Wireless charging mounting structure and embedded wireless charging seat
The sliding adjustment bracket drives the sliding clamping component to achieve easy installation and removal of the base in the embedded wireless charger, solving the problem of complex installation in the prior art and improving the user experience.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHENZHEN ZHONGBANG INNOVATION TECHNOLOGY CO LTD
- Filing Date
- 2025-03-27
- Publication Date
- 2026-04-24
AI Technical Summary
Existing embedded wireless chargers have complex installation structures, making disassembly and assembly inconvenient, especially for users with poor hands-on skills.
The sliding adjustment bracket drives the first and second sliding clamping parts to slide in opposite directions or towards each other, respectively engaging or disengaging from the inner circumferential wall of the desktop groove, thereby achieving the fixed installation or disassembly of the base. The inclined sliding hole and the stop concave surface enhance stability and reliability.
It simplifies the installation and disassembly process of embedded wireless chargers, improves the ease of assembly and disassembly, and is especially suitable for users with poor hands-on skills, thus enhancing the user experience.
Smart Images

Figure CN224164694U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of wireless charging technology, and in particular to a wireless charging installation structure and an embedded wireless charging base. Background Technology
[0002] With the advent of smartphones and tablets, people are using smart electronic products more and more frequently, and charging these products has become an essential part of daily life. With the popularization of wireless charging technology and its convenience and speed, it has gained popularity among consumers.
[0003] Currently, common types of wireless chargers include upright wireless chargers, horizontal (flat) wireless chargers, and embedded wireless chargers. Embedded wireless chargers primarily involve embedding the base into a recessed area on a desktop, using adhesive or other back-mounting structures to position the base within the recess. The built-in wireless inductive charging component then wirelessly charges electronic devices. However, existing installation structures and disassembly methods are generally quite complex, resulting in poor ease of installation and removal for embedded wireless chargers, making them very unfriendly to users with limited hands-on installation skills. Utility Model Content
[0004] The purpose of this utility model is to overcome the shortcomings of the existing technology and provide a wireless charging installation structure and embedded wireless charging base that are simple and reliable in structure and simplify the disassembly and assembly method, so that the embedded wireless charger has good disassembly and assembly convenience.
[0005] The objective of this utility model is achieved through the following technical solution:
[0006] A wireless charging mounting structure, comprising:
[0007] A base for positioning within a recess in a tabletop;
[0008] A sliding adjustment bracket is used for sliding connection with the base;
[0009] The fixing component includes a first sliding clamping member and a second sliding clamping member disposed opposite to each other; the first sliding clamping member and the second sliding clamping member are slidably connected to the sliding adjustment bracket; wherein, the sliding adjustment bracket slides relative to the base to drive the first sliding clamping member and the second sliding clamping member to slide back to back or towards each other; during installation, the sliding adjustment bracket drives the first sliding clamping member and the second sliding clamping member to slide back to back, so that the first sliding clamping member and the second sliding clamping member are respectively engaged in the inner peripheral wall of the groove; during disassembly, the sliding adjustment bracket drives the first sliding clamping member and the second sliding clamping member to slide towards each other, so that the first sliding clamping member and the second sliding clamping member are respectively disengaged from the inner peripheral wall of the groove.
[0010] In one embodiment, the sliding adjustment frame has a first oblique sliding hole and a second oblique sliding hole; the first oblique sliding hole and the second oblique sliding hole are arranged opposite to each other, and the distance between the first oblique sliding hole and the second oblique sliding hole gradually changes in the sliding direction of the sliding adjustment frame; the direction in which the first sliding clamping member is slidably disposed in the first oblique sliding hole is the first sliding adjustment direction; the direction in which the second sliding clamping member is slidably disposed in the second oblique sliding hole is the second sliding adjustment direction, and there is a first included angle between the first sliding adjustment direction and the second sliding adjustment direction.
[0011] In one embodiment, the first sliding clamping member includes a first limiting slide post and a first slider connected together, and the second sliding clamping member includes a second limiting slide post and a second slider connected together. The first limiting slide post is slidably disposed in the first oblique sliding hole, and the second limiting slide post is slidably disposed in the second oblique sliding hole.
[0012] The base is provided with a first sliding groove, a second sliding groove and a third sliding groove respectively; the second sliding groove and the third sliding groove are both connected to the first sliding groove; the sliding adjustment frame is slidably disposed in the first sliding groove, the first slider is slidably disposed in the second sliding groove, and the second slider is slidably disposed in the third sliding groove.
[0013] In one embodiment, the inner peripheral wall of the first oblique sliding hole is provided with a plurality of first stop concave surfaces, and the inner peripheral wall of the second oblique sliding hole is provided with a plurality of second stop concave surfaces. The sliding adjustment bracket slides relative to the base to drive the first limiting slide post to slide in the first oblique sliding hole, so that the outer peripheral wall of the first limiting slide post abuts against the corresponding first stop concave surface; the sliding adjustment bracket slides relative to the base to drive the second limiting slide post to slide in the second oblique sliding hole, so that the outer peripheral wall of the second limiting slide post abuts against the corresponding second stop concave surface.
[0014] Among them, the line that is tangent to multiple concave surfaces of the first gear position is the first tangent line, and the line that is tangent to multiple concave surfaces of the second gear position is the second tangent line. The first tangent line and the second tangent line have a second included angle.
[0015] In one embodiment, one of the sliding adjustment frame and the base is provided with an adjustment key, and the other of the sliding adjustment frame and the base is provided with a plurality of parallel limiting grooves. The adjustment key is used to engage with one of the limiting grooves when the sliding adjustment frame is positioned relative to the base.
[0016] In one embodiment, the sliding adjustment frame has an adjustment key protruding from it, and the base has a plurality of parallel limiting grooves protruding from it; the adjustment key is located in the sliding direction of the sliding adjustment frame, and the side of the adjustment key facing the base has an adjustment buckle protruding from it, which is engaged with one of the limiting grooves when the sliding adjustment frame is positioned relative to the base; the side of the adjustment key away from the adjustment buckle is provided with a gripping part.
[0017] In one embodiment, the first sliding clamping member has a first pointed insertion portion, and the second sliding clamping member has a second pointed insertion portion, wherein the first pointed insertion portion and the second pointed insertion portion are respectively used to abut against the inner peripheral wall of the groove.
[0018] In one embodiment, the sliding adjustment frame is provided with guide and limiting parts on both sides of the sliding direction of the sliding adjustment frame, and the guide and limiting parts are slidably connected to the first sliding groove.
[0019] In one embodiment, the sliding adjustment bracket has a protruding sliding push portion on the side opposite to the first sliding clamping member and the second sliding clamping member.
[0020] An embedded wireless charging dock includes the wireless charging mounting structure described in any of the above embodiments.
[0021] Compared with the prior art, the present invention has at least the following advantages:
[0022] The base is positioned within a groove on the desktop. A sliding adjustment bracket drives the first and second sliding clamping parts to slide back-to-back, causing them to engage with the inner wall of the groove, thus securing the base. Conversely, when the sliding adjustment bracket drives the first and second sliding clamping parts to slide towards each other, they disengage from the inner wall of the groove, allowing the base to be disassembled. This invention provides a simple and reliable wireless charging installation structure, simplifying both installation and disassembly. This makes the embedded wireless charger highly user-friendly, especially for users with limited hands-on installation skills. Attached Figure Description
[0023] To more clearly illustrate the technical solutions of the embodiments of this utility model, the drawings used in the embodiments will be briefly introduced below. It should be understood that the following drawings only show some embodiments of this utility model and should not be regarded as a limitation on the scope. For those skilled in the art, other related drawings can be obtained based on these drawings without creative effort.
[0024] Figure 1 This is a schematic diagram of the wireless charging installation structure in one embodiment;
[0025] Figure 2 This is a schematic diagram of the wireless charging installation structure in another embodiment;
[0026] Figure 3 for Figure 1 The diagram shows the structural schematic of the wireless charging installation structure.
[0027] Figure 4 for Figure 2 The diagram shows the structural schematic of the wireless charging installation structure.
[0028] Figure 5 This is an exploded view of the structure of an embedded wireless charging dock in one embodiment;
[0029] Figure 6 This is a schematic diagram of the embedded wireless charging dock in another embodiment;
[0030] Figure 7 This is an exploded view of the structure of an embedded wireless charging dock in one embodiment;
[0031] Reference numerals: Wireless charging mounting structure 10; base 100; first sliding groove 101; second sliding groove 102; third sliding groove 103; limiting groove 104; limiting rib 110; sliding adjustment bracket 200; first oblique sliding hole 201; second oblique sliding hole 202; first gear concave surface 210; second gear concave surface 220; adjustment key body 230; adjustment buckle part 2310; grip part 2320; sliding push part 240; guide sliding limiting part 250; fixing component 300; first sliding clamping member 310; first limiting slide post 3110; first slider 3120; first pointed insertion part 3130; second sliding clamping member 320; second limiting slide post 3210; second slider 3220; second pointed insertion part 3220; charging panel 400; wireless inductive charging component 500. Detailed Implementation
[0032] To facilitate understanding of this utility model, a more complete description will be given below with reference to the accompanying drawings. The drawings illustrate preferred embodiments of this utility model. However, this utility model can be implemented in many different forms and is not limited to the embodiments described herein. Rather, these embodiments are provided to provide a more thorough and complete understanding of the disclosure of this utility model.
[0033] It should be noted that when an element is referred to as being "fixed to" another element, it can be directly attached to the other element or there may be an intervening element. When an element is referred to as being "connected to" another element, it can be directly connected to the other element or there may be an intervening element. The terms "vertical," "horizontal," "left," "right," and similar expressions used herein are for illustrative purposes only and do not represent the only possible implementation.
[0034] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention pertains. The terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting of the invention. The term "and / or" as used herein includes any and all combinations of one or more of the associated listed items.
[0035] This disclosure provides a wireless charging mounting structure, including a base, a sliding adjustment bracket, and a fixing component. The base is positioned within a groove on a desktop; the sliding adjustment bracket is slidably connected to the base; the fixing component includes a first sliding clamp and a second sliding clamp disposed opposite to each other; the first sliding clamp and the second sliding clamp are slidably connected to the sliding adjustment bracket; wherein, the sliding adjustment bracket slides relative to the base to drive the first sliding clamp and the second sliding clamp to slide back to back or towards each other; during installation, the sliding adjustment bracket drives the first sliding clamp and the second sliding clamp to slide back to back, causing the first sliding clamp and the second sliding clamp to respectively engage with the inner peripheral wall of the groove; during disassembly, the sliding adjustment bracket drives the first sliding clamp and the second sliding clamp to slide towards each other, causing the first sliding clamp and the second sliding clamp to respectively disengage from the inner peripheral wall of the groove.
[0036] Please see Figures 1 to 7 To better understand the wireless charging mounting structure 10 of this application, the following further explanation of the wireless charging mounting structure 10 is provided:
[0037] A wireless charging mounting structure 10 according to one embodiment includes a base 100, a sliding adjustment bracket 200, and a fixing component 300; the base 100 is positioned within a groove on a desktop; the sliding adjustment bracket 200 is slidably connected to the base 100; the fixing component 300 includes a first sliding clamping member 310 and a second sliding clamping member 320 disposed opposite to each other; both the first sliding clamping member 310 and the second sliding clamping member 320 are slidably connected to the sliding adjustment bracket 200; wherein, the sliding adjustment bracket 200 is relative to the base 100. The sliding mechanism drives the first sliding clamping member 310 and the second sliding clamping member 320 to slide in opposite directions or towards each other. During installation, the first sliding clamping member 310 and the second sliding clamping member 320 are driven to slide in opposite directions, so that the first sliding clamping member 310 and the second sliding clamping member 320 are respectively engaged in the inner peripheral wall of the groove. During disassembly, the first sliding clamping member 310 and the second sliding clamping member 320 are driven to slide towards each other, so that the first sliding clamping member 310 and the second sliding clamping member 320 are respectively disengaged from the inner peripheral wall of the groove.
[0038] In this embodiment, the base 100 is positioned within a groove on the desktop. The sliding adjustment bracket 200 drives the first sliding clamping member 310 and the second sliding clamping member 320 to slide back-to-back, causing them to engage with the inner peripheral wall of the groove, thus securing the base 100. Conversely, when the sliding adjustment bracket 200 drives the first sliding clamping member 310 and the second sliding clamping member 320 to slide towards each other, they disengage from the inner peripheral wall of the groove, allowing the base 100 to be disassembled. This invention provides a simple and reliable wireless charging installation structure, simplifying both installation and disassembly, thus making the embedded wireless charger highly convenient to install and remove, especially for users with limited hands-on installation skills.
[0039] like Figures 1 to 4 As shown, in one embodiment, the sliding adjustment frame 200 has a first oblique sliding hole 201 and a second oblique sliding hole 202; the first oblique sliding hole 201 and the second oblique sliding hole 202 are arranged opposite to each other, and the distance between the first oblique sliding hole 201 and the second oblique sliding hole 202 gradually changes in the sliding direction of the sliding adjustment frame 200. That is, the distance between the first oblique sliding hole 201 and the second oblique sliding hole 202 decreases when the sliding adjustment frame 200 slides along the first direction, and the distance between the first oblique sliding hole 201 and the second oblique sliding hole 202 increases when the sliding adjustment frame 200 slides along the second direction. The direction in which the first sliding clamping member 310 is slidably disposed in the first oblique sliding hole 201 is the first sliding adjustment direction, and the direction in which the second sliding clamping member 320 is slidably disposed in the second oblique sliding hole 202 is the second sliding adjustment direction. There is a first included angle between the first sliding adjustment direction and the second oblique sliding hole 202.
[0040] It is understood that, in this embodiment, specifically, the first oblique sliding hole 201 and the second oblique sliding hole 202 have a first included angle; thus, by driving the sliding adjustment bracket 200 to slide along the first direction, the first oblique sliding hole 201 drives one end of the first sliding clamping member 310 to slide in the first oblique sliding hole 201, and the second oblique sliding hole 202 drives one end of the second sliding clamping member 320 to slide in the second oblique sliding hole 202, thereby causing the first sliding clamping member 310 and the second sliding clamping member 320 to slide in opposite directions, so that the other end of the first sliding clamping member 310 and the other end of the second sliding clamping member 320 respectively engage with the inner peripheral wall of the groove, thereby achieving the fixed installation of the base 100.
[0041] It should be noted that when the sliding adjustment frame 200 slides and drives the first sliding clamping member 310 and the second sliding clamping member 320 to slide out in opposite directions, the sliding direction of the sliding adjustment frame 200 is the first direction; conversely, when the sliding adjustment frame 200 slides and drives the first sliding clamping member 310 and the second sliding clamping member 320 to slide and retract in opposite directions, the sliding direction of the sliding adjustment frame 200 is the second direction.
[0042] like Figure 3 and Figure 4 As shown, the first direction is indicated by the X arrow, the first direction is indicated by the Y arrow, and the first included angle is the Z included angle.
[0043] like Figures 3 to 6 As shown, in one embodiment, the first sliding clamping member 310 includes a first limiting slide post 3110 and a first slider 3120 connected together, and the second sliding clamping member 320 includes a second limiting slide post 3210 and a second slider 3220 connected together. The first limiting slide post 3110 is slidably disposed in the first oblique sliding hole 201, and the second limiting slide post 3210 is slidably disposed in the second oblique sliding hole 202. The base 100 is respectively provided with a first sliding groove 101, a second sliding groove 102, and a third sliding groove 103. The second sliding groove 102 and the third sliding groove 103 are both connected to the first sliding groove 101. The sliding adjustment bracket 200 is slidably disposed in the first sliding groove 101, the first slider 3120 is slidably disposed in the second sliding groove 102, and the second slider 3220 is slidably disposed in the third sliding groove 103.
[0044] It is understood that in this embodiment, the first limiting slide post 3110 slides in conjunction with the first oblique sliding hole 201 to drive the first slider 3120 to slide relative to the second sliding groove 102, thereby enabling the first slider 3120 to be pushed out or retracted, that is, the end of the first slider 3120 away from the sliding adjustment frame 200 is engaged with or disengaged from the inner peripheral wall of the groove; the second limiting slide post 3210 slides in conjunction with the second oblique sliding hole 202 to drive the second slider 3220 to slide relative to the third sliding groove 103, thereby enabling the second slider 3220 to be pushed out or retracted, that is, the end of the second slider 3220 away from the sliding adjustment frame 200 is engaged with or disengaged from the inner peripheral wall of the groove; at the same time, the setting of the second sliding groove 102 and the third sliding groove 103 effectively ensures the stability and reliability of the first slider 3120 and the sliding of the first slider 3120.
[0045] like Figure 2 , Figure 4 and Figure 6As shown, in one embodiment, the inner peripheral wall of the first oblique sliding hole 201 is provided with a plurality of first stop concave surfaces 210, and the inner peripheral wall of the second oblique sliding hole 202 is provided with a plurality of second stop concave surfaces 220. The sliding adjustment bracket 200 slides relative to the base 100 to drive the first limiting slide post 3110 to slide in the first oblique sliding hole 201, so that the outer peripheral wall of the first limiting slide post 3110 abuts against the corresponding first stop concave surface 210; the sliding adjustment bracket 200 slides relative to the base 100 to drive the second limiting slide post 3210 to slide in the second oblique sliding hole 202, so that the outer peripheral wall of the second limiting slide post 3210 abuts against the corresponding second stop concave surface 220.
[0046] Among them, the line that is tangent to multiple first gear position concave surfaces 210 is the first tangent line, and the line that is tangent to multiple second gear position concave surfaces 220 is the second tangent line, and the first tangent line and the second tangent line have a second included angle.
[0047] It is understood that in this embodiment, when the sliding adjustment bracket 200 slides relative to the first sliding clamping member 310 and the second sliding clamping member 320 in the first direction, the outer peripheral wall of the first limiting slide post 3110 abuts against the corresponding first position concave surface 210. The first position concave surface 210 forms a limiting effect on the first limiting slide post 3110, preventing the first limiting slide post 3110 from moving further. Similarly, the outer peripheral wall of the second limiting slide post 3210 abuts against the corresponding second position concave surface 220. The second position concave surface 220 forms a limiting effect on the second limiting slide post 3210, preventing the second limiting slide post 3210 from moving further. Thus, the first sliding clamping member 310 and the second sliding clamping member 320 abut against and are clamped to the inner peripheral wall of the groove, respectively. Conversely, when the drive sliding adjustment bracket 200 slides relative to the first sliding clamping member 310 and the second sliding clamping member 320 in the second direction, the first sliding clamping member 310 and the second sliding clamping member 320 can be retracted to adjust the magnitude of the force exerted by the first sliding clamping member 310 and the second sliding clamping member 320 against the inner peripheral wall of the groove.
[0048] It should be noted that, as Figure 4 As shown, the first tangent line is line a, the second tangent line is line b, and the second included angle is included angle c.
[0049] like Figure 1 , Figure 3 and Figure 5As shown, in one embodiment, one of the sliding adjustment bracket 200 and the base 100 is provided with an adjustment key 230, and the other of the sliding adjustment bracket 200 and the base 100 is provided with a plurality of parallel limiting grooves 104. The adjustment key 230 is used to engage with one of the limiting grooves 104 when the sliding adjustment bracket 200 is positioned relative to the base 100. When the sliding adjustment bracket 200 is positioned relative to the base 100 to different positions, the adjustment key 230 engages with different limiting grooves 104, thereby realizing the position adjustment of the sliding adjustment bracket 200 relative to the base 100.
[0050] Specifically, in this embodiment, the base 100 is provided with a plurality of parallel limiting ribs, and a limiting groove 104 is formed between two adjacent ribs. The plurality of limiting ribs 110 are arranged side by side on the base 100.
[0051] It is understood that in this embodiment, the sliding adjustment frame 200 can be adjusted and fixed by means of sliding fastening between the key body 230 and the base 100. Even if the sliding adjustment frame 200 cannot slide further, the first limiting slide post 3110 is limited by the first oblique sliding hole 201, and the second limiting slide post 3210 is limited by the second oblique sliding hole 202, thereby fixing the first sliding clamping member 310 and the second sliding clamping member 320 so that they cannot slide further, so that the first sliding clamping member 310 and the second sliding clamping member 320 are respectively abutted and clamped against the inner peripheral wall of the groove, thus effectively improving the reliability of the positioning and installation of the wireless charging installation structure 10.
[0052] like Figure 5 As shown, in one embodiment, the sliding adjustment frame 200 has a protruding adjustment key body 230, which is located in the sliding direction of the sliding adjustment frame 200. The side of the adjustment key body 230 facing the base 100 has a protruding adjustment buckle portion 2310, which is engaged in one of the limiting grooves 104 when the sliding adjustment frame is positioned relative to the base 100. The side of the adjustment key body 230 away from the adjustment buckle portion 2310 has a grip portion 2320.
[0053] It is understood that by holding the handle 2320, the adjusting buckle 2310 can be lifted, thereby enabling the sliding adjustment bracket 200 to slide. This controls the first sliding clamp 310 and the second sliding clamp 320 to slide in opposite directions or towards each other. In this way, users can easily position, install, or remove the embedded wireless charging base according to their own needs through the wireless charging installation structure 10. The operation is simple and has good practicality.
[0054] like Figures 1 to 4 As shown, in one embodiment, the first sliding clamping member 310 is formed with a first pointed insertion portion 3130, and the second sliding clamping member 320 is formed with a second pointed insertion portion 3230. The first pointed insertion portion 3130 and the second pointed insertion portion 3230 are respectively used to abut against the inner peripheral wall of the groove.
[0055] It is understood that in this embodiment, the ends of the first pointed insertion portion 3130 and the second pointed insertion portion 3230 are both conical, which facilitates the insertion of the first sliding clamping member 310 and the second sliding clamping member 320 into the inner peripheral wall of the groove, thereby effectively improving the reliability and firmness of the wireless charging installation structure 10 and thus avoiding the problem of loosening of the embedded wireless charging base.
[0056] like Figure 1 and Figure 2 As shown, in one embodiment, the sliding adjustment bracket 200 is provided with guide and limiting portions 250 on both sides of the sliding direction of the sliding adjustment bracket 200, and the guide and limiting portions 250 are slidably connected to the first sliding groove 101. In this way, the stability of the sliding adjustment bracket 200 is effectively ensured, that is, the sliding adjustment bracket 200 is prevented from dislodging from the first sliding groove 101 by the setting of the guide and limiting portions 250.
[0057] like Figures 3 to 6 As shown, in one embodiment, the sliding adjustment bracket 200 has a protruding sliding push part 240 on the side opposite to the base 100. Thus, the user can drive the sliding adjustment bracket 200 to slide via the sliding push part 240, which is convenient and reliable.
[0058] This application also provides an embedded wireless charging stand, including a charging panel 400, a wireless inductive charging component 500, and the wireless charging mounting structure 10 described in any of the above embodiments; the charging panel is disposed on the base 100, and the wireless inductive charging component 500 is built into the base 100.
[0059] In this embodiment, the embedded wireless charging dock adopts the above-mentioned wireless charging installation structure, which simplifies the disassembly and assembly method, thereby making the embedded wireless charger more convenient to disassemble and assemble, which is very user-friendly for users with poor hands-on installation ability.
[0060] Furthermore, users can fully embed the base into the recess of the desktop, making the charging panel flush with the horizontal surface of the desktop, thus achieving a completely hidden installation effect. Users can then place electronic products on the charging panel and wirelessly charge the electronic products through the wireless inductive charging component, which greatly improves the user experience.
[0061] Compared with the prior art, the present invention has at least the following advantages:
[0062] The base is positioned within a groove on the desktop. A sliding adjustment bracket drives the first and second sliding clamping parts to slide back-to-back, causing them to engage with the inner wall of the groove, thus securing the base. Conversely, when the sliding adjustment bracket drives the first and second sliding clamping parts to slide towards each other, they disengage from the inner wall of the groove, allowing the base to be disassembled. This invention provides a simple and reliable wireless charging installation structure, simplifying both installation and disassembly. This makes the embedded wireless charger highly user-friendly, especially for users with limited hands-on installation skills.
[0063] The embodiments described above are merely illustrative of several implementations of this utility model, and while the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the utility model patent. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this utility model, and these all fall within the protection scope of this utility model. Therefore, the protection scope of this utility model patent should be determined by the appended claims.
Claims
1. A wireless charging installation structure, characterized in that, include: A base for positioning within a recess in a tabletop; A sliding adjustment bracket is used for sliding connection with the base; The fixing component includes a first sliding clamping member and a second sliding clamping member that are disposed opposite to each other; The first sliding clamping member and the second sliding clamping member are slidably connected to the sliding adjustment frame; wherein, the sliding adjustment frame slides relative to the base to drive the first sliding clamping member and the second sliding clamping member to slide in opposite directions or towards each other; during installation, the sliding adjustment frame drives the first sliding clamping member and the second sliding clamping member to slide in opposite directions, so that the first sliding clamping member and the second sliding clamping member are respectively engaged in the inner peripheral wall of the groove; during disassembly, the sliding adjustment frame drives the first sliding clamping member and the second sliding clamping member to slide towards each other, so that the first sliding clamping member and the second sliding clamping member are respectively disengaged from the inner peripheral wall of the groove.
2. The wireless charging installation structure according to claim 1, characterized in that, The sliding adjustment frame is provided with a first oblique sliding hole and a second oblique sliding hole; the first oblique sliding hole and the second oblique sliding hole are arranged opposite to each other, and the distance between the first oblique sliding hole and the second oblique sliding hole gradually changes in the sliding direction of the sliding adjustment frame; The direction in which the first sliding clamping member is slidably disposed in the first oblique sliding hole is the first sliding adjustment direction; The direction in which the second sliding clamping member is slidably disposed in the second oblique sliding hole is the second sliding adjustment direction, and there is a first included angle between the first sliding adjustment direction and the first sliding adjustment direction.
3. The wireless charging installation structure according to claim 2, characterized in that, The first sliding clamping member includes a first limiting slide post and a first slider connected together; the second sliding clamping member includes a second limiting slide post and a second slider connected together; the first limiting slide post is slidably disposed in the first oblique sliding hole; and the second limiting slide post is slidably disposed in the second oblique sliding hole. The base is provided with a first sliding groove, a second sliding groove and a third sliding groove respectively; the second sliding groove and the third sliding groove are both connected to the first sliding groove; the sliding adjustment frame is slidably disposed in the first sliding groove, the first slider is slidably disposed in the second sliding groove, and the second slider is slidably disposed in the third sliding groove.
4. The wireless charging installation structure according to claim 3, characterized in that, The inner peripheral wall of the first oblique sliding hole is provided with a plurality of first position concave surfaces, and the inner peripheral wall of the second oblique sliding hole is provided with a plurality of second position concave surfaces. The sliding adjustment bracket slides relative to the base to drive the first limiting slide post to slide in the first oblique sliding hole, so that the outer peripheral wall of the first limiting slide post abuts against the corresponding first position concave surface; the sliding adjustment bracket slides relative to the base to drive the second limiting slide post to slide in the second oblique sliding hole, so that the outer peripheral wall of the second limiting slide post abuts against the corresponding second position concave surface. Among them, the line that is tangent to multiple concave surfaces of the first gear position is the first tangent line, and the line that is tangent to multiple concave surfaces of the second gear position is the second tangent line. The first tangent line and the second tangent line have a second included angle.
5. The wireless charging installation structure according to claim 3, characterized in that, One of the sliding adjustment frame and the base is provided with an adjustment key, and the other of the sliding adjustment frame and the base is provided with a plurality of parallel limiting grooves. The adjustment key is used to engage with one of the limiting grooves when the sliding adjustment frame is positioned relative to the base.
6. The wireless charging installation structure according to claim 5, characterized in that, The sliding adjustment frame has an adjustment key protruding from it, and the base has a plurality of parallel limiting grooves protruding from it. The adjustment key is located in the sliding direction of the sliding adjustment frame, and the side of the adjustment key facing the base has an adjustment buckle protruding from it. The adjustment buckle is engaged with one of the limiting grooves when the sliding adjustment frame is positioned relative to the base. The side of the adjustment key away from the adjustment buckle is provided with a grip.
7. The wireless charging installation structure according to claim 1, characterized in that, The first sliding clamping member has a first pointed insertion portion, and the second sliding clamping member has a second pointed insertion portion. The first pointed insertion portion and the second pointed insertion portion are respectively used to abut against the inner peripheral wall of the groove.
8. The wireless charging installation structure according to claim 3, characterized in that, The sliding adjustment frame is provided with guide and limiting parts on both sides of the sliding direction of the sliding adjustment frame, and the guide and limiting parts are slidably connected to the first sliding groove.
9. The wireless charging installation structure according to claim 8, characterized in that, The sliding adjustment bracket has a protruding sliding push part on the side opposite to the base.
10. An embedded wireless charging dock, characterized in that, The wireless charging mounting structure includes any one of claims 1-9.