A stent
By incorporating air-cooling components within the bracket support plate and utilizing an air-guiding structure to create air outlet and inlet channels, the heat dissipation problem of the bracket during high-power operation is solved, achieving a thinner and lighter bracket with efficient heat dissipation, thus optimizing the user experience.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- BEIJING XIAOMI MOBILE SOFTWARE CO LTD
- Filing Date
- 2022-12-28
- Publication Date
- 2026-04-17
AI Technical Summary
Existing brackets have a single function when supporting electronic devices and cannot effectively solve the heat dissipation problem when operating at high power. In addition, adding heat dissipation devices will increase the thickness of the bracket, affecting portability.
An air-cooling component is installed inside the bracket plate. The air outlet of the airflow drive unit is positioned opposite to the first surface, and the air inlet is positioned opposite to the second surface. Airflow flows in from the back side and flows out from the front side. An air outlet and air inlet channel are formed through the air guide structure to ensure air-cooling area and efficiency, while the bracket plate is made thinner and lighter.
This achieves effective heat dissipation while keeping the bracket thin and light, thus improving the reliability of electronic devices and the user experience.
Smart Images

Figure CN115942711B_ABST
Abstract
Description
Technical Field
[0001] This disclosure relates to the field of stent technology, and more particularly to a stent. Background Technology
[0002] Currently, the stands used to support electronic devices such as mobile phones and laptops usually have relatively simple functions. As electronic devices generate more heat when running high-power operations such as gaming and playing videos, the requirements for heat dissipation of electronic devices become higher. Summary of the Invention
[0003] To overcome the problems existing in the related technologies, this disclosure provides a support.
[0004] According to one embodiment of the present disclosure, a bracket is provided for supporting an electronic device, the bracket comprising:
[0005] A support plate for supporting the electronic device, the support plate including a first surface and a second surface facing away from each other, the first surface facing the electronic device;
[0006] An air-cooled assembly is disposed within the bracket plate. The air-cooled assembly includes an airflow driving unit, an air inlet channel, and an air outlet channel. The air outlet of the airflow driving unit is disposed opposite to the first surface and has a first preset space between them. The air inlet of the airflow driving unit is disposed opposite to the second surface and has a second preset space between them. The air outlet channel communicates with the air outlet through the first preset space, and the air inlet channel communicates with the air inlet through the second preset space. The first surface is provided with an air outlet hole that communicates with the air outlet channel.
[0007] In some embodiments of this disclosure, the support plate includes a first plate portion and a second plate portion that are spaced apart, the first surface being the outer surface of the first plate portion and the second surface being the outer surface of the second plate portion;
[0008] The air-cooled component includes a first air guide structure and a second air guide structure. The first air guide structure cooperates with the first plate and the second plate to form the air outlet channel, and the second air guide structure cooperates with the first plate and the second plate to form the air inlet channel.
[0009] In some embodiments of this disclosure, the first air guide structure includes a first baffle, which is sandwiched between the first plate portion and the second plate portion, and the first baffle, together with the first plate portion and the second plate portion, forms the air outlet channel.
[0010] The second air guide structure includes a second baffle, which is sandwiched between the first plate and the second plate, and the first baffle, together with the first plate and the second plate, forms the air inlet channel.
[0011] In some embodiments of this disclosure, the first air guide structure further includes a first half-cylinder structure disposed on the air outlet side of the airflow driving part, and the second air guide structure further includes a second half-cylinder structure disposed on the air inlet side of the airflow driving part, wherein the first half-cylinder structure and the second half-cylinder structure are connected to each other to surround the airflow driving part.
[0012] The first half-cylinder structure is provided with a first notch, which is connected to the air outlet channel;
[0013] The second semi-cylinder structure is provided with a second notch, which is connected to the air inlet channel.
[0014] In some embodiments of this disclosure, the first air guiding structure further includes a first air guiding block connected to the second plate portion. The surface of the first air guiding block facing away from the second plate portion forms a first air guiding slope. The first air guiding slope is inclined towards the second plate portion along a first direction, where the first direction is from the first preset space to the air outlet channel.
[0015] The second air guiding structure also includes a second air guiding block connected to the first plate portion. The surface of the second air guiding block facing away from the first plate portion forms a second air guiding slope. The second air guiding slope is inclined towards the second plate portion along a second direction, which is the direction from the air inlet channel to the second preset space.
[0016] In some embodiments of this disclosure, the support plate further includes a side plate portion connecting the edges of the first plate portion and the second plate portion, the side plate portion being provided with an air inlet hole, the air inlet hole being in communication with the air inlet channel.
[0017] In some embodiments of this disclosure, a first sound-absorbing structure is provided inside the air outlet; and / or,
[0018] A second sound-absorbing structure is provided inside the air inlet of the bracket; and / or,
[0019] A third sound-absorbing structure is provided between the first preset space and the air outlet channel.
[0020] In some embodiments of this disclosure, the support further includes:
[0021] The control unit is connected to the airflow drive unit;
[0022] A wireless charging unit is connected to the control unit;
[0023] The wireless charging unit and at least part of the control unit are located within the air outlet channel.
[0024] In some embodiments of this disclosure, the wireless charging unit includes at least one charging coil.
[0025] In some embodiments of this disclosure, the bracket further includes a limiting support portion disposed on the first surface, the limiting support portion being used to abut against the side of the electronic device.
[0026] In some embodiments of this disclosure, the first surface is provided with a concave portion, and the limiting support portion is movably connected to the bracket plate and has a first position and a second position. In the first position, the limiting support portion is received in the concave portion, and in the second position, the limiting support portion extends out of the concave portion and has a preset angle with the first surface.
[0027] In some embodiments of this disclosure, the bracket further includes a bracket base plate, and the bracket support plate is rotatably connected to the bracket base plate via a rotating shaft structure.
[0028] In some embodiments of this disclosure, the support further includes:
[0029] The supporting structure is rotatably connected to the bracket plate;
[0030] An adjustment structure is provided on the base plate of the support, and the adjustment structure includes at least two adjustment parts;
[0031] The support structure can be coupled with different adjustment parts to adjust the tilt angle of the bracket plate relative to the bracket base plate.
[0032] In some embodiments of this disclosure, an interface structure is provided on the bracket base plate, and the interface structure is connected to the control part of the bracket through a first wire harness, the first wire harness extending into the bracket support plate through the bracket base plate and the rotating shaft structure.
[0033] In some embodiments of this disclosure, a portion of the structure of the control unit is exposed outside the air outlet duct, and a wiring portion is provided on the exposed structure outside the air outlet duct, with the first wire harness connected to the wiring portion.
[0034] The technical solutions provided by the embodiments of this disclosure may include the following beneficial effects: a wind-cooling component is provided in the bracket plate, and an air outlet is provided on the first surface, and the air outlet is connected to the air outlet channel of the wind-cooling component. In this way, the airflow driving part of the wind-cooling component can drive the airflow to blow out from the air outlet to dissipate heat from the electronic device. In addition, the air outlet of the airflow driving part is arranged opposite to the first surface, and the air inlet is arranged opposite to the second surface. By placing the airflow driving part horizontally in the bracket plate, the airflow flows in from the back side of the airflow driving part and flows out from the front side, thereby making the bracket plate thinner and lighter, while ensuring the wind-cooling area and wind-cooling efficiency, thereby ensuring the working reliability of the electronic device and optimizing the user experience.
[0035] It should be understood that the above general description and the following detailed description are exemplary and explanatory only, and are not intended to limit this disclosure. Attached Figure Description
[0036] The accompanying drawings, which are incorporated in and form a part of this specification, illustrate embodiments consistent with this disclosure and, together with the description, serve to explain the principles of this disclosure.
[0037] Figure 1 This is a schematic diagram of the structure of a support according to an exemplary embodiment;
[0038] Figure 2 This is a schematic diagram of the internal structure of a support plate according to an exemplary embodiment;
[0039] Figure 3 This is a schematic diagram of the structure of an air-cooled assembly according to an exemplary embodiment;
[0040] Figure 4 This is a schematic diagram of the front structure of the bracket according to another exemplary embodiment;
[0041] Figure 5 This is a schematic diagram of the rear structure of an electronic device according to an exemplary embodiment.
[0042] In the picture:
[0043] 100-Support plate; 110-First plate; 111-First surface; 1111-Air outlet; 112-Support structure; 120-Second plate; 121-Second surface; 130-Side plate; 131-Air inlet; 140-Support body; 210-Airflow drive unit; 211-Air inlet; 212-Air outlet; 220-Air inlet channel; 230-Air outlet channel; 240-First air guide structure; 241-First baffle; 242-First semi-cylindrical structure; 2421-First notch; 243-First air guide block; 2431-First air guide slope; 250-Second air guide structure; 251- Second baffle; 252-Second semi-cylindrical structure; 2521-Second notch; 253-Second air guide block; 2531-Second air guide slope; 310-First preset space; 320-Second preset space; 410-First silencing structure; 420-Second silencing structure; 430-Third silencing structure; 510-Control unit; 520-Wiring unit; 600-Wireless charging unit; 610-Charging coil; 620-Receiving coil; 710-Limiting support unit; 720-Concave part; 800-Bracket base plate; 811-Adjustment unit; 820-Interface structure; 830-First wiring harness; 900-Rotating shaft structure. Detailed Implementation
[0044] Exemplary embodiments will now be described in detail, examples of which are illustrated in the accompanying drawings. When the following description relates to the drawings, unless otherwise indicated, the same numerals in different drawings denote the same or similar elements. The embodiments described in the following exemplary embodiments do not represent all embodiments consistent with this disclosure. Rather, they are merely examples of apparatuses and methods consistent with some aspects of this disclosure as detailed in the appended claims.
[0045] Currently, stands used to support electronic devices such as mobile phones and laptops typically have limited functionality. However, as electronic devices generate significant heat during high-power operations such as gaming and video playback, the requirements for heat dissipation become more stringent. Including cooling devices like fans within the stand's support plate increases the plate's thickness, compromising the stand's portability.
[0046] Based on this, an exemplary embodiment of this disclosure provides a bracket in which an air-cooling component is disposed within the bracket plate. An air outlet is disposed on the first surface and is connected to the air outlet channel of the air-cooling component. Thus, the airflow driving part of the air-cooling component can drive airflow to blow out through the air outlet to dissipate heat from the electronic device. In addition, the air outlet of the airflow driving part is disposed opposite to the first surface and the air inlet is disposed opposite to the second surface. By placing the airflow driving part horizontally within the bracket plate, airflow flows in from the back side of the airflow driving part and flows out from the front side, thereby making the bracket plate thinner and lighter while ensuring the air-cooling area and air-cooling efficiency, thereby ensuring the operational reliability of the electronic device and optimizing the user experience.
[0047] An exemplary embodiment of this disclosure provides a support, with reference to Figures 1 to 4 The bracket is used to support electronic devices such as mobile phones and computers. The bracket includes a bracket plate 100 and a cooling assembly. The bracket plate 100 is used to support electronic devices and includes a first surface 111 and a second surface 121 that are opposite to each other. The first surface 111 faces the electronic device, and the second surface 121 is the side that faces away from the electronic device. The air-cooling component is disposed within the bracket plate 100. The air-cooling component includes an airflow drive unit 210, an air inlet channel 220, and an air outlet channel 230. The air outlet 212 of the airflow drive unit 210 is disposed opposite to the first surface 111 and has a first preset space 310 between it and the first surface 111. The air inlet 211 of the airflow drive unit 210 is disposed opposite to the second surface 121 and has a second preset space 320 between it and the second surface 121. The air outlet channel 230 is connected to the air outlet 212 via the first preset space 310. The air inlet channel 220 is connected to the air inlet 211 via the second preset space 320. The first surface 111 is provided with an air outlet hole 1111 that is connected to the air outlet channel 230.
[0048] In this embodiment, the support plate 100 includes a first surface 111 and a second surface 121 that are opposite to each other, such as Figure 1 and Figure 4 As shown, the first surface 111 is the side facing the user when using the stand, and the second surface 121 is the side facing away from the user when using the stand. The first surface 111 is in contact with the electronic device. A cooling component is provided inside the stand plate 100, and an air outlet 1111 is located on the first surface 111. When the electronic device generates heat during operation, the cooling component inside the stand plate 100 can dissipate heat from the electronic device.
[0049] The air-cooled assembly includes an airflow drive unit 210, an air inlet channel 220, and an air outlet channel 230. The air outlet channel 230 is connected to an air outlet 1111. The airflow drive unit 210 has an air inlet 211 and an air outlet 212. The air outlet 212 is opposite to the first surface 111 of the support plate 100 and forms a first preset space 310 between them. The air outlet channel 230 is connected to the air outlet 212 of the airflow drive unit 210 through the first preset space 310. The air inlet 211 is opposite to the second surface 121 of the support plate 100 and forms a second preset space 320 between them. The air inlet channel 220 is connected to the air inlet 211 of the airflow drive unit 210 through the second preset space 320. In other words, as shown... Figure 3 As shown, the air outlet 212 and the first preset space 310 are both located on the side of the airflow drive unit 210 facing the electronic device (hereinafter referred to as the front side), while the air inlet 211 and the second preset space 320 are both located on the side of the airflow drive unit 210 away from the electronic device (hereinafter referred to as the back side).
[0050] refer to Figure 3 Airflow enters through the air inlet 211 via the second preset space 320 on the back side of the airflow drive unit 210 and then through the air inlet 211. Driven by the airflow drive unit 210, it flows out through the air outlet 212 on the front side. The airflow from the air outlet 212 flows through the first preset space 310 on the front side and then through the air outlet 230 to the air outlet hole 1111 on the first surface 111 of the bracket plate 100. In this way, by placing the airflow drive unit 210 horizontally inside the bracket plate 100, airflow flows in from the back side of the airflow drive unit 210 and flows out from the front side, thereby making the bracket plate 100 thinner and lighter, while ensuring the air-cooling area and air-cooling efficiency, thereby ensuring the working reliability of electronic devices and optimizing the user experience.
[0051] For example, the airflow drive unit 210 is an axial flow fan, and its material can be stainless steel, plastic, aluminum alloy, etc. This embodiment does not limit this.
[0052] For example, the number, shape, size and position of the air outlet 1111 can be set as needed. When multiple air outlets 1111 are set, the arrangement of the multiple air outlets 1111 can be arranged in an array or in an irregular manner, as long as the air outlets are connected to the air outlet channel 230 to achieve cooling of the electronic equipment.
[0053] In one embodiment, reference Figure 1 and Figure 2The support plate 100 includes a first plate portion 110 and a second plate portion 120 spaced apart. The first surface 111 is the outer surface of the first plate portion 110, and the second surface 121 is the outer surface of the second plate portion 120. The air-cooling assembly includes a first air guide structure 240 and a second air guide structure 250. The first air guide structure 240 cooperates with the first plate portion 110 and the second plate portion 120 to form an air outlet channel 230, and the second air guide structure 250 cooperates with the first plate portion 110 and the second plate portion 120 to form an air inlet channel 220.
[0054] In this embodiment, as Figure 1 and Figure 4 As shown, the bracket 100 includes a first plate portion 110 and a second plate portion 120 spaced apart. The first plate portion 110 faces the user when the user uses the bracket, and the second plate portion 120 faces away from the user when the user uses the bracket. The side of the first plate portion 110 facing the user when using the bracket is a first surface 111. The first plate portion 110 supports the electronic device, and an air vent 1111 is provided on the first surface 111 of the first plate portion 110 that contacts the electronic device. The side of the second plate portion 120 facing away from the user when using the bracket is a second surface 121. Figure 1 and Figure 2 The first air guide structure 240 of the air-cooled component, together with the first plate portion 110 and the second plate portion 120, forms a space, namely the air outlet channel 230; the second air guide structure 250 of the air-cooled component, together with the first plate portion 110 and the second plate portion 120, forms another space, namely the air inlet channel 220. In this way, airflow can flow from the air inlet channel 220 to the air outlet channel 230, and then out through the air outlet 1111 connected to the air outlet channel 230, thereby achieving heat dissipation for the electronic device, ensuring the operational reliability of the electronic device, and optimizing the user experience.
[0055] For example, the first plate portion 110 and the second plate portion 120 can be made of lightweight materials with high support strength, such as engineering plastics, carbon fiber composites, aluminum alloys, and titanium alloys.
[0056] For example, please refer to Figure 2 Multiple supports 140 can be provided between the first plate portion 110 and the second plate portion 120 to enhance the structural strength of the support plate 100. The support 140 can be columnar, cuboid, or similar in shape. Multiple supports 140 can be arranged in an array inside the support plate 100. Of course, they can also be arranged irregularly, as long as they can enhance the structural strength of the support plate 100 and not affect the layout of other structures inside the support plate 100.
[0057] In one embodiment, reference Figure 1 and Figure 2The first air guiding structure 240 includes a first baffle 241, which is sandwiched between the first plate portion 110 and the second plate portion 120. The first baffle 241, together with the first plate portion 110 and the second plate portion 120, forms an air outlet channel 230. The second air guiding structure 250 includes a second baffle 251, which is sandwiched between the first plate portion 110 and the second plate portion 120. The first baffle 241, together with the first plate portion 110 and the second plate portion 120, forms an air inlet channel 220.
[0058] In this embodiment, the first baffle 241 cooperates with the first plate portion 110 and the second plate portion 120 to form an air outlet channel 230, and the second baffle 251 cooperates with the first plate portion 110 and the second plate portion 120 to form an air inlet channel 220. The structure is simple and easy to implement.
[0059] The first baffle 241 may be integrally formed with the first plate portion 110 or integrally formed with the second plate portion 120. Of course, in other embodiments, the first baffle 241 may also be a separate structure and be fixed to the first plate portion 110 or the second plate portion 120 by means of bonding, snapping or other methods.
[0060] Similarly, the second baffle 251 can be integrally formed with the first plate portion 110 or with the second plate portion 120. Of course, in other embodiments, the second baffle 251 can also be a separate structure and fixed to the first plate portion 110 or the second plate portion 120 by means of bonding, snap-fitting or other methods.
[0061] For example, the first baffle 241 and the second baffle 251 can be made of airtight materials such as plastic sheet or tarpaulin, and this embodiment does not limit this.
[0062] In one embodiment, reference Figure 2 and Figure 3 The first air guiding structure 240 further includes a first semi-cylindrical structure 242 disposed on one side of the air outlet 212 of the airflow driving part 210, and the second air guiding structure 250 further includes a second semi-cylindrical structure 252 disposed on one side of the air inlet 211 of the airflow driving part 210. The first semi-cylindrical structure 242 and the second semi-cylindrical structure 252 are connected to each other to surround the airflow driving part 210. The first semi-cylindrical structure 242 is provided with a first notch 2421, which communicates with the air outlet channel 230, and the second semi-cylindrical structure 252 is provided with a second notch 2521, which communicates with the air inlet channel 220.
[0063] In this embodiment, the first air guiding structure 240 further includes a first semi-cylindrical structure 242 disposed around the airflow driving part 210, for example... Figure 2 and Figure 3The diagram shows that the first semi-cylindrical structure 242 is disposed on the right side of the airflow driving part 210. The first semi-cylindrical structure 242 ensures that after the airflow passes through the air inlet channel 220, it can only enter the air inlet 211 of the airflow driving part 210 through the second preset space 320. The first notch 2421 on the first semi-cylindrical structure 242 ensures that the airflow exiting from the air outlet 212 of the airflow driving part 210 can flow into the air outlet channel 230 through the first preset space 310. The second air guide structure 250 also includes a second semi-cylindrical structure 252 disposed around the airflow driving part 210, for example... Figure 2 and Figure 3 As shown, the second semi-cylindrical structure 252 is positioned on the left side of the airflow drive unit 210. The second semi-cylindrical structure 252 prevents airflow from flowing through the air inlet channel 220 into the first preset space 310 on the front side of the airflow drive unit 210. The second notch 2521 on the second semi-cylindrical structure 252 ensures that the airflow through the air inlet channel 220 can smoothly pass through the second preset space 320 and enter the air inlet 211 of the airflow drive unit 210. This ensures the airflow volume and direction at the air inlet 211 of the airflow drive unit 210, improves air cooling efficiency, and achieves heat dissipation for electronic devices while ensuring their operational reliability and optimizing the user experience.
[0064] For example, the shapes of the first semi-cylindrical structure 242 and the second semi-cylindrical structure 252 can be set according to the shape of the airflow driving part 210, such as a circular ring, an elliptical ring, a square ring, etc., and this embodiment does not limit this.
[0065] For example, the first semi-cylindrical structure 242 can be integrally formed with the second semi-cylindrical structure 252. Of course, the first semi-cylindrical structure 242 and the second semi-cylindrical structure 252 can also be separate structures. The first semi-cylindrical structure 242 can be fixedly connected to the second semi-cylindrical structure 252 by means of bonding, threaded connection or other methods.
[0066] For example, structures for mounting the airflow drive unit 210, such as hooks or support plates, can also be provided on the first half-cylinder structure 242 and the second half-cylinder structure 252. That is, the airflow drive unit 210 can be mounted through the first half-cylinder structure 242 and the second half-cylinder structure 252, thereby further simplifying the structure.
[0067] In one embodiment, reference Figures 1 to 3The first air guiding structure 240 also includes a first air guiding block 243 connected to the second plate portion 120. The surface of the first air guiding block 243 facing away from the second plate portion 120 forms a first air guiding slope 2431. The first air guiding slope 2431 is inclined towards the second plate portion 120 along a first direction, which is from the first preset space 310 to the air outlet channel 230. The second air guiding structure 250 also includes a second air guiding block 253 connected to the first plate portion 110. The surface of the second air guiding block 253 facing away from the first plate portion 110 forms a second air guiding slope 2531. The second air guiding slope 2531 is inclined towards the second plate portion 120 along a second direction, which is from the air inlet channel 220 to the second preset space 320.
[0068] In this embodiment, the first air guide structure 240, which cooperates with the first plate portion 110 and the second plate portion 120 to form an air outlet channel 230, further includes a first air guide block 243 connected to the second plate portion 120. The surface of the first air guide block 243 facing the first plate portion 110 forms a first air guide slope 2431. The first air guide slope 2431, the first baffle 241 on both sides, and the first plate portion 110 form an air outlet channel 230, allowing airflow to flow along the first air guide slope 2431 and out through the air outlet hole 1111 on the first plate portion 110; the first air guide structure 240, which cooperates with the first plate portion 110 and the second plate portion 120 to form an air outlet channel 230. The second air guide structure 250 forming the air outlet channel 230 also includes a second air guide block 253 connected to the first plate portion 110. The surface of the second air guide block 253 facing the second plate portion 120 forms a second air guide slope 2531. The second air guide slope 2531, the second baffles 251 on both sides, and the second plate portion 120 form an air inlet channel 220, allowing airflow to flow along the second air guide slope 2531 to the second preset space 320 on the back side of the airflow drive unit 210, then enter through the air inlet 211, and flow out from the air outlet 212 on its front side under the driving action of the airflow drive unit 210. In this way, the airflow can be guided, while avoiding sudden changes in the airflow cross-sectional area that would affect the airflow velocity, thereby ensuring air cooling efficiency. This achieves heat dissipation for electronic devices while ensuring the operational reliability of electronic devices and optimizing the user experience.
[0069] For example, the first guide slope 2431 can be formed by a plane with the same degree of inclination, or it can be formed by splicing together multiple planes with different degrees of inclination; similarly, the second guide slope 2531 can be formed by a plane with the same degree of inclination, or it can be formed by splicing together multiple planes with different degrees of inclination. This embodiment does not limit this.
[0070] In one embodiment, reference Figure 1 and Figure 2The bracket plate 100 also includes a side plate 130 that connects the edges of the first plate portion 110 and the second plate portion 120. The side plate portion 130 is provided with an air inlet 131, which is connected to the air inlet channel 220.
[0071] In this embodiment, an air inlet 131 is provided on the side plate portion 130 of the support plate 100, so that the dust-laden airflow can enter through the air inlet 131 and flow through the air inlet channel 220 to the second preset space 320 on the back side of the airflow drive portion 210. The dust in the dust-laden airflow settles on the second plate portion 120 due to gravity, so as to avoid large dust particles in the dust-laden airflow from entering the airflow drive portion 210 and causing wear to the airflow drive portion 210.
[0072] For example, the number, shape and size of the air inlets 131 can be set as needed, as long as the airflow can flow from the air inlets 131 into the air inlet channel 220.
[0073] For example, the position of the air inlet 131 on the side plate portion 130 can be set according to the inlet requirements of the air inlet channel 220. Of course, the air inlet 131 can also be set on the second plate portion 120 near the side plate portion 130, as long as the airflow can flow into the air inlet channel 220 from the air inlet 131.
[0074] In one embodiment, reference Figure 4 A first sound-absorbing structure 410 is provided inside the air outlet 1111. In this way, noise can be reduced, and dust in the outside air can be effectively blocked from entering the interior of the bracket plate 100 through the air outlet 1111.
[0075] For example, the first silencing structure 410 can be disposed on the surface of the first plate portion 110 facing the air outlet channel 230, opposite to the air outlet 1111. The number of the first silencing structures 410 can be the same as the number of air outlets 1111, or they can be different. For example, when the number of air outlets 1111 is at least two, the two air outlets 1111 can share one first silencing structure 410.
[0076] In one embodiment, reference Figure 1 A second noise reduction structure 420 is provided inside the air inlet 131 on the bracket. This reduces noise and effectively prevents dust in the outside air from entering the bracket support plate 100 through the air inlet 131.
[0077] For example, when the air inlet 131 is provided on the side plate portion 130 of the bracket plate 100, the second noise reduction structure 420 can be provided on the surface of the side plate portion 130 facing the air inlet channel 220, opposite to the air inlet 131; when the air inlet 131 is provided on the second plate portion 120 of the bracket plate 100, the second noise reduction structure 420 can be provided on the surface of the second plate portion 120 facing the air inlet channel 220, opposite to the air inlet 131.
[0078] In one embodiment, combined with Figure 2 and Figure 3 A third noise reduction structure 430 is provided between the first preset space 310 and the air outlet channel 230. The third noise reduction structure 430 can reduce noise using sound-absorbing materials or by controlling the magnitude of the acoustic impedance. When the third noise reduction structure 430 uses sound-absorbing materials, the materials are fixed to the inner wall of the airflow channel or arranged in a certain way within the airflow channel. When sound waves of certain frequencies pass through the sound-absorbing materials, they are attenuated, thus achieving noise reduction. When the third noise reduction structure 430 reduces noise by controlling the magnitude of the acoustic impedance, a pipe section or resonant cavity with a sudden change in cross-sectional area is provided between the first preset space 310 and the air outlet channel 230. By utilizing the change in acoustic impedance, sound waves of certain frequencies undergo reflection and interference at the interface of the sudden change in acoustic impedance, thereby achieving noise reduction on the outside of the third noise reduction structure 430. In this way, the noise of the airflow drive unit 210 during operation can be reduced without affecting the airflow, thus optimizing the user experience.
[0079] For example, the third silencing structure 430 can be disposed at the first notch 2421 of the first semi-cylindrical structure 242.
[0080] In one embodiment, a first silencing structure 410 is provided inside the air outlet 1111, a second silencing structure 420 is provided inside the air inlet 131 on the bracket, and a third silencing structure 430 is provided between the first preset space 310 and the air outlet channel 230. This reduces noise, ensures silencing effect, and effectively prevents dust in the air outside the bracket support plate 100 from entering the interior of the bracket support plate 100, ensuring the cleanliness of the interior of the bracket support plate 100.
[0081] For example, the first sound-absorbing structure 410, the second sound-absorbing structure 420 and the third sound-absorbing structure 430 can be made of the same or different materials, such as glass wool, rock wool, steel mesh, foam plastic and other materials that are both breathable and capable of sound absorption.
[0082] For example, the shape and size of the first noise reduction structure 410, the second noise reduction structure 420 and the third noise reduction structure 430 can be set as needed, and this embodiment does not limit this.
[0083] In one embodiment, reference Figure 2 and Figure 4 The bracket also includes a control unit 510 and a wireless charging unit 600. The airflow drive unit 210 is connected to the control unit 510, and the wireless charging unit 600 is connected to the control unit 510. The wireless charging unit 600 and at least part of the control unit 510 are located within the air outlet duct 230.
[0084] In this embodiment, the bracket also includes a wireless charging unit 600 and a control unit 510, wherein the control unit 510 is capable of controlling the operation of the airflow drive unit 210 and supplying power to the wireless charging unit 600. Figure 4 and Figure 5 As shown, a receiving coil 620 is built into the back of the electronic device. The position of the receiving coil 620 corresponds to the position of the wireless charging unit 600. When the electronic device is placed on the support plate 100, the transmitting coil of the wireless charging unit 600 can couple with the receiving coil 620 on the back of the electronic device to generate an induced current, thereby charging the electronic device. This solves the problems of messy charging cables and insertion / removal losses, thus optimizing the user experience. By controlling the airflow drive unit 210 through the control unit 510, heat dissipation can be achieved for the electronic device, thereby ensuring the reliability of the electronic device and optimizing the user experience.
[0085] In this embodiment, the wireless charging unit 600 and at least part of the control unit 510 are located within the air outlet duct 230. This allows the heat generated by the wireless charging unit 600 during operation to be dissipated promptly, thus ensuring the reliable operation of the wireless charging unit 600. Of course, both the wireless charging unit 600 and the control unit 510 can be completely located within the air outlet duct 230; this embodiment does not limit this.
[0086] For example, the control unit 510 may be a printed circuit board (PCB).
[0087] For example, the electronic device can be a mobile phone, tablet computer, laptop computer, PDA, etc.
[0088] For example, the wireless charging unit 600 includes at least one charging coil 610 for generating an alternating magnetic field when energized. For example Figure 2 As shown, the wireless charging unit 600 includes two charging coils 610 arranged side by side. Of course, in other embodiments, the number and placement of the charging coils 610 can be set as needed.
[0089] In one embodiment, reference Figure 1 The bracket also includes a limiting support 710 disposed on the first surface 111, the limiting support 710 being used to abut against the side of the electronic device.
[0090] In this embodiment, a limiting support portion 710 is also provided on the first surface 111 of the first plate portion 110 of the bracket plate 100. When the electronic device is placed on the bracket plate 100, the limiting support portion 710 can hold the side of the electronic device against it. The first surface 111 can cooperate with the limiting support portion 710 so that when the angle between the first surface 111 and the horizontal plane is a certain angle, the electronic device can be stably placed on the first surface 111.
[0091] For example, the limiting support 710 is located on one side of the first surface 111, so that the first surface 111 can cooperate with the limiting support 710 to stably place the electronic device on the first surface 111.
[0092] For example, the limiting support 710 can be one, such as Figure 1 The elongated structure shown can also be composed of multiple small elongated structures, with the multiple small elongated structures spaced apart along the side extension direction of the electronic device.
[0093] In one embodiment, reference Figure 1 and Figure 4 The first surface 111 is provided with a recess 720. The limiting support 710 is movably connected to the bracket plate 100 and has a first position and a second position. In the first position, the limiting support 710 is received in the recess 720. In the second position, the limiting support 710 extends out of the recess 720 and has a preset angle with the first surface 111.
[0094] In this embodiment, a recessed portion 720 is provided on the first surface 111 of the first plate portion 110 of the bracket 100, which can accommodate the limiting support portion 710. The limiting support portion 710 can extend out of or be accommodated in the recessed portion 720. When the electronic device is placed on the first surface 111, the limiting support portion 710 can extend out of the recessed portion 720 and form a preset angle with the first surface 111, so that the limiting support portion 710 can abut against the side of the electronic device to stably place the electronic device on the first surface 111 which is at a certain angle to the horizontal plane. In this way, accommodating the limiting support portion 710 in the recessed portion 720 is beneficial to protecting the limiting support portion 710 and making the bracket 100 structure flat, thus ensuring the appearance performance of the bracket 100.
[0095] For example, the preset included angle can be any angle, as long as the electronic device can be stably placed on the first surface 111.
[0096] In one embodiment, reference Figure 1The bracket also includes a bracket base plate 800, and a bracket support plate 100 is rotatably connected to the bracket base plate 800 via a pivot structure 900. Thus, the bracket base plate 800 and the bracket support plate 100 can form a certain angle, allowing the electronic device to be supported at an angle when placed on the bracket support plate 100, facilitating office work and better meeting the user's needs.
[0097] For example, a stabilizing counterweight can also be set on the support base plate 800. For example, a stainless steel block can be added to the support base plate 800 to increase the weight of the support base plate 800, thereby ensuring the structural stability of the support. Of course, the support base plate 800 can also be set as a plate material with a certain weight, such as steel.
[0098] For example, the pivot structure 900 can be a damped pivot. When the friction of the damped pivot is large enough, it can make a certain angle between the bracket base plate 800 and the bracket support plate 100, and can support electronic equipment.
[0099] In one embodiment, reference Figure 1 The bracket also includes a support structure 112 and an adjustment structure. The support structure 112 is rotatably connected to the bracket support plate 100, and the adjustment structure is disposed on the bracket base plate 800. The adjustment structure includes at least two adjustment parts 811, and the support structure 112 can cooperate with different adjustment parts 811 to adjust the tilt angle of the bracket support plate 100 relative to the bracket base plate 800.
[0100] In this embodiment, the support plate 100 is also provided with a support structure 112 rotatably connected thereto, which is used to support the support plate 100 to form a certain angle between the support base plate 800 and the support plate 100. By providing the support structure 112, the support strength of the support plate 100 can be improved. One end of the support structure 112 is connected to the support plate 100, and the other end cooperates with the adjustment structure on the support base plate 800. By cooperating with the adjustment part 811 at different positions, the angle formed between the support base plate 800 and the support plate 100 can be changed. When the electronic device is placed on the support plate 100, it can be supported at different angles, which is convenient for office work and better meets the usage needs of various users.
[0101] For example, a groove can be provided on the second surface 121 of the bracket plate 100 so that the support structure 112 can be received in the groove. Alternatively, the groove can be provided on the surface of the bracket base plate 800 facing the bracket plate 100. Or, an accommodating space can be provided between the bracket base plate 800 and the bracket plate 100 so that the support structure 112 can be received in the accommodating space, thereby ensuring the appearance of the bracket and the rationality of the structural assembly.
[0102] For example, the support structure 112 can be Figure 1 The support rod shown can, of course, be composed of multiple support rods. These multiple support rods can be arranged at intervals or in a cross pattern, which can improve the overall support strength and stability of the support structure.
[0103] For example, the support structure 112 can be set at any position on the second surface 121, as long as it can ensure that a certain angle is formed between the bracket base plate 800 and the bracket support plate 100 and can support the electronic device.
[0104] For example, the adjustment unit 811 can be Figure 1 The elongated protrusion shown can also be serrated or the like. Multiple adjustment parts 811 are spaced apart. The spacing between two adjacent adjustment parts 811 can be the same or different, as long as the multiple adjustment parts 811 can cooperate with the support structure 112 to adjust the tilt angle of the bracket support plate 100 relative to the bracket base plate 800. This embodiment does not limit this.
[0105] In one embodiment, reference Figure 1 and Figure 2 An interface structure 820 is provided on the bracket base plate 800. The interface structure 820 is connected to the control part 510 of the bracket through a first wire harness 830. The first wire harness 830 extends into the bracket support plate 100 through the bracket base plate 800 and the rotating shaft structure 900.
[0106] In this embodiment, the first wiring harness 830 can connect the interface structure 820 on the bracket base plate 800 to the control unit 510 inside the bracket support plate 100 via the pivot structure 900. The control unit 510 is connected to the wireless charging unit 600, thus enabling charging of the wireless charging unit 600. This utilizes the principle of electromagnetic induction to charge the electronic device. This solves the problems of messy charging cables and wear and tear from plugging and unplugging, resulting in a cleaner work environment and optimized user experience.
[0107] For example, the charging interface can be a USB interface, such as a Type-C interface.
[0108] In one embodiment, reference Figure 2 Part of the structure of the control unit 510 is exposed outside the air outlet duct 230. A wiring part 520 is provided on the exposed structure outside the air outlet duct 230, and the first wire harness 830 is connected to the wiring part 520.
[0109] In this embodiment, a portion of the control unit 510 within the bracket plate 100 is exposed in the air outlet channel 230. This portion of the structure is provided with a wiring portion 520 that connects to the first wiring harness 830. This ensures that the first wiring harness 830 is connected to the control unit 510, thereby enabling the wireless charging unit 600 to be charged, and thus enabling the charging of electronic devices. This solves the problems of messy charging cables and plug-and-play losses, thereby optimizing the user experience.
[0110] For example, a through hole can be made on the first baffle 241 at the location of the control section 510, so that the part of the control section 510 with the wiring section 520 is exposed to the air outlet duct 230.
[0111] In other embodiments, the entire control unit 510 may be placed inside the air outlet duct 230, and a through hole may be opened on the first baffle 241, through which the first wire harness 830 can pass and connect to the wiring portion 520 on the control unit 510.
[0112] Other embodiments of this disclosure will readily occur to those skilled in the art upon consideration of the specification and practice of the invention disclosed herein. This disclosure is intended to cover any variations, uses, or adaptations of this disclosure that follow the general principles of this disclosure and include common knowledge or customary techniques in the art not disclosed herein. The specification and examples are to be considered exemplary only, and the true scope and spirit of this disclosure are indicated by the following claims.
[0113] It should be understood that this disclosure is not limited to the precise structures described above and shown in the accompanying drawings, and various modifications and changes can be made without departing from its scope. The scope of this disclosure is limited only by the appended claims.
Claims
1. A bracket for supporting electronic devices, characterized in that, The support includes: A support plate for supporting the electronic device, the support plate including a first surface and a second surface facing away from each other, the first surface facing the electronic device; An air-cooled component is disposed within the bracket plate. The air-cooled component includes an airflow driving part, an air inlet channel, and an air outlet channel. The air outlet of the airflow driving part is disposed opposite to the first surface and has a first preset space between it and the first surface. The air inlet of the airflow driving part is disposed opposite to the second surface and has a second preset space between it and the second surface. The air outlet channel communicates with the air outlet through the first preset space. The air inlet channel communicates with the air inlet through the second preset space. The first surface is provided with an air outlet hole that communicates with the air outlet channel. The airflow drive unit causes airflow to flow in from the rear side of the airflow drive unit and out from the front side; The support also includes: The control unit is connected to the airflow drive unit; A wireless charging unit is connected to the control unit; The wireless charging unit and at least a portion of the control unit are located within the air outlet duct; The air outlet is located on the periphery of the wireless charging unit.
2. The bracket according to claim 1, characterized in that, The support plate includes a first plate portion and a second plate portion that are spaced apart, the first surface being the outer surface of the first plate portion and the second surface being the outer surface of the second plate portion; The air-cooled component includes a first air guide structure and a second air guide structure. The first air guide structure cooperates with the first plate and the second plate to form the air outlet channel, and the second air guide structure cooperates with the first plate and the second plate to form the air inlet channel.
3. The bracket according to claim 2, characterized in that, The first air guide structure includes a first baffle, which is sandwiched between the first plate portion and the second plate portion, and the first baffle, together with the first plate portion and the second plate portion, forms the air outlet channel; The second air guide structure includes a second baffle, which is sandwiched between the first plate and the second plate, and the first baffle, together with the first plate and the second plate, forms the air inlet channel.
4. The stent according to claim 3, characterized in that, The first air guiding structure further includes a first half-cylinder structure disposed on the air outlet side of the airflow driving part, and the second air guiding structure further includes a second half-cylinder structure disposed on the air inlet side of the airflow driving part. The first half-cylinder structure and the second half-cylinder structure are connected to each other to surround the airflow driving part. The first half-cylinder structure is provided with a first notch, which is connected to the air outlet channel; The second semi-cylinder structure is provided with a second notch, which is connected to the air inlet channel.
5. The bracket according to claim 2, characterized in that, The first air guiding structure also includes a first air guiding block connected to the second plate portion. The surface of the first air guiding block facing away from the second plate portion forms a first air guiding slope. The first air guiding slope is inclined towards the second plate portion along a first direction, where the first direction is from the first preset space to the air outlet channel. The second air guiding structure also includes a second air guiding block connected to the first plate portion. The surface of the second air guiding block facing away from the first plate portion forms a second air guiding slope. The second air guiding slope is inclined towards the second plate portion along a second direction, which is the direction from the air inlet channel to the second preset space.
6. The bracket according to claim 2, characterized in that, The bracket plate also includes a side plate that connects the edges of the first plate and the second plate. The side plate is provided with an air inlet hole, which is connected to the air inlet channel.
7. The bracket according to claim 1, characterized in that, The air outlet is provided with a first sound-absorbing structure; and / or A second sound-absorbing structure is provided inside the air inlet of the bracket; and / or, A third sound-absorbing structure is provided between the first preset space and the air outlet channel.
8. The bracket according to claim 1, characterized in that, The wireless charging unit includes at least one charging coil.
9. The bracket according to claim 1, characterized in that, The bracket also includes a limiting support portion disposed on the first surface, the limiting support portion being used to abut against the side of the electronic device.
10. The stent according to claim 9, characterized in that, The first surface is provided with a concave portion. The limiting support portion is movably connected to the bracket plate and has a first position and a second position. In the first position, the limiting support portion is received in the concave portion. In the second position, the limiting support portion extends out of the concave portion and has a preset angle with the first surface.
11. The stent according to any one of claims 1 to 10, characterized in that, The bracket also includes a bracket base plate, and the bracket support plate is rotatably connected to the bracket base plate via a rotating shaft structure.
12. The bracket according to claim 11, characterized in that, The support also includes: The supporting structure is rotatably connected to the bracket plate; An adjustment structure is provided on the base plate of the support, and the adjustment structure includes at least two adjustment parts; The support structure can be coupled with different adjustment parts to adjust the tilt angle of the bracket plate relative to the bracket base plate.
13. The bracket according to claim 11, characterized in that, An interface structure is provided on the base plate of the bracket. The interface structure is connected to the control part of the bracket through a first wire harness. The first wire harness extends into the bracket support plate through the base plate of the bracket and the rotating shaft structure.
14. The stent according to claim 13, characterized in that, Part of the control unit is exposed outside the air outlet duct, and a wiring portion is provided on the exposed structure outside the air outlet duct, and the first wire harness is connected to the wiring portion.
Citation Information
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