Wireless magnetizing quick release bracket
By combining a lever-type quick release, magnetic quick lock, wireless charging, and a three-dimensional shock absorption mechanism, the problem of poor connection strength of quick release devices on bumpy roads and the inconvenience of clamping brackets is solved. This achieves stable connection, quick unlocking, wireless charging, and multi-angle adjustment, improving the ease of use and safety of electronic products.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- GUANGDONG SHUOWEI TECH CO LTD
- Filing Date
- 2025-07-14
- Publication Date
- 2026-05-19
AI Technical Summary
Existing quick-release devices have poor connection strength on bumpy roads, which can easily cause the equipment to fall off. In addition, the clamping bracket cannot be quickly unlocked and connected to the equipment, making it inconvenient to use.
It adopts a combination design of lever-type quick release mechanism, magnetic quick lock mechanism, wireless charging module, rotary positioning mechanism and three-dimensional shock absorption mechanism to achieve mechanical locking and release, rapid adsorption, wireless power supply, multi-angle adjustment and shock absorption functions.
It provides stable connectivity, quick unlocking and locking, wireless charging, multi-angle adjustment, and efficient shock absorption, improving the convenience, security, and battery life of electronic products in mobile scenarios.
Smart Images

Figure CN224265008U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of electronic product accessories technology, specifically a wireless charging magnetic quick-release bracket. Background Technology
[0002] Quick-release devices, also known as quick-release brackets, are mainly used to secure electronic products and terminal devices such as mobile phones and tablets to cycling equipment via a bicycle bracket, making it convenient for users to access these devices while riding. However, existing quick-release devices still have the following shortcomings in use:
[0003] Traditional magnetic wireless charging brackets cannot provide sufficient connection strength on bumpy (non-paved) surfaces, which can easily cause the device to fall off and be damaged during driving; clamp-type brackets also cannot achieve quick unlocking, retrieval and connection of devices, making them very inconvenient to use.
[0004] Therefore, we propose a wireless charging magnetic quick-release bracket to solve the above problems. Utility Model Content
[0005] (a) Technical problems to be solved
[0006] To address the shortcomings of existing technologies, this utility model provides a wireless charging magnetic quick-release bracket, which solves the problems mentioned in the background art, such as poor connection strength of traditional brackets, which easily lead to equipment falling off and being damaged during travel, and the inability of clamping brackets to quickly unlock, retrieve, and connect equipment.
[0007] (II) Technical Solution
[0008] To achieve the above objectives, this utility model specifically adopts the following technical solution:
[0009] A wireless charging magnetic quick-release bracket includes:
[0010] The main support structure integrates the following components:
[0011] A lever-type quick-release mechanism is configured to control the mechanical locking and releasing of electronic products;
[0012] The magnetic quick-lock mechanism is configured to provide rapid attraction of electronic products and trigger the mechanical locking of the lever-type quick-release mechanism;
[0013] A wireless charging module configured to wirelessly power electronic products;
[0014] A rotary positioning mechanism is configured to adjust its circumferential angle relative to the support body and achieve positioning;
[0015] The three-dimensional shock absorption mechanism is configured to buffer the impact force transmitted to the main body of the support.
[0016] The three-dimensional shock absorption mechanism is rotatably connected to the support body through a rotary positioning mechanism, forming a dynamic shock absorption connection system.
[0017] Furthermore, the main body of the bracket is disc-shaped, and includes a middle shell. The top of the middle shell is snapped with an upper shell, and the bottom of the middle shell is fixed with a lower shell by a first locking screw. The magnetic quick-lock mechanism is integrated inside the upper shell, the wireless charging module is integrated on the top of the middle shell, the lever-type quick-release mechanism is integrated on the bottom of the middle shell, and the rotation positioning mechanism is integrated inside the lower shell and separated from the lever-type quick-release mechanism by a pressure plate. The pressure plate is fixed to the bottom of the middle shell by a second locking screw. The middle shell and the lower shell share a through hole on one side. A damping sealing gasket is nested at the bottom of the lower shell, and an assembly hole is also provided at the bottom of the lower shell. A central positioning shaft is provided at the bottom of the pressure plate.
[0018] Furthermore, the magnetic quick-lock mechanism includes a magnet assembly and a support ring. The support ring is located at the bottom of the magnet assembly. The upper shell has a magnet mounting groove inside. The magnet assembly includes several magnets arranged in a ring array inside the magnet mounting groove. A wear-resistant silicone pad is embedded on the top of the upper shell.
[0019] Furthermore, the wireless charging module includes a wireless charging PCBA, which is fixed to the top of the middle shell by a third locking screw. The top of the wireless charging PCBA is provided with a tray, and a wireless charging coil is provided inside the tray. The top of the wireless charging coil is close to the top of the inner wall of the upper shell. A charging cable is integrated at the bottom of the wireless charging PCBA, and one end of the charging cable passes through the middle shell and the lower shell and extends to the bottom of the lower shell.
[0020] Furthermore, the inner shell has a clearance hole, and a sealing ring is nested at the top of the clearance hole. The inner shell has a clearance barrier whose bottom end passes through the wireless charging PCBA and connects to the top of the sealing ring. The bottom of the upper shell has a buckle. The inner wall of the middle shell has a groove that engages with the buckle. A waterproof ring is also provided between the middle shell and the upper shell. Both sides of the inner wall of the clearance barrier have locking blocks. A decorative cover is secured to the top of the upper shell by the locking blocks. The top of the upper shell also has an adhesive strip that adheres to the bottom of the decorative cover.
[0021] Furthermore, the lever-type quick-release mechanism includes a latch, a slider, a lever, and a connecting seat. The connecting seat is fixedly installed at the bottom of the middle shell. Inside the connecting seat, two latches are rotatably installed via pins. The two latches are symmetrically arranged. One end of each latch passes through an avoidance hole, avoids the enclosure, and bends to one side of the upper shell.
[0022] Furthermore, a torsion spring with one end inserted into the latch is sleeved on the pin shaft. A first inclined surface is provided on one side of the latch. Two inclined surfaces corresponding to and fitting with the two first inclined surfaces are provided at both ends of the slider. A slider return spring is provided on one side of the slider and a notch is provided on the other side. A baffle that abuts against one end of the slider return spring is also provided at the bottom of the middle shell. The lever is rotatably located at the bottom of the middle shell. One end of the lever is provided with a protrusion that matches the notch, and the other end is flat and extends through the through hole to the outside of the middle shell.
[0023] Furthermore, the rotary positioning mechanism includes a transmission gear and two limiting seats symmetrically arranged inside the lower shell. The transmission gear is rotatably arranged inside the lower shell and its top is movably sleeved with the central positioning shaft. The limiting seat is provided with a transmission rack through a rack return spring. The transmission gear is rotatably arranged in the lower shell and meshes with the transmission rack. The bottom of the transmission gear extends to the bottom of the lower shell and is provided with a connector.
[0024] Furthermore, the three-dimensional shock absorption mechanism includes a shock-absorbing upper cover and a shock-absorbing lower shell. A number of elastic elements are arranged in a matrix between the shock-absorbing upper cover and the shock-absorbing lower shell. The bottom of the shock-absorbing lower shell is provided with sliding holes that are the same number as the elastic elements and are one-to-one with each other. The elastic elements include a pagoda-shaped spring and a limiting screw. The pagoda-shaped spring is sandwiched between the shock-absorbing upper cover and the shock-absorbing lower shell. The limiting screw passes through the sliding hole and the pagoda-shaped spring in sequence and is then threaded to the shock-absorbing upper cover. The bottom of the shock-absorbing lower shell is also provided with a nut hole.
[0025] Furthermore, the interior of the shock-absorbing top cover is provided with a slot that engages with the connector. The slot is U-shaped, and a sliding tenon is movably engaged at the opening at one end of the slot. A positioning groove is provided on one side of the sliding tenon and one side of the inner wall of the slot. A positioning block is provided inside the positioning groove. A fourth locking screw is provided on the top of the shock-absorbing top cover, with one end screwed into the positioning block. When the three-dimensional shock-absorbing mechanism rotates relative to the main body of the bracket, the axis of the fourth locking screw and the assembly hole are periodically misaligned and coincident.
[0026] (III) Beneficial Effects
[0027] Compared with the prior art, this utility model provides a wireless charging magnetic quick-release bracket, which has the following features:
[0028] Beneficial effects:
[0029] This utility model achieves multi-functional integration through five innovative mechanisms: a lever-type quick-release mechanism for rapid one-handed unlocking, a magnetic quick-lock mechanism for precise adsorption and automatic mechanical locking, a wireless charging module for stable power supply, a rotating positioning mechanism for 360° multi-angle adjustment and precise positioning, and a three-dimensional shock absorption mechanism for effectively absorbing vibration and impact. The various mechanisms work together to form a dynamic shock absorption connection system, combining magnetic automatic alignment, one-button quick release, multi-directional adjustment, efficient shock absorption, and wireless charging functions, significantly improving the convenience, safety, and battery life of electronic products in mobile scenarios. Attached Figure Description
[0030] Figure 1 This is a schematic diagram of the main structure of the bracket of this utility model;
[0031] Figure 2 This is a side view of the main structure of the bracket of this utility model;
[0032] Figure 3 This is a schematic diagram of the wireless charging coil structure of this utility model;
[0033] Figure 4 This is a schematic diagram of the upper shell structure of this utility model;
[0034] Figure 5 This is an exploded view of the wireless charging module structure of this utility model;
[0035] Figure 6 This is a schematic diagram of the lever-type quick-release mechanism of this utility model;
[0036] Figure 7 This is a schematic diagram of the shell structure of this utility model;
[0037] Figure 8 This is a schematic diagram of the rotary positioning mechanism of this utility model;
[0038] Figure 9 This is a schematic diagram of the pressure plate structure of this utility model;
[0039] Figure 10 This is a schematic diagram of the shock-absorbing upper cover structure of this utility model;
[0040] Figure 11 This is an exploded view of the three-dimensional shock absorption mechanism of this utility model;
[0041] Figure 12 This is a cross-sectional view of the locking structure of this utility model.
[0042] In the diagram: 1. Main body of the bracket; 11. Middle shell; 111. First locking screw; 112. Clearance hole; 113. Sealing ring; 114. Ring groove; 115. Waterproof ring; 116. Baffle; 12. Upper shell; 121. Magnet mounting slot; 122. Wear-resistant silicone pad; 123. Clearance enclosure; 124. Buckle; 125. Locking block; 126. Decorative cover; 127. Adhesive; 13. Lower shell; 131. Damping sealing gasket; 132. Assembly hole; 14. Pressure plate; 141. Second locking screw; 142. Center positioning shaft; 15. Through hole; 16. Pull-out quick release mechanism; 161. Lock; 1611. Inclined surface one; 162. Slider; 1621. Inclined surface two; 163. Lever; 164. Connecting seat; 165. Pin; 166. Torsion spring; 167. Slider retraction mechanism. 168. Positioning spring; 169. Notch; 17. Protruding head; 18. Magnetic quick-lock mechanism; 19. Magnet assembly; 10. Support ring; 11. Magnet; 12. Wireless charging module; 13. Wireless charging PCBA; 14. Third locking screw; 15. Tray; 166. Wireless charging coil; 177. Charging cable; 188. Rotary positioning mechanism; 199. Transmission gear; 190. Limit seat; 191. Rack return spring; 192. Transmission rack; 193. Connector; 194. Three-dimensional shock absorption mechanism; 200. Shock-absorbing upper cover; 200. Shock-absorbing lower shell; 21. Elastic element; 22. Pagoda-shaped spring; 233. Limit screw; 24. Sliding hole; 25. Nut hole; 26. Slot; 27. Sliding tenon; 28. Positioning groove; 29. Positioning block; 200. Fourth locking screw. Detailed Implementation
[0043] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0044] Example
[0045] like Figure 1-12 As shown, an embodiment of this utility model provides a wireless charging magnetic quick-release bracket, comprising:
[0046] The main body of the support frame 1 integrates the following components:
[0047] The lever-type quick-release mechanism 16 is configured to control the mechanical locking and releasing of electronic products;
[0048] The magnetic quick-lock mechanism 17 is configured to provide quick attraction of electronic products and trigger the mechanical locking of the lever-type quick-release mechanism 16;
[0049] Wireless charging module 18 is configured to wirelessly power electronic products;
[0050] The rotary positioning mechanism 19 is configured to adjust its circumferential angle relative to the support body 1 and achieve positioning;
[0051] The three-dimensional shock absorption mechanism 2 is configured to buffer the impact force transmitted to the main body of the support 1;
[0052] The three-dimensional shock absorption mechanism 2 is rotatably connected to the support body 1 via the rotary positioning mechanism 19, forming a dynamic shock absorption connection system.
[0053] like Figure 1-12 As shown, in some embodiments, the bracket body 1 is disc-shaped, and includes a middle shell 11. The top of the middle shell 11 is snapped with an upper shell 12, and the bottom of the middle shell 11 is fixed with a lower shell 13 by a first locking screw 111. The magnetic quick-lock mechanism 17 is integrated inside the upper shell 12. The wireless charging module 18 is integrated on the top of the middle shell 11. The lever-type quick-release mechanism 16 is integrated on the bottom of the middle shell 11. The rotation positioning mechanism 19 is integrated inside the lower shell 13 and is separated from the lever-type quick-release mechanism 16 by a pressure plate 14. The pressure plate 14 is fixed to the bottom of the middle shell 11 by a second locking screw 141. The middle shell 11 and the lower shell 13 share a through hole 15 on one side. The bottom of the lower shell 13 is nested with a damping sealing gasket 131. The bottom of the lower shell 13 is also provided with an assembly hole 132. The bottom of the pressure plate 14 is provided with a central positioning shaft 142.
[0054] The upper shell 12 (magnetic quick-lock mechanism 17), the middle shell 11 (wireless charging module 18, lever-type quick-release mechanism 16), and the lower shell 13 (rotation positioning mechanism 19) are fixed to the first locking screw 111, the second locking screw 141, the third locking screw 182, and the fourth locking screw 29 via buckles 124, forming a modular assembly system. The modular design reduces maintenance costs, and individual damaged parts can be replaced independently. The through holes 15 of the middle shell 11 and the lower shell 13 are aligned to provide a movement channel for the lever 163 while maintaining the integrity of the bracket body 1. The damping sealing gasket 131 is placed between the three-dimensional shock absorption mechanism 2 and the bracket body 1 to achieve a seal and apply a damping effect, making the relative rotation of the three-dimensional shock absorption mechanism 2 and the bracket body 1 more tactile.
[0055] like Figure 3-5 As shown, in some embodiments, the magnetic quick-lock mechanism 17 includes a magnet assembly 171 and a support ring 172. The support ring 172 is disposed at the bottom of the magnet assembly 171. The upper shell 12 is provided with a magnet mounting groove 121 inside. The magnet assembly 171 includes a plurality of magnets 173 arranged in a ring array inside the magnet mounting groove 121. The top of the upper shell 12 is embedded with a wear-resistant silicone pad 122.
[0056] The circumferentially distributed multi-magnet 173 generates a uniform adsorption force field. It is made of non-magnetic stainless steel to avoid short circuits in the magnetic circuit and improve structural strength. The wear-resistant silicone pad 122 is placed between the upper shell 12 and the electronic product protective shell to avoid wear on the electronic product protective shell. At the same time, when docking, the electronic product protective shell is prevented from being directly attracted and impacting the upper shell 12. Instead, it touches the wear-resistant silicone pad 122, which further improves the safety of use and reduces friction noise.
[0057] like Figure 3-5 As shown, in some embodiments, the wireless charging module 18 includes a wireless charging PCBA 181, which is fixed to the top of the middle shell 11 by a third locking screw 182. The top of the wireless charging PCBA 181 is provided with a tray 183, and a wireless charging coil 184 is provided inside the tray 183. The top of the wireless charging coil 184 is close to the top of the inner wall of the upper shell 12. The bottom of the wireless charging PCBA 181 integrates a charging cable 185, one end of which passes through the middle shell 11 and the lower shell 13 and extends to the bottom of the lower shell 13.
[0058] The wireless charging PCBA181 is fixed to the top of the middle shell 11 by the third locking screw 182, ensuring the structural stability of the wireless charging PCBA181. The tray 183 is made of ceramic insulating material, which has insulation and excellent heat insulation performance. The tray 183 is placed between the wireless charging coil 184 and the wireless charging PCBA181 to reduce heat conduction, improve product performance, and avoid failures caused by high heat. The charging cable 185 is relatively long and can rotate multiple times synchronously with the bracket body 1.
[0059] like Figure 1-6 As shown, in some embodiments, the inner shell 11 is provided with a clearance hole 112, and a sealing ring 113 is nested at the top of the clearance hole 112. The inner shell 12 is provided with a clearance barrier 123 whose bottom end passes through the wireless charging PCBA 181 and is connected to the top of the sealing ring 113. The bottom of the upper shell 12 is provided with a buckle 124. The inner wall of the inner shell 11 is provided with a ring groove 114 that engages with the buckle 124. A waterproof ring 115 is also provided between the inner shell 11 and the upper shell 12. Both sides of the inner wall of the clearance barrier 123 are provided with a locking block 125. The top of the upper shell 12 is secured with a decorative cover 126 by the locking block 125. The top of the upper shell 12 is also provided with an adhesive sticker 127 that is bonded to the bottom of the decorative cover 126.
[0060] After the upper shell 12 is engaged with the annular groove 114 via the buckle 124, the upper shell 12 and the middle shell 11 are closed. At the same time, the clearance barrier 123 inside the upper shell 12 presses the sealing ring 113. Although dust and moisture can enter the lower shell 13 through the clearance barrier 123, they cannot enter the space between the top of the middle shell 11 and the upper shell 12. The design of the sealing ring 113 and the waterproof ring 115 ensures the waterproof sealing performance of the wireless charging module 18. Since the latch 161 is in a flipping motion, the decorative cover 126 can cover the part of the clearance barrier 123 that does not interfere with the movement of the latch 161, improving the overall appearance of the product. In addition to the latch 125, the decorative cover 126 is also bonded to the upper shell 12 via the adhesive 127, further ensuring the stability of the decorative cover 126.
[0061] like Figure 6-9 As shown, in some embodiments, the lever-type quick-release mechanism 16 includes a latch 161, a slider 162, a lever 163, and a connecting seat 164. The connecting seat 164 is fixedly disposed at the bottom of the middle shell 11. Inside the connecting seat 164, two latches 161 are rotatably disposed via a pin 165. The two latches 161 are symmetrically arranged. One end of the latch 161 passes through the clearance hole 112 and the clearance barrier 123 and bends to one side of the upper shell 12.
[0062] The top of the latch 161 is L-shaped. The two symmetrically arranged latches 161 can be synchronously triggered by a slider 162. The structure is ingenious, simple and compact, which allows the bracket body 1 to integrate more functions while being thinner. The connecting seat 164 provides installation space for the latches 161 and ensures the stability of the latches 161.
[0063] like Figure 6-9 As shown, in some embodiments, a torsion spring 166 with one end inserted into the latch 161 is sleeved on the pin 165. A first inclined surface 1611 is provided on one side of the latch 161. The two ends of the slider 162 are provided with second inclined surfaces 1621 that correspond to and fit with the two first inclined surfaces 1611 respectively. A slider return spring 167 is provided on one side of the slider 162 and a notch 168 is provided on the other side. A baffle 116 that abuts against one end of the slider return spring 167 is also provided at the bottom of the middle shell 11. The lever 163 is rotatably disposed at the bottom of the middle shell 11. One end of the lever 163 is provided with a protrusion 169 that matches the notch 168, and the other end is flat and extends through the through hole 15 to the outside of the middle shell 11.
[0064] The end of the lever 163 extending to the outside of the middle shell 11 is designed to be flat, making it easy for the user to operate, less prone to slipping, and with a large contact area for a more comfortable touch. One end of the slider return spring 167 abuts against the baffle 116, and the other end abuts against the slider 162, continuously applying a force to the slider 162 against the lever 163, keeping the lever 163 and the slider 162 in the reset state. When unlocking is required, the lever 163 is moved, and the lever 163 drives the protrusion at one end to abut against the notch 168 on one side of the slider 162. The slider 162 moves to the side, and through the inclined surfaces 1621 at both ends, it abuts against the inclined surfaces 1611 on the two latches 161. At the same time, the slider 162 compresses one of its slider return springs 167, and the two inclined surfaces 1611... When resisted, the two latches 161 flip downwards relative to each other, and at the same time, the latches 161 compress the torsion spring 166. The flipping of the latches 161 causes one end to disengage from the slot inside the electronic product protective case, thus unlocking the electronic product protective case and allowing it to be removed. After releasing the lever 163, the latches 161, slider 162, and lever 163 reset in sequence. When reconnecting, there is no need to operate the lever 163. Simply hold the electronic product protective case close to the decorative cover 126, and it will be attracted by the magnet assembly 171. The slot on the electronic product protective case will contact the latches 161, automatically compressing the torsion spring 166 and flipping it. When the latches 161 are aligned with the slot, the torsion spring 166 rebounds, causing the latches 161 to reset and automatically lock into the slot.
[0065] like Figure 8-11 As shown, in some embodiments, the rotary positioning mechanism 19 includes a transmission gear 191 and two limiting seats 192 symmetrically arranged inside the lower shell 13. The transmission gear 191 is rotatably disposed inside the lower shell 13 and its top is movably sleeved with the central positioning shaft 142. The limiting seat 192 is provided with a transmission rack 194 through a rack return spring 193. The transmission gear 191 is rotatably disposed on the lower shell 13 and meshes with the transmission rack 194. The bottom of the transmission gear 191 extends to the bottom of the lower shell 13 and is provided with a connector 195.
[0066] The limiting seat 192 restricts the reciprocating path of the transmission rack 194. The rack return spring 193 continuously applies a pushing force to the transmission rack 194, keeping the transmission rack 194 engaged with the transmission gear 191 and achieving positioning of the transmission gear 191. When it is necessary to adjust the angle of the bracket body 1 relative to the gear and the three-dimensional shock absorption mechanism 2, with the three-dimensional shock absorption mechanism 2 fixed to the riding bracket, the bracket body 1 is rotated. The bracket body 1 drives the transmission rack 194 to abut against the teeth on the transmission gear 191. The inclined guide of the transmission rack 194 causes the transmission rack 194 to retract and compress the rack return spring 193 to avoid it, and re-engages when it is aligned with the next tooth, achieving precise adjustment and positioning of the angle of the bracket body 1. In addition, the horizontal design of the transmission rack 194 can reduce the overall thickness of the product, making the bracket body 1 thinner and more aesthetically pleasing.
[0067] like Figure 9-11 As shown, in some embodiments, the three-dimensional shock absorption mechanism 2 includes a shock-absorbing upper cover 21 and a shock-absorbing lower shell 22. A plurality of elastic elements 23 are arranged in a matrix between the shock-absorbing upper cover 21 and the shock-absorbing lower shell 22. The bottom of the shock-absorbing lower shell 22 is provided with sliding holes 24, which are the same number as the elastic elements 23 and are one-to-one opposite each other. The elastic element 23 includes a pagoda-shaped spring 231 and a limiting screw 232. The pagoda-shaped spring 231 is sandwiched between the shock-absorbing upper cover 21 and the shock-absorbing lower shell 22. The limiting screw 232 passes through the sliding hole 24 and the pagoda-shaped spring 231 in sequence and is threaded to the shock-absorbing upper cover 21. The bottom of the shock-absorbing lower shell 22 is also provided with a nut hole 25.
[0068] The diameter of each coil in the pagoda-shaped spring 231 gradually changes during compression, achieving a non-linear stiffness change from soft to hard. Initially, it provides low stiffness to buffer impacts, while later, it provides high stiffness to support heavy loads, adapting to different vibration intensities. The conical spiral design ensures that the coils are misaligned during compression, avoiding the stacking and collision problems of ordinary springs, reducing metal fatigue and deformation risks. The conical structure achieves a larger compression stroke within a limited height, providing more deformation than a cylindrical spring in the same installation space. The nut hole 25 is used to connect to a universal mounting bracket on a bicycle or motorcycle. The three-dimensional shock absorption mechanism 2 is fixed to the bicycle, electric bicycle, or motorcycle, or electric motorcycle, etc., by the nut. Connecting the charging cable 185 to the power source or power bank on the riding equipment allows for wireless charging of mobile phones and other electronic products. Electronic products require a protective case compatible with the quick-release mechanism of the lever 163.
[0069] The design of placing the elastic element 23 inside the shock-absorbing lower shell 22 makes the elastic element 23 invisible from the outside of the product, thus improving the overall appearance of the product.
[0070] like Figure 9-11As shown, in some embodiments, the inside of the shock-absorbing top cover 21 is provided with a slot 26 that engages with the connector 195. The slot 26 is U-shaped, and a sliding tenon 27 is movably engaged at the opening at one end of the slot 26. A positioning groove 28 is provided on one side of the sliding tenon 27 and one side of the inner wall of the slot 26. A positioning block 281 is provided inside the positioning groove 28. A fourth locking screw 29 is provided on the top of the shock-absorbing top cover 21, with one end screwed into the positioning block 281. When the three-dimensional shock-absorbing mechanism 2 rotates relative to the bracket body 1, the axis of the fourth locking screw 29 and the assembly hole 132 are periodically misaligned and coincident.
[0071] One end of the limiting screw 232, which is fitted with the sliding hole 24, allows the lower shock-absorbing shell 22 to float relative to the limiting screw 232 through the sliding hole 24. Combined with the matrix-distributed pagoda-shaped springs 231, this significantly reduces vibration transmitted from the cycling equipment to the bracket body 1, minimizing damage to electronic products and improving the stability of the assembled electronic products, preventing them from falling off. When the three-dimensional shock-absorbing mechanism 2 and the bracket body 1 rotate relative to each other, the rotation paths of the mounting hole 132 and the fourth locking screw 29 coincide. When installing the three-dimensional shock-absorbing mechanism 2, first install the upper shock-absorbing cover 2... Slot 26 of 1 is engaged with connector 195. Then, slide tenon 27 into slot 26 from one end, so that tenon 27 engages with slot 26 to hold connector 195. Then, positioning block 281 is inserted into positioning groove 28 after assembly to complete initial positioning. Rotate bracket body 1 so that assembly hole 132 is aligned with positioning block 281. Screw fourth locking screw 29 into positioning block 281 through assembly hole 132. Fourth locking screw 29 will pull positioning block 281, while not affecting the relative rotation of lower shell 13 and shock-absorbing upper cover 21.
[0072] When in use, electronic products need to use a protective case that matches the quick-release mechanism of lever 163. The three-dimensional shock absorption mechanism 2 is fixed to the riding equipment such as bicycles, electric bicycles, or motorcycles by nuts. By connecting the charging cable 185 to the power supply or power bank on the riding equipment, mobile phones and other electronic products can be wirelessly charged.
[0073] When unlocking, the lever 163 is moved, and the protrusion at one end of the lever 163 abuts against the notch 168 on one side of the slider 162. The slider 162 moves to the side and abuts against the inclined surface 1611 on the two latches 161 through the inclined surface 1621 at both ends. At the same time, the slider 162 compresses the slider return spring 167 of one of its sliders. When the two inclined surfaces 1611 are abutted, the two latches 161 flip down relative to each other. At the same time, the latches 161 compress the torsion spring 166. The latches 161 flip down so that one end of them disengages from the slot inside the electronic product protective case, thereby unlocking the electronic product protective case. The electronic product protective case can then be removed. After releasing the lever 163, the latches 161, sliders 162, and lever 163 reset in sequence.
[0074] When reconnecting, there is no need to operate the lever 163. Simply hold the electronic product protective case close to the decorative cover 126. The magnetic assembly 171 will attract the electronic product protective case. The slot on the electronic product protective case will contact the latch 161, which will automatically compress the torsion spring 166 and flip it. When the latch 161 is aligned with the slot, the torsion spring 166 will rebound and drive the latch 161 to reset and automatically lock into the slot.
[0075] In summary, the system achieves multi-functional integration through five innovative mechanisms: the lever-type quick-release mechanism 16 enables rapid one-handed unlocking; the magnetic quick-lock mechanism 17 provides precise adsorption and automatically triggers mechanical locking; the wireless charging module 18 ensures stable power supply; the rotating positioning mechanism 19 enables 360° multi-angle adjustment and precise positioning; and the three-dimensional shock absorption mechanism 2 effectively absorbs vibration and impact. The collaborative work of these mechanisms forms a dynamic shock absorption connection system, combining magnetic automatic alignment, one-button quick release, multi-directional adjustment, efficient shock absorption, and wireless charging functions. This significantly improves the ease of use, safety, and battery life of electronic products in mobile scenarios.
[0076] Finally, it should be noted that the above description is merely a preferred embodiment of this utility model and is not intended to limit the utility model. Although the utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this utility model should be included within the protection scope of this utility model.
Claims
1. A wireless magnetically charged fast release support, characterized in that, The application relates to a support body (1) internally integrated with a pull rod type quick release mechanism (16) configured to control mechanical locking and release of an electronic product, a magnetic attraction quick locking mechanism (17) configured to provide quick attraction of the electronic product and trigger mechanical locking of the pull rod type quick release mechanism (16), a wireless charging module (18) configured to wirelessly power the electronic product, and a rotary positioning mechanism (19) configured to adjust the circumferential angle of the rotary positioning mechanism (19) relative to the support body (1) and realize positioning. The rotary positioning mechanism (19) is rotatably connected to the support body (1) through the rotary positioning mechanism (19) to form a dynamic damping connection system. The support body (1) is disc-shaped, the support body (1) comprises a middle shell (11), the top of the middle shell (11) is clamped with an upper shell (12), the bottom of the middle shell (11) is fixed with a lower shell (13) through a first locking screw (111), the magnetic attraction quick locking mechanism (17) is integrated in the inside of the upper shell (12), the wireless charging module (18) is integrated on the top of the middle shell (11), the pull rod type quick release mechanism (16) is integrated on the bottom of the middle shell (11), the rotary positioning mechanism (19) is integrated in the inside of the lower shell (13) and is separated from the pull rod type quick release mechanism (16) through a pressing plate (14), the pressing plate (14) is fixed on the bottom of the middle shell (11) through a second locking screw (141), one side of the middle shell (11) and the lower shell (13) are provided with a through hole (15) in common, the bottom of the lower shell (13) is nested with a damping sealing gasket (131), the bottom of the lower shell (13) is further provided with an assembly hole (132), and the bottom of the pressing plate (14) is provided with a central positioning shaft (142). The magnetic attraction quick locking mechanism (17) comprises a magnet group (171) and a supporting ring (172), the supporting ring (172) is arranged at the bottom of the magnet group (171), the inside of the upper shell (12) is provided with a magnet mounting groove (121), the magnet group (171) comprises a plurality of magnets (173) arranged in an annular array in the inside of the magnet mounting groove (121), and the top of the upper shell (12) is embedded with a wear-resistant silica gel pad (122). The wireless charging module (18) comprises a wireless charging PCBA (181), the wireless charging PCBA (181) is fixed on the top of the middle shell (11) through a third locking screw (182), the top of the wireless charging PCBA (181) is provided with a tray (183), the inside of the tray (183) is provided with a wireless charging coil (184), the top of the wireless charging coil (184) is close to the top of the inner wall of the upper shell (12), the bottom of the wireless charging PCBA (181) is integrated with a charging wire (185), one end of the charging wire (185) extends to the bottom of the lower shell (13) through the middle shell (11) and the lower shell (13). 2. The wireless magnetically charged and fast-detachable support of claim 1, wherein: 3. The wireless magnetically charged and fast-detachable support of claim 2, wherein: 4. The wireless magnetically charged and attracted quick release mount of claim 1, wherein: 5. The wireless magnetically charged and fast-detachable support of claim 2, wherein: The inside of the middle shell (11) is provided with an avoiding hole (112), the top of the avoiding hole (112) is nested with a sealing ring (113), the inside of the upper shell (12) is provided with an avoiding fence (123) which passes through the wireless charging PCBA (181) and is connected with the top of the sealing ring (113), the bottom of the upper shell (12) is provided with a ring of buckles (124), the inner wall of the middle shell (11) is provided with a ring of annular grooves (114) which are clamped with the buckles (124), the middle shell (11) and the upper shell (12) are further provided with a waterproof ring (115), the inner wall of the avoiding fence (123) is provided with a clamping block (125) on both sides, the top of the upper shell (12) is clamped with a decorative cover (126) through the clamping block (125), the top of the upper shell (12) is further provided with a sticky (127) which is bonded with the bottom of the decorative cover (126).
6. The wireless magnetically charged and attracted quick release mount of claim 1, wherein: The pull rod quick release mechanism (16) comprises a lock catch (161), a sliding block (162), a pull rod (163) and a connecting seat (164), the connecting seat (164) is fixedly arranged at the bottom of the middle shell (11), two lock catches (161) are rotatably arranged in the connecting seat (164) through a pin shaft (165), the two lock catches (161) are symmetrically arranged, and one end of the lock catch (161) passes through the avoiding hole (112), the avoiding fence (123) and is bent to one side of the upper shell (12).
7. The wireless charging magnetic attraction quick release support of claim 6, wherein: A torsional spring (166) is sleeved on the pin shaft (165) and clamped into the inside of the lock catch (161), one side of the lock catch (161) is provided with an inclined surface (1611), both ends of the sliding block (162) are provided with inclined surfaces (1621) which are respectively matched with the two inclined surfaces (1611), one side of the sliding block (162) is provided with a sliding block reset spring (167), and the other side is provided with a notch (168), the bottom of the middle shell (11) is further provided with a baffle (116) which abuts against one end of the sliding block reset spring (167), the pull rod (163) is rotatably arranged at the bottom of the middle shell (11), one end of the pull rod (163) is provided with a protrusion (169) which is matched with the notch (168), and the other end is flat and extends to the outside of the middle shell (11) through the through hole (15).
8. The wireless magnetically charged and attracted quick release mount of claim 1, wherein: The rotary positioning mechanism (19) comprises a transmission gear (191) and two limiting seats (192) which are symmetrically arranged in the inside of the lower shell (13), the transmission gear (191) is rotatably arranged in the inside of the lower shell (13) and the top thereof is movably sleeved with the central positioning shaft (142), the inside of the limiting seat (192) is provided with a transmission rack (194) through a rack reset spring (193), the transmission gear (191) is rotatably arranged in the lower shell (13) and is engaged with the transmission rack (194), and the bottom of the transmission gear (191) extends to the bottom of the lower shell (13) and is provided with a connecting head (195).
9. The wireless magnetically charged and attracted quick release mount of claim 1, wherein: Said three-dimensional damping mechanism (2) includes damping upper cover (21) and damping lower shell (22), be provided with a plurality of elastic elements (23) that are matrix type distribution between damping upper cover (21) and damping lower shell (22), the bottom of damping lower shell (22) is provided with the sliding hole (24) consistent with the number of elastic element (23) and one-to-one opposition, the elastic element (23) includes pagoda-shaped spring (231) and limiting screw (232), the pagoda-shaped spring (231) is clamped between damping upper cover (21) and damping lower shell (22), the limiting screw (232) is sequentially penetrated sliding hole (24), pagoda-shaped spring (231) and then is threadedly connected in damping upper cover (21), the bottom of damping lower shell (22) is further provided with nut hole (25).
10. The wireless charging magnetic attraction quick release support of claim 9, wherein: The inside of the damping upper cover (21) is provided with the insertion slot (26) that is clamped with the connector (195), the insertion slot (26) is U-shaped, the opening of one end of the insertion slot (26) is movably clamped with the sliding tenon (27), one side of the sliding tenon (27) and one side of the inner wall of the insertion slot (26) are provided with the positioning groove (28) together, the inside of the positioning groove (28) is provided with the positioning block (281), the top of the damping upper cover (21) is provided with the fourth locking screw (29) that is screwed into the inside of the positioning block (281), when the three-dimensional damping mechanism (2) rotates relative to the support main body (1), the fourth locking screw (29) and the axis of the assembly hole (132) are periodically misaligned and coincident.