Electronic equipment support

By integrally forming the main body of the magnetic insulation bracket with the first magnetic component and covering its surface, the problem of insufficient fixing strength of the magnetic component is solved, and the structural stability of the electronic device bracket and the high efficiency of wireless charging are achieved.

CN120751048APending Publication Date: 2025-10-03SHENZHEN LANHE TECHNOLOGIES CO LTD
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Patent Information

Application Number
CN202510769907.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Priority Date
2025-01-07
Filing Date
2025-06-09
Publication Date
2025-10-03

AI Technical Summary

Technical Problem

The magnetic parts of existing electronic device brackets have insufficient fixing strength and are easily detached under external forces, resulting in weakened or ineffective adsorption, affecting the stability and efficiency of wireless charging.

Method used

The magnetic insulation bracket body and the first magnetic component are integrally formed, and the magnetic insulation bracket body covers two surfaces of the first magnetic component in the thickness direction, thereby improving the mechanical strength and fixing strength and preventing the magnetic component from detaching.

Benefits of technology

The structural integrity of the electronic device bracket is enhanced, the service life is extended, the stability and charging efficiency of wireless charging are improved, and the impact on magnetic fields is reduced.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses an electronic equipment bracket, which is characterized in that a magnetic insulation bracket main body of the electronic equipment bracket at least wraps and fixes two surfaces of a first magnetic part in the thickness direction of the first magnetic part; the risk that the first magnetic part is separated from the magnetic insulation support main body due to the fact that the magnetic insulation support main body is subjected to external force in the thickness direction of the first magnetic part can be avoided or reduced, so that the structure of the electronic equipment support can be kept stable, and the service life of the electronic equipment support is prolonged. When the first magnetic part is utilized to attract the charging accessory to wirelessly charge the electronic equipment, the influence of the magnetic insulation support body on a magnetic field is smaller, the wireless charging process can be more stable, and high charging efficiency can be maintained. The electronic equipment accessory comprises a shell body and the electronic equipment support, the electronic equipment support is rotatably connected with the shell body, and the shell body is used for being detachably connected with the electronic equipment.
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Description

[0001] This application claims priority to the Chinese patent application filed with the China Patent Office on January 7, 2025, with application number 202520042551.8 and utility model name “An electronic product bracket and electronic equipment accessories”. The entire contents of the above priority document are incorporated into this application by reference. Technical Field

[0002] The present application relates to the technical field of electronic equipment accessories, and in particular to an electronic equipment bracket. Background Art

[0003] Mobile phones, tablets, and other electronic devices are popular among users due to their rich functionality and portability. In practical scenarios like watching videos and communicating via video, users often want to avoid having to hold their devices in their hands, allowing them to perform other operations while watching the screen. In such situations, a stand can be used to support the electronic device, freeing the user's hands.

[0004] With the development of mobile power supply technology, the use of wireless charging power supplies to charge electronic devices has become a trend. In related technologies, when using wireless charging power supplies, a certain magnetic induction distance must be maintained between the wireless charging power supply and the electronic device. Therefore, it is often necessary to install a magnetic component on the electronic device's bracket. The magnetic component's attraction force maintains the connection between the wireless charging power supply and the electronic device, thereby achieving wireless charging.

[0005] However, the bracket in the related art does not have sufficient fixing strength for the magnetic part. When the user uses the bracket, the magnetic part is easily separated from the bracket under the action of external force, resulting in the weakening of the adsorption effect of the bracket or even complete failure. Summary of the Invention

[0006] The present application discloses an electronic device bracket, which can improve the fixing strength of an adsorption component and extend the service life of the electronic device bracket and electronic device accessories.

[0007] The present application discloses an electronic device bracket, which includes:

[0008] Magnetic insulation bracket body;

[0009] A connector, comprising a bracket connecting portion and a rotating connecting portion, wherein the bracket connecting portion is fixedly connected to the magnetic insulation bracket body, the rotating connecting portion is connected to the bracket connecting portion, and the rotating connecting portion is used to connect an electronic device or an electronic device accessory;

[0010] a first magnetic member, wherein the magnetic insulating bracket body is formed on the first magnetic member and forms an integral member with the first magnetic member, the first magnetic member including a first surface and a second surface opposite to each other along a first direction, the first surface and the second surface being both covered by the magnetic insulating bracket body so that the first magnetic member is fixed inside the magnetic insulating bracket body;

[0011] Wherein, the first direction is the thickness direction of the first magnetic component.

[0012] Compared with the prior art, this application has at least the following beneficial effects:

[0013] The electronic device holder disclosed in the present application is generally provided with a groove on the holder body of the existing electronic device holder, and the magnetic part is provided in the groove. During the process of the user using the electronic device holder, the holder body is easily deformed due to the external force along the thickness direction of the magnetic part, and the magnetic part is easily separated from the holder body, resulting in the integrity of the electronic device holder being destroyed and the magnetic attraction effect being weakened or failing. The electronic device holder of the present application is formed by forming the magnetic insulation holder body on the first magnetic part, so that the magnetic insulation holder body and the first magnetic part are provided as an integral component, which can effectively improve the mechanical strength of the magnetic insulation holder body and make the first magnetic part at least two surfaces in the thickness direction covered by the magnetic insulation holder body, thereby improving the fixing strength of the first magnetic part. In this way, during the use of the electronic device holder, the risk of the magnetic insulation holder body being affected by the external force along the thickness direction of the first magnetic part, which causes the first magnetic part to separate from the magnetic insulation holder body, can be avoided or reduced, thereby maintaining the integrity of the electronic device holder and extending the service life of the electronic device holder. In addition, since the bracket body is constructed to be magnetically insulated, when the first magnetic part of the electronic device bracket is used to adsorb the charging accessory to wirelessly charge the electronic device, the magnetically insulated bracket body has less impact on the magnetic field between the electronic device and the charging accessory than the bracket body made of metal, which can reduce the impact on the charging process, thereby ensuring that the wireless charging process can be more stable and maintain a higher charging efficiency. BRIEF DESCRIPTION OF THE DRAWINGS

[0014] In order to more clearly illustrate the technical solutions in this application, the following is a brief introduction to the drawings required for use in the application. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this technical field, other drawings can be obtained based on these drawings without any creative work.

[0015] Figure 1 is a schematic diagram of the three-dimensional structure of the bracket in the embodiment of the present application;

[0016] Figure 2 yes Figure 1A schematic diagram of the structural breakdown of the stent shown;

[0017] Figure 3 yes Figure 1 A schematic top view of the bracket shown;

[0018] Figure 4 yes Figure 3 Schematic diagram of the cross section along the A-A' direction;

[0019] Figure 5 yes Figure 4 A magnified schematic diagram of area A in the middle;

[0020] Figure 6 is a schematic diagram of the three-dimensional structure when the connecting member in the embodiment of the present application is a split component;

[0021] Figure 7 yes Figure 6 An exploded schematic diagram of the electronic device bracket shown;

[0022] Figure 8 is a side view schematic diagram of a bracket body with a connecting member in an embodiment of the present application;

[0023] Figure 9 yes Figure 8 A schematic cross-sectional view of the stent body shown along the BB' direction;

[0024] Figure 10 yes Figure 9 A magnified schematic diagram of area B in the middle;

[0025] Figure 11 is a schematic diagram of the three-dimensional structure of the first magnetic member having a groove portion in this embodiment;

[0026] Figure 12 yes Figure 8 A schematic cross-sectional view along the BB' direction when the first magnetic member in the bracket shown has a groove;

[0027] Figure 13 This is a schematic structural diagram of a bracket having multiple bracket bodies in an embodiment of the present application;

[0028] Figure 14 This is a schematic structural diagram of another bracket with multiple bracket bodies in an embodiment of the present application;

[0029] Figure 15 Schematic diagram of the structure of a bracket with a base in an embodiment of the present application;

[0030] Figure 16 yes Figure 15 A schematic diagram of the structural breakdown of the stent shown;

[0031] Figure 17 yes Figure 15 A schematic top view of the bracket shown;

[0032] Figure 18 yes Figure 17 The cross-sectional view of the stent shown is along the C-C' direction;

[0033] Figure 19 is a cross-sectional schematic diagram of a magnetic insulation base body having a second magnetic member in an embodiment of the present application;

[0034] Figure 20 yes Figure 19 Enlarged schematic diagram of the middle C area;

[0035] Figure 21 A cross-sectional schematic diagram of an electronic device bracket without a first magnetic member in an embodiment of the present application;

[0036] Figure 22 is a schematic diagram of the three-dimensional structure of an electronic device accessory in an embodiment of the present application;

[0037] Figure 23 Schematic diagram of the assembly of the shell body and the bracket in the embodiment of the present application;

[0038] Figure 24 is a schematic diagram of the three-dimensional structure of the bracket in the embodiment of the present application from another angle;

[0039] Figure 25 yes Figure 24 A schematic diagram of the exploded structure of the bracket shown;

[0040] Figure 26 yes Figure 24 a cross-sectional view of the illustrated bracket;

[0041] Figure 27 yes Figure 24 a partial enlarged view of the stent shown;

[0042] Figure 28 yes Figure 24 A schematic diagram of a connecting transition piece in the illustrated bracket;

[0043] Figure 29 yes Figure 24 Side view of the bracket shown. DETAILED DESCRIPTION

[0044] The following will be combined with the drawings in the embodiments of this application to clearly and completely describe the technical solutions in the embodiments of this application. Obviously, the embodiments described are only part of the embodiments of this application, not all of the embodiments. Based on the embodiments in this application, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of this application.

[0045] In this application, terms such as "upper," "inner," "outer," and "middle" indicate positions or locations based on those shown in the accompanying drawings. These terms are intended to better describe this application and its embodiments and are not intended to limit the devices, elements, or components indicated to specific positions, or to their construction or operation in a specific position.

[0046] Furthermore, some of the above terms may be used to express other meanings besides indicating a position or location. For example, the term "on" may also be used to indicate a dependency or connection in certain circumstances. Those skilled in the art will understand the specific meanings of these terms in this application based on the specific circumstances.

[0047] Furthermore, the terms "provided with" and "connected" should be interpreted broadly. For example, they can refer to fixed connections, removable connections, or integral structures; mechanical connections or electrical connections; direct connections or indirect connections through an intermediary; or internal communication between two devices, elements, or components. Those skilled in the art will understand the specific meanings of these terms in this application based on the specific circumstances.

[0048] Furthermore, the terms "first," "second," etc., are primarily used to distinguish between different devices, elements, or components (which may or may not be of the same type and configuration), and are not intended to indicate or imply the relative importance or quantity of the devices, elements, or components indicated. Unless otherwise specified, "plurality" means two or more.

[0049] The bracket can support electronic devices (such as mobile phones, tablets, etc.) so that the electronic devices face the user at an appropriate angle, freeing the user's hands, and is deeply favored by users. Taking portability into consideration, the bracket may be integrated into the protective case of the electronic device, or directly designed to be detachably connected to the electronic device, such as magnetic fixation. In this way, the bracket can be fixed to the electronic device, making it convenient for users to carry and use. In addition, the magnets provided on the bracket can be used to adsorb and fix the wireless charging power supply, so that the wireless charging power supply can be close to the electronic device and remain stable, thereby wirelessly charging the electronic device. Similarly, magnets can also be used to adsorb other electronic device accessories, such as card wallets.

[0050] However, the current bracket does not have sufficient fixing strength for the magnet, which causes the magnet to be easily detached from the bracket due to external force during use of the bracket, reducing the number of magnets on the bracket, resulting in insufficient and uneven adsorption force of the bracket, which cannot meet actual needs.

[0051] Therefore, the inventors attempted to apply strong glue to the bracket body to adhere the magnets and secure them with the glue. However, when the bracket is exposed to high temperature and humidity, the glue may become less effective or even ineffective. Furthermore, if the electronic product is dropped, impacted, or vibrated, the magnets may still become detached from the bracket.

[0052] In order to solve the above technical problems, the present application provides an electronic device bracket, which forms a magnetic insulation bracket body on a first magnetic part so that the magnetic insulation bracket body and the first magnetic part are set as an integral component, which can effectively improve the mechanical strength of the magnetic insulation bracket body and make the first magnetic part at least two surfaces in the thickness direction covered by the magnetic insulation bracket body, thereby improving the fixing strength of the first magnetic part. In this way, during the use of the electronic device bracket, the risk of deformation or fracture of the magnetic insulation bracket body due to external force along the thickness direction of the first magnetic part can be avoided or reduced, and the first magnetic part can be prevented from separating from the magnetic insulation bracket body, thereby maintaining the integrity of the electronic device bracket and extending the service life of the electronic device bracket. In addition, since the bracket body is constructed to be magnetically insulated, when the first magnetic part of the electronic device bracket is used to adsorb the charging accessory to wirelessly charge the electronic device, the magnetic insulation bracket body has less influence on the magnetic field between the electronic device and the charging accessory than the bracket body made of metal, which can reduce the impact on the charging process, thereby ensuring that the wireless charging process can be more stable and maintain a higher charging efficiency.

[0053] It is understood that the electronic device support is configured to be disposed on a surface of an electronic device to support the electronic device. For example, it may be disposed on the back of the electronic device, i.e., the surface of the electronic device opposite to the display surface / viewing surface / operating surface. The electronic device may be a mobile phone, tablet computer, e-reader, etc., and this application does not specifically limit this.

[0054] The technical solution of the present application will be further described below with reference to the embodiments and drawings.

[0055] [Example 1]

[0056] Please also refer to Figures 1 to 5 ,in, Figure 1 is a schematic diagram of the three-dimensional structure of the bracket in the embodiment of the present application, Figure 2 yes Figure 1 The schematic diagram of the structural decomposition of the bracket shown, Figure 3 yes Figure 1 A schematic top view of the bracket shown, Figure 4 yes Figure 3 Schematic diagram of the cross section along the A-A' direction, Figure 5 yes Figure 4 A magnified schematic diagram of area A in the middle.

[0057] In some embodiments, the electronic device holder 1 includes a magnetic insulating holder body 11, which constitutes the primary support structure of the electronic device holder 1 for supporting the electronic device or electronic device accessories. Typically, the magnetic insulating holder body 11 is rotatable relative to the main body of the electronic device or electronic device accessory. Rotating the magnetic insulating holder body 11 enables the magnetic insulating holder body 11 to support the electronic device or electronic device accessory, or to be retracted. Alternatively, the support angle of the magnetic insulating holder body 11 for the electronic device or electronic device accessory can be changed.

[0058] In some embodiments, the electronic device bracket 1 includes a connector 12, which includes a bracket connecting portion 121 and a rotating connecting portion 122. The bracket connecting portion 121 is used to be fixedly connected to the magnetic insulation bracket body 11, and the rotating connecting portion 122 is fixedly connected to the bracket connecting portion 121, and is also used to connect the electronic device or electronic device accessories.

[0059] In some embodiments, the rotating connection portion 122 is used to rotatably connect the electronic device or the protective shell of the electronic device, so that the magnetic insulation bracket body 11 can rotate relative to the electronic device or the protective shell of the electronic device.

[0060] In some embodiments, the electronic device holder 1 further includes a first magnetic member 13. The first magnetic member 13 may be a permanent magnet, such as a ferrite, a neodymium magnet (e.g., a neodymium iron boron magnet), a samarium cobalt magnet, an alnico magnet, or other magnet. As long as the first magnetic member 13 can adsorb and fix a charging accessory (e.g., a wireless charging power supply) to achieve the corresponding function, it is sufficient. For example, when an electronic device connected to the electronic device holder 1 needs to be wirelessly charged, the adsorption force of the first magnetic member 13 can be used to adsorb and fix the wireless charging power supply, so that the wireless charging power supply can charge the electronic device. This application does not specifically limit this.

[0061] In some embodiments, the first magnetic member 13 may be in the shape of a horseshoe or a non-closed ring structure.

[0062] At least the first surface 13a and the second surface 13b of the first magnetic member 13, which are opposite to each other in the thickness direction P1, are covered by the magnetic insulation bracket body 11, so that the first magnetic member 13 is fixed inside the magnetic insulation bracket body 11, so that the magnetic insulation bracket body 11 and the first magnetic member 13 are constructed as a whole. In this application, the thickness direction P1 of the first magnetic member 13 is the first direction.

[0063] Normally, the electronic device bracket 1 is provided with a groove for accommodating the magnetic part on the bracket body, and glue is provided in the groove to adhere and fix the magnetic part. However, this fixing method does not provide sufficient fixing strength for the magnetic part, or, in an environment with high humidity and / or temperature, the glue is easily ineffective, causing the magnetic part to detach from or jump out of the bracket body when the bracket body is subjected to a force in the thickness direction of the magnetic part. However, the present application, by providing the magnetic insulation bracket body 11 as an integral component, can effectively improve the mechanical strength of the magnetic insulation bracket body 11, and make the first magnetic part 13 be covered by the magnetic insulation bracket body 11 on at least two surfaces in the thickness direction, thereby improving the fixing strength of the first magnetic part 13. In this way, during the use of the electronic device bracket 1, the risk of deformation or fracture of the magnetic insulation bracket body 11 due to the external force in the thickness direction of the first magnetic part 13 can be avoided or reduced, and the first magnetic part 13 can be prevented from detaching from the magnetic insulation bracket body 11, thereby maintaining the integrity of the electronic device bracket 1 and extending the service life of the electronic device bracket 1. In addition, since the bracket body is constructed to be magnetically insulated, when the first magnetic part 13 of the electronic device bracket 1 is used to adsorb the charging accessories to wirelessly charge the electronic device, the magnetically insulated bracket body 11 has less impact on the magnetic field between the electronic device and the charging accessories than the bracket body made of metal, which can reduce the impact on the charging process, thereby ensuring that the wireless charging process can be more stable and maintain a higher charging efficiency.

[0064] When the first magnetic part 13 in the electronic device holder 1 is used to adsorb and fix the charging accessories to wirelessly charge the electronic device, the magnetic insulation holder body 11 can be used as a visual positioning structure. In other words, the user can determine the specific placement position of the charging accessories based on the position of the magnetic insulation holder body 11, so that the charging accessories can accurately charge the electronic device. At the same time, the first magnetic part 13 also has a self-positioning effect on the charging accessories. When the user places the charging accessories on the side of the electronic device where the electronic device holder 1 is provided, the first magnetic part 13 in the electronic device holder 1 will automatically adsorb some of the magnetic parts inside the charging accessories, and automatically position the charging accessories and the electronic device relative to each other through magnetic force.

[0065] It should be noted that the magnetic insulation bracket body 11 is an integral component, which means that the magnetic insulation bracket body 11 is a continuous structure, that is, except for the interface where the magnetic insulation bracket body 11 fits with the first magnetic part 13, the rest of the magnetic insulation bracket body 11 is a continuous structure. There are no parting lines or connecting structures inside or outside the magnetic insulation bracket body 11, and the material constituting the magnetic insulation bracket body 11 is not layered. Therefore, the first magnetic part 13 cannot be removed from the magnetic insulation bracket body 11 without destroying the magnetic insulation bracket body 11. In this way, the magnetic insulation bracket body 11 has sufficient mechanical strength, which can increase the upper limit of the stress that the electronic device bracket 1 can withstand, reduce the risk of deformation or even damage of the electronic device bracket 1 due to stress during use, and make the structural stability of the electronic device bracket 1 higher, which helps to extend the service life of the electronic device bracket 1.

[0066] It is understandable that the bracket body of the current electronic device bracket is generally made of metal material. However, the metal material will generate eddy currents in the alternating magnetic field, causing the bracket body to heat up, thereby reducing the efficiency of wireless charging and affecting the stable operation of the electronic device. There is also a risk of thermal runaway. Secondly, the metal will absorb or shield the magnetic field, causing the original distribution and intensity of the magnetic field to be changed, resulting in reduced charging efficiency or even interruption of wireless charging. The magnetic insulation bracket body 11 of the present application can be made of resin or plastic. The resin will not affect the propagation of the magnetic field. In this way, when the first magnetic part 13 on the electronic device bracket 1 is used to adsorb and fix the charging accessories, the magnetic insulation bracket body 11 will not absorb or shield the magnetic field, nor will it generate induced current under the action of the magnetic field, so as not to affect the wireless charging process, so that the wireless charging process can remain stable and can better maintain a high charging efficiency.

[0067] It is understandable that using magnetic insulating materials such as resin and plastic to make the magnetic insulating bracket body 11 can also reduce the weight of the magnetic insulating bracket body 11, thereby reducing the overall weight of the electronic device bracket 1, which contributes to the lightweight design of the electronic device bracket 1.

[0068] In some embodiments, to further improve the overall mechanical strength of the electronic device bracket 1 , reinforcing fibers may be provided inside the resin or plastic to improve the overall strength of the magnetic insulation bracket body 11 .

[0069] Optionally, the reinforcing fiber may be one or more of glass fiber, aramid fiber, carbon fiber or basalt fiber.

[0070] In some embodiments, the reinforcing fibers can be made of non-woven fabrics containing corresponding fibers or fabrics woven from corresponding fibers. For example, glass fiber fabric can be selected to make the magnetic insulation bracket body 11.

[0071] In some embodiments, the magnetic insulation bracket body 11 may also be made only of the above-mentioned fiber cloth, which will not be described in detail here.

[0072] It is understood that the integrated magnetic insulating bracket body 11 can be formed by methods such as injection molding or hot pressing. For example, the first magnetic member 13 is placed in a prefabricated mold cavity, and then molten magnetic insulating material is injected into the mold cavity to form the integrated magnetic insulating bracket body 11, and the magnetic insulating bracket body 11 is wrapped around and fixed to the first magnetic member 13. Alternatively, magnetic insulating material is placed on opposite sides of the first magnetic member 13, and then heated and pressed to fuse the magnetic insulating material into one, thereby forming the integrated magnetic insulating bracket body 11.

[0073] Optionally, the connecting member 12 may be an integral component, or may be a component composed of a bracket connecting portion 121 and a rotating connecting portion 122 that are separated from each other.

[0074] When the connector 12 is an integral component, the bracket connection portion 121 may be the portion of the connector 12 that is connected to the magnetic insulation bracket body 11, and the rotation connection portion 122 may be the portion of the connector 12 that extends outward from the edge of the magnetic insulation bracket body 11. For example, the connector 12 may be partially embedded in the interior of the magnetic insulation bracket body 11 to form the bracket connection portion 121, and the other portion may be exposed outside the magnetic insulation bracket body 11 to form the rotation connection portion 122. In other embodiments, the connector 12 may be first embedded as a whole in the interior of the magnetic insulation bracket body 11, and then the magnetic insulation bracket body 11 covering the rotation connection portion 122 may be removed through post-processing, so that the rotation connection portion 122 can be exposed for connection with an electronic device or an electronic device accessory.

[0075] Please also see Figure 6 and Figure 7 , Figure 6 is a schematic diagram of the three-dimensional structure when the connecting member in the embodiment of the present application is a split component, Figure 7 yes Figure 6 Exploded view of the electronic device bracket shown.

[0076] When the connecting member 12 is a component composed of a bracket connecting part 121 and a rotating connecting part 122 that are separated from each other, the bracket connecting part 121 can be a component pre-buried in the magnetic insulation bracket body 11, and a part of the bracket connecting part 121 is exposed outside the magnetic insulation bracket body 11 by etching, cutting, etc., and then the rotating connecting part 122 is fixedly connected to the part of the bracket connecting part 121 exposed outside the magnetic insulation bracket body 11.

[0077] It can be found that whether the connecting member 12 is an integral component or a component composed of a bracket connecting portion 121 and a rotating connecting portion 122 that are separated from each other, at least one portion of the bracket connecting portion 121 is embedded in the interior of the magnetic insulating bracket body 11. In this way, the bonding strength between the connecting member 12 and the magnetic insulating bracket body 11 can be improved, thereby improving the durability of the electronic device bracket 1 and preventing it from being easily damaged when the magnetic insulating bracket body 11 is repeatedly rotated.

[0078] It can be understood that when the magnetic insulation bracket body 11 is formed by injection molding, the connector 12 or the bracket connecting part 121 can be placed in the mold cavity in advance. After the injection molding is completed, part of the magnetic insulation bracket body 11 is removed by etching or cutting, so that part of the connector 12 or the bracket connecting part 121 is exposed outside the magnetic insulation bracket body 11.

[0079] Please see again Figure 5 In some embodiments, the dimension d0 of the magnetic insulating bracket body 11 in the thickness direction P1 of the first magnetic member 13 satisfies the relationship 1.45 mm ≤ d0 ≤ 1.8 mm. For example, d0 can be 1.45 mm, 1.5 mm, 1.6 mm, 1.7 mm, 1.8 mm, or another dimension within this range. This ensures that the magnetic insulating bracket body 11 has sufficient mechanical strength while also achieving a lightweight and thin design. Furthermore, when the electronic device holder 1 is used to attach a wireless charging power source to wirelessly charge an electronic device, the reduced thickness of the electronic device holder 1 helps reduce the distance between the electronic device and the wireless charging power source, shortening the energy propagation distance and thereby reducing energy loss to a certain extent, thereby improving charging efficiency. When d0 is less than 1.45 mm, the mechanical strength of the magnetic insulating bracket body 11 is insufficient, making it susceptible to deformation or breakage due to external forces. When d0 is greater than 1.8 mm, the overall volume and weight of the magnetic insulating bracket body 11 are large, hindering the lightweight and thin design of the electronic device holder 1.

[0080] In some embodiments, the dimension of the first magnetic part 13 in the thickness direction P1 thereof is d1, and d1 satisfies the relationship 0.8mm≤d1≤1.0mm. For example, d1 can be 0.8mm, 0.85mm, 0.90mm, 0.95mm, 1.0mm, or any other value that satisfies this range. By making the thickness of the first magnetic part 13 satisfy the above range, the first magnetic part 13 has a reasonable volume, so that it can have sufficient adsorption force, and at the same time can also meet the lightweight design of the electronic device bracket 1. When d1 is less than 0.8mm, the volume of the first magnetic part 13 is relatively small, so that its adsorption force is insufficient. When d1 is greater than 1.0mm, the thickness of the first magnetic part 13 is too large, which is not conducive to the lightweight design of the electronic device bracket 1.

[0081] In some embodiments, a thickness d2 of the portion of the magnetic insulation bracket body 11 covering the first surface 13 a of the first magnetic member 13 in the thickness direction P1 of the first magnetic member 13 satisfies the relationship 0.225 mm ≤ d2 ≤ 0.45 mm.

[0082] In some embodiments, the thickness of the portion of the magnetic insulation bracket body 11 covering the second surface 13 b of the first magnetic member 13 in the thickness direction P1 is d3 , and d3 satisfies the relationship 0.225 mm ≤ d3 ≤ 0.45 mm.

[0083] By making the size of d2 and / or d3 0.225mm-0.45mm, for example, d2 and / or d3 can be 0.225mm, 0.25mm, 0.30mm, 0.35mm, 0.40mm, 0.45mm or other sizes within the above range. In this way, the material used in the main body of the electronic device bracket 1 can be reduced while ensuring that the main body 11 of the magnetic insulation bracket has sufficient mechanical strength, which contributes to the lightweight design of the electronic device bracket 1 and can also reduce the manufacturing cost of the electronic device bracket 1. When d2 and / or d3 is less than 0.225mm, the mechanical strength of the main body 11 of the magnetic insulation bracket is weak, and it is easy to be deformed or broken by external forces, which will shorten the service life of the electronic device bracket 1; at the same time, due to the small thickness, the first magnetic part may fall off from the broken magnetic insulation bracket main body 11 during use of the bracket. When d2 and / or d3 is greater than 0.45 mm, the overall volume of the magnetic insulation bracket body 11 is larger, which increases the material consumption of the magnetic insulation bracket body 11, is not conducive to the lightweight design of the electronic device bracket 1, and also increases the manufacturing cost.

[0084] In some embodiments, the thickness of the portion of the magnetic insulation bracket body 11 covering the first surface 13a and the second surface 13b of the first magnetic member 13 in the thickness direction is equal. That is, d2=d3. In this way, when the magnetic insulation bracket body 11 is subjected to force during use, the force distribution can be more balanced, that is, the electronic device bracket 1 can be subjected to balanced force, avoiding stress concentration, and reducing the risk of deformation or fracture of the magnetic insulation bracket body 11 due to stress concentration. At the same time, the equal thickness of the two sides is also more conducive to production and manufacturing.

[0085] It can be understood that the above d2 and d3 refer to the distance between the surface of the first magnetic member 13 and the same side surface of the magnetic insulation bracket body 11 in the thickness direction of the first magnetic member 13.

[0086] In some embodiments, the first magnetic part 13 also has a third surface 13c and a fourth surface 13d located between the first surface 13a and the second surface 13b. The third surface 13c and the fourth surface 13d are both covered by the magnetic insulation bracket body 11, so that at least four surfaces of the first magnetic part 13 are covered by the magnetic insulation bracket body 11, that is, the first magnetic part 13 is buried inside the magnetic insulation bracket body 11, which can prevent the first magnetic part 13 from separating from the magnetic insulation bracket body 11 under the influence of external force, thereby improving the structural stability of the electronic device bracket 1 and helping to extend the service life of the electronic device bracket 1.

[0087] Exemplarily, two surfaces of the first magnetic member 13 in a second direction P2 perpendicular to the thickness direction P1 are covered by the magnetic insulation bracket body 11, so that the first magnetic member 13 is buried inside the magnetic insulation bracket body 11. In other words, both surfaces of the first magnetic member 13 in the thickness direction and the surface perpendicular to the thickness direction are covered by the magnetic insulation bracket body 11. In this way, the magnetic insulation bracket body 11 wraps the first magnetic member 13 inside itself, which can prevent the first magnetic member 13 from detaching from the magnetic insulation bracket body 11 under the influence of external forces, thereby improving the structural stability of the electronic device bracket 1 and helping to extend the service life of the electronic device bracket 1.

[0088] It should be understood that the "wrapping" in this embodiment means that the four surfaces of the first magnetic part 13 are completely covered by the magnetic insulation bracket body 11, that is, the first magnetic part 13 is embedded in the interior of the magnetic insulation bracket body 11 and is tightly fitted with the magnetic insulation bracket body 11.

[0089] In some embodiments, the magnetic insulation bracket body 11 is constructed in an annular shape, and the annular magnetic insulation bracket body 11 has relative inner and outer sides, which can also be called inner ring side and outer ring side, or inner ring side and outer ring side. This application does not distinguish between them.

[0090] It is understandable that the magnetic insulation bracket body 11 can be a circular ring, a square ring, a polygonal ring, an elliptical ring or a ring structure of other shapes. The magnetic insulation bracket body 11 can be a closed ring structure or an open ring structure. Of course, in some other embodiments, the magnetic insulation bracket body 11 can also be set as a plate-like structure. As for the specific shape of the outline of the plate-like structure, it can be set according to actual conditions. The following description takes the magnetic insulation bracket body 11 as a closed circular ring as an example, but it does not indicate that the following content is only applicable to this example. It is understandable that when the magnetic insulation bracket body 11 is in the shape of a circular ring, the circumferential direction P3 of the magnetic insulation bracket body 11 is the circumferential direction.

[0091] For example, the surface of the first magnetic member 13 located inside the magnetic insulation bracket body 11 is the third surface 13c, and the surface of the first magnetic member 13 located outside the magnetic insulation bracket body 11 is the fourth surface 13d. The second direction can be the direction from the inside of the magnetic insulation bracket body 11 to the outside.

[0092] In some embodiments, all surfaces of the first magnetic part 13 are covered by the magnetic insulation bracket body 11. When all surfaces of the first magnetic part 13 are covered by the magnetic insulation bracket body 11, the entire first magnetic part 13 is buried inside the magnetic insulation bracket body 11, that is, the entire first magnetic part 13 is fixed inside the magnetic insulation bracket body 11, which can significantly improve the fixing strength of the first magnetic part 13. With this arrangement, when the magnetic insulation bracket body 11 remains intact, the first magnetic part 13 cannot be separated from the magnetic insulation bracket body 11. Only when the magnetic insulation bracket body 11 is subjected to a huge external force and violent damage occurs, the first magnetic part 13 will be separated from the magnetic insulation bracket body 11. In other words, the electronic device bracket 1 of the present application has a high structural integrity and can well extend the service life of the electronic device bracket 1.

[0093] It is understood that the first magnetic member 13 can have a regular or irregular shape. For example, the first magnetic member 13 can be cylindrical or prismatic. In some cases, the first magnetic member 13 can also be spherical, ellipsoidal, or spindle-shaped. These shapes have only one surface, and the surface is completely covered by the magnetic insulating bracket body 11. The following description uses the first magnetic member 13 as a hexahedron as an example, but it is not stated that the following content is only applicable to this example.

[0094] In some embodiments, a thickness d4 of the portion of the magnetic insulation bracket body 11 covering the third surface 13 c of the first magnetic member 13 on the inner side of the ring in the second direction satisfies the relationship: 0.1 mm≤d4≤1.5 mm.

[0095] In some embodiments, a thickness d5 of the portion of the magnetic insulation bracket body 11 on the outer side of the ring covering the fourth surface 13 d of the first magnetic member 13 in the second direction satisfies the relationship: 0.1 mm ≤ d5 ≤ 1.5 mm.

[0096] For example, d4 and / or d5 can be 0.1mm, 0.2mm, 0.3mm, 0.4mm, 0.5mm, 0.6mm, 0.7mm, 0.8mm, 0.9mm, 1.0mm, 1.1mm, 1.2mm, 1.3mm, 1.4mm, 1.5mm or other sizes that meet the above ranges. In this way, the material used in the magnetic insulating bracket body 11 can be reduced while ensuring that the magnetic insulating bracket body 11 has sufficient mechanical strength and has a high fixing strength for the first magnetic part 13, which contributes to the lightweight design of the magnetic insulating bracket body 11 and can also reduce the manufacturing cost of the electronic device bracket 1. When d4 and / or d5 is less than 0.1mm, the mechanical strength of the magnetic insulating bracket body 11 is insufficient and it is easy to deform or break, causing the first magnetic part 13 to be easily separated from the magnetic insulating bracket body 11 under the action of force, resulting in the electronic device bracket 1 being unable to continue to be used. When d4 and / or d5 is greater than 1.5 mm, the volume of the magnetic insulation bracket body 11 is large, which is not conducive to the lightweight design of the magnetic insulation bracket body 11, and at the same time increases the material consumption of the magnetic insulation bracket body 11, thereby increasing the manufacturing cost of the electronic device bracket 1.

[0097] In some embodiments, the thickness of the portions of the magnetic insulating support body 11 covering opposite sides of the first magnetic member 13 in the second direction are equal. That is, d4 = d5. This allows for a more balanced distribution of forces acting on the magnetic insulating support body 11 during use. This balances the forces acting on the electronic device support 1, preventing stress concentration and reducing the risk of deformation or fracture of the magnetic insulating support body 11 due to stress concentration.

[0098] In some embodiments, the first magnetic member 13 includes a first sub-magnetic member 131 and a second sub-magnetic member 132, and the first sub-magnetic member 131 and the second sub-magnetic member 132 are spaced apart inside the magnetic insulation bracket body 11, and the portion of the magnetic insulation bracket body 11 located between the first sub-magnetic member 131 and the second sub-magnetic member 132 is constructed as a partition portion 111, that is, a portion of the magnetic insulation bracket body 11 extends between the first sub-magnetic member 131 and the second sub-magnetic member 132, and this portion forms the above-mentioned partition portion 111. By dividing the first magnetic member 13 into two sub-magnetic members and providing a partition portion 111 to separate the two sub-magnetic members, while satisfying the magnetic attraction of the first magnetic member 13, the weight proportion of the first magnetic member 13 in the electronic device bracket 1 can be reduced, thereby reducing the overall weight of the electronic device bracket 1, and helping to achieve a lightweight design of electronic device accessories. At the same time, the first sub-magnetic component 131 and the second sub-magnetic component 132 are separated by the magnetic insulation bracket body 11, which can reduce or avoid the formation of induced current in the magnetic components during the wireless charging process. The magnetic field can pass through the partition part 111 of the magnetic insulation bracket body 11, thereby reducing the impact on the wireless charging process and enabling wireless charging to maintain high stability and charging efficiency.

[0099] Please also see Figures 8 to 10 , Figure 8 is a side view schematic diagram of a bracket body with a connecting member in an embodiment of the present application, Figure 9 yes Figure 8 The cross-sectional view of the bracket body along the BB' direction is shown. Figure 10 yes Figure 9 Schematic diagram of the enlarged area B.

[0100] In some embodiments, when the magnetic insulation bracket body 11 is annular, the first sub-magnetic component 131 and the second sub-magnetic component 132 can be set to an arc-shaped structure extending along the circumferential direction of the magnetic insulation bracket body 11. The central angle corresponding to the extension length of the first sub-magnetic component 131 is α1, and α1 satisfies the relationship 90°≤α1≤120°. For example, α1 can be 90°, 100°, 110°, 120° or any other angle within this range. When the arrangement length of multiple first sub-magnetic components 131 in the circumferential direction of the magnetic insulation bracket body 11 meets this range, it can ensure that the first sub-magnetic component 131 has a sufficiently large adsorption force, while making the partition part 111 have a sufficiently long extension length. When α1 is less than 90°, the overall proportion of the first sub-magnetic component 131 is too small, resulting in the adsorption force of the electronic device bracket 1 being too small, which cannot meet actual needs. For example, when the wireless charger is adsorbed on the electronic device bracket 1, the adsorption force is too small, which can easily cause the wireless charger to separate from the electronic device bracket; when α1 is greater than 120°, the overall proportion of the first sub-magnetic component is relatively large, resulting in the overall weight of the electronic device bracket 1 being larger, and the adsorption force is too large. When the user needs to remove the wireless charger after charging, a large force is required, which can easily tear the electronic device bracket 1. At the same time, it will also occupy the extended length of the partition part 111, making it inconvenient to set the bracket connection part 121.

[0101] Similarly, the central angle corresponding to the extension length of the second sub-magnetic component 132 is α2, and α2 satisfies the relationship 90°≤α2≤120°. For example, α2 can be 90°, 100°, 110°, 120° or any other angle within this range.

[0102] In some embodiments, in the circumferential direction of the magnetic insulation bracket body 11, the extension length of the partition portion 111 is no greater than the sum of the extension lengths of the first sub-magnetic component 131 and the second sub-magnetic component 132. In this way, it is possible to ensure that the first sub-magnetic component 131 and the second sub-magnetic component 132 have a sufficiently large volume, thereby ensuring that the first sub-magnetic component 131 and the second sub-magnetic component 132 have a sufficiently large magnetic field. In this way, when the first sub-magnetic component 131 and the second sub-magnetic component 132 are used to adsorb and fix charging accessories to charge electronic devices, it is possible to ensure that the electronic device bracket 1 has sufficient adsorption force on the charging accessories, so that the position of the charging accessories remains stable, thereby ensuring that the wireless charging process remains stable.

[0103] For example, the central angle corresponding to the extension length of the first sub-magnetic member 131 and the second sub-magnetic member 132 is 120°, and the central angle corresponding to the extension length of the partition portion 111 is also 120°. In this way, the first sub-magnetic member 131 and the second sub-magnetic member 132 extend to the same length in the circumferential direction of the magnetic insulation bracket body 11, which can better balance the weight distribution of the electronic device bracket 1 and also help to evenly adjust the suction force of the electronic device bracket 1 on the target object.

[0104] See again Figure 9 In some embodiments, the partition portion 111 includes a first sub-partition portion 111a and a second sub-partition portion 111b that are arranged relatively to each other. The bracket connection portion 121 is fixedly connected to the first sub-partition portion 111a, and the second sub-partition portion 111b is used to set a hand-grip position 112. By setting the bracket connection portion 121 on the first sub-partition portion 111a and the hand-grip position 112 on the second sub-partition portion 111b, the user can drive the magnetic insulation bracket body 11 to rotate through the hand-grip position 112. Since the first sub-partition portion 111a and the second sub-partition portion 111b are arranged relatively to each other on the magnetic insulation bracket body 11, the force arm that drives the magnetic insulation bracket body 11 to rotate is longer, which helps the user to rotate the magnetic insulation bracket body 11 more effortlessly.

[0105] It can be understood that when the first sub-magnetic component 131 and the second sub-magnetic component 132 are arranged relative to each other, the two ends of the first sub-magnetic component 131 and the two ends of the second sub-magnetic component 132 are arranged relative to each other in a one-to-one correspondence, and a portion of the magnetic insulation bracket body 11 extends to the space between the two opposite ends, thereby forming two sub-partitioning parts located at different positions.

[0106] When the magnetic insulation bracket body 11 is a non-closed ring structure, the magnetic insulation bracket body 11 can be formed into a non-closed structure by removing the second sub-partition part 111b of the magnetic insulation bracket body 11, and the magnetic insulation bracket body 11 covers the ends of the first sub-magnetic part 131 and the second sub-magnetic part 132 away from the first sub-partition part 111a.

[0107] Optionally, the extension length of the first sub-partition portion 111 a and the extension length of the second sub-partition portion 111 b may be equal or different.

[0108] In some embodiments, the extension length of the second sub-partition portion 111b is less than the extension length of the first sub-partition portion 111a, so that the distribution of the first sub-magnetic component 131 and the second sub-magnetic component 132 on the magnetic insulation bracket body 11 is closer to the first sub-partition portion 111a, that is, the first sub-magnetic component 131 and the second sub-magnetic component 132 are distributed more closely near the first sub-partition portion 111a, which can make the overall weight of the electronic device bracket 1 more distributed on the side close to the first sub-partition portion 111a. In this way, when the user drives the magnetic insulation bracket body 11 to rotate through the hand-clasp position 112, the force required can be further reduced. In other words, the above-mentioned setting can enable the user to rotate the magnetic insulation bracket body 11 more effortlessly.

[0109] As can be seen from the foregoing, the bracket connection portion 121 is at least partially embedded in the first sub-partition portion 111a, while the rotational connection portion 122 is exposed on the outside of the magnetic insulation bracket body 11. Because the location where the electronic device bracket 1 is connected to the electronic device or electronic device accessories is frequently subjected to force due to rotation, by partially embedding the bracket connection portion 121 in the magnetic insulation bracket body 11, the bonding strength between the bracket connection portion 121 and the magnetic insulation bracket body 11 can be improved, preventing the bracket connection portion 121 and the magnetic insulation bracket body 11 from separating from each other due to frequent force during use of the electronic device bracket 1, thereby improving the structural strength and stability of the electronic device bracket 1.

[0110] In some embodiments, the size of the first sub-partition portion 111a in the second direction is larger than the size of the remaining portion of the magnetic insulation bracket body 11 in the second direction. By increasing the size of the first sub-partition portion 111a in the second direction, a larger installation space can be provided for the bracket connection portion 121, thereby facilitating the relevant configuration. In addition, since the position where the electronic device bracket 1 is connected to the electronic device or electronic device accessories (the position close to the first sub-partition portion 111a) is often subjected to force due to rotation, this portion is prone to fatigue and damage. By increasing the size of the first sub-partition portion 111a in the second direction, the mechanical strength of the magnetic insulation bracket body 11 in this portion can be increased, thereby improving its anti-bending and anti-fatigue properties, thereby extending the service life of the electronic device bracket 1 and improving the structural strength and stability of the electronic device bracket 1.

[0111] In some embodiments, there are multiple first magnetic members 13, with the multiple first magnetic members 13 spaced apart along the circumferential direction of the magnetic insulating support body 11, and a portion of the magnetic insulating support body 11 extending between any two adjacent first magnetic members 13. That is, both the first sub-magnetic member 131 and the second sub-magnetic member 132 can be provided in multiples, with the multiple first sub-magnetic members 131 spaced apart and the multiple second sub-magnetic members 132 spaced apart. At the same time, the magnetic insulating support body 11 partially extends between any two adjacent first sub-magnetic members 131 and also partially extends between any two adjacent second sub-magnetic members 132. In this way, the extension length of each first sub-magnetic member 131 and each second sub-magnetic member 132 in the circumferential direction of the magnetic insulating support body 11 becomes smaller. Thus, during wireless charging, the induced current generated by each sub-magnetic member can be avoided or reduced, thereby reducing the heat generated by the electronic device support 1. Furthermore, during wireless charging, the magnetic field can pass through the gaps between adjacent first magnetic members 13, reducing the shielding and absorption of the magnetic field by the first magnetic members 13, thereby reducing the impact on wireless charging.

[0112] It is understandable that reducing the heat generated by the first magnetic component 13 during wireless charging can also slow down the aging rate of the magnetic insulation bracket body 11, reduce the impact on the magnetic insulation bracket body 11, and thus extend the service life of the magnetic insulation bracket body 11.

[0113] Furthermore, when there are multiple first sub-magnetic components 131, α1 is the central angle corresponding to the arrangement length of all first sub-magnetic components 131 in the circumferential direction of the magnetic insulation bracket body 11, that is, the central angle corresponding to the distance between the two surfaces with the largest distance in the circumferential direction of the magnetic insulation bracket body 11 among all first sub-magnetic components 131. Similarly, when there are multiple second sub-magnetic components 132, α2 is the central angle corresponding to the arrangement length of all second sub-magnetic components 132 in the circumferential direction of the magnetic insulation bracket body 11, that is, the central angle corresponding to the distance between the two surfaces with the largest distance in the circumferential direction of the magnetic insulation bracket body 11 among all second sub-magnetic components 132.

[0114] In some embodiments, the portion of the magnetic insulation bracket body 11 that extends to the gap between any two adjacent first magnetic members 13 can completely fill the gap. That is, the magnetic insulation bracket body 11 completely fills the gap between any two adjacent first sub-magnetic members 131, and completely fills the gap between any two adjacent second sub-magnetic members 132. In this way, each first sub-magnetic member 131 and each second sub-magnetic member 132 are completely wrapped by the integrated magnetic insulation bracket body 11, which can effectively improve the fixing strength of the first magnetic member 13, and the portion filled in the gap between adjacent first magnetic members 13 can ensure that the two adjacent first magnetic members 13 are electrically isolated. At the same time, since the multiple first sub-magnetic members 131 and the multiple second sub-magnetic members 132 are separated by the portion of the magnetic insulation bracket body 11 that fills the gaps between the sub-magnetic members, during the wireless charging process, the magnetic field can pass through the gaps between these sub-magnetic members, increasing the transmittance of the magnetic field, and also helping to maintain or improve the charging efficiency of wireless charging.

[0115] In some embodiments, in the circumferential direction of the magnetic insulation bracket body 11, the distance d6 between any two adjacent first sub-magnetic parts 131 and between any two adjacent second sub-magnetic parts 132 is 0.1mm-0.4mm, that is, the part of the magnetic insulation bracket body 11 extending between the two adjacent first sub-magnetic parts 131 and extending between the two adjacent second sub-magnetic parts 132 has a size of 0.1mm-0.4mm in the circumferential direction of the magnetic insulation bracket body 11.

[0116] It should be noted that when d6 is 0.1mm-0.4mm, the magnetic insulation bracket body 11 can effectively separate any two adjacent sub-magnetic parts, and can also ensure that the multiple sub-magnetic parts are compact enough, thereby ensuring that the partition part 111 has a suitable extension length, which is convenient for setting the bracket connection part 121 and the buckle position 112 on the partition part 111. When d6 is less than 0.1mm, the magnetic insulation bracket body 11 cannot effectively separate any two adjacent sub-magnetic parts. When d6 is greater than 0.4mm, the arrangement of the multiple sub-magnetic parts is not compact enough, which will occupy the extension length of the partition part 111, resulting in the extension length of the partition part 111 being too small, making the space for setting the bracket connection part 121 smaller, which will affect the connection strength between the bracket connection part 121 and the magnetic insulation bracket body 11.

[0117] Please also see Figure 11 and Figure 12 , Figure 11 is a schematic diagram of the three-dimensional structure of the first magnetic member having a groove in this embodiment, Figure 12 yes Figure 8 The cross-sectional view along the BB' direction is shown when the first magnetic member in the bracket has a groove.

[0118] In some embodiments, each first magnetic part 13 is provided with a groove 133 extending in the thickness direction, and the magnetic insulation bracket body 11 partially extends into the interior of the groove 133, so that the magnetic insulation bracket body 11 is partially embedded in the interior of the first magnetic part 13. That is, the first sub-magnetic part 131 and the second sub-magnetic part 132 can both be provided with a groove 133, and the groove 133 extends in the thickness direction of the first magnetic part 13, and the magnetic insulation bracket body 11 partially extends into the groove 133, so as to embed and fix the first sub-magnetic part 131 and the second sub-magnetic part 132 inside the first sub-magnetic part 131 and the second sub-magnetic part 132. In this way, the fixing strength of the first sub-magnetic part 131 and the second sub-magnetic part 132 can be effectively improved, thereby improving the overall structural strength of the electronic device bracket 1 and extending the service life of the electronic device bracket 1. Exemplarily, the groove 133 can be set as a blind hole of any shape.

[0119] In some embodiments, the groove 133 can penetrate the first sub-magnetic member 131 and the second sub-magnetic member 132 along the thickness direction of the first sub-magnetic member 131 and the second sub-magnetic member 132. In this way, when the magnetic insulation bracket body 11 is integrally formed, a portion of the magnetic insulation bracket body 11 extends and passes through the groove 133, so that the magnetic insulation bracket body 11 fully wraps and fixes the first sub-magnetic member 131 and the second sub-magnetic member 132 inside and outside the first sub-magnetic member 131 and the second sub-magnetic member 132, so that the magnetic insulation bracket body 11, the first sub-magnetic member 131 and the second sub-magnetic member 132 are constructed as a whole, which can well fix the first sub-magnetic member 131 and the second sub-magnetic member 132 and extend the service life of the electronic device bracket 1. In addition, the magnetic field can also pass through the groove 133, which can further improve or maintain the charging efficiency of wireless charging.

[0120] In some embodiments, the portion of the magnetic insulation bracket body 11 that enters the groove 133 can completely fill the space formed by the groove 133 to effectively improve the fixing strength of the first sub-magnetic component 131 and the second sub-magnetic component 132 .

[0121] It can be understood that when the groove 133 passes through the first sub-magnetic member 131 and the second sub-magnetic member 132, the portions of the magnetic insulation bracket body 11 covering the two opposite surfaces of the first magnetic member 13 in the thickness direction of the first magnetic member 13 are connected as a whole through the portion filled in the groove 133. The thickness of the portion of the magnetic insulation bracket body 11 covering the first magnetic member 13 in the thickness direction of the first magnetic member 13 refers to the dimension between the outer surface of the magnetic insulation bracket body 11 and the surface of the first sub-magnetic member 131 / the second sub-magnetic member 132 on the same side of the thickness direction in the thickness direction of the first sub-magnetic member 131 and the second sub-magnetic member 132.

[0122] In some other embodiments, the first magnetic member 13 further includes an internal magnetic member (not shown) placed within the groove 133, so that the magnetic members within the magnetic insulating bracket body 11 form a Halbach arrangement, thereby enhancing the magnetic field on one side of the magnetic insulating bracket body 11. In this way, the side with the enhanced magnetic field can be used to attract charging accessories, thereby improving the attraction strength of the charging accessories.

[0123] It is understood that when a built-in magnetic component is placed within the groove 133, the magnetic insulation bracket body 11 does not extend into the groove 133. At the same time, the cross-sectional profile of the groove 133 perpendicular to the thickness direction of the first magnetic component 13 matches the cross-sectional profile of the built-in magnetic component perpendicular to the thickness direction of the first magnetic component 13. In this way, the groove 133 can be used to position and preliminarily secure the built-in magnetic component, so that the built-in magnetic component remains fixed during the manufacturing process of the electronic device bracket 1.

[0124] Please also see Figure 13 and Figure 14 , Figure 13 Schematic diagram of a structure of a bracket with multiple bracket bodies in an embodiment of the present application. Figure 14 This is a schematic structural diagram of another type of bracket having multiple bracket bodies in an embodiment of the present application.

[0125] In some embodiments, there can be multiple magnetic insulating bracket bodies 11, and the multiple magnetic insulating bracket bodies 11 are rotatably connected in sequence. Take two magnetic insulating bracket bodies 11 for illustration, wherein one magnetic insulating bracket body 11 is a primary bracket body 14, and the other magnetic insulating bracket body 11 is a secondary bracket body 15. One end of the primary bracket body 14 is rotatably connected to the electronic device, and the other end is a free end that can rotate relative to the electronic device. One end of the secondary bracket body 15 is rotatably connected to the free end of the primary bracket body 14, and the other end is a free end that can rotate relative to the primary bracket body 14. By increasing the number of magnetic insulating bracket bodies 11, the support angle, support height, etc. of the electronic device bracket 1 can be better adjusted, so that the electronic device bracket 1 is suitable for more scenarios.

[0126] It should be noted that when there are multiple magnetic insulating support bodies 11, the shapes of the different magnetic insulating support bodies 11 can be the same or different. For example, when the magnetic insulating support body 11 includes a primary support body 14 and a secondary support body 15, one of the primary support body 14 and the secondary support body 15 can be rod-shaped, plate-shaped, or ring-shaped, and the other can be rod-shaped, plate-shaped, or ring-shaped.

[0127] For example, when the primary stent body 14 and the secondary stent body 15 are both annular, the inner diameter of the primary stent body 14 is not less than the outer diameter of the secondary stent body 15. In this way, when the primary stent body 14 and the secondary stent body 15 are both in an unsupported state, the secondary stent body 15 can be located in the space enclosed by the primary stent body 14. Of course, the primary stent body 14 and the secondary stent body 15 can also be configured so that the inner diameter of the secondary stent body 15 is not less than the outer diameter of the primary stent body 14. When the primary stent body 14 and the secondary stent body 15 are both in an unsupported state, the primary stent body 14 can be located in the space enclosed by the secondary stent body 15.

[0128] It is understandable that there can be multiple secondary support bodies 15, which are connected in sequence. When using the magnetic insulation support body 11 for support, only any one or more of the support bodies can be used for support. For example, only the primary support body 14 can be used for support, or only one of the secondary support bodies 15 can be used for support, etc., which will not be detailed here.

[0129] Please also see Figures 15 to 18 , Figure 15 is a schematic structural diagram of a bracket with a base in an embodiment of the present application, Figure 16 yes Figure 15 The schematic diagram of the structural decomposition of the bracket shown, Figure 17 yes Figure 15 A schematic top view of the bracket shown, Figure 18 yes Figure 16 The cross-sectional schematic diagram of the stent shown is along the C-C' direction.

[0130] In some embodiments, the electronic device holder 1 further includes a base 16, the rotating connection portion 122 is rotatably connected to the base 16, and the magnetic insulation holder body 11 is connected to the electronic device or electronic device accessories through the base 16. When the magnetic insulation holder body 11 is rotated so that the magnetic insulation holder body 11 and the base 16 are set at an angle, the magnetic insulation holder body 11 can support the electronic device or electronic device accessories through the base 16. When the magnetic insulation holder body 11 is attached to the base 16, the magnetic insulation holder body 11 is retracted and can be used to adsorb charging accessories instead of supporting electronic devices or electronic device accessories. In this way, the base 16 and the electronic device can be connected by bonding, socketing or magnetic connection, without the need to directly set a structure that cooperates with the magnetic insulation holder body 11 on the electronic device. In this way, the electronic device holder 1 can be used in conjunction with different electronic devices, which can increase the use scenarios of the electronic device holder 1.

[0131] In some embodiments, the base 16 is configured to be rotatably connected to the electronic device or electronic device accessory. Thus, the base 16 can be rotated to change the orientation of the magnetic insulating support body 11 relative to the electronic device or electronic device accessory, thereby changing the direction / state of support provided by the magnetic insulating support body 11 to the electronic device or electronic device accessory.

[0132] Exemplarily, the rotation axis of the base 16 is perpendicular to the rotation axis of the magnetic insulating bracket body 11. For example, if the base 16 is disposed on a protective case of an electronic device, the rotation axis of the base 16 is perpendicular to the surface of the protective case on which the base 16 is disposed, while the rotation axis of the magnetic insulating bracket body 11 is parallel to the surface of the protective case on which the base 16 is disposed.

[0133] In some embodiments, a first receiving groove 161 is provided on the side of the base 16 facing the magnetic insulating support body 11. The contour of the first receiving groove 161 matches the outer contour of the magnetic insulating support body 11. It will be understood that the magnetic insulating support body 11 has a supported state and an unsupported state. When the magnetic insulating support body 11 is in the supported state, it is arranged at an angle to the base 16. When the magnetic insulating support body 11 is in the unsupported state, the magnetic insulating support body 11 is at least partially accommodated in the first receiving groove 161. In other words, the nested design of the magnetic insulating support body 11 and the base 16 can reduce the volume and space occupied by the electronic device support 1, contributing to the miniaturization of the electronic device support 1. It also maintains a flat appearance when the electronic device support 1 is in the unsupported state, enhancing the visual effect of the electronic device support 1. Furthermore, the nested design can reduce the overall thickness of the electronic device support 1. During wireless charging, it helps to reduce the distance between the electronic device and the wireless charging power source, shortening the energy propagation distance, thereby reducing energy loss to a certain extent and improving charging efficiency.

[0134] In some embodiments, when the magnetic insulation bracket body 11 is in a non-supported state, the magnetic insulation bracket body 11 can be completely accommodated inside the first accommodating groove 161, or the surface of the magnetic insulation bracket body 11 facing away from the bottom of the first accommodating groove 161 is flush with the surface of the electronic device / base 16.

[0135] It is understandable that when the magnetic insulation support body 11 includes a multi-stage support body, when the magnetic insulation support body 11 is in a non-supported state, the primary support body 14 and all the secondary support bodies 15 may be accommodated in the first accommodating groove 161, or some of the support bodies may be accommodated in the first accommodating groove 161, while the other part of the support bodies are sleeved on the outer peripheral side of the base 16. At this time, a connecting rod (not shown) may be provided between the primary support body 14 and the secondary support body 15, one end of the connecting rod being rotatably connected to the primary support body 14, and the other end being rotatably connected to the secondary support body 15. Adaptively, the side wall of the base 16 that forms the first accommodating groove 161 may be provided with an avoidance groove (not shown), which is used to avoid and accommodate the connecting rod when the magnetic insulation support body 11 is in a non-supported state, or the connecting rod may be bent to form an avoidance space to avoid the side wall of the base 16 that forms the first accommodating groove 161.

[0136] Please also see Figure 19 and Figure 20 , Figure 19 is a cross-sectional schematic diagram of a magnetic insulation base body having a second magnetic member in an embodiment of the present application, Figure 20 yes Figure 19 Schematic diagram of the enlarged area C in the middle.

[0137] In some embodiments, the base 16 includes a magnetic insulation base body 162 and a second magnetic member 163, the magnetic insulation bracket body 11 is rotatably connected to the magnetic insulation base body 162, and the second magnetic member 163 is provided on the magnetic insulation base body 162, wherein the magnetic insulation base body 162 is provided with the above-mentioned first receiving groove 161. When the magnetic insulation bracket body 11 is in a non-supporting state, the magnetic insulation bracket body 11 is attached and fixed to the base 16. At the same time, when the magnetic insulation bracket body 11 is used to support the electronic device, the second magnetic member 163 can also be used to adsorb and fix the charging accessories. That is to say, when the magnetic insulation bracket body 11 supports the electronic device, the second magnetic member is located between the magnetic insulation bracket body 11 and the electronic device, and the charging accessories are adsorbed and fixed between the magnetic insulation bracket body 11 and the electronic device, so that the charging accessories can be charged to the electronic device, thereby being able to support and charge the electronic device at the same time.

[0138] Exemplarily, the second magnetic member 163 has a fifth surface 163a and a sixth surface 163b in the first direction P1 , and the magnetic insulation base body 162 is formed on the fifth surface 163a and the sixth surface 163b and covers the fifth surface 163a and the sixth surface 163b .

[0139] Furthermore, the second magnetic member 163 may further include a seventh surface 163c and an eighth surface 163d located between the fifth surface 163a and the sixth surface 163b. The magnetic insulating base body 162 covers the seventh surface 163c and the eighth surface 163d and forms an integral structure with the second magnetic member 163. This can significantly improve the fastening strength of the second magnetic member 163.

[0140] It is understood that the magnetic insulating base body 162 can wrap and fix the second magnetic member 163 in the same manner as the magnetic insulating support body 11 wraps and fixes the first magnetic member 13. In addition, when the magnetic insulating support body 11 includes a primary support body 14 and a secondary support body 15, the primary support body 14 is rotatably connected to the magnetic insulating base body 162, and the secondary support body 15 is rotatably connected to the magnetic insulating base body 162 through the primary support body 14.

[0141] In some embodiments, the second magnetic member 163 can be set corresponding to the first magnetic member 13. In this way, when the magnetic insulation bracket body 11 is in a non-supported state, the second magnetic member 163 can also fix the magnetic insulation bracket body 11 by adsorbing the first magnetic member 13. When the user does not need to use the magnetic insulation bracket body 11 for support, the second magnetic member 163 can prevent the magnetic insulation bracket body 11 from rotating relative to the magnetic insulation base body 162 through the first magnetic member 13.

[0142] In some embodiments, the magnetic insulating base body 162 can be set to the same material as the magnetic insulating bracket body 11. In this way, during the wireless charging process, the overall weight of the electronic device bracket 1 can be reduced, and the impact of the magnetic insulating base body 162 on the stability and charging efficiency of wireless charging can be avoided or reduced.

[0143] In some embodiments, the magnetic insulating base body 162 may also be plate-shaped, such as a circular plate, and may not be provided with the first receiving groove 161. When the annular magnetic insulating support body 11 is in an unsupported state, the magnetic insulating support body 11 is sleeved on the outer periphery of the magnetic insulating base body 162. When the magnetic insulating support body 11 includes multiple stages of support bodies, when the magnetic insulating support body 11 is in an unsupported state, all support bodies may be disposed around the outer periphery of the magnetic insulating base body 162.

[0144] Please also see Figure 21 , Figure 21 3 is a cross-sectional schematic diagram of an electronic device bracket without the first magnetic component in an embodiment of the present application.

[0145] In some other embodiments, the first magnetic member may not be provided in the magnetic insulating bracket body 11, and the second magnetic member 163 may be provided in the magnetic insulating base body 162. Since there is no metal structure inside the magnetic insulating bracket body 11, the magnetic field is almost unaffected. Regardless of whether the magnetic insulating bracket body 11 is in a supported or unsupported state, the second magnetic member 163 in the magnetic insulating base body 162 can be used to adsorb and fix the charging accessories.

[0146] It can be understood that when the first magnetic part 13 is not set inside the magnetic insulation bracket body 11, since there is no need to consider the fixing strength of the magnetic insulation bracket body 11 to the first magnetic part 13, the thickness of the magnetic insulation bracket body 11 can be set smaller, so that the weight and thickness of the magnetic insulation bracket body 11 can be further reduced.

[0147] It should be noted that regardless of whether the first magnetic member 13 is provided inside the magnetic insulating bracket body 11, the magnetic insulating bracket body 11 can be fixed by the design of a hinge. For example, the rotating shaft can be set as a special-shaped shaft (i.e., a non-circular shaft) so that when the angle between the magnetic insulating bracket body 11 and the base 16 / the surface of the electronic device / the surface of the electronic device accessory is greater than the preset angle, the magnetic insulating bracket body 11 can rotate freely and continuously, and when the angle between the magnetic insulating bracket body 11 and the base 16 / the surface of the electronic device / the surface of the electronic device accessory is less than or equal to the preset angle, the magnetic insulating bracket body 11 rotates toward the base 16 / the surface of the electronic device / the surface of the electronic device accessory under the action of the rotating shaft and is attached to the base 16 / the surface of the electronic device / the surface of the electronic device accessory. To avoid misoperation, the preset angle can be set to a smaller angle, such as 5°, 10°, 15° or other angles, such as any angle not greater than 20°.

[0148] It should be noted that "continuous rotation" means that the rotation angle of the magnetic insulation bracket body 11 is arbitrary within the rotatable range of the shaft or hinge, rather than only being able to rotate a fixed angle each time. In other words, "continuous rotation" does not refer to the motion state of the magnetic insulation bracket body 11.

[0149] Please also see Figure 22 and Figure 23 , Figure 22 is a schematic diagram of the three-dimensional structure of an electronic device accessory in an embodiment of the present application, Figure 23 It is a schematic diagram of the assembly of the shell body and the bracket in the embodiment of the present application.

[0150] A second aspect of the present application provides an electronic device accessory 2, which is used in conjunction with the above-mentioned electronic device. For example, the electronic device accessory 2 can be a protective shell or a protective cover.

[0151] In some embodiments, the electronic device accessory 2 includes a housing 21 having a mounting space 211. When the electronic device accessory 2 is used with an electronic device, the electronic device can be placed in the mounting space 211, with the housing 21 covering the outside of the electronic device. It will be appreciated that when the housing 21 is connected to the electronic device, the housing 21 typically exposes the display / viewing / operating surface of the electronic device, while the remaining surfaces are covered by the housing 21.

[0152] Of course, when the electronic device exposes the camera module on the surface away from its display surface / observation surface / operation surface, an avoidance hole 212 can be provided on the shell body 21 to expose the camera module through the avoidance hole 212, ensuring that the shell body 21 will not block the camera module, so that the camera module can work normally.

[0153] In some embodiments, the electronic device accessory 2 includes the above-mentioned electronic device bracket 1, which is rotatably connected to the shell body 21. By rotating the magnetic insulation bracket body 11 of the electronic device bracket 1, the angle between the magnetic insulation bracket body 11 and the shell body 21 can be changed, thereby changing the support angle and support height of the electronic device.

[0154] It is understandable that when the electronic device holder 1 does not include the base 16, the magnetic insulation holder body 11 is rotatably connected to the shell body 21, and the shell body 21 may be provided with a second receiving groove 213. When the magnetic insulation holder body 11 is in a non-supported state, the magnetic insulation holder body 11 is at least partially received in the second receiving groove 213. In this way, through the nested design, the miniaturization of the electronic device accessory 2 can be achieved, and the appearance of the electronic device accessory 2 can be kept flat, which can enhance the visual effect of the electronic device accessory 2. When the electronic device holder 1 includes a base 16, the base 16 is provided on the shell body 21, and the magnetic insulation holder body 11 is rotatably connected to the base 16. At this time, the second receiving groove 213 can be used to receive at least a portion of the base 16. When the magnetic insulation holder body 11 is in a non-supported state, the magnetic insulation holder body 11 can also be located in the second receiving groove 213. When the electronic device bracket 1 includes a base 16 and the base 16 is provided with a first accommodating groove 161, the second accommodating groove 213 can be used to accommodate at least a portion of the base 16. When the magnetic insulation bracket body 11 is in a non-supported state, the magnetic insulation bracket body 11 is located in the first accommodating groove 161.

[0155] In some embodiments, when the electronic device holder 1 includes a base 16, the base 16 is rotatably disposed on the shell body 21. Specifically, the base 16 is rotatably disposed in the second receiving groove 213. For example, the rotation axis of the base 16 is perpendicular to the thickness direction of the portion of the shell body 21 where the base 16 is disposed. In this way, the support state of the shell body 21 by the magnetic insulating holder body 11 can be changed by rotating the base 16. For example, the electronic device accessory 2 is a mobile phone protective case. The mobile phone protective case has a long side and a short side. When the mobile phone is supported on a flat surface such as a desktop using the magnetic insulating holder body 11, the base 16 can be rotated so that the long side of the mobile phone protective case contacts the desktop. At this time, the mobile phone is in landscape mode. Alternatively, the base 16 can be rotated so that the short side of the mobile phone protective case contacts the desktop. At this time, the mobile phone is in portrait mode. In other words, the user can rotate the base 16 according to the specific usage state of the electronic device, thereby adjusting the support state of the electronic device accessory 2 for the electronic device.

[0156] [Example 2]

[0157] First, please refer to Figure 24 and Figure 25 The present application discloses an electronic device bracket 1, comprising a magnetic insulation bracket body 11, a connecting transition piece 10, and a connecting piece 12. The connecting piece 12 is connected to the magnetic insulation bracket body 11 through the connecting transition piece 10, and the magnetic insulation bracket body 11 is connected to the electronic device or electronic device accessory 2 through the connecting piece 12.

[0158] The magnetic insulating support body 11 constitutes the primary support structure of the electronic device support 1 for supporting the electronic device or electronic device accessory 2. Typically, the magnetic insulating support body 11 is rotatable relative to the main body of the electronic device or electronic device accessory. Rotating the magnetic insulating support body 11 allows the magnetic insulating support body 11 to support the electronic device or electronic device accessory, or to be retracted. Alternatively, the support angle of the magnetic insulating support body 11 for the electronic device or electronic device accessory can be changed.

[0159] The connecting transition piece 10 includes an embedded portion 101 and an exposed portion 102 . The embedded portion 101 is embedded in the magnetic insulation body 11 , and the exposed portion 102 is exposed from the magnetic insulation body 11 and connected to the connecting piece 12 .

[0160] Compared to the prior art, the electronic device holder 1 disclosed in the present application is provided with a magnetically insulated holder body 11. This ensures that when subjected to magnetic force, the magnetically insulated holder body 11 does not affect the original magnetic field, effectively reducing the impact of the electronic device holder 1 on wireless charging transmission. Furthermore, the wireless charger can be attached to the back of a mobile phone via the magnetic element on the electronic device holder.

[0161] Furthermore, considering that the connector 12 is usually made of metal material and the magnetic insulation bracket body 11 can be made of non-metallic material, after the main body of the electronic device bracket 1 is set as the magnetic insulation bracket body 11, when the magnetic insulation bracket body 11 is connected to the connector 12, it is difficult for the metal connector 12 to form a stable connection with the magnetic insulation bracket body 11 by hinges, riveting or welding, which may cause damage to the magnetic insulation bracket body 11 or affect the service life. In this regard, the present application embeds the connecting transition piece 10 into the magnetic insulation bracket body 11. When the connecting transition piece 10 is connected to the magnetic insulation bracket body 11, embedding the embedded portion 101 into the magnetic insulation bracket body 11 is conducive to the connecting transition piece 10 being able to form a stable connection with the magnetic insulation bracket body 11. Considering that the connecting transition piece 10 needs to be partially exposed to connect with the connector 12, the exposed portion 102 is exposed to the magnetic insulation bracket body 11, and is connected to the connecting piece 12 by welding, hinges or riveting. Among them, the magnetic insulation bracket body 11 wraps the embedded part 101, so that the magnetic insulation bracket body 11 forms a stable connection with the connecting transition piece 10, and the connecting transition piece 10 is then connected by welding, hinging or riveting. In this way, the magnetic insulation bracket body 11 can form a stable connection with the connecting piece 12 without damaging or affecting the magnetic insulation bracket body 11.

[0162] It is understandable that the above-mentioned metal material can be iron, steel, alloy (such as stainless steel), etc.

[0163] It is understood that the above non-metallic material can be resin, plastic, etc. For example, the magnetic insulation bracket body 11 can be formed by adding fiber materials such as glass fiber and carbon fiber to non-metallic materials such as resin and plastic, or can be formed only by non-metallic materials.

[0164] Optionally, the connecting member 12 may be a joint bearing, a hinge, etc., which is not specifically limited in this application.

[0165] In some embodiments, the magnetic insulating support body 11 may be an annular structure, that is, a closed ring or an open ring. For example, the magnetic insulating support body 11 may be a closed ring. The magnetic insulating support body 11 may be a circular ring, a quasi-circular ring, or a polygonal ring, such as a rectangle, a rectangle, a pentagon, or a triangle.

[0166] In some embodiments, the magnetic insulation bracket body 11 may be a circular structure, that is, a circular structure may be formed when the middle portion of the ring is closed.

[0167] The following description will be made by taking the magnetic insulation bracket body 11 as an example with a circular ring structure.

[0168] In order to effectively expose the exposed portion 102 to the magnetic insulation bracket body 11, in some embodiments, the connecting transition piece 10 includes a first end 10a and a second end 10b relative to each other, the first end 10a is embedded in the bracket member 1, that is, the embedded portion 101 is located at the first end 10a, the second end 10b extends in a direction away from the magnetic insulation bracket body 11, and the second end 10b is exposed to the magnetic insulation bracket body 11, that is, the exposed portion 102 is located at the second end 10b.

[0169] Exemplarily, when the connecting transition piece 10 is connected to the magnetic insulation bracket body 11, embedding the first end 10a into the magnetic insulation bracket body 11 is conducive to the connecting transition piece 10 being able to form a stable connection with the magnetic insulation bracket body 11. Considering that the connecting transition piece 10 needs to be partially exposed to connect with the connecting piece 12, the second end 10b is exposed outside the magnetic insulation bracket body 11. Furthermore, extending the first end 10a in a direction away from the magnetic insulation bracket 11 can make the first end 10a away from the connection between the magnetic insulation bracket body 11 and the connecting piece 12. Since the magnetic insulation bracket body 11 is movable relative to the connecting piece 12, the first end 10a away from the connection between the magnetic insulation bracket body 11 can prevent the connection between the first end 10a and the connecting piece 12 from interfering with the rotation position of the magnetic insulation bracket body 11. Furthermore, extending the second end 10b in a direction away from the first end 10a can make the exposed portion 102 away from the magnetic insulation bracket body 11. In this way, when the exposed portion 102 is connected to the connecting member 12 , damage to the structure of the magnetic insulation bracket body 11 can be avoided.

[0170] It is understood that, as can be seen from the foregoing, the magnetic insulation bracket body 11 can be made of a material such as resin or plastic. Thus, when the first end 10a is embedded in the magnetic insulation bracket body 11, the first end 10a can be embedded during the process of forming the magnetic insulation bracket body 11. For example, if the material of the magnetic insulation bracket body 11 is resin, the magnetic insulation bracket body 11 can be melted to cover the first end 10a of the connecting transition piece 10. Thus, the first end 10a can be directly wrapped by the magnetic insulation bracket body 11, effectively preventing the first end 10a from detaching from the magnetic insulation bracket body 11 and affecting the connection between the magnetic insulation bracket body 11 and the connecting piece 12.

[0171] See Figures 26-29 In some embodiments, the connecting transition piece 10 can be entirely embedded within a magnetic insulation support body 11. The magnetic insulation support body 11 has a lower surface 11a and an upper surface 11b that are opposed to each other in the thickness direction. The lower surface 11a and the upper surface 11b cover opposite sides of the embedded portion 101, respectively. The lower surface 11a defines an opening 110 that is configured to expose the exposed portion 102 to the outside of the magnetic insulation support body 11.

[0172] In other words, only a portion of the connecting transition piece 10 is exposed through the opening 110 of the magnetic insulation support body 11, namely the exposed portion 102, while the majority is enclosed by the magnetic insulation support body 11, namely the embedded portion 101. By being laminated and enclosed by the lower surface 11a and the upper surface 11b, the connecting transition piece 10 can form a secure connection with the magnetic insulation support body 11 while still being exposed through the opening 110 on the lower surface 11a for connection with the connecting piece 12.

[0173] In addition, the larger portion of the connecting transition piece 10 located within the magnetic insulation bracket body 11 can enhance the structural strength of the magnetic insulation bracket body 11, thereby preventing the magnetic insulation bracket body 11 from being damaged due to repeated rotation relative to the connecting piece 12 during use.

[0174] It is understood that the upper surface 11b can be the side surface of the magnetic insulating bracket body 11 facing away from the back of the electronic device or protective case, while the lower surface 11a can be the side surface of the magnetic insulating bracket body 11 facing the back of the electronic device or protective case. The lower surface 11a can extend from the first end 10a of the connecting transition piece 10 to the second end 10b of the connecting transition piece 10. The opening 110 on the lower surface 11a can extend to the first end 10a of the connecting transition piece 10, thereby making the first end 10a of the connecting transition piece 10 at least partially exposed relative to the bracket member 1.

[0175] For example, as can be seen from the above, the magnetic insulation bracket body 11 can be a material such as resin, gum, etc. Therefore, after the magnetic insulation bracket body 11 is melted, it can completely wrap the connecting transition piece 10, and then the opening 110 is processed on the lower surface 11a by grinding, milling or cutting, so that the exposed part 102 of the connecting transition piece 10 is exposed to the magnetic insulation bracket body 11.

[0176] Optionally, the opening 110 extends in a direction away from the magnetic insulation support body 11 to penetrate the edge of the lower surface 11 a , that is, penetrate the side surface of the magnetic insulation support body 11 .

[0177] Because exposed portion 102 also extends away from magnetic insulation support body 11, when opening 110 extends away from magnetic insulation support body 11 and then penetrates the edge of lower surface 11a, opening 110 exposes exposed portion 102 at the edge of lower surface 11a. This allows connector 12 to connect to exposed portion 102 at the edge of lower surface 11a, away from magnetic insulation support body 11, preventing damage to magnetic insulation support body 11 during connection between exposed portion 102 and connector 12.

[0178] In some embodiments, the exposed portion 102 has a convex structure, and the exposed portion 102 includes a main body portion 1021 and a protruding portion 1022. The embedded portion 101 is arranged around the outside or four sides of the main body portion 1021. The protruding portion 1022 extends in a direction away from the main body portion 1021 to the edge of the magnetic insulation bracket body 11, and the end face of the protruding portion 1022 is covered by the magnetic insulation bracket body 11, or the end face of the protruding portion 1022 is exposed to the magnetic insulation bracket body 11.

[0179] Exemplarily, when the exposed portion 102 is provided, the exposed portion 102 may be in a convex-shaped structure, with the protruding portion 1022 extending to the edge of the magnetic insulation bracket body 11 in a direction away from the main portion 1021, so that the end face of the protruding portion 1022 can be exposed at the edge of the lower surface 11a through the opening 110, and the end face of the protruding portion 1022 can be connected to the connector 12 away from the magnetic insulation bracket body 11. Since the protruding portion 1022 is away from the magnetic insulation bracket body 11, when the protruding portion 1022 is connected to the connector 12, the interference of the magnetic insulation bracket body 11 on the movement of the connector 12 when the connector 12 moves relative to the protruding portion 1022 can be reduced. When the protruding portion 1022 is connected to the connector 12, damage to the magnetic insulation bracket body 11 can be reduced when the protruding portion 1022 and the connector 12 are welded.

[0180] In addition, if the end surface of the protruding portion 1022 is also covered by the magnetic insulation bracket body 11, the contact area between the connecting transition piece 10 and the magnetic insulation bracket body 11 is increased, which can improve the connection stability between the magnetic insulation bracket body 11 and the connecting transition piece 10.

[0181] As can be seen from the above, the magnetic insulation bracket body 11 is constructed as an annular structure (such as a circular ring). In some embodiments, the connecting transition piece 10 also has a first side 10c and a second side 10d along the circumferential direction of the magnetic insulation bracket body 11. The first side 10c and the second side 10d both extend along the circumferential direction of the magnetic insulation bracket body 11 and are both wrapped by the magnetic insulation bracket body 11.

[0182] In the circumferential direction of the magnetic insulation support body 11, the first side 10c and the second side 10d are respectively located on either side of the embedded portion 101, and both the first side 10c and the second side 10d are enclosed by the magnetic insulation support body 11. In other words, both sides of the embedded portion 101 in the circumferential direction of the magnetic insulation support body 11 are located within the magnetic insulation support body 11, allowing the connecting transition piece 10 to be stably enclosed within the magnetic insulation support body 11, further improving the connection stability between the connecting transition piece 10 and the magnetic insulation support body 11, and preventing the connecting transition piece 10 from being separated from the magnetic insulation support body 11 due to only being partially enclosed within the magnetic insulation support body 11.

[0183] In order to ensure that the connecting transition piece 10 can be more firmly wrapped by the magnetic insulation bracket body 11, in some embodiments, the embedded portion 101 is located on the outside or around the exposed portion 102, and the exposed portion 102 has a covered surface 102a and an exposed surface 102b opposite to each other along its thickness direction. The covered surface 102a is covered by the upper surface 11b, and the exposed surface 102b is exposed to the magnetic insulation bracket body 11 through the opening 110.

[0184] When the connecting transition piece 10 is connected to the magnetic insulation bracket body 11, the embedded portion 101 is entirely located within the magnetic insulation bracket body 11 and is thereby enclosed by the magnetic insulation bracket body 11. Simultaneously, only the exposed surface 102b of the exposed portion 102 is exposed from the opening 110, while the covered surface 102a is enclosed by the upper surface 11b of the magnetic insulation bracket body 11. This ensures that a portion of the exposed portion 102 is also enclosed by the magnetic insulation bracket body 11, thereby enhancing the connection stability between the connecting transition piece 10 and the magnetic insulation bracket body 11.

[0185] It is understandable that in Figure 25 In the example, the direction indicated by X is the radial direction of the electronic device bracket 1 , the direction indicated by Y is the circumferential direction of the electronic device bracket 1 , and the direction indicated by Z is the thickness direction of the electronic device bracket 1 .

[0186] To ensure a secure connection between the connector 12 and the magnetic insulation bracket body 11, the present application embeds a connecting transition piece 10 within the magnetic insulation bracket body 11. However, considering that the embedded connecting transition piece 10 is metal, it may increase the probability of the wireless charger triggering FOD. Based on this, the present application also designs the structure of the connecting transition piece 10 embedded within the magnetic insulation bracket body 11, which will be detailed below.

[0187] In some embodiments, when the magnetic insulation support body 11 is constructed as a circular ring structure, the connecting transition piece 10 includes a first side 10c in the circumferential direction of the magnetic insulation support body 11 and a second side 10d opposite to the first side 10c. The first side 10c and the second side 10d both extend along the circumferential direction of the magnetic insulation support body 11 and are both located within the magnetic insulation support body 11, so that the magnetic insulation support body 11 wraps the first side 10c and the second side 10d.

[0188] When the first side 10c and the second side 10d are both wrapped in the magnetic insulation support body 11 and extend along its circumferential direction, the more the first side 10c and the second side 10d are wrapped by the magnetic insulation support body 11, the stronger the bonding force between the first side 10c, the second side 10d and the magnetic insulation support body 11, that is, the more firmly the connection between the connecting transition piece 10 and the magnetic insulation support body 11 is.

[0189] Optionally, viewed from the lower surface 11a of the magnetic insulation bracket body 11, any point of the projection of the first side 10c on the lower surface 11a is connected to the center of the magnetic insulation bracket body 11 to form a first line 10e, and any point of the projection of the second side 10d on the lower surface 11a is connected to the center of the magnetic insulation bracket body 11 to form a second line 10f, and an angle α is formed between the first line and the second line, and α can be 15°-90°.

[0190] Exemplarily, α may be 15°-20°, 20°-25°, 25°-30°, 30°-35°, 35°-40°, 40°-45°, 45°-50°, 50°-55°, 55°-60°, 60°-65°, 65°-70°, 70°-75°, 75°-80°, 80°-85°, 85°-90°, etc. For example, α may be 15°, 17°, 20°, 23°, 25°, 27°, 30°, 33°, 35°, 37°, 40°, 43°, 45°, 47°, 50°, 53°, 55°, 57°, 60°, 63°, 65°, 67°, 70°, 73°, 75°, 77°, 80°, 83°, 85°, 87° or 90°, etc.

[0191] When α is 15°-90°, that is, the connecting transition piece 10 can occupy 1 / 25-1 / 4 of the circumference of the magnetic insulation bracket body 11 in the circumferential direction of the magnetic insulation bracket body 11. When the magnetic insulation bracket body 11 wraps the connecting transition piece 10, on the one hand, if α is large, the connecting transition piece 10 occupies a large proportion in the magnetic insulation bracket body 11, resulting in an increase in the proportion of metal in the magnetic insulation bracket body 11, which may cause FOD to be triggered and affect the effect of wireless charging. On the other hand, if α is small, the magnetic insulation bracket body 11 may wrap a smaller portion of the connecting transition piece 10, which is not conducive to the stable connection between the connecting transition piece 10 and the magnetic insulation bracket body 11, thereby affecting the stable connection between the connecting piece 12 and the magnetic insulation bracket body 11.

[0192] Therefore, when α is controlled within the range of 15°-90°, not only can the probability of the metal connection transition piece 10 triggering the wireless charger to trigger FOD be reduced, but also the connection transition piece 10 and the magnetic insulation bracket body 11 can be stably connected.

[0193] In an example, when the projections of the first side 10c and the second side 10d on the lower surface 11a are a straight line, any point of the projections of the first side 10c and the second side 10d on the lower surface 11a can be any point on the straight line.

[0194] In another example, when the projections of the first side 10c and the second side 10d on the lower surface 11a are not straight lines, the angle formed by the line connecting the outermost points on the corresponding lines and the center of the circle is the maximum value of the angle that can be formed by any two points, and the maximum value is also within the above range.

[0195] In some embodiments, a rolled portion 1023 is provided on the exposed portion 102 , and the electronic device bracket 1 further includes a rotating shaft (not shown), which is inserted into the rolled portion 1023 and connected to the connector 12 so that the magnetic insulation bracket body 11 is rotatably connected to the connector 12 .

[0196] For example, when the exposed portion 102 is provided with a rolled portion 1023, a rotating shaft can be provided on the connecting member 12, which is hinged to the rotating shaft through the rolled portion 1023, so that the connecting member 12 and the connecting transition member 10 form a stable connection while the connecting transition member 10 can also rotate relative to the connecting member 12.

[0197] It can be understood that the rolled portion 1023 can be a single cylindrical structure, that is, the overall shape of the rolled portion 1023 is cylindrical, or the rolled portion 1023 can be a double-cylindrical structure or a multi-cylindrical structure, that is, the rolled portion 1023 can form two or more cylindrical structures and be hinged to the rotating shaft to realize the rotation of the magnetic insulation bracket body 11 relative to the connecting member 12. This application does not make specific limitations here.

[0198] It is understandable that the rolled portion 1023 may be a cylindrical structure, a polygonal cylindrical structure, etc., and this application does not make any specific limitations here.

[0199] For example, when the exposed portion 102 is provided with a rolled portion 1023, taking the connecting member 12 as a hinge, the exposed portion 102 can be directly connected to the rotating shaft of the connecting member 12 through the rolled portion 1023, without being connected to the connecting transition member 10 through the leaf piece of the connecting member 12. This is conducive to avoiding the connection between the leaf piece of the connecting member 12 and the connecting transition member 10 causing the thickness of the magnetic insulation bracket body 11 to be too thick when the leaf piece of the connecting member 12 is connected to the connecting transition member 10.

[0200] Optionally, the connecting member 12 is welded to the exposed portion 102 , or the connecting member 12 is riveted to the exposed portion 102 .

[0201] It is understandable that when the connector 12 is connected to the exposed portion 102 of the connecting transition piece 10 by welding or riveting, the connector 12 can form a stable connection with the connecting transition piece 10 to prevent the connector 12 from detaching from the connecting transition piece 10 .

[0202] In some embodiments, a connecting portion 1024 is protruded from the exposed surface 102 b , and a connecting hole (not shown) is provided on the connecting member 12 . The connecting hole is sleeved on the connecting portion 1024 to position or fix the connecting member 12 on the exposed portion 102 .

[0203] For example, a connection portion 1024 may be milled out on the exposed surface 102b, or welded to the exposed surface 102b. For example, if the connector 12 is a hinge, the connector 12 may be riveted to the connection portion 1024 of the connecting transition piece 10 by opening a connection hole in the leaf. This allows the connecting transition piece 10 and the connector 12 to form a secure connection, and the connecting transition piece 10 can also rotate relative to the connector 12. When the connecting transition piece 10 is riveted to the leaf of the connector 12 via the connection portion 1024, since both are made of metal, adhesive bonding or welding may be used for reinforcement during the riveting process. This helps to improve the connection stability at the riveted joint, thereby enhancing the stable connection between the magnetic insulation bracket body 11 and the connector 12.

[0204] Optionally, the connecting hole may be a through hole or a blind hole, which is not specifically limited in this application.

[0205] Optionally, a surface of one end of the connecting portion 1024 away from the exposed surface 102 b is lower than the lower surface 11 a or flush with the lower surface 11 a .

[0206] For example, when providing the connecting portion 1024, the surface of the connecting portion 1024 can be lower than or flush with the lower surface 11a along the thickness direction of the magnetic insulation bracket body 11 to prevent the surface of the connecting portion 1024 from protruding from the lower surface 11a, thereby preventing the connecting portion 1024 from being excessively exposed and affecting the appearance of the electronic device bracket 1. Furthermore, if the surface of the connecting portion 1024 protrudes too high when the connector 12 is connected to the connecting portion 1024, it will block contact between the connector 12 and the exposed surface 102b, resulting in a gap between the connector 12 and the exposed surface 102b, affecting the stable connection between the connector 12 and the connecting transition piece 10. In other words, when the surface of the connecting portion 1024 is provided lower than or flush with the lower surface 11a, the connecting portion 12 is facilitated to form a tight connection with the exposed surface 102b of the exposed portion 102, thereby improving the stability of the connecting portion 12 and the connecting transition piece 10.

[0207] Optionally, the connection portion 1024 includes a plurality of connection portions 1024 , and the plurality of connection portions 1024 are arranged at intervals.

[0208] For example, when multiple connecting portions 1024 are provided, multiple connecting holes are correspondingly provided on the connecting piece 12 for connection, so that the connecting piece 12 and the connecting transition piece 10 form a multi-point connection, which is beneficial to improving the stability of the connecting piece 12 and the connecting transition piece 10.

[0209] It can be understood that the electronic device bracket 1 can be attached to the surface of the mobile phone case or the mobile phone by rotating the connecting piece 12. If the connecting transition piece 10 is wrapped in the magnetic insulation bracket body 11, resulting in the thickness of the magnetic insulation bracket body 11 being thicker, when the connecting piece 12 is connected to the connecting transition piece 10, the thicker connection side may cause the connecting piece 12 to be unable to make the electronic device bracket 1 attached to the surface of the mobile phone case, causing the electronic device bracket 1 to be relatively warped, which may affect the appearance and use effect of the electronic device bracket 1.

[0210] In this regard, in some embodiments, the thickness d7 of the electronic device bracket 1 may be 1.45 mm-1.8 mm.

[0211] Illustratively, d7 may be 1.45mm-1.50mm, 1.50mm-1.55mm, 1.55mm-1.60mm, 1.60mm-1.65mm, 1.65mm-1.70mm, 1.70mm-1.75mm, 1.75mm-1.80mm, etc. For example, 1.45mm, 1.47mm, 1.50mm, 1.53mm, 1.55mm, 1.57mm, 1.60mm, 1.63mm, 1.65mm, 1.67mm, 1.70mm, 1.73mm, 1.75mm, 1.77mm or 1.80mm, etc.

[0212] The overall thickness d7 of the electronic device bracket 1 is within 1.45mm-1.8mm, which can avoid being too thick and causing it to warp when connected to the connecting piece 12. It can also avoid the thickness d7 of the electronic device bracket 1 being too thin, which can improve the overall structural strength of the electronic device bracket 1 and prevent the electronic device bracket 1 from being damaged during use.

[0213] Optionally, the thickness d8 of the connecting transition piece 10 may be 0.5 mm to 0.7 mm. For example, d8 may be 0.50 mm to 0.55 mm, 0.55 mm to 0.60 mm, 0.60 mm to 0.65 mm, or 0.65 mm to 0.70 mm. For example, d8 may be 0.50 mm, 0.53 mm, 0.55 mm, 0.57 mm, 0.60 mm, 0.63 mm, 0.65 mm, 0.67 mm, or 0.70 mm.

[0214] The present application controls the thickness d8 of the connecting transition piece 10 to be between 0.5 mm and 0.7 mm. When the connecting transition piece 10 is embedded in the magnetic insulating bracket body 11, the thickness d8 of the connecting transition piece 10 is prevented from being too large, thereby increasing the thickness of the electronic device bracket 1 and causing it to lift on the surface of the mobile phone or mobile phone case. At the same time, the thickness d8 of the connecting transition piece 10 should be prevented from being too thin, thereby reducing the strength enhancement effect of the magnetic insulating bracket body 11.

[0215] In some embodiments, when the magnetic insulation bracket body 11 is constructed as a circular ring structure, a latch position 112 is also provided on the magnetic insulation bracket body 11. When the magnetic insulation bracket body 11 is constructed as a circular ring structure, along its radial direction, the latch position 112 and the connecting transition piece 10 are located at opposite ends of the magnetic insulation bracket body 11.

[0216] It is understandable that the electronic device bracket 1 can be attached to the surface of an electronic device such as a mobile phone or a mobile phone case through the connector 12 .

[0217] Based on this, a handle position 112 can be set on the electronic device bracket 1, and the user can lift it up by holding the handle position 112. In this way, the user can lift the electronic device bracket 1 more conveniently, which is convenient for the user's daily use of the electronic device bracket 1.

[0218] The magnetic member includes a first sub-magnetic member 131 and a second sub-magnetic member 132. The first sub-magnetic member 131 is arranged along the circumferential direction of the magnetic insulation bracket body 11 and is located between one end of the latch portion 112 and one end of the connecting transition piece 10. The second sub-magnetic member 132 is arranged along the circumferential direction of the magnetic insulation bracket body 11 and is located between the other end of the latch portion 112 and the other end of the connecting transition piece 10.

[0219] That is to say, when the first sub-magnetic component 131 and the second sub-magnetic component 132 are arranged in the magnetic insulation bracket body 11, the magnetic insulation bracket body 11 wraps the first sub-magnetic component 131 and the second sub-magnetic component 132 in the thickness direction, so that the first sub-magnetic component 131 and the second sub-magnetic component 132 can form a stable connection with the magnetic insulation bracket body 11. Moreover, the first sub-magnetic component 131 and the second sub-magnetic component 132 are both arranged between the buckle position 112 and the connecting transition piece 10, that is, magnetic components are provided in the magnetic insulation bracket body 11 on both sides of the buckle position 112 and the connecting transition piece 10, so that the magnetism can be more evenly distributed on the magnetic insulation bracket body 11, which is conducive to the magnetic insulation bracket body 11 to stably magnetically attract the wireless charger.

[0220] In some embodiments, the two opposite surfaces of the first sub-magnetic component 131 along the thickness direction of the magnetic insulating bracket body 11 and the two opposite surfaces of the second sub-magnetic component 132 along the thickness direction of the magnetic insulating bracket body 11 are both covered by the magnetic insulating bracket body 11, so that the first sub-magnetic component 131 and the second sub-magnetic component 132 are fixed inside the insulating bracket body 11, and the first sub-magnetic component 131 and the second sub-magnetic component 132 are used for magnetic connection with the charging accessories. When the first sub-magnetic component 131 and the second sub-magnetic component 132 are wrapped by the insulating bracket body 11, the two side surfaces of the first sub-magnetic component 131 and the second sub-magnetic component 132 along the radial direction of the insulating bracket body 11 are wrapped by the insulating bracket body 11, and the two surfaces of the first sub-magnetic component 131 and the second sub-magnetic component 132 along the circumferential direction of the insulating bracket body 11 are wrapped by the insulating bracket body 11.

[0221] It is understandable that the charging accessory may be a wireless charger or a mobile wireless charger, for example, the charging accessory may be a magnetic wireless power bank.

[0222] That is, when the first sub-magnetic component 131 and the second sub-magnetic component 132 are disposed within the magnetic insulation bracket body 11, the magnetic insulation bracket body 11 fully encases the first sub-magnetic component 131 and the second sub-magnetic component 132 in its thickness, circumferential, and radial directions, allowing the first sub-magnetic component 131 and the second sub-magnetic component 132 to form a stable connection with the magnetic insulation bracket body 11. Furthermore, the first sub-magnetic component 131 and the second sub-magnetic component 132 are arranged on both sides of the handle position 112, so that the magnetism can be relatively evenly distributed on the magnetic insulation bracket body 11, which is conducive to the magnetic insulation bracket body 11 to stably magnetically attract the charging accessories.

[0223] In order to improve the convenience of using wireless charging, the electronic device bracket 1 of the present application can be equipped with magnetic parts inside the magnetic insulation bracket body 11, so that the magnetic insulation bracket body 11 has magnetism. When the magnetic insulation bracket body 11 is connected to the surface of an electronic device such as a mobile phone through a connecting part 12, the magnetic parts inside the magnetic insulation bracket body 11 can magnetically attract a wireless charger that also has magnetism. During the charging process, the wireless charger is not easy to fall due to the magnetic attraction.

[0224] In addition, the first sub-magnetic component 131 and the second sub-magnetic component 132 are evenly arranged on both sides of the magnetic insulation bracket body 11, so that the magnetism in the magnetic insulation bracket body 11 is more uniform, making the magnetic insulation bracket body 11 more stable when adsorbing the wireless charger.

[0225] Optionally, there may be a plurality of first sub-magnetic components 131 , and the plurality of first sub-magnetic components 131 are arranged at intervals along the circumference of the magnetic insulation bracket body 11 .

[0226] Optionally, there may be a plurality of second sub-magnetic components 132 , and the plurality of second sub-magnetic components 132 are arranged at intervals along the circumference of the magnetic insulation bracket body 11 .

[0227] For example, when multiple first sub-magnetic parts 131 are wrapped in the magnetic insulation bracket body 11, the space between two adjacent first sub-magnetic parts 131 is filled with the non-metallic material of the magnetic insulation bracket body 11, that is, the first sub-magnetic parts 131 are completely wrapped by the non-metallic material. Moreover, since there is a gap between two adjacent first sub-magnetic parts 131, the coil in the electronic device and the coil in the wireless charger can form electromagnetic induction through the gap between the two first sub-magnetic parts 131. The gap between the two first sub-magnetic parts 131 can reduce the interference of the magnetism of the first sub-magnetic parts 131 on the electromagnetic induction of the coil in the electronic device and the coil in the wireless charger, which is beneficial to improving the charging efficiency of wireless charging. Similarly, the effect of the interval between the second sub-magnetic parts 132 is the same, and will not be repeated here.

[0228] In some embodiments, the first sub-magnetic component 131 is spaced apart from the connecting transition piece 10 along the circumferential square of the magnetic insulation bracket body 11. Since the first sub-magnetic component 131 has magnetic attraction, and the connecting transition piece 10 is made of metal, the first sub-magnetic component 131 and the connecting transition piece 10 are disposed in the magnetic insulation bracket body 11. When the magnetic insulation bracket body 11 does not melt-wrap the first sub-magnetic component 131 and the connecting transition piece 10, the first sub-magnetic component 131 and the connecting transition piece 10 are disposed in close proximity, which may cause the first sub-magnetic component 131 to adsorb the connecting transition piece 10. Therefore, spacing the first sub-magnetic component 131 and the connecting transition piece 10 is beneficial to the arrangement of the connecting transition piece 10 in the magnetic insulation bracket body 11.

[0229] Optionally, the second sub-magnetic component 132 is spaced apart from the connecting transition piece 10 along the circumferential direction of the magnetic insulation bracket body 11. Since the second sub-magnetic component 132 has magnetic attraction, and the connecting transition piece 10 is made of metal, the second sub-magnetic component 132 and the connecting transition piece 10 are arranged in the magnetic insulation bracket body 11. When the magnetic insulation bracket body 11 does not melt and wrap the second sub-magnetic component 132 and the connecting transition piece 10, the second sub-magnetic component 132 and the connecting transition piece 10 are arranged in a close position, which may cause the second sub-magnetic component 132 to adsorb the connecting transition piece 10. Therefore, setting the second sub-magnetic component 132 and the connecting transition piece 10 at a distance is conducive to the arrangement of the connecting transition piece 10 in the magnetic insulation bracket body 11.

[0230] Since the first sub-magnetic component 131, the second sub-magnetic component 132 and the connecting transition component 10 can all be made of metal, in the circumferential direction of the magnetic insulation bracket main body 11, the first sub-magnetic component 131 and the second sub-magnetic component 132 are respectively spaced apart from the connecting transition component 10, so that the magnetic insulation bracket main body 11 is not partially provided with metal material in its circumferential direction, so as to reduce the proportion of metal material in the magnetic insulation bracket main body 11, thereby reducing the probability of FOD occurrence, and further reducing the impact on the wireless charging effect.

[0231] The above is a detailed introduction to an electronic device bracket and electronic device accessories disclosed in the embodiments of the present application. This article uses individual examples to illustrate the principles and implementation methods of the present application. The description of the above embodiments is only used to help understand the bracket, electronic device accessories and electronic device of the present application and its core ideas; at the same time, for general technical personnel in this field, based on the ideas of the present application, there will be changes in the specific implementation methods and application scope. In summary, the content of this specification should not be understood as a limitation on the present application.

Claims

1. An electronic equipment bracket, characterized in that: The electronic equipment bracket comprises: Magnetic insulation bracket body; A connector, comprising a bracket connecting portion and a rotating connecting portion, wherein the bracket connecting portion is fixedly connected to the magnetic insulation bracket body, the rotating connecting portion is connected to the bracket connecting portion, and the rotating connecting portion is used to connect an electronic device or an electronic device accessory; a first magnetic member, wherein the magnetic insulating bracket body is formed on the first magnetic member and forms an integral member with the first magnetic member, the first magnetic member including a first surface and a second surface opposite to each other along a first direction, the first surface and the second surface being both covered by the magnetic insulating bracket body so that the first magnetic member is fixed inside the magnetic insulating bracket body; Wherein, the first direction is the thickness direction of the first magnetic component.

2. The electronic device bracket according to claim 1, wherein: The first magnetic member further includes a third surface and a fourth surface located between the first surface and the second surface, and the third surface and the fourth surface are both covered by the magnetic insulation bracket body, so that the first magnetic member is buried inside the magnetic insulation bracket body; Alternatively, all surfaces of the first magnetic component are covered by the magnetic insulation bracket body.

3. The electronic equipment bracket according to claim 1 or 2, characterized in that: The magnetic insulation bracket body is constructed in an annular shape, and includes a plurality of first magnetic members, which are arranged at intervals along the circumference of the magnetic insulation bracket body, and a portion of the magnetic insulation bracket body extends between any two adjacent first magnetic members.

4. The electronic equipment bracket according to claim 3, characterized in that: A portion of the magnetic insulation bracket body extends between any two adjacent first magnetic members and completely fills the gap between any two adjacent first magnetic members.

5. The electronic equipment bracket according to claim 1 or 2, characterized in that: The electronic device bracket further includes a base, the rotating connection portion is rotatably connected to the base, the magnetic insulation bracket body is connected to the electronic device or electronic device accessories via the base, and the base is used to rotatably connect the electronic device or electronic device accessories.

6. The electronic equipment bracket according to claim 5, characterized in that: The base includes a magnetic insulating base body and a second magnetic part. The magnetic insulating base body is molded on the second magnetic part and forms an integral component with the second magnetic part. The second magnetic part includes a fifth surface and a sixth surface opposite to each other along the first direction. The fifth surface and the sixth surface are both covered by the magnetic insulating base body so that the second magnetic part is fixed inside the magnetic insulating base body.

7. The electronic equipment bracket according to claim 1, characterized in that: The electronic equipment bracket further includes a connecting transition piece, which includes an embedded portion and an exposed portion. The embedded portion is embedded in the magnetic insulation bracket body, and the exposed portion is exposed from the magnetic insulation bracket body and connected to the bracket connecting portion.

8. The electronic equipment bracket according to claim 7, characterized in that: The connecting transition piece is embedded in the magnetic insulation bracket body, and the magnetic insulation bracket body has a lower surface and an upper surface opposite to each other along its thickness direction. The opposite sides of the embedded part are respectively covered by the lower surface and the upper surface. The lower surface is provided with an opening, and the opening is configured to expose the exposed part to the magnetic insulation bracket body.

9. The electronic equipment bracket according to claim 8, characterized in that: The embedded portion is located around or outside the exposed portion. The exposed portion has an exposed surface and a covered surface opposite to each other along its thickness direction. The covered surface is covered by the upper surface. The exposed surface is exposed to the magnetic insulation body through the opening.

10. The electronic equipment bracket according to claim 9, characterized in that: The exposed portion has a convex structure, and the exposed portion includes a main body and a protruding portion. The embedded portion is arranged around or outside the main body. The protruding portion extends away from one end of the main body to the edge of the magnetic insulation bracket body, and the end surface of one end of the protruding portion is covered by the magnetic insulation bracket body, or the end surface of one end of the protruding portion is exposed to the magnetic insulation bracket body.