the first direction, the second abutment portion 122 pushes the first abutment portion 120, thereby moving the separating member 103 from the retracted position to the extended position. Conversely, when the connecting member 115 and the lever 104 rotate together in the second direction, the separating member 103 moves from the extended position to the retracted position. The first direction and the second direction are opposite; for example, if the first direction is counterclockwise, then the second direction is clockwise. In this way, the lever 104 is connected to the separating member 103 via the connecting member 115, and the rotation of the lever 104 is converted into the linear motion of the separating member 103.

[0049] Specifically, please refer toFigures 5 to 7 The first abutting portion 120 includes a first inclined surface 121 inclined along the circumference of the connector 115, and the second abutting portion 122 includes a second inclined surface 123 inclined along the circumference of the connector 115. The first inclined surface 121 and the second inclined surface 123 are in contact with each other. The first inclined surface 121 extending circumferentially along the connector 115 means that, in the circumferential direction of the connector 115, the first inclined surface 121 includes a first end and a second end, and the distance between the first inclined surface 121 and the ejector surface 107 gradually increases from the first end to the second end. Figure 7 In this context, the first end can be the front end of the first inclined surface 121, and the second end can be the rear end of the first inclined surface 121. Similarly, the second inclined surface 123 extending circumferentially along the connector 115 means that, in the circumferential direction of the connector 115, the second inclined surface 123 includes a third end and a fourth end, and the distance between the second inclined surface 123 and the ejector surface 107 gradually increases from the third end to the fourth end. Figure 7 In the middle, the third end can be the front end of the second inclined surface 123, and the fourth end can be the rear end of the second inclined surface 123.

[0050] like Figure 7 As shown, when the connecting member 115 rotates along the first direction, the second inclined surface 123 rotates relative to the first inclined surface 121. The force exerted by the second inclined surface 123 on the first inclined surface 121 has an upward component, which pushes the separating member 103 upward, thereby moving the separating member 103 from the retracted position to the ejected position. This embodiment converts the rotation of the connecting member 115 into the linear motion of the separating member 103 through the movement and contact between the inclined surfaces. This embodiment has a simple structure and low cost. It should be noted that since the guide post 109 of the separating member 103 is inserted into the guide hole 111 of the upper shell 117, the wall of the guide hole 111 limits the lateral movement of the guide post 109. Therefore, the force exerted by the second inclined surface 123 on the first inclined surface 121 will not push the separating member 103 to rotate.

[0051] In some embodiments not shown, the first abutment 120 may have a first inclined surface 121, but the second abutment 122 may not have a second inclined surface 123, and the second abutment 122 pushes the first inclined surface 121 through a portion of other shape. Alternatively, the second abutment 122 may have a second inclined surface 123, and the first abutment 120 may not have a first inclined surface 121. As long as at least one of the first inclined surface 121 and the second inclined surface 123 is present, the rotation of the connecting member 115 can be converted into the linear motion of the separating member 103. For example, the first abutment 120 may have a first inclined surface 121, the connecting member 115 may be configured as a cam, the connecting member 115 may not have a second inclined surface 123, and the protruding end of the cam may be the second abutment 122; as the cam rotates, when the protruding end of the cam abuts against the first inclined surface 121, the cam pushes the first separating member 103 upward.

[0052] Furthermore, to convert the rotation of the lever 104 into the linear motion of the separator 103, other transmission methods can be used between the lever 104 and the separator 103. For example, the second abutment portion 122 can directly serve as part of the lever 104 (equivalent to omitting the connecting member 115), and the lever 104 can directly abut against the separator 103 to drive the separator 103 to move. Another example is that the connecting member 115 includes a threaded hole, and the separator 103 includes a threaded rod connected to the threaded hole. Based on the threaded fit between the threaded hole and the threaded rod, when the connecting member 115 rotates, the threaded hole rotates relative to the threaded rod, causing the threaded rod to move along its own axial direction, thereby causing the separator 103 to move. Examples are not exhaustive here.

[0053] In some embodiments, the magnetic attraction assembly 101 includes a plurality of separating members 103, and the connecting member 115 includes a plurality of second abutting portions 122. The number of first abutting portions 120 and second abutting portions 122 is the same, and each second abutting portion 122 is correspondingly disposed with one separating member 103, that is, each second abutting portion 122 is used to drive one separating member 103. For example, in Figure 6 In the process, the connecting member 115 includes two second abutting portions 122, which are located at both ends of the connecting member 115 respectively; correspondingly, the separating member 103 is provided with two (e.g., Figure 1 (As shown). The number of second abutment portions 122 and the number of separators 103 can also be greater than two, but examples are not detailed here.

[0054] When the connector 115 rotates, all the separating parts 103 move synchronously relative to the housing 102. In this way, the multiple separating parts 103 can push the electronic device 118 out synchronously, and the force on the electronic device 118 is more even, which makes it easier for the magnetic suction assembly 101 to push the electronic device 118 out more smoothly.

[0055] Please refer to Figure 2 and Figure 3 When multiple separating members 103 are provided, the separating members 103 can be arc-shaped, and the multiple separating members 103 are arranged at intervals, collectively surrounding the magnet 112. In this case, the separating members 103 are located on the periphery of the magnet 112, and the ejection surface 107 is located on the periphery of the magnetic attraction surface 106. With this arrangement, the separating members 103 can adapt to the annular magnet 112 and avoid it. Furthermore, this arrangement can increase the force-bearing area of ​​the electronic device 118 during the ejection process and improve the uniformity of the force on the electronic device 118.

[0056] In some other embodiments not shown, the magnetic attraction assembly 101 may also include only one separator 103, which is annular. The annular separator 103 can also be adapted to the annular magnet 112, and is beneficial to increasing the force-bearing area of ​​the electronic device 118 during the ejection process, as well as improving the uniformity of the force on the electronic device 118.

[0057] In some embodiments, the magnetic assembly 101 further includes an elastic element 108. The housing 102 and the separating member 103 are both connected to the elastic element 108. The elastic force of the elastic element 108 is used to drive the separating member 103 from the extended position to the retracted position. In this way, when the user releases the lever 104, the elastic element 108 will automatically drive the separating member 103 to reset (move to the retracted position), so that the magnetic assembly 101 can subsequently reattach the electronic device 118. The user does not need to reset the separating member 103 by toggling the lever 104, which improves the ease of operation of the magnetic assembly 101.

[0058] Figure 8 One mounting method for the elastic element 108 is shown. For example... Figure 8 As shown, the elastic element 108 is sleeved outside the guide post 109 of the separating member 103, and the top end of the elastic element 108 abuts against the upper shell 117 of the outer shell 102. The limiting screw 126 is connected to the guide post 109, and the bottom end of the elastic element 108 abuts against the head of the limiting screw 126. As the separating member 103 moves from the retracted position to the ejected position (the separating member 103 moves upward), the elastic element 108 is gradually compressed. When the user releases the lever 104, the elastic force of the elastic element 108 drives the limiting screw 126 and the separating member 103 to move downward synchronously, thereby driving the separating member 103 to reset.

[0059] like Figure 9 As shown, the magnetic component 101 in any of the above embodiments can be applied to the electronic device holder 127. The electronic device holder 127 includes a holder body 128 and a magnetic component 101. The bottom of the holder body 128 can be supported by a desktop or other supporting surface, and the magnetic component 101 is connected to the top of the holder body 128. The electronic device holder 127 can fix and support the electronic device 118 by magnetic attraction, and the magnetic attraction force between it and the electronic device 118 is adjustable, making it convenient for users to remove the electronic device 118 from the electronic device holder 127.

[0060] 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.

Claims

1. A magnetic attraction component, characterized in that, include: A housing, the outer surface of which includes a magnetic surface for facing the electronic device; A magnet is fixed inside the outer casing; A separator, movably connected to the housing, the separator including a top surface for contacting the electronic device; A lever, one end of which protrudes outside the housing, is kinetically connected to the separating member, and is rotatable relative to the housing to switch the separating member between an extended position and a retracted position; When the separating member is in the ejected position, the ejected surface is located outside the housing and protrudes relative to the magnetic surface; when the separating member is in the retracted position, the ejected surface is recessed relative to the magnetic surface or flush with the magnetic surface.

2. The magnetic suction assembly according to claim 1, characterized in that, The outer surface of the housing also includes a back side and a side side. The back side is opposite to the magnetic surface, and the side side is located between the back side and the magnetic surface. Both the back side and the magnetic surface are connected to the side side, and the lever extends from the side side to the outside of the housing.

3. The magnetic suction assembly according to claim 1, characterized in that, The axis of rotation of the lever relative to the housing is the reference line, and the separating member moves along the reference line when it moves between the ejected position and the retracted position.

4. The magnetic attraction assembly according to claim 3, characterized in that, The magnetic attraction assembly further includes a connector, and the lever is connected to the separator via the connector. The connector is located inside the housing and is fixed to the lever. The separating member includes a first abutting portion, and the connecting member includes a second abutting portion. When the connecting member rotates together with the lever in a first direction, the second abutting portion can push the first abutting portion to move the separating member from the retracted position to the ejected position. When the connecting member rotates together with the lever in a second direction, the separating member moves from the ejected position to the retracted position. The first direction is opposite to the second direction.

5. The magnetic attraction assembly according to claim 4, characterized in that, The first abutting portion includes a first inclined surface that is inclined circumferentially along the connector, and the first inclined surface abuts against the second abutting portion; Alternatively, the second abutting portion includes a second inclined surface that is circumferentially inclined along the connector, and the second inclined surface abuts against the first abutting portion; Alternatively, the first abutting portion includes a first inclined surface that is inclined circumferentially along the connector, and the second abutting portion includes a second inclined surface that is inclined circumferentially, with the first inclined surface and the second inclined surface fitting together.

6. The magnetic attraction assembly according to claim 4, characterized in that, The magnetic attraction assembly includes a plurality of the separating members, and the connecting member includes a plurality of second abutment portions. Each second abutment portion is correspondingly provided with one of the separating members. When the connecting member rotates, all the separating members move synchronously relative to the outer shell.

7. The magnetic suction assembly according to claim 1, characterized in that, Both the magnetic suction surface and the top protruding surface are planar. And / or, When the separating member is in the ejected position, the protrusion distance of the ejected surface relative to the magnetic suction surface is not less than 2mm.

8. The magnetic attraction assembly according to claim 1, characterized in that, The magnetic suction assembly also includes an elastic element, and both the outer shell and the separating element are connected to the elastic element. The elastic force of the elastic element is used to drive the separating element to move from the ejected position to the retracted position.

9. The magnetic attraction assembly according to claim 1, characterized in that, The separating element is disposed around the periphery of the magnet, and the top protruding surface is disposed around the periphery of the magnetic attraction surface; The magnetic attraction assembly includes multiple spaced-apart separators, each separator being arc-shaped, with the multiple separators collectively surrounding the magnet; or, the magnetic attraction assembly includes a single ring-shaped separator.

10. The magnetic attraction assembly according to claim 1, characterized in that, The magnetic attraction assembly also includes a pin, which is located inside the housing and is inserted into the housing. The end of the lever located inside the housing is rotatably sleeved on the outside of the pin.

11. The magnetic suction assembly according to claim 1, characterized in that, The outer surface of the housing forms a stepped groove, a portion of the separator is accommodated in the stepped groove, the bottom wall of the stepped groove is provided with a guide hole, and the separator includes a guide post, which is slidably disposed in the guide hole.

12. An electronic device bracket, characterized in that, Includes the magnetic attraction component as described in any one of claims 1 to 11.