Support convenient to use

By incorporating a lifting and driving component into the magnetic holder, the magnetic attraction force can be adjusted as needed, solving the problem of inconvenient operation of existing magnetic holders and improving the user experience.

CN224094101UActive Publication Date: 2026-04-07SHENZHEN BASEUS TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-27
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

Existing magnetic holders have excessively strong magnetic force, making it inconvenient for users to retrieve electronic devices, especially for children and the elderly. Furthermore, the magnetic force cannot be adjusted according to the weight of different electronic devices and user habits.

Method used

Design a bracket including a base, a lifting component, and a driving component. The lifting component can switch between a first position and a second position. The driving component drives the lifting component to move in a specific direction, adjusting the magnetic force of the magnetic component on the electronic device for easy access.

Benefits of technology

It simplifies the separation of electronic devices from the stand, improves the user experience, reduces the binding force of magnetic components on the device, and makes it more convenient to use.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a support convenient to use. The support comprises a base, a jacking piece and a driving piece. The base is provided with a bearing surface suitable for bearing the electronic equipment and comprises a magnetic part, and the magnetic part is suitable for magnetically attracting the electronic equipment borne on the bearing surface. The jacking piece is movably connected to the base, and the jacking piece is configured to be capable of conducting position switching between a first position and a second position relative to the base. The driving piece is connected with the jacking piece so that the jacking piece can move to the second position from the first position. The jacking piece comprises a jacking end, when the jacking piece is located at the first position, the jacking end is located on the side, away from the electronic equipment, of the bearing face, when the jacking piece is located at the second position, the jacking end is located on the side, facing the electronic equipment, of the bearing face, and the jacking end is located in the process that the jacking piece moves from the first position to the second position. The jacking end is suitable for pushing at least part of the electronic equipment borne on the bearing surface away from the bearing surface. The adsorption capacity of the magnetic part to the electronic equipment can be adjusted, and the electronic equipment can be taken down from the support conveniently.
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Description

Technical Field

[0001] This utility model relates to the field of bracket technology, and in particular to a convenient bracket. Background Technology

[0002] Existing magnetic stands all rely on the strong attraction between an internal magnet and the magnet inside the electronic device or its protective case to fix and support the device. However, to ensure a stable attraction, the magnetic force of the stands is generally too strong, requiring users to apply a large force perpendicular to the stand surface when removing the electronic device. This is inconvenient, easily causes hand fatigue, is not friendly to children and the elderly, and can easily damage the preset angle of the stand.

[0003] Furthermore, electronic devices from different manufacturers and of different sizes vary significantly in weight when protected with a case. However, manufacturers often design cases based on the ability to hold the heaviest electronic devices, resulting in fixed and excessively strong magnetic forces that cannot be adjusted according to the actual weight of the electronic device and user habits, further exacerbating the difficulty of removing the device. Utility Model Content

[0004] The main objective of this invention is to provide a convenient and easy-to-use support, comprising:

[0005] A base having a support surface suitable for supporting electronic equipment, the base including a magnetic element suitable for magnetically attracting electronic equipment supported on the support surface;

[0006] A lifting component is movably connected to a base, and the lifting component is configured to switch positions relative to the base between a first position and a second position.

[0007] A drive unit connected to a lifting member, the drive unit being configured to drive the lifting member to move along a first direction, so that the lifting member moves from a first position to a second position;

[0008] The lifting member includes a lifting end. When the lifting member is in the first position, the lifting end is located on the side of the bearing surface away from the electronic device. When the lifting member is in the second position, the lifting end is located on the side of the bearing surface facing the electronic device. During the process of the lifting member moving from the first position to the second position, the lifting end is adapted to push at least part of the electronic device on the bearing surface away from the bearing surface.

[0009] In some embodiments, the base further includes a housing, a magnetic element is disposed within the housing, the housing has a first end wall, and the bearing surface includes the first end wall;

[0010] or,

[0011] The base includes a housing, a magnetic element connected to the housing, the magnetic element having a second end wall, and a bearing surface including the second end wall;

[0012] or,

[0013] The base includes a housing with a first end wall, a magnetic element connected to the housing with a second end wall, and a bearing surface including the first end wall and the second end wall; and / or, the base includes a housing with a first end wall, a magnetic element disposed inside the housing, and a lifting end having a third end wall. When the lifting element is in a first position, the first end wall and the third end wall are coplanar, and the bearing surface and the third end wall are both suitable for supporting electronic equipment.

[0014] In some embodiments, the lifting member is configured to switch positions between a first position and a second position along a direction perpendicular to the bearing surface.

[0015] In some embodiments, the base further includes a housing, a magnetic element is disposed within the housing, the housing has a first end wall, and the bearing surface includes the first end wall;

[0016] The first end wall has a recessed receiving groove inside, and the lifting end can be located in the receiving groove. In the first position, the lifting end is located on the side of the first end wall opposite to the first direction, or the lifting end is located in the groove opening of the receiving groove. In the second position, at least the lifting end extends out of the groove opening of the receiving groove along the first direction.

[0017] In some embodiments, the drive member is further configured to drive the lifting member to move from the second position to the first position.

[0018] In some embodiments, the drive member includes a drive portion and a driven portion, the drive portion being connected to the lifting member, and the driven portion being adapted to acquire driving force to drive the lifting member to a second position.

[0019] In some embodiments, the base includes a housing, a drive portion located within the housing, and a driven portion extending out of the housing.

[0020] In some embodiments, the drive member rotates about a first direction to drive the lifting member to move along the first direction to a second position.

[0021] In some embodiments, the end of the lifting member away from the bearing surface is threadedly connected to the driving member, and the housing includes a limiting structure connected to the lifting member to restrict the circumferential rotation of the lifting member about a first direction. The driving member rotates relative to the lifting member to drive the lifting member to move along the first direction.

[0022] In some embodiments, along the first direction, the end of the lifting member away from the magnetic member is provided with an external thread, and the driving member is provided with a threaded hole. The external thread and the threaded hole cooperate to enable the driving member to drive the lifting member to move along the first direction.

[0023] In some embodiments, the driving member includes a driving part and a driven part, the driving part being connected to the lifting member, and the driven part being adapted to acquire driving force to drive the lifting member to a second position.

[0024] The drive unit is a hollow column with a threaded hole. The lifting component includes a threaded column and a lifting end. The threaded column is connected to the lifting end, and the lifting end is adapted to abut against the electronic equipment. The threaded column extends into the hollow column in a first direction to engage with the drive unit threadedly.

[0025] In some embodiments, the driven part is a knob shell, a hollow column is connected to the knob shell, and the driving member includes a connecting rib. The connecting rib is arranged circumferentially around the hollow column, with one end of the connecting rib connected to the outer wall of the hollow column and the other end connected to the inner wall of the knob shell.

[0026] In some embodiments, the housing includes an intermediate connector disposed within a receiving groove and connected to the housing. The intermediate connector includes a limiting structure and has a through hole. The axial direction of the through hole is parallel to a first direction, and a lifting member passes through the through hole.

[0027] In some embodiments, the inner wall of the through hole is recessed with a guide groove, the guide groove is configured as a limiting structure, the guide groove extends along a first direction, and the lifting member is provided with a guide protrusion that is recessed into the guide groove.

[0028] In some embodiments, the inner wall of the through hole is provided with a plurality of guide grooves, which are circumferentially spaced around a first direction. The lifting member includes a plurality of guide protrusions circumferentially spaced around the first direction, and the plurality of guide protrusions correspond to the plurality of guide grooves respectively.

[0029] In some embodiments, the intermediate connector includes a boss protruding toward the axis of the through hole. The boss has a top wall and a bottom wall that are oppositely distributed along a first direction. Along the first direction, a guide protrusion abuts against the bottom wall of the boss to restrict the movement of the lifting member along the first direction.

[0030] In some embodiments, the magnetic elements are circumferentially distributed around a first direction.

[0031] According to the above embodiments, the beneficial effects of this utility model are:

[0032] The convenient bracket of this application includes a base, a lifting component, and a driving component. The base, as the core part of the bracket, has a support surface suitable for supporting electronic devices. The base includes a magnetic component suitable for magnetically attracting electronic devices supported on the support surface; in other words, the magnetic component enhances the attraction force on the electronic devices placed thereon, ensuring that the devices will not easily slip off during use.

[0033] A lifting member is movably connected to a base and configured to switch positions relative to the base between a first position and a second position. A drive member is connected to the lifting member and configured to drive the lifting member to move along a first direction, thereby moving the lifting member from the first position to the second position.

[0034] When the lifting component is in the first position, its lifting end is located on the side of the support surface away from the electronic device. This means that the lifting component does not lift the electronic device at this time, and the electronic device and the base maintain a stable assembly state. When the lifting component switches to the second position, the lifting end moves to the side of the support surface facing the electronic device, and at least partially pushes the electronic device away from the support surface for easy access by the user. The drive component is connected to the lifting component and is responsible for providing power to enable the lifting component to move in a specific direction, realizing the position switching. This process not only simplifies the separation operation of the electronic device and the bracket, but also improves the user experience.

[0035] Specifically, since the bearing surface includes a magnetic component, when the electronic device is fixed to the bracket, it will be magnetically attracted to the bracket by the magnetic component. The lifting component lifts the electronic device along the first direction, which weakens the magnetic component's attraction to the electronic device. Therefore, the bracket's binding force on the electronic device is reduced, making it easier to remove the electronic device.

[0036] 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

[0037] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on the structures shown in these drawings without creative effort.

[0038] Figure 1 This is a three-dimensional structural diagram of the bracket in one embodiment of the present invention, wherein the lifting member is in the first position;

[0039] Figure 2 This is a three-dimensional structural diagram of the bracket in one embodiment of the present invention, wherein the lifting member is in the second position;

[0040] Figure 3 This is an exploded view of the support structure as seen from a first perspective in one embodiment of the present invention.

[0041] Figure 4 This is a schematic diagram of the exploded structure of the bracket as viewed from a second perspective in one embodiment of the present invention;

[0042] Figure 5 This is a schematic diagram of a partially exploded support structure viewed from a third-person perspective in one embodiment of the present invention;

[0043] Figure 6This is a schematic diagram of a partially exploded structure of the support viewed from a fourth perspective in one embodiment of the present invention;

[0044] Figure 7 This is a three-dimensional structural diagram of the bracket in one embodiment of the present invention, wherein the top cover is hidden.

[0045] Figure 8 This is a cross-sectional structural diagram of the bracket in one embodiment of the present invention.

[0046] Explanation of icon numbers:

[0047] Base 10;

[0048] 100 housing; 110 bearing surface; 111 receiving groove; 120 intermediate connector; 121 through hole; 122 guide groove; 130 first end wall;

[0049] Limiting structure 1221; Boss 123;

[0050] Magnetic component 200; Second end wall 210;

[0051] Lifting component 300; Threaded column 310; Lifting end 320; Guide protrusion 330; Third end wall 340;

[0052] Drive component 400; Drive part 410; Hollow column 411; Connecting structure 420; Connecting rib 430; Driven part 440;

[0053] 500 blocks;

[0054] Top cover 600;

[0055] First direction X.

[0056] The realization of the purpose, functional features and advantages of this utility model will be further explained in conjunction with the embodiments and with reference to the accompanying drawings. Detailed Implementation

[0057] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0058] It should be noted that if the embodiments of this utility model involve directional indicators (such as up, down, left, right, front, back, etc.), the directional indicators are only used to explain the relative positional relationship and movement of the components in a specific posture. If the specific posture changes, the directional indicators will also change accordingly.

[0059] Furthermore, if the embodiments of this utility model involve descriptions such as "first" or "second," these descriptions are for descriptive purposes only and should not be construed as indicating or implying their relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined with "first" or "second" may explicitly or implicitly include at least one of those features. Additionally, the use of "and / or," "and / or," or "and / or" throughout the text implies three parallel solutions. For example, "A and / or B" includes solution A, solution B, or a solution where A and B are simultaneously satisfied. Furthermore, the technical solutions of the various embodiments can be combined with each other, but this must be based on the ability of those skilled in the art to implement them. When the combination of technical solutions is contradictory or impossible to implement, it should be considered that such a combination of technical solutions does not exist and is not within the scope of protection claimed by this utility model.

[0060] The following is for reference. Figures 1 to 8 This describes a conveniently used bracket according to an embodiment of the present invention. (Refer to...) Figures 1 to 4 The convenient bracket of this application includes a base 10, a lifting member 300, and a driving member 400. The base 10, as the core part of the bracket, has a bearing surface 110 suitable for supporting electronic devices. The base 10 includes a magnetic member 200, which is suitable for magnetically attracting electronic devices supported on the bearing surface 110. In other words, the magnetic member 200 is used to enhance the attraction force on the electronic devices placed thereon, ensuring that the devices will not easily slip off during use.

[0061] It is understood that the magnetic component 200 can be an embedded magnet or a surface-exposed magnet, with the bearing surface 110 of the base 10 itself configured to be magnetic, and one surface of the magnetic component 200 serving as the bearing surface 110. It is also understood that in some embodiments, the magnetic component 200 serves as an auxiliary element in fixing the electronic device to the bracket; that is, other structures are used to fix the electronic device to the bracket, and the magnetic component 200's adsorption effect is used in conjunction with other fixing structures to securely fix the electronic device to the bracket.

[0062] Regarding the definition of electronic devices, it can be understood that electronic devices can refer to the device itself, such as bare devices like mobile phones, tablets, computers, and e-readers, or it can refer to a combination of the device itself and a protective case fitted onto the device, such as mobile phones and tablets with protective cases. The magnetic component 200 can be magnetically attracted to either the device itself or the protective case fitted onto the device.

[0063] A lifting member 300 is movably connected to a base 10 and is configured to switch positions relative to the base 10 between a first position and a second position. A drive member 400 is connected to the lifting member 300 and is configured to drive the lifting member 300 to move along a first direction X, thereby moving the lifting member 300 from the first position to the second position.

[0064] When the lifting member 300 is in the first position, its lifting end 320 is located on the side of the bearing surface 110 away from the electronic device. This means that the lifting member 300 does not lift the electronic device at this time, and the electronic device and the base 10 maintain a stable assembly state. When the lifting member 300 switches to the second position, the lifting end 320 moves to the side of the bearing surface 110 facing the electronic device and pushes the electronic device at least partially away from the bearing surface 110, making it convenient for the user to access. The driving member 400 is connected to the lifting member 300 and is responsible for providing power to enable the lifting member 300 to move in a specific direction to achieve position switching. This process not only simplifies the separation operation of the electronic device and the bracket but also improves the user experience. Specifically, since the base 10 includes a magnetic suction element, when the electronic device is fixed to the bracket, it will be magnetically attracted to the bracket by the magnetic element 200. The lifting member 300 lifts the electronic device along the first direction X, which weakens the attraction of the magnetic element 200 to the electronic device. Therefore, the bracket's binding force on the electronic device is reduced, making it easier to remove the electronic device.

[0065] Regarding the bearing surface 110, it can be understood that the bearing surface 110 is a general term for the surface that supports the electronic device after it is fixed to the bracket. Specifically, the bearing surface 110 can be the outer shell of the base 10, the end face of the magnetic component 200 or the lifting component 300, or any combination of the above structures configured as the bearing surface 110. When the lifting component 300 is in the first position, the upper end face of the lifting component 300 can be separated from the electronic device, that is, at this time the bearing surface 110 includes the surface of the base 10. In the first position, the upper end face of the lifting component 300 can also contact the electronic device, at this time the bearing surface 110 includes the surface of the base 10 and the surface of the lifting component 300. When the lifting component 300 is in the second position, the electronic device is lifted by the lifting component 300, and at least part of the outer wall of the electronic device that was originally attached to the upper surface of the base 10 is separated from the upper surface of the base 10, thereby reducing the control capability of the base 10 over the electronic device and making it easier for the user to remove the electronic device.

[0066] It is understandable that the effect of the lifting member 300 on the electronic device in the second position can vary. For example, in the second position, the lifting member 300 completely lifts the electronic device, meaning that the outer wall of the electronic device and the outer wall of the base 10 have no contact area, and the electronic device and the outer wall of the base 10 are completely separated. In some embodiments, the lifting member 300 in the second position can also be configured to partially lift the electronic device. This can be understood as the electronic device tilting relative to the base 10 under the action of the lifting member 300, reducing the contact area between them compared to the original contact area, decreasing the base 10's control over the electronic device, and facilitating the removal of the electronic device.

[0067] Of course, in some embodiments, the lifting member 300 acts on the central region of the electronic device, making the electronic device less susceptible to damage when subjected to the lifting member 300. In some embodiments, the lifting member 300 acts on the edge of the electronic device, which also achieves the effect of lifting the electronic device away from the support surface 110. Here, lifting away refers to reducing the restraining force of the bracket on the electronic device, not necessarily completely separating it. Furthermore, when the lifting member 300 acts on the edge of the electronic device, it only needs to provide a small force to tilt the electronic device and separate it from the support surface 110.

[0068] In some embodiments, the lifting member 300 can also lift the electronic device from the side. For example, if the electronic device is attached to the bearing surface 110 in a vertical direction, the lifting member 300 can lift the electronic device in a horizontal direction through a linkage structure, thereby reducing the contact area between the electronic device and the bearing surface 110 and weakening the binding force of the magnetic member 200 on the electronic device.

[0069] In some embodiments, the lifting member 300 is driven by a knob-screw drive. Specifically, a rotatable knob is provided on the housing 100, and the knob is connected to a screw. The screw extends into the receiving groove 111 and is threadedly connected to the lifting member 300. The driving member 400 includes the knob, and the lifting member 300 includes the screw. When the user rotates the knob, the screw rotates, and the lifting member 300 moves linearly along the first direction X under the action of the screw, thereby switching between the second position and the first position. This driving method has a simple structure, low cost, and is easy to operate. The user can precisely adjust the position of the lifting member 300 by controlling the rotation angle and direction of the knob.

[0070] In some embodiments, the lifting member 300 is driven by a pull rod. Specifically, a retractable pull rod is provided on one side of the housing 100, and the pull rod is connected to the lifting member 300 via a linkage or other transmission mechanism, wherein the lifting member 300 includes the pull rod. The user moves the lifting member 300 within the receiving groove 111 by pulling or pushing the pull rod. The outer end of the pull rod can be designed in a shape that is easy to grip, and a corresponding limiting device is provided on the housing 100 to prevent the pull rod from being pulled out or pushed in excessively. This driving method is more intuitive, and the user can directly control the extension and retraction of the lifting member 300 by pulling or pushing the pull rod.

[0071] In some embodiments, the lifting member 300 is driven by a gear and rack mechanism. Specifically, the driving member 400 is a gear, and the lifting member 300 is provided with a matching rack. The user drives the gear to rotate, causing the rack to move linearly, thereby moving the lifting member 300 within the receiving groove 111.

[0072] In some embodiments, the lifting member 300 is driven by electromagnetic drive, utilizing the principle of electromagnets to drive the lifting member 300. Specifically, an electromagnet coil is installed at an appropriate position within the receiving groove 111, and the lifting member 300 is made of magnetic material or has magnetic components fixed to it. The bracket can be designed to have wireless charging functionality, allowing it to be powered, and a dedicated button is designed to control the energization of the electromagnet. When the electromagnet is energized, it generates a magnetic field that attracts or repels the lifting member 300, causing it to move along the first direction X. By designing the direction and magnitude of the current in the electromagnet, the lifting member 300 can be switched between a second position and a first position. The advantages of electromagnetic drive are fast response speed, enabling the lifting member 300 to complete its movement in a short time, and the movement speed and force of the lifting member 300 can be adjusted by precisely controlling the current. Furthermore, when set as electromagnetic drive, the driving member 400 serves as the corresponding button; simply adjusting the button position to a location convenient for user operation greatly improves the ease of user control of the bracket.

[0073] In some embodiments, the design of the lifting member 300 can incorporate a multi-segment lifting mechanism in addition to basic linear motion. For example, the lifting member 300 can be divided into multiple parts, each moving sequentially to form a stepped lifting process. The lifting member 300 may slightly pause at several nodes along the first direction X to provide feedback on the lifting motion. This design can more gently release the contact between the electronic device and the supporting surface 110, reducing the impact force caused by sudden lifting. Additionally, adding a soft material, such as a silicone pad, to the end of the lifting member 300 can be considered to protect the electronic device from damage.

[0074] It is understood that in some embodiments, the driving member 400 and the lifting member 300 may be two parts of a single integrated component. For example, the driving member 400 and the lifting member 300 may be considered as a single unit, ultimately enabling the end of the lifting member 300 to lift the electronic device, thereby detaching the electronic device entirely or partially from the bearing surface 110. All of the above design methods fall within the scope of protection of this application.

[0075] In some embodiments, the operation of the drive unit 400 is not limited to manual adjustment; it can integrate an electric motor and a remote control device, allowing users to remotely control the movement of the lifting unit 300, greatly improving the flexibility and convenience of operation.

[0076] In some embodiments, to enhance the friction between the bearing surface 110 and the electronic device and prevent the device from sliding, a special texture treatment can be applied to the surface of the bearing surface 110, such as adding fine frosted textures or anti-slip particles. Simultaneously, to protect the casing of the electronic device from scratches, a soft protective pad, such as a silicone pad or a velvet pad, can be attached to the area where the bearing surface 110 contacts the device, providing both cushioning and improved user experience. Since the end of the lifting member 300 also contacts the electronic device, in some embodiments, a silicone top cover 600 is provided at the end of the lifting member 300 to protect the electronic device. The top cover 600 can be connected to the end of the lifting member 300 by sleeve or by fitting.

[0077] In some embodiments, considering that different users may use electronic devices of various sizes, the size of the support surface 110 is designed to be adjustable. For example, a retractable frame is provided on one or both sides of the support surface 110, and fixed by a structure such as a slide rail or elastic buckle. The user can adjust the length of the frame according to the actual size of the device, thereby accommodating electronic devices of different widths. In addition, the overall area of ​​the support surface 110 can also be designed to be expandable, such as by adding a foldable extension. When a larger device needs to be placed, the extension can be unfolded to expand the area of ​​the support surface 110, and then folded back after placement to maintain the compactness of the bracket.

[0078] In some embodiments, considering that excessive magnetism of the magnetic component 200 may affect the internal structure of the electronic device, the bearing surface 110 is designed with an auxiliary fixing structure to cooperate with the magnetic component 200 and further enhance the fixing effect on the electronic device. For example, some adjustable clips or elastic straps are provided at the edge of the bearing surface 110. The user can adjust the position of the clips or the tightness of the straps according to the thickness and shape of the device to fix the device more firmly on the bearing surface 110. The auxiliary fixing structure compensates for insufficient magnetic strength of the magnetic component 200 and prevents it from slipping off the bearing surface 110 due to accidental collisions or the weight of the device itself.

[0079] Reference Figure 1 and Figure 3 In some embodiments, the base 10 includes a housing 100, and a magnetic element 200 is disposed within the housing 100. The housing 100 has a first end wall 130, and the bearing surface 110 includes the first end wall 130. In other words, the magnetic element 200 is not exposed, and only the exposed surface of the housing 100, i.e., the first end wall 130, is used to support the electronic device.

[0080] In some embodiments, the base 10 includes a housing 100, a magnetic element 200 connected to the housing 100, the magnetic element 200 having a second end wall 210, and a bearing surface 110 including the second end wall 210. This embodiment can be understood as the surface of the magnetic element 200 being exposed, and the electronic device being supported only by the exposed surface of the magnetic element 200, i.e., the bearing surface 110 including the second end wall 210.

[0081] In some embodiments, the base 10 includes a housing 100 having a first end wall 130, a magnetic element 200 connected to the housing 100 having a second end wall 210, and a bearing surface 110 including the first end wall 130 and the second end wall 210. This embodiment is intended to illustrate that the bearing surface 110 can be formed by the structure of the housing 100 and the structure of the magnetic element 200. And / or, in some embodiments, the base 10 includes a housing 100 having a first end wall 130, the magnetic element 200 disposed within the housing 100, and a lifting end 320 having a third end wall 340. When the lifting element 300 is in a first position, the first end wall 130 and the third end wall 340 are coplanar, and the bearing surface 110 and the third end wall 340 jointly serve to support the electronic device. This embodiment means that the structure of the lifting end 320 can also be configured as the bearing surface 110. In summary, the bearing surface 110 can come from any one of the magnetic components 200, the housing 100, and the lifting end 320, or any combination of two or three structures.

[0082] Reference Figures 4 to 6In some embodiments, the lifting member 300 is configured to switch between a first position and a second position along a direction perpendicular to the bearing surface 110. This design allows the lifting member 300 to lift and lower the electronic device without changing its direction of movement, thereby simplifying the mechanical structure design and improving operational accuracy. When the lifting member 300 is in the first position, it is completely hidden inside or close to the surface of the base 10, ensuring that the electronic device can be placed stably on it; while when the lifting member 300 moves to the second position, the lifting end 320 extends and contacts the electronic device, pushing it away from the bearing surface 110 a certain distance for easy access by the user. This process is achieved by the power provided by the driving member 400, which converts mechanical energy into linear motion of the lifting member 300, ensuring smoothness and stability of the operation.

[0083] Understandably, in some embodiments, to further improve the operational accuracy of the lifting member 300, a pressure sensor can be installed on the top of the lifting member 300. This sensor can detect the applied pressure when the lifting member 300 contacts the electronic device, thereby controlling the rising speed and stopping time of the lifting member 300 to avoid damage to the device. For example, when the lifting member 300 begins to push the electronic device, if the detected pressure value exceeds a preset safety threshold, the system will automatically slow down the speed of the lifting member 300 or stop its further ascent. Furthermore, considering that the height of the electronic device needs to be frequently adjusted in certain special situations, an electric adjustment device can be introduced, allowing the position adjustment of the lifting member 300 to be completed via a button or remote control, eliminating the need for manual operation and greatly improving the user experience.

[0084] Reference Figures 1 to 4In some embodiments, the base 10 includes a housing 100, with a magnetic element 200 disposed within the housing 100. The housing 100 has a first end wall 130, and the bearing surface 110 also includes the first end wall 130. To accommodate the lifting member 300, a receiving groove 111 is recessed within the first end wall 130, and the lifting member 300 is placed within this receiving groove 111. When the lifting member 300 is in the first position, the lifting end 320 is located on the side of the first end wall 130 facing the opposite direction, or the lifting end 320 is located within the opening of the receiving groove 111, meaning the lifting member 300 does not extend beyond the receiving groove 111 and does not interfere with the normal placement of the electronic device. When the lifting member 300 is driven to the second position, the lifting end 320 at least partially extends beyond the opening of the receiving groove 111, pushing the electronic device upwards. This design not only makes the overall appearance of the bracket more concise and aesthetically pleasing but also increases the convenience and safety of use. The presence of the receiving groove 111 also provides additional protection, preventing external dust or other impurities from entering and affecting the working performance of the lifting member 300. Furthermore, the receiving groove 111 can be designed with a certain depth and width to accommodate lifting members 300 of different sizes, thereby expanding the application range of the support.

[0085] Understandably, in some embodiments, to enhance the stability and durability of the support, the housing 100 can be made of high-strength aluminum alloy or carbon fiber composite material. This not only reduces the overall weight but also increases impact resistance. Regarding the design of the receiving groove 111, in addition to the existing single opening, an auxiliary opening can be added to the side to facilitate maintenance and replacement of components such as the lifting component 300. For example, when cleaning or repairing the lifting component 300 is required, it can be easily removed through the side opening without disassembling the entire support. Furthermore, to prevent increased friction between the lifting component 300 and the receiving groove 111 after long-term use, a low-friction coefficient wear-resistant coating, such as Teflon (PTFE), can be applied to the inner wall of the receiving groove 111, reducing wear and noise. Such improvements allow the lifting component 300 to maintain good working condition even after multiple lifting operations, extending the service life of the support.

[0086] Reference Figures 1 to 4In some embodiments, the drive member 400 is configured not only to drive the lifting member 300 from a first position to a second position, but also to drive the lifting member 300 back from the second position to the first position. This bidirectional drive design makes the operation of the lifting member 300 more flexible, allowing the position of the electronic device to be adjusted according to actual needs. For example, when the user wants to reposition the electronic device on the support surface 110, the lifting member 300 can smoothly return to its original position through the action of the drive member 400, ensuring that the electronic device can be safely placed back on the base 10. This process relies on the drive member 400, which can achieve the up-and-down movement of the lifting member 300 by changing the direction of the force applied to it.

[0087] For example, the first direction X is the vertical direction, defined as upward and downward for ease of description. Initially, the lifting member 300 is in the first position, with the lifting end 320 located on the side of the support surface 110 away from the electronic device, and the entire bracket is in standby mode. When it is necessary to lift the electronic device, the drive member 400 provides upward force, causing the lifting member 300 to move upward along a direction perpendicular to the support surface 110 until it reaches the second position. The lifting end 320 extends and contacts the electronic device, pushing it away from the support surface 110. To return the lifting member 300 to the first position, the drive member 400 reverses direction, generating a downward driving force, causing the lifting member 300 to move downward along the same path until the lifting end 320 is again hidden inside the base 10 or flush with the support surface 110. This design ensures reversibility of operation and improves ease of use and safety.

[0088] It is understandable that the drive unit 400 can also be configured to provide only upward driving force to eject the electronic device. Whether the drive unit 400 can return to the receiving slot 111 is not specifically designed. The purpose of this application is to lift the electronic device for easy removal by the user. Therefore, the drive unit 400 only needs to meet the condition of being able to lift the electronic device.

[0089] Of course, in some embodiments, after the drive member 400 lifts the electronic device, when a new electronic device is placed on the support, the drive member 400 can be configured to move downwards and return to the receiving slot 111 under the gravity of the new electronic device. Alternatively, a new structure can be provided to allow the lifting end 320 to move downwards, and this structure is not the original drive member 400 that drives the lifting member 300 upwards.

[0090] It is understandable that the drive unit 410 may also be configured with some positioning structures so that the lifting member 300 can be positioned at a certain position along the first direction X under the action of the drive unit 410, that is, the distance between the end of the lifting member 300 and the first end wall 130 of the housing 100 remains unchanged. Such positioning structures can be in various forms such as snap-fit ​​or pin, depending on the specific structure of the housing 100.

[0091] Reference Figure 4 and Figure 6 In some embodiments, the drive unit 400 includes two parts: a drive unit 410 and a driven unit 440. The drive unit 410 is directly connected to the lifting member 300, and the driven unit 440 is responsible for receiving external driving force and transmitting it to the drive unit 410, thereby pushing the lifting member 300 to the second position. Specifically, the driven unit 440 can be a manual knob, an electric motor, or other form of power source. When the driven unit 440 receives a user command or a signal from an automated control system, it starts and transmits the generated mechanical energy to the drive unit 410. The drive unit 410 uses this energy to drive the lifting member 300 to move along a predetermined path.

[0092] For example, if an electric motor is used as the driven part 440, the torque generated by the motor's rotation will be converted into linear motion through a series of gears or linkages, acting on the drive part 410. The drive part 410 then transmits this linear motion to the lifting member 300, causing it to rise or fall in a direction perpendicular to the bearing surface 110. This method not only effectively improves the operating efficiency of the lifting member 300 but also ensures the accuracy and stability of its movements. Furthermore, due to the tight fit between the drive part 410 and the driven part 440, good synchronization performance can be maintained even after prolonged use, reducing maintenance costs. Similarly, the driven part 440 can also be a knob, which the user rotates to drive the lifting member 300 to move.

[0093] It is understood that in some embodiments, the driven part 440 of the drive member 400 can use a pneumatic or hydraulic system instead of a conventional electric motor. For example, compressed air or hydraulic oil can be used as the power medium to drive the lifting member 300 through a cylinder or hydraulic cylinder. The advantage of this approach is that it can provide greater output force, making it particularly suitable for supporting heavier electronic devices. For example, lifting a large monitor or server equipment may be difficult with a small electric motor alone, while a pneumatic or hydraulic system can easily handle the task. In addition, because fluid transmission has better cushioning characteristics, the vibration and noise generated throughout the process are also less, improving the user experience. For example, when using a pneumatic system, the rising speed of the lifting member 300 can be easily controlled by adjusting the opening of the air intake valve, while ensuring a smooth transition of movement.

[0094] Reference Figure 5 and Figure 6 In some embodiments, the base 10 includes a housing 100, with the drive unit 410 located within the housing 100 and the driven unit 440 extending out of the housing 100. This design protects the internal components of the drive unit 400 (such as gears, linkages, etc.) while facilitating operation of the driven unit 440 by a user or external device. First, the housing 100 provides structural support and houses the drive unit 410. The drive unit 410 and the lifting member 300 are mechanically connected to transmit force, ensuring that the lifting member 300 can move smoothly along a first direction X. Specifically, the drive unit 410 can be an electric motor or a manual screw mechanism, with its output shaft directly or indirectly connected to the lifting member 300. The driven unit 440 is the user-interactive part, extending from the housing 100 for easy user operation. For example, when a manual knob is used as the driven unit 440, the rotational movement of the knob is converted into power input to the drive unit 410, causing the drive unit 410 to produce a corresponding linear movement, pushing the lifting member 300 up and down. This design not only improves ease of operation but also enhances the stability of the overall structure.

[0095] Reference Figure 5 and Figure 6 In some embodiments, the drive member 400 rotates about a first direction X to drive the lifting member 300 to move along the first direction X to a second position. In this embodiment, the rotational motion of the drive member 400 is converted into the linear motion of the lifting member 300. For example, one end of the lifting member 300 is provided with an external thread, and the drive member 400 is provided with a threaded hole, and the two mesh with each other. When the drive member 400 rotates, the lifting member 300 will move forward or backward along the direction of the thread.

[0096] In some embodiments, the convenient bracket of this utility model includes a housing 100, a magnetic component 200, a lifting component 300, and a driving component 400. The housing 100 has a bearing surface 110 suitable for supporting electronic devices. The bearing surface 110 is recessed with a receiving groove 111 for accommodating other parts of the bracket. The receiving groove 111 not only provides hidden space for the lifting component 300, but also ensures a simple appearance and reduces the size of the bracket.

[0097] Reference Figures 1 to 3A lifting member 300 is disposed within the receiving groove 111 and connected to the housing 100. The lifting member 300 may be entirely recessed within the receiving groove 111, or only the end that abuts against the electronic device may be recessed within the receiving groove 111 while the rest of its body protrudes from the housing 100 away from the area where the electronic device is housed. A driving member 400 is connected to the lifting member 300, which is configured to have a second position and a first position. The driving member 400 drives the lifting member 300 to move along a first direction X, switching the lifting member 300 between the second and first positions. When the lifting member 300 is in the second position, the end of the lifting member 300 extends from the receiving groove 111 and abuts against the electronic device. The lifting member 300 pushes the electronic device along the extension direction, separating the electronic device from the bearing surface 110, i.e., separating the electronic device from the housing 100. Since the magnetic member 200 is connected to the housing 100, as the distance between the electronic device and the housing 100 increases, the magnetic member 200's attraction to the electronic device weakens, thus facilitating the user to remove the electronic device. For example, in some embodiments, the lifting member 300 lifts by 1 mm, and the magnetic force applied by the magnetic member 200 to the electronic device decreases from 25 N to 15 N.

[0098] Reference Figures 1 to 3 When the lifting member 300 is in the first position, the end of the lifting member 300 is inserted into the receiving groove 111. At this time, the bearing surface 110 can closely fit the electronic device, making the distance between the electronic device and the magnetic member 200 closer, thereby enhancing the magnetic member 200's adsorption capacity for the electronic device and ensuring the stable fixation of the bracket for the electronic device.

[0099] In summary, the user-friendly bracket of this application adjusts the distance between the electronic device and the magnetic component 200 by using the lifting component 300 to change the magnetic component 200's ability to attract the electronic device, thus making it easier for the user to remove the electronic device from the bracket. Furthermore, the recessed receiving groove 111 inside the bearing surface 110 facilitates the placement of the bracket's components and saves space.

[0100] It should be noted that regarding the contact between the bearing surface 110 and the electronic device, the bearing surface 110 only serves a supporting function; it is not necessary for the electronic device and the bearing surface 110 to be completely in contact. Contact between the two is sufficient for contact. In some embodiments, the bearing surface 110 of the housing 100 can support the electronic device, and the end face of the lifting member 300 can also serve as the surface supporting the electronic device. Alternatively, the end face of the lifting member 300 and the bearing surface 110 of the housing 100 can jointly serve as the surface supporting the electronic device. The focus of this application is on adjusting the distance between the electronic device and the magnetic member 200 by controlling the lifting member 300. Therefore, the structure for supporting the electronic device is diverse and not limited to the bearing surface 110 of the housing 100.

[0101] Reference Figure 3 and Figure 4In some embodiments, the housing 100, magnetic component 200, lifting component 300, and driving component 400 are sequentially fastened together by a pressure block 500 to facilitate the disassembly and assembly of the magnetic bracket.

[0102] Reference Figures 3 to 6 In some embodiments, the end of the lifting member 300 away from the bearing surface 110 is threadedly connected to the driving member 400. The housing 100 includes a limiting structure 1221 connected to the lifting member 300 to restrict the circumferential rotation of the lifting member 300 about a first direction X. The driving member 400 rotates relative to the lifting member 300 to drive the lifting member 300 to move along the first direction X. Specifically, refer to... Figures 3 to 6 In some embodiments, along the first direction X, the end of the lifting member 300 away from the magnetic member 200 is provided with an external thread, and the driving member 400 is provided with a threaded hole. The external thread and the threaded hole cooperate to allow the driving member 400 to drive the lifting member 300 to move along the first direction X. By designing one end of the lifting member 300 as a threaded structure and cooperating with the threaded hole on the driving member 400, the lifting member 300 can move smoothly along the first direction X when the driving member 400 rotates. This design not only ensures the stability and reliability of the lifting member 300, but also simplifies the mechanical transmission mechanism and reduces manufacturing costs. The function of the limiting structure 1221 is to prevent the lifting member 300 from rotating circumferentially during movement. Since the circumferential rotation of the lifting member 300 is restricted, when the driving member 400, which is threadedly connected to the lifting member 300, rotates, the lifting member 300 only moves along the first direction X. It is understandable that the limiting structure 1221 can be designed to cooperate with the lifting member 300 in the form of a pin hole, or the limiting structure 1221 can be designed as a slot or other structure, as long as it satisfies the condition of limiting the circumferential movement of the lifting member 300 along the first direction X, and does not affect the movement of the lifting member 300 along the first direction X.

[0103] Furthermore, referring to Figures 3 to 6 as well as Figure 8 The drive component 400 includes a drive portion 410 and a connecting structure 420. The connecting structure 420 is connected to the housing 100, and the drive portion 410 is connected to the connecting structure 420. Along the first direction X, the drive portion 410 protrudes from the connecting structure 420 on the side away from the housing 100. By configuring the drive assembly in the form of a combination of the drive portion 410 and the connecting structure 420, with the drive portion 410 protruding outward and the connecting structure 420 integrated into the housing 100, this design allows for a thinner structure in the main area of ​​the support, facilitating space utilization.

[0104] Reference Figures 3 to 6 as well as Figure 8In some embodiments, the drive unit 410 is a hollow column 411 with a threaded hole. The lifting member 300 includes a threaded column 310 and a lifting end 320. The threaded column 310 is connected to the lifting end 320, which is adapted to abut against an electronic device. The threaded column 310 extends into the hollow column 411 along a first direction X to thread with the drive unit 410. In this embodiment, the drive unit 410 acts as a knob for adjusting the position of the lifting member 300 along the first direction X. The hollow column 411 protrudes from the connecting structure 420 along the first direction X, that is, it protrudes from the housing 100 along the first direction X. Therefore, the length of the hollow column 411 is not affected by the thickness of the core part of the housing 100. That is, the thread of the hollow column 411 can be designed to be longer, and a longer threaded column 310 can be inserted. Thus, this design allows for the design of a lifting member 300 that can move a longer distance along the first direction X. Of course, the control accuracy of the drive component 400 on the lifting component 300 can also be adjusted by changing the parameters of the thread.

[0105] Understandably, in some embodiments, to more intuitively reflect the control of the lifting member 300 by the drive member 400, the housing 100 and the drive member 400 are provided with corresponding markings. For example, the housing 100 is provided with different numerical markings around the first direction X, and the drive member 400 is provided with a pointer protruding around the first direction X. By rotating the drive member 400, the pointer will correspond to different markings, thereby making it convenient for the user to judge the distance that the lifting member 300 has moved along the first direction X.

[0106] It is understandable that, in some embodiments, the threaded connection of the lifting member 300 can be optimized in various ways. For example, using a trapezoidal thread instead of a regular triangular thread can improve the load-bearing capacity and wear resistance of the threaded pair. The trapezoidal thread has a larger contact area, reducing the risk of wear and extending service life. At the same time, the trapezoidal thread has a lower coefficient of friction, which helps to improve transmission efficiency and makes the movement of the lifting member 300 smoother.

[0107] Reference Figure 3 and Figure 5 In some embodiments, the driven part 440 is a knob shell, which is connected to the hollow column 411 and provides rotational force. The driving member 400 also includes a connecting rib 430, which is arranged circumferentially around the hollow column 411, with one end connected to the outer wall of the hollow column 411 and the other end connected to the inner wall of the knob shell, thereby enhancing structural stability and ensuring effective transmission of rotational force.

[0108] Reference Figures 3 to 6In some embodiments, the housing 100 includes an intermediate connector 120, which is disposed within the receiving groove 111 and connected to the housing 100. The intermediate connector 120 includes a limiting structure 1221 and a through hole 121. The axis of the through hole 121 is parallel to the first direction X, and the lifting member 300 passes through the through hole 121. In this embodiment, the lifting member 300 and the intermediate connector 120 are combined in a hole-shaft fit, which increases the coaxiality of the bracket itself. The intermediate connector 120 is fixed to the housing 100. The intermediate connector 120 can be a separate part, fixed to the housing 100 by means of pin hole fit, snap-fit ​​fit, etc., or the intermediate connector 120 can be configured as a single structure with the housing 100. In some embodiments, the limiting structure 1221 of the intermediate connector 120 can also be two protrusions with different connection relationships to the lifting member 300. For example, around the first direction X, the lifting member 300 has two protrusions at different positions, and the protrusions of the intermediate connector 120 correspond to the protrusions. Specifically, one protrusion abuts against the side of the protrusion that is clockwise around the first direction X, and the other protrusion abuts against the side of the protrusion that is counterclockwise around the first direction X. This combination can both restrict the design of the lifting member 300 around the first direction X and meet the requirement of the lifting member 300 moving along the first direction X.

[0109] Reference Figures 3 to 6 In some embodiments, the inner wall of the through hole 121 is recessed with a guide groove 122, which is configured as a limiting structure 1221. The guide groove 122 extends along the first direction X, and the lifting member 300 is provided with a guide protrusion 330, which is recessed into the guide groove 122. In this embodiment, the limiting structure 1221 of the lifting member 300 and the intermediate connecting member 120 cooperates in the form of a groove and a protrusion. Specifically, the guide protrusion 330 is recessed into the guide groove 122. If the lifting member 300 rotates around the first direction X, the sidewalls of the guide groove 122 distributed around the first direction X will hinder the movement of the guide protrusion 330, that is, the lifting member 300 cannot rotate. Due to the threaded engagement, the lifting member 300 will move along the first direction X along the inner wall of the guide groove 122. It is understandable that the design positions of the guide protrusion 330 and the guide groove 122 have also been changed. For example, the intermediate connector 120 is equipped with the guide protrusion 330, and the lifting component 300 is equipped with the guide groove 122.

[0110] In some embodiments, in order to improve the smoothness of sliding between the sidewall of the guide groove 122 and the guide protrusion 330, a ball can be embedded in the sidewall of either the guide groove 122 or the guide protrusion 330 around the first direction X. When the two move relative to each other along the first direction X, the rotation of the ball further ensures the smoothness of their relative movement along the first direction X.

[0111] Furthermore, this application may also include limiting elements of other forms and uses. For example, when the drive member 400 and the lifting member 300 are designed to cooperate in the form of a pull rod, an elastic element is introduced to provide additional support. Specifically, a spring assembly is provided at the bottom of the lifting member 300 to provide a cushioning effect when the lifting member 300 extends, preventing damage caused by sudden impact. In addition, the spring assembly can also help the lifting member 300 to automatically reset in the second position, enhancing the automation and reliability of the system.

[0112] Reference Figures 3 to 6 In some embodiments, the inner wall of the through hole 121 is recessed with multiple guide grooves 122, which are circumferentially spaced around a first direction X. The lifting member 300 includes multiple guide protrusions 330 circumferentially spaced around the first direction X, each corresponding to a guide groove 122. For example, four guide grooves 122 can be designed, and the number of guide grooves 122 can be increased to five, six, or more, with the guide grooves 122 spaced apart on the inner wall of the through hole 121. This can better distribute the force on the lifting member 300, reduce the wear of individual guide grooves 122, and extend the service life. The design of multiple guide grooves 122 and guide protrusions 330 makes the movement of the lifting member 300 more precise and stable, enhancing the reliability and durability of the entire system.

[0113] Reference Figures 3 to 6 In some embodiments, the intermediate connector 120 includes a boss 123 protruding toward the axis of the through hole 121. The boss 123 has a top wall and a bottom wall that are oppositely distributed along a first direction X. Along the first direction X, a guide protrusion 330 abuts against the bottom wall of the boss 123 to limit the movement of the lifting member 300 along the first direction X. The boss 123 is designed to limit the range of movement of the lifting member 300. Specifically, when the guide protrusion 330 on the lifting member 300 contacts the bottom wall of the boss 123, the lifting member 300 can no longer move upward.

[0114] In some embodiments, the boss 123 is annular, and there are multiple guide protrusions 330, all of which can abut against the annular boss 123. With this design, the boss 123 can more evenly distribute the pressure on the lifting member 300, which helps to protect the structure of the lifting member 300 and prevent damage due to excessive local stress.

[0115] Understandably, the boss 123 restricts the movement of the lifting member 300 after it extends a certain distance out of the receiving groove 111 along the first direction X. Regarding the restriction that the lifting member 300 sinks a certain distance into the receiving groove 111, refer to... Figures 5 to 8In some embodiments, the lifting member 300 is restricted by the contact between the end panel of the lifting member 300 and the top end of the hollow column 411 of the driving member 400. Specifically, when the lifting member 300 moves in the opposite direction X under the action of the driving member 400, the distance between the lifting member 300 and the driving member 400 gets closer and closer. At the extreme position, the lower surface of the end panel of the lifting member 300 abuts against the upper end of the hollow column 411 of the driving member 400, thereby realizing the limitation of the lifting member 300 by the driving member 400.

[0116] Reference Figure 7 and Figure 8 In some embodiments, the magnetic element 200 is circumferentially distributed around the first direction X. For example, in some embodiments, the magnetic element 200 is a ring magnet.

[0117] In some embodiments, the magnetic component 200 can be a combination of a permanent magnet and an electromagnet. A permanent magnet is fixedly installed inside the housing 100 near the bearing surface 110, with its magnetic poles facing the bearing surface 110, using its own magnetic field to generate an attractive force on the electronic device. Simultaneously, an electromagnet coil is placed next to the permanent magnet or at another suitable location on the bearing surface 110. The electromagnet coil is connected to a power supply and control switch on the bracket via wires. When it is necessary to enhance the magnetic component 200's ability to attract the electronic device, such as when using the bracket in a bumpy environment, the control switch can be closed to energize the electromagnet coil, generating a magnetic field in the same direction as the permanent magnet's magnetic field. The two magnetic fields are superimposed, significantly enhancing the overall attractive force of the magnetic component 200. When it is necessary to weaken the magnetism or facilitate the removal of the electronic device, the control switch can be disconnected, and the electromagnet stops working. In this case, the magnetic component 200 relies solely on the magnetic field of the permanent magnet to attract the electronic device, resulting in a relatively weaker attractive force, making it easier for the user to operate.

[0118] In some embodiments, multiple small permanent magnets are arranged in an array within the housing 100 below the support surface 110 to form a multi-pole magnetic component 200 structure. These permanent magnets can be rectangular, circular, or other shapes, with adjacent permanent magnets having opposite magnetic pole polarities, forming an alternating magnetic field distribution. For example, a 2×2 or 3×3 array can be used, or a long strip array arranged in multiple rows and columns along the length of the support surface 110. This multi-pole array design allows the magnetic field to be more uniformly distributed on the support surface 110, improving the stability and reliability of the electronic device's adsorption. When the electronic device is placed on the support surface 110, different parts of the device are subjected to the adsorption force of multiple magnetic poles. Even if the device experiences slight displacement or tilting, the interaction force between different magnetic poles can pull it back to a stable position, effectively preventing the device from accidentally slipping during use.

[0119] The above are merely preferred embodiments of this utility model and do not limit the patent scope of this utility model. Any equivalent structural transformations made based on the inventive concept of this utility model and the contents of this utility model specification and drawings, or direct / indirect applications in other related technical fields, are included within the patent protection scope of this utility model.

Claims

1. A user-friendly bracket, characterized in that, include: A base having a support surface suitable for supporting an electronic device, the base including a magnetic element adapted to magnetically attract the electronic device supported on the support surface; A lifting member is movably connected to the base, and the lifting member is configured to switch positions relative to the base between a first position and a second position. A drive unit connected to the lifting member, the drive unit being configured to drive the lifting member to move along a first direction, so that the lifting member moves from the first position to the second position; The lifting member includes a lifting end. When the lifting member is in the first position, the lifting end is located on the side of the bearing surface away from the electronic device. When the lifting member is in the second position, the lifting end is located on the side of the bearing surface facing the electronic device. During the process of the lifting member moving from the first position to the second position, the lifting end is adapted to push the electronic device supported on the bearing surface at least partially away from the bearing surface.

2. The easy-to-use bracket according to claim 1, characterized in that, The base also includes a housing, the magnetic element is disposed inside the housing, the housing has a first end wall, and the bearing surface includes the first end wall; or, The base includes a housing, the magnetic element is connected to the housing, the magnetic element has a second end wall, and the bearing surface includes the second end wall; or, The base includes a housing with a first end wall, the magnetic element is connected to the housing with a second end wall, and the bearing surface includes the first end wall and the second end wall; And / or, the base includes a housing having a first end wall, the magnetic element being disposed within the housing, the lifting end having a third end wall, and when the lifting element is in the first position, the first end wall and the third end wall are coplanar, and the bearing surface and the third end wall are both adapted to bear the electronic device.

3. The easy-to-use bracket according to claim 1, characterized in that, The lifting member is configured to switch positions between the first position and the second position along a direction perpendicular to the bearing surface.

4. The easy-to-use bracket according to claim 3, characterized in that, The base also includes a housing, the magnetic element is disposed inside the housing, the housing has a first end wall, and the bearing surface includes the first end wall; The first end wall has a recessed receiving groove inside, and the lifting end can be located in the receiving groove. In the first position, the lifting end is located on the side of the first end wall opposite to the first direction, or the lifting end is located in the groove opening of the receiving groove. In the second position, at least the lifting end extends out of the groove opening of the receiving groove along the first direction.

5. The user-friendly bracket according to claim 3, characterized in that, The drive unit is also configured to drive the lifting member to move from the second position to the first position.

6. The user-friendly bracket according to claim 3, characterized in that, The driving member includes a driving part and a driven part. The driving part is connected to the lifting member, and the driven part is adapted to acquire driving force to drive the lifting member to the second position.

7. The user-friendly bracket according to claim 6, characterized in that, The base includes a housing, the driving part is located inside the housing, and the driven part extends out of the housing.

8. The easy-to-use bracket according to claim 6, characterized in that, The drive member rotates about the first direction to drive the lifting member to move along the first direction to the second position.

9. The easy-to-use bracket according to claim 2, characterized in that, The lifting member is threaded to the driving member at one end away from the bearing surface. The housing includes a limiting structure connected to the lifting member to restrict the circumferential rotation of the lifting member about the first direction. The driving member rotates relative to the lifting member to drive the lifting member to move along the first direction.

10. The easy-to-use bracket according to claim 9, characterized in that, Along the first direction, the lifting member has an external thread at the end away from the magnetic member, and the driving member has a threaded hole. The external thread and the threaded hole cooperate to drive the lifting member to move along the first direction.

11. The easy-to-use bracket according to claim 10, characterized in that, The driving member includes a driving part and a driven part. The driving part is connected to the lifting member, and the driven part is adapted to acquire driving force to drive the lifting member to the second position. The drive unit is a hollow column with a threaded hole. The lifting member includes a threaded column and a lifting end. The threaded column is connected to the lifting end, and the lifting end is adapted to abut against the electronic device. The threaded column extends into the hollow column along the first direction to engage with the drive unit threadedly.

12. The easy-to-use bracket according to claim 11, characterized in that, The driven part is a knob shell, the hollow column is connected to the knob shell, the driving component includes a connecting rib, the connecting rib is arranged around the circumference of the hollow column, one end of the connecting rib is connected to the outer wall of the hollow column, and the other end is connected to the inner wall of the knob shell.

13. The user-friendly bracket according to claim 9, characterized in that, The first end wall has a recessed receiving groove inside. The housing includes an intermediate connector, which is disposed in the receiving groove and connected to the housing. The intermediate connector includes the limiting structure and has a through hole. The axis of the through hole is parallel to the first direction, and the lifting member passes through the through hole.

14. The easy-to-use bracket according to claim 13, characterized in that, The inner wall of the through hole is recessed with a guide groove, which is configured as the limiting structure. The guide groove extends along the first direction, and the lifting member is provided with a guide protrusion that is recessed into the guide groove.

15. The user-friendly bracket according to claim 14, characterized in that, The inner wall of the through hole is recessed with a plurality of guide grooves, which are circumferentially spaced around the first direction. The lifting member includes a plurality of guide protrusions circumferentially spaced around the first direction, and the plurality of guide protrusions correspond to the plurality of guide grooves respectively.

16. The user-friendly bracket according to claim 15, characterized in that, The intermediate connector includes a boss protruding toward the axis of the through hole. The boss has a top wall and a bottom wall that are oppositely distributed along the first direction. Along the first direction, the guide protrusion abuts against the bottom wall of the boss to restrict the movement of the lifting member along the first direction.