Electronic device support and electronic device

By incorporating a cable assembly with a spiral coil structure at the adjustable joint of the display device bracket, the problems caused by exposed and pulled cables are solved, achieving cable concealment and stability, and improving the user interaction experience.

CN122107236APending Publication Date: 2026-05-29祖仲奇

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
祖仲奇
Filing Date
2026-01-13
Publication Date
2026-05-29

AI Technical Summary

Technical Problem

Existing display devices and their bracket designs result in exposed cables, affecting the tidiness of users' work desks and their concentration. Furthermore, cables are prone to signal interruption or power loss due to pulling, and may even lead to interface damage or cable breakage.

Method used

The cable assembly adopts an adjustable bracket and a spiral coil structure. By setting the cable assembly as a spiral coil at the joint of the adjustable bracket, the length and deformation space of the cable at the joint are increased, so that the force of the cable is evenly distributed on the spiral coil structure when the bracket rotates, reducing the pulling effect.

Benefits of technology

It effectively reduces cable interference during human-computer interaction, avoids cable breakage, damage to cable interfaces and signal interruption, extends cable life, and improves the convenience and freedom of human-computer interaction for users.

✦ Generated by Eureka AI based on patent content.

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    Figure CN122107236A_ABST
Patent Text Reader

Abstract

The application provides an electronic device support and an electronic device. The electronic device support comprises: a base for supporting an electronic device; an adjustable support arranged on the base for adjusting the spatial position and angle of the electronic device in a three-dimensional space; and a cable assembly arranged inside the adjustable support and having at least a part in a spiral coil structure at a joint of the adjustable support. The cable assembly is arranged in a spiral coil structure to continuously transmit power or signals when the support rotates. Meanwhile, the length of the coil cable at this position can be increased, the space for deformation of the coil cable assembly can be increased, and a larger adjustment angle of the support can be achieved. When the support and the rotating mechanism inside the support rotate around the center of the coil structure, the force generated by the deformation of the spiral coil assembly is more evenly distributed on the whole coil structure, the relative deformation amount is reduced, and the effect of reducing the interference of the cable on human-computer interaction is achieved.
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Description

Technical Field

[0001] This application relates to the field of electronic equipment technology, and more particularly to an electronic equipment bracket and an electronic equipment. Background Technology

[0002] As the central display device on a user's work desktop, the monitor often forms a personalized workspace together with various functional products (such as desktop speakers, wired webcams, laptops, desktop docking stations, keyboards, mice, etc.) and decorative products. With the diversification of user functional needs, monitors need to integrate more auxiliary functions (such as ambient light sensors, speakers, expansion interfaces, etc.) and frequently exchange data and power with external devices (such as external hard drives, external graphics card docks, USB devices, etc.).

[0003] However, due to design reasons, existing display devices and their brackets have too many exposed cables (power cords, signal transmission lines, expansion interface cables, etc.), which affects the tidiness of the user's work desk and concentration. In addition, when the user adjusts the spatial position or display angle of the display device in three-dimensional space, the cables are easily pulled, which can cause signal interruption or power failure. In severe cases, the cable interface may be damaged or the cable may break. Summary of the Invention

[0004] To address the aforementioned issues, this application provides an electronic device bracket and an electronic device, which allows for convenient and free adjustment of the device's spatial position and angle while it operates within its workspace. This prevents or reduces pulling on external cables caused by device movement or angle adjustments, avoiding power or signal transmission interruptions that could lead to device malfunctions. Consequently, it reduces interference from external cables to human-computer interaction, enhancing the convenience and freedom of user interaction.

[0005] A first aspect of this application provides an electronic device bracket, comprising:

[0006] A base used to support electronic devices.

[0007] An adjustable bracket is mounted on the base and is used to adjust the spatial position and angle of the electronic device in three-dimensional space.

[0008] A cable assembly, which is inserted and concealed within the adjustable bracket, is used to connect the electronic device, and at least a portion of the cable assembly at the joint of the adjustable bracket is a spiral coil structure.

[0009] In one possible implementation, the adjustable bracket includes a first rotating mechanism, a first support rod, and an angle adjustment mechanism. The first rotating mechanism is disposed on the base, and the two ends of the first support rod are respectively connected to the first rotating mechanism and the angle adjustment mechanism. The angle adjustment mechanism is connected to the electronic device.

[0010] In one possible implementation, the first rotating mechanism includes a rotating housing and at least one rotating component disposed inside the rotating housing. The rotating component is rotatably connected to the rotating housing. The cable assembly includes a first cable post, a first helical coil, and a first L-shaped terminal block. The inner end of the first helical coil is connected to the first cable post, and the outer end of the first helical coil is connected to the first L-shaped terminal block. The first cable post is located inside the rotating component, and the rotating component can drive the first cable post to rotate.

[0011] In one possible implementation, the cable assembly further includes a second cable post, a second helical coil, and a second L-shaped terminal block. The inner end of the second helical coil is connected to the second cable post, and the outer end of the second helical coil is connected to the second L-shaped terminal block. The first L-shaped terminal block is connected to the second L-shaped terminal block. The second cable post is located inside the rotating assembly, and the rotating assembly can drive the second cable post to rotate.

[0012] In one possible implementation, the rotating assembly includes a cable connection reel and a rotating housing top cover, a first coil compartment, a first coil compartment fixing plate, a terminal block fixing compartment, a second coil compartment fixing plate, a second coil compartment, and a rotating housing bottom cover, which are sequentially fixedly connected. The cable connection reel is connected to a first cable post and is used to drive the first cable post to rotate. A rotating push post is provided on the cable connection reel. A first arc-shaped slide is provided on the rotating housing top cover. The rotating push post is located in the first arc-shaped slide. The first helical coil is located in the first coil compartment. The first coil compartment fixing plate is provided with a first arc-shaped guide groove. The first L-shaped terminal block includes a first guide post. The outer end of the first helical coil is connected to the first guide post. The first guide post is located in the first arc-shaped guide groove. The two sides of the terminal block fixing compartment abut against the first L-shaped terminal block and the second L-shaped terminal block, respectively. The second helical coil is located in the second coil compartment. The second coil compartment fixing plate is provided with a second arc-shaped guide groove. The second L-shaped terminal block includes a second guide post. The outer end of the second helical coil is connected to the second guide post. The second guide post is located in the second arc-shaped guide groove.

[0013] In one possible implementation, the top cover of the rotating housing is provided with a third arc-shaped guide groove on the side facing the first L-shaped terminal block, and the free end of the first guide post is located in the third arc-shaped guide groove. The bottom cover of the rotating housing is provided with a fourth arc-shaped guide groove on the side facing the second L-shaped terminal block, and the free end of the second guide post is located in the fourth arc-shaped guide groove.

[0014] In one possible implementation, the first coil compartment fixing plate includes a first fixing plate body and a first guide portion, the first fixing plate body and the first guide portion are detachably connected, and the first arc-shaped guide groove is disposed on the first guide portion and is open at one end.

[0015] And / or, the second coil housing fixing plate includes a second fixing plate body and a second guide portion, the second fixing plate body and the second guide portion are detachably connected, the second arc-shaped guide groove is disposed on the second guide portion, and one end is open.

[0016] In one possible implementation, the rotating assembly further includes a rotating shaft, the first cable post and the second cable post are coaxially arranged, and the first cable post, the second cable post, the first L-shaped terminal block and the second L-shaped terminal block are all provided with through holes for the rotating shaft to pass through.

[0017] In one possible implementation, a first annular groove is provided on the outer side of the first coil compartment and the second coil compartment, and a first snap ring sleeve is provided circumferentially in the rotating housing, wherein a first snap ring is provided in the first snap ring sleeve and the first snap ring engages with the first annular groove.

[0018] In one possible implementation, the rotating housing is provided with a plurality of the rotating components, and the end of the second cable post facing away from the second L-shaped terminal block is engaged with the cable connection reel in the adjacent rotating component.

[0019] In one possible implementation, the first rotating mechanism further includes a connecting seat and a first rotating stop plate. The connecting seat is located in the base and is provided with a cable post terminal and a first branch terminal. The cable post terminal is electrically connected to the first branch terminal and is connected to the end of the second cable post opposite to the second L-shaped terminal. A second arc-shaped slide is provided on the side of the rotating housing cover facing the first rotating stop plate, and a third arc-shaped slide is provided on the connecting seat. A first stop post and a second stop post are respectively provided on both sides of the first rotating stop plate. The first stop post is located in the second arc-shaped slide, and the second stop post is located in the third arc-shaped slide.

[0020] In one possible implementation, one end of the first support rod is fixedly connected to the cable reel, and both ends of the first support rod are provided with terminals. One of the terminals is electrically connected to the first cable post, and the other terminal is electrically connected to the angle adjustment mechanism. A portion of the cable assembly is located inside the first support rod and is electrically connected to the two terminals respectively.

[0021] In one possible implementation, the adjustable bracket further includes a second rotating mechanism and a second support rod, the second rotating mechanism being connected to the end of the first support rod away from the first rotating mechanism, and the two ends of the second support rod being connected to the second rotating mechanism and the angle adjustment mechanism, respectively.

[0022] In one possible implementation, the second rotating mechanism includes one or more of the rotating components.

[0023] In one possible implementation, the second support rod includes a support housing and a fourth connector, the fourth connector being connected to the second rotating mechanism, one end of the support housing being connected to the fourth connector and the other end being connected to the angle adjustment mechanism, a portion of the cable assembly being located inside the support housing and electrically connected to portions of the cable assembly located in the second rotating mechanism and the angle adjustment mechanism, respectively.

[0024] In one possible implementation, the angle adjustment mechanism includes a horizontal angle adjustment component, a pitch angle adjustment component, and a tilt angle adjustment component. The horizontal angle adjustment component is used to adjust the horizontal angle of the electronic device, the pitch angle adjustment component is used to adjust the pitch angle of the electronic device, and the tilt angle adjustment component is used to adjust the tilt angle of the electronic device.

[0025] In one possible implementation, the horizontal angle adjustment assembly includes a first rotating coil chamber and a first connector. The first connector is connected to a second support rod, and the first rotating coil chamber is rotatably connected to the first connector. The cable assembly includes a third cable post and a third helical coil disposed in the first rotating coil chamber. The third cable post is rotatably connected to the first rotating coil chamber and electrically connected to the portion of the cable assembly located in the second support rod. The inner end of the third helical coil is connected to the third cable post.

[0026] In one possible implementation, the pitch angle adjustment assembly includes a second rotating coil housing and a second connector. The second rotating coil housing is fixedly connected to the first rotating coil housing, and the second connector is rotatably connected to the second rotating coil housing. The cable assembly includes a fourth cable post and a fourth helical coil located in the second rotating coil housing. The fourth cable post is rotatably connected to the second rotating coil housing. The inner end of the fourth helical coil is connected to the fourth cable post, and the outer end of the fourth helical coil is electrically connected to the outer end of the third helical coil. The fourth cable post is connected with a bent ribbon cable.

[0027] In one possible implementation, the tilt angle adjustment assembly includes a third rotating coil chamber and a third connector. The third rotating coil chamber is fixedly connected to the second connector, and the third connector is rotatably connected to the third rotating coil chamber. The cable assembly includes a fifth cable post and a fifth spiral coil disposed in the third rotating coil chamber. The fifth cable post is rotatably connected to the third rotating coil chamber. The outer end of the fifth spiral coil is used to connect to the electronic device, and the inner end of the fifth spiral coil is connected to the fifth cable post. The fifth cable post is electrically connected to the bent ribbon cable.

[0028] In one possible implementation, the adjustable bracket further includes a height adjustment mechanism for adjusting the height of the electronic device.

[0029] A second aspect of this application provides an electronic device, including the electronic device bracket provided in the first aspect.

[0030] The electronic device bracket and electronic device provided in this application embodiment support the electronic device with a base, and adjust the position and angle of the electronic device in three-dimensional space using an adjustable bracket. The cable assembly is threaded through the adjustable bracket, and at the joint of the adjustable bracket, the cable assembly is configured as a spiral coil structure. By configuring the cable assembly as a spiral coil structure, the length of the cable at the joint can be increased, increasing the space for cable assembly deformation and reducing relative deformation. Furthermore, when the joint of the adjustable bracket rotates, it causes the cable assembly to rotate around the center of the spiral coil structure, allowing the force generated during rotation at the joint to be more evenly distributed throughout the spiral coil structure, reducing the impact of the force generated during the rotation of the adjustable bracket on the cable, thereby extending the service life of the cable assembly. Therefore, when the device using the electronic device bracket provided in this application is moved in space and its angle adjusted, interference from cables during human-computer interaction can be further reduced, avoiding pulling on various cables required for device operation during interaction, and preventing problems such as cable breakage, damage to cable interfaces, and signal interruption. Attached Figure Description

[0031] The accompanying drawings, which are incorporated in and form part of this specification, illustrate embodiments consistent with this application and, together with the description, serve to explain the principles of this application.

[0032] Figure 1 This is a schematic diagram of the structure of the electronic device bracket provided in the embodiments of this application;

[0033] Figure 2 A front view of the adjustable bracket provided in an embodiment of this application;

[0034] Figure 3 This is a schematic diagram of the internal structure of the adjustable bracket provided in an embodiment of this application;

[0035] Figure 4 A front view of the first rotating mechanism provided in an embodiment of this application;

[0036] Figure 5 This is a schematic diagram of the structure of the rotating assembly and connecting seat provided in one embodiment of this application;

[0037] Figure 6 This is a schematic diagram of the structure of a rotating housing provided in one embodiment of this application;

[0038] Figure 7 An exploded view of a rotating assembly and connecting seat provided in an embodiment of this application;

[0039] Figure 8 This is a schematic diagram of the structure of the portion of the cable assembly located inside the rotating component provided in the embodiments of this application;

[0040] Figure 9 This is a schematic diagram of the structure of the L-shaped terminal block provided in the embodiments of this application;

[0041] Figure 10 This is a front view of the portion of the cable assembly located inside the rotating component provided in an embodiment of this application;

[0042] Figure 11 This is a schematic diagram of the structure of the cable reel provided in an embodiment of this application;

[0043] Figure 12 This is a top view of the rotating housing top cover provided in an embodiment of this application;

[0044] Figure 13 This is a bottom view of the rotating housing top cover provided in an embodiment of this application;

[0045] Figure 14 This is a schematic diagram of the structure of the first coil compartment provided in an embodiment of this application;

[0046] Figure 15This is a schematic diagram of the structure of the first coil compartment fixing plate provided in an embodiment of this application;

[0047] Figure 16 This is a schematic diagram of the structure of the terminal block fixing compartment provided in the embodiments of this application;

[0048] Figure 17 A cross-sectional view of the terminal block holder provided in an embodiment of this application;

[0049] Figure 18 This is a top view of the rotating housing bottom cover provided in an embodiment of this application;

[0050] Figure 19 This is a bottom view of the rotating housing bottom cover provided in an embodiment of this application;

[0051] Figure 20 This is a schematic diagram of the structure of the first rotating stop disc provided in an embodiment of this application;

[0052] Figure 21 A front view of the first rotating stop disc provided in an embodiment of this application;

[0053] Figure 22 This is a schematic diagram of the structure of the connector provided in an embodiment of this application;

[0054] Figure 23 This is a schematic diagram of the structure of the second rotating mechanism provided in the embodiments of this application;

[0055] Figure 24 An exploded view of the second rotating mechanism provided in the embodiments of this application;

[0056] Figure 25 This is a schematic diagram of the structure of the second rotating stop disc provided in an embodiment of this application;

[0057] Figure 26 This is a schematic diagram of the structure of the first support rod provided in an embodiment of this application;

[0058] Figure 27 This is a schematic diagram of the cable assembly located in the middle of the second support rod according to an embodiment of this application;

[0059] Figure 28 An exploded view of the second support rod and height adjustment mechanism provided in the embodiments of this application;

[0060] Figure 29 This is a schematic diagram of the angle adjustment mechanism provided in the embodiments of this application;

[0061] Figure 30 A schematic diagram of the cable assembly located inside the angle adjustment mechanism according to an embodiment of this application;

[0062] Figure 31 This is a schematic diagram of the internal structure of the tilt angle adjustment component provided in the embodiments of this application;

[0063] Figure 32 This is a schematic diagram of the structure of the third connector provided in an embodiment of this application.

[0064] Explanation of reference numerals in the attached figures:

[0065] 100. Base;

[0066] 200. First rotating mechanism; 210. Rotating housing; 220. Rotating assembly; 221. Cable connection tray; 2211. Rotating push column; 2212. Connecting hole; 222. Top cover of rotating housing; 2221. First arc-shaped slide; 2222. Clearance hole; 2223. Third arc-shaped guide groove; 223. First coil compartment; 2231. First annular slot; 224. First coil compartment fixing plate; 2241. First fixing plate body; 2242. First guide part; 2243. First arc-shaped guide groove; 225. Terminal block fixing compartment 226. Second coil compartment fixing plate; 227. Second coil compartment; 228. Rotary housing bottom cover; 2281. Fourth arc-shaped guide groove; 2282. Second arc-shaped slide rail; 229. Second rotating stop plate; 2291. Third stop post; 230. Connecting seat; 231. First rotating stop plate; 2311. First stop post; 2312. Second stop post; 232. Connecting seat body; 233. Connecting seat housing; 234. Cable post terminal; 235. First branch terminal; 236. Third arc-shaped slide rail; 240. Rotating shaft;

[0067] 300, First support rod; 310, First connecting plate; 320, Second connecting plate; 330, First male terminal block; 340, Second male terminal block;

[0068] 400. Second rotating mechanism; 410. Third rotating stop plate; 411. Fourth arc-shaped slide;

[0069] 500. Second support rod; 510. Support housing; 520. Third connecting plate; 530. Fourth connecting piece;

[0070] 600, Angle adjustment mechanism; 610, Horizontal angle adjustment assembly; 611, First rotating coil compartment; 612, First connector; 620, Pitch angle adjustment assembly; 621, Second rotating coil compartment; 622, Second connector; 630, Tilt angle adjustment assembly; 631, Third connector; 6311, Second annular groove; 632, Third rotating coil compartment; 6321, Second snap ring sleeve; 6322, Bearing retaining ring; 633, Bearing; 634, Second snap ring; 635, Terminal assembly hole;

[0071] 700. Electronic equipment;

[0072] 800. Cable assembly; 801. First cable post; 802. First spiral coil; 803. First L-shaped terminal block; 804. First guide post; 805. Through hole; 806. Second cable post; 807. Second spiral coil; 808. Second L-shaped terminal block; 809. Second guide post; 810. Third cable post; 811. Third spiral coil; 812. Fourth spiral coil; 813. Fourth cable post; 814. Bent ribbon cable; 815. Fifth cable post; 816. Fifth spiral coil; 817. Second branch terminal; 818. Ribbon cable; 819. Third male terminal block; 820. Female terminal block; 821. Fourth male terminal block;

[0073] 900. Height adjustment mechanism; 910. Hydraulic rod; 920. Hydraulic rod protective shell.

[0074] The accompanying drawings illustrate specific embodiments of this application, which will be described in more detail below. These drawings and descriptions are not intended to limit the scope of the concept in any way, but rather to illustrate the concept of this application to those skilled in the art through reference to particular embodiments. Detailed Implementation

[0075] First, those skilled in the art should understand that these embodiments are merely for explaining the technical principles of this application and are not intended to limit the scope of protection of this application. Those skilled in the art can make adjustments as needed to adapt to specific application scenarios.

[0076] Secondly, it should be noted that, in the description of the embodiments of this application, unless otherwise explicitly specified and limited, the terms "connected" and "linked" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in the embodiments of this application according to the specific circumstances.

[0077] As the core display device on a user's work desktop, the monitor often forms a personalized workspace together with various functional products (such as desktop speakers, webcams, wired microphones, laptops, keyboards, mice, etc.) and decorative products. With the diversification of users' functional needs, monitors need to integrate more auxiliary functions (such as ambient light sensors, speakers, expansion interfaces, etc.) and frequently exchange data and power with external devices (such as external hard drives, external graphics card docks, USB devices, etc.).

[0078] Current monitor products typically integrate the display panel, backlight module, driving circuitry (main control board, power board, driver board), and functional modules (such as ambient light sensor and speakers) into the main display unit. Interfaces (HDMI, USB, power interface, etc.) are concentrated on the back or side of the monitor. The stand provides height adjustment, tilt adjustment, left and right rotation, and portrait / landscape switching functions, but the connecting cables between the stand and the monitor (such as power cords and signal cables) are still exposed due to design considerations. Cable management relies on manual winding by the user or external cable management boxes, but when adjusting in three-dimensional space, insufficient cable length can easily lead to cable breakage, damage to cable connectors, or signal interruption due to pulling. Furthermore, the placement of the cable connectors makes operation inconvenient for users.

[0079] To address the aforementioned issues, this application provides an electronic device bracket and an electronic device, including a base, an adjustable bracket, and a cable assembly. The base supports the electronic device; the adjustable bracket is disposed on the base and is used to adjust the position and angle of the electronic device in three-dimensional space; the cable assembly passes through the adjustable bracket and is used to connect the electronic device, and at least a portion of the cable assembly at the joints of the adjustable bracket is a spiral coil structure.

[0080] The electronic device bracket and electronic device provided in this application embodiment support the electronic device with a base, and adjust the position and angle of the electronic device in three-dimensional space using an adjustable bracket. The cable assembly is threaded through the adjustable bracket, and at the joint of the adjustable bracket, the cable assembly is configured as a spiral coil structure. By configuring the cable assembly as a spiral coil structure, the length of the cable at the joint can be increased, increasing the space for cable assembly deformation and reducing relative deformation. Furthermore, when the joint of the adjustable bracket rotates, it causes the cable assembly to rotate around the center of the spiral coil structure, allowing the force generated during rotation at the joint to be more evenly distributed throughout the spiral coil structure, reducing the impact of the force generated during the rotation of the adjustable bracket on the cable, thereby extending the service life of the cable assembly. Therefore, when the device using the electronic device bracket provided in this application is moved in space and its angle adjusted, interference from cables during human-computer interaction can be further reduced, avoiding pulling on various cables required for device operation during interaction, and preventing problems such as cable breakage, damage to cable interfaces, and signal interruption.

[0081] To make the above-mentioned objectives, features, and advantages of the embodiments of this application more apparent and understandable, the technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of this application, and not all of them. All other embodiments obtained by those skilled in the art based on the embodiments of this application without creative effort are within the scope of protection of this application.

[0082] Please refer to Figures 1-32 The first aspect of this application provides an electronic device bracket, including a base 100, an adjustable bracket, and a cable assembly 800. The base 100 is used to support an electronic device 700. The adjustable bracket is disposed on the base 100 and is used to adjust the position and angle of the electronic device 700 in three-dimensional space. The cable assembly 800 passes through the adjustable bracket and is used to connect the electronic device 700. At the joint of the adjustable bracket, at least a portion of the cable assembly 800 is a spiral coil structure.

[0083] The electronic device bracket and electronic device provided in this application embodiment support the electronic device 700 via a base 100. The adjustable bracket allows for adjustment of the position and angle of the electronic device 700 in three-dimensional space. A cable assembly 800 is threaded through the adjustable bracket, and at the joint of the adjustable bracket, the cable assembly 800 is configured as a spiral coil structure. By configuring the cable assembly 800 as a spiral coil structure, the length of the cable at the joint can be increased, increasing the space for deformation of the cable assembly 800 and reducing the relative deformation. Furthermore, when the joint of the adjustable bracket rotates, it causes the cable assembly 800 to rotate around the center of the spiral coil structure, resulting in more uniform deformation of the cable assembly 800 at the joint. Therefore, when using the electronic device bracket provided in this application for position and angle adjustment, the external cables of the device are hidden inside the bracket, reducing cable pulling and preventing signal interruption, damage to the device cable interface, or device shutdown due to power failure.

[0084] In some embodiments of this application, see Figures 1-3 The adjustable bracket includes a first rotating mechanism 200, a first support rod 300 and an angle adjustment mechanism 600. The first rotating mechanism 200 is disposed on the base 100. The two ends of the first support rod 300 are respectively connected to the first rotating mechanism 200 and the angle adjustment mechanism 600. The angle adjustment mechanism 600 is connected to the electronic device 700.

[0085] The angle adjustment mechanism 600 can be used to adjust the angle of the electronic device 700. The first support rod 300 and the first rotating mechanism 200 can be used to rotate the electronic device 700 on the base 100, thereby adjusting the position and angle of the electronic device 700.

[0086] In some embodiments of this application, see Figures 4-8 The first rotating mechanism 200 includes a rotating housing 210 and at least one rotating component 220 disposed inside the rotating housing 210. The rotating component 220 is rotatably connected to the rotating housing 210. The cable assembly 800 includes a first cable post 801, a first spiral coil 802 and a first L-shaped terminal block 803. The inner end of the first spiral coil 802 is connected to the first cable post 801, and the outer end of the first spiral coil 802 is connected to the first L-shaped terminal block 803. The first cable post 801 is located inside the rotating component 220, and the rotating component 220 can drive the first cable post 801 to rotate.

[0087] When the position of the electronic device 700 is adjusted, the first cable post 801 can be rotated by the rotating component 220. When the first cable post 801 rotates, the first spiral coil 802 is contracted or expanded by the first L-shaped terminal 803. The first spiral coil 802 has a large deformation space, thereby reducing the torque pulling of the cable caused by the rotation of the bracket and reducing the risk of cable breakage or signal interruption.

[0088] In some embodiments of this application, see Figures 7-10 The cable assembly 800 also includes a second cable post 806, a second spiral coil 807, and a second L-shaped terminal block 808. The inner end of the second spiral coil 807 is connected to the second cable post 806, and the outer end of the second spiral coil 807 is connected to the second L-shaped terminal block 808. The first L-shaped terminal block 803 is connected to the second L-shaped terminal block 808. The second cable post 806 is located inside the rotating assembly 220, and the rotating assembly 220 can drive the second cable post 806 to rotate.

[0089] The first helical coil 802 is connected to the second helical coil 807 via a first L-shaped terminal 803 and a second L-shaped terminal 808, and the first L-shaped terminal 803 and the second L-shaped terminal 808 can rotate synchronously. When the position of the electronic device 700 is adjusted, the rotating component 220 can drive the first cable post 801 to rotate, thereby causing the first helical coil 802 to contract or expand. At the same time, the rotating component 220 can drive the second cable post 806 to rotate, thereby causing the second helical coil 807 to contract or expand. By setting the first helical coil 802 and the second helical coil 807, a larger deformation space can be provided, further reducing the tensile force on the cable and reducing the risk of cable breakage or signal interruption.

[0090] In some embodiments of this application, see Figures 7-10 The rotating assembly 220 includes a cable connection tray 221 and a rotating housing top cover 222, a first coil compartment 223, a first coil compartment fixing plate 224, a terminal block fixing compartment 225, a second coil compartment fixing plate 226, a second coil compartment 227, and a rotating housing bottom cover 228, which are sequentially fixedly connected. The cable connection tray 221 is connected to the first cable post 801 and is used to drive the first cable post 801 to rotate. A rotating push column 2211 is provided on the cable connection tray 221. A first arc-shaped slide rail 2221 is provided on the rotating housing top cover 222. The rotating push column 2211 is located in the first arc-shaped slide rail 2221. The first spiral coil 802 is located in the first coil compartment 223. The first coil compartment fixing plate 224... A first arc-shaped guide groove 2243 is provided. The first L-shaped terminal 803 includes a first guide post 804. The outer end of the first spiral coil 802 is connected to the first guide post 804. The first guide post 804 is located in the first arc-shaped guide groove 2243. The two sides of the terminal fixing compartment 225 abut against the first L-shaped terminal 803 and the second L-shaped terminal 808, respectively. The second spiral coil 807 is located in the second coil compartment 227. The second coil compartment fixing plate 226 is provided with a second arc-shaped guide groove. The second L-shaped terminal 808 includes a second guide post 809. The outer end of the second spiral coil 807 is connected to the second guide post 809. The second guide post 809 is located in the second arc-shaped guide groove.

[0091] For details, please refer to Figure 7 The rotating housing top cover 222, the first coil compartment 223, the first coil compartment fixing plate 224, the terminal fixing compartment 225, the second coil compartment fixing plate 226, the second coil compartment 227, and the rotating housing bottom cover 228 are all provided with bolt holes and are fixedly connected by long bolts. Furthermore, the rotating housing top cover 222, the first coil compartment fixing plate 224, the terminal fixing compartment 225, the second coil compartment fixing plate 226, and the rotating housing bottom cover 228 are all provided with clearance holes 2222 for cable posts to pass through. (See reference...) Figure 11 and Figure 12The cable connection reel 221 has a connection hole 2212 and a rotating push column 2211 in its middle. The end of the first cable column 801 matches the shape of the connection hole 2212 and can transmit torque. Rotating the cable connection reel 221 can drive the first column to rotate. The rotating push column 2211 is located in the first arc-shaped slide 2221 of the top cover 222 of the rotating housing. The cable connection reel 221 is fixedly connected to the first support column. When the first support column is rotated to adjust the position of the electronic device 700, it drives the cable connection reel 221 to rotate. The cable connection reel 221 drives the first cable column 801 to rotate, and the first spiral coil 802 deforms. At the same time, the rotating push column 2211 slides in the first arc-shaped slide 2221. When the rotating push column 2211 slides to the end of the first arc-shaped slide rail 2221, the rotating push column 2211 drives the rotating housing top cover 222 to rotate together. At this time, the first spiral coil 802 will not continue to deform, but will rotate together with the rotating housing top cover 222, the first coil compartment 223, the first coil compartment fixing plate 224, the terminal fixing compartment 225, the second coil compartment fixing plate 226, the second coil compartment 227, and the rotating housing bottom cover 228. This setting can limit the amount of deformation of the first spiral coil 802, preventing the first spiral coil 802 from undergoing excessive deformation, which could lead to cable breakage or affect the service life of the cable.

[0092] The first coil compartment 223 and the second coil compartment 227 are used to accommodate the first helical coil 802 and the second helical coil 807, respectively. The first coil compartment fixing plate 224 and the second coil compartment fixing plate 226 are used to fix the first coil compartment 223 and the second coil compartment 227, respectively. A groove is provided in the middle of the terminal fixing compartment 225 to limit the first L-shaped terminal 803 and the second L-shaped terminal 808. The first coil compartment fixing plate 224 and the second coil compartment fixing plate 226 are respectively provided with a first arc-shaped guide groove 2243 and a second arc-shaped guide groove. The first guide post 804 is located in the first arc-shaped guide groove 2243, and the second guide post 809 is located in the second arc-shaped guide groove. The first guide post 804 and the second guide post 809 can be guided, thereby limiting the deformation trajectory and deformation amount of the first helical coil 802 and the second helical coil 807.

[0093] In some embodiments of this application, see Figure 13 and Figure 18 The top cover 222 of the rotating housing is provided with a third arc-shaped guide groove 2223 on the side facing the first L-shaped terminal 803, and the free end of the first guide post 804 is located in the third arc-shaped guide groove 2223. The bottom cover 228 of the rotating housing is provided with a fourth arc-shaped guide groove 2281 on the side facing the second L-shaped terminal 808, and the free end of the second guide post 809 is located in the fourth arc-shaped guide groove 2281.

[0094] When the top cover 222 of the rotating housing rotates, the first guide post 804 initially remains stationary. When the end of the third arc-shaped guide groove 2223 contacts the first guide post 804, the top cover 222 of the rotating housing drives the first guide post 804 to rotate, thereby driving the first L-shaped terminal 803 to rotate. Similarly, the second guide post 809 initially remains stationary. When the end of the fourth arc-shaped guide groove 2281 contacts the second guide post 809, the bottom cover 228 of the rotating housing drives the second guide post 809 to rotate, thereby driving the second L-shaped terminal 808 to rotate.

[0095] It should be noted that, for reference Figure 10 The first cable post 801 and the second cable post 806 are separated from each other and are electrically connected only through the first spiral coil 802, the first L-shaped terminal 803, the second terminal and the second spiral coil 807.

[0096] In some embodiments of this application, see Figure 15 The first coil housing fixing plate 224 includes a first fixing plate body 2241 and a first guide part 2242. The first fixing plate body 2241 and the first guide part 2242 are detachably connected. A first arc-shaped guide groove 2243 is provided on the first guide part 2242 and is open at one end.

[0097] By setting the first coil compartment fixing plate 224 as two detachable parts and setting the first arc-shaped guide groove 2243 as open at one end, it is convenient to assemble the first L-shaped terminal 803 and the first spiral coil 802 with the first coil compartment fixing plate 224.

[0098] In some embodiments of this application, the second coil compartment fixing plate 226 has the same structure as the first coil compartment fixing plate 224, including a second fixing plate body and a second guide portion. The second fixing plate body and the second guide portion are detachably connected. A second arc-shaped guide groove is provided in the second guide portion and is open at one end.

[0099] By setting the second coil compartment fixing plate 226 as two detachable parts and setting the second arc-shaped guide groove as open at one end, it is easy to assemble the second L-shaped terminal block 808 and the second spiral coil 807 with the second coil compartment fixing plate 226.

[0100] In some embodiments of this application, see Figure 7 The rotating assembly 220 also includes a rotating shaft 240. The first cable post 801 and the second cable post 806 are coaxially arranged, and the middle of the first cable post 801, the second cable post 806, the first L-shaped terminal 803 and the second L-shaped terminal 808 are all provided with through holes 805 for the rotating shaft 240 to pass through.

[0101] By passing the rotating shaft 240 through the through hole 805 located in the middle of the first cable post 801, the second cable post 806, the first L-shaped terminal 803, and the second L-shaped terminal 808, the first cable post 801, the second cable post 806, the first L-shaped terminal 803, and the second L-shaped terminal 808 can be radially limited, allowing the first cable post 801, the second cable post 806, the first L-shaped terminal 803, and the second L-shaped terminal 808 to rotate around the rotating shaft 240, thereby improving the stability of the device.

[0102] Specifically, the connecting seat 230 and the first support rod 300 are provided with shaft holes for fixing the rotating shaft 240, and the two ends of the rotating shaft 240 are respectively installed in the shaft holes.

[0103] In some embodiments of this application, see Figure 6 and Figure 14 The outer side of the first coil compartment 223 and the second coil compartment 227 is provided with a first annular groove 2231, and the rotating box 210 is provided with a first snap ring sleeve in the circumferential direction. A first snap ring is provided in the first snap ring sleeve and the first snap ring is engaged with the first annular groove 2231.

[0104] The first retaining ring is fixed to the rotating housing 210 through the first retaining ring sleeve. By engaging the first annular retaining groove 2231 provided on the outer side of the first coil compartment 223 and the second coil compartment 227 with the first retaining ring, the first coil compartment 223 and the second coil compartment 227 can be rotatably connected with the rotating housing 210. When the rotating component 220 rotates, it does not interfere with the rotating housing 210.

[0105] In some embodiments of this application, a plurality of rotating components 220 are provided inside the rotating housing 210, and the end of the second cable post 806 facing away from the second L-shaped terminal block 808 is engaged with the cable connection disc 221 in the adjacent rotating component 220.

[0106] By setting multiple rotating components 220, the rotation angle of the first rotating mechanism 200 can be increased, so that the deformation of the cable assembly 800 is smaller when the position is adjusted, thereby further reducing the risk of cable breakage.

[0107] See Figure 7 In this embodiment, the first rotating mechanism 200 is provided with two rotating components 220. The second cable post 806 in the upper rotating component 220 can be inserted into the cable connector 221 in the lower rotating component 220 and transmit torque, thereby driving the lower rotating component 220 to rotate.

[0108] In other embodiments of this application, the number of rotating components 220 in the first rotating mechanism 200 may also be set to three, four, etc., and this application does not limit it.

[0109] In some embodiments of this application, see Figure 7 , Figure 20 , Figure 21 and Figure 22 The first rotating mechanism 200 also includes a connecting seat 230 and a first rotating stop plate 231. Specifically, the connecting seat includes a connecting seat body 232 and a connecting seat housing 233, with the connecting seat body 232 fixed in the connecting seat housing 233. The connector 230 is located in the base 100. The connector body 232 is provided with a cable post terminal 234 and a first branch terminal 235. The cable post terminal 234 is electrically connected to the first branch terminal 235. The cable post terminal 234 is connected to the end of the second cable post 806 away from the second L-shaped terminal 808. The bottom cover 228 of the rotating housing is provided with a second arc-shaped slide 2282 on the side facing the first rotating stop plate 231. The connector body 232 is provided with a third arc-shaped slide 236. The first stop post 2311 and the second stop post 2312 are respectively provided on both sides of the first rotating stop plate 231. The first stop post 2311 is located in the second arc-shaped slide 2282, and the second stop post 2312 is located in the third arc-shaped slide 236.

[0110] When the rotating housing bottom cover 228 is driven, the first stop post 2311 initially remains stationary. After the rotating housing bottom cover 228 rotates a certain angle, the end of the second arc-shaped slide 2282 contacts the first stop post 2311, causing the first rotating stop plate 231 to rotate. Simultaneously, the second stop post 2312 slides in the third arc-shaped slide 236. After the first rotating stop plate 231 rotates a certain angle, the second stop post 2312 contacts the end of the third arc-shaped slide 236. Since the connecting seat 230 is fixed in the base 100, the first rotating stop plate 231 cannot continue to rotate, thereby limiting the first rotating mechanism 200 and preventing excessive rotation angle from causing cable breakage or signal interruption. The connecting seat 230 is connected to the first cable post 801 and the second cable post 806 through the cable post terminal 234 and the first branch terminal 235, and is electrically connected to various interfaces provided in the base 100 through the first branch terminal 235.

[0111] In some embodiments of this application, the arc of the first arc-shaped slide 2221, the second arc-shaped slide 2282, the third arc-shaped slide 236, the first arc-shaped guide groove 2243, the second arc-shaped guide groove, the third arc-shaped guide groove 2223, and the fourth arc-shaped guide groove 2281 is all set to 120°. Therefore, the first rotating mechanism 200, which is provided with two rotating components 220, can rotate within a range of 600°.

[0112] It is understood that in other embodiments of this application, the various arc-shaped slides and arc-shaped guide grooves may also adopt other curvatures to change the rotation range of the first rotating mechanism 200.

[0113] In some embodiments of this application, commonly used interfaces are located on the front of the base 100, facilitating the use of frequently moved or plugged-in cables and allowing for one-handed operation, thus improving user efficiency. Interfaces for external signal input, power supply, and other expansion function interfaces are located at the rear of the base 100, allowing users to conceal cables that are not frequently moved or plugged in, reducing cable interference and improving the efficiency of equipment deployment. This also addresses the issue of insufficient cable management in situations where expansion interfaces are not fully utilized, thus affecting the user experience.

[0114] In some embodiments of this application, see Figure 26 One end of the first support rod 300 is fixedly connected to the cable connection plate 221. Both ends of the first support rod 300 are provided with terminals. One terminal is electrically connected to the first cable post 801, and the other terminal is electrically connected to the angle adjustment mechanism 600. A part of the cable assembly 800 is located inside the first support rod 300 and is electrically connected to the two terminals respectively.

[0115] Specifically, a first connecting plate 310 and a second connecting plate 320 are respectively provided at both ends of the first support rod 300. The first connecting plate 310 is fixedly connected to the cable connecting plate 221 in the first rotating mechanism 200. A first male terminal block 330 and a second male terminal block 340 are respectively provided at both ends of the first support rod 300. The first male terminal block 330 is connected to the first cable post 801. When adjusting the position of the electronic device 700, the first support rod 300 can drive the cable connecting plate 221 to rotate, thereby driving the first rotating mechanism 200 to rotate. A portion of the cable assembly 800 is located inside the first support rod 300 and is connected to the cable assembly 800 in the adjacent mechanism through two terminals.

[0116] It is understood that the wiring terminals at both ends of the first support rod 300 can also be female, and this application does not limit this.

[0117] In some embodiments of this application, see Figures 1-3 The adjustable bracket also includes a second rotating mechanism 400 and a second support rod 500. The second rotating mechanism 400 is connected to the end of the first support rod 300 away from the first rotating mechanism 200. The two ends of the second support rod 500 are respectively connected to the second rotating mechanism 400 and the angle adjustment mechanism 600.

[0118] By setting up a second rotating mechanism 400 and a second support rod 500, the degree of freedom of adjustment of the electronic device 700 can be further increased, as well as the adjustment distance and rotation angle can be increased.

[0119] In some embodiments of this application, see Figure 23 and Figure 24 The second rotating mechanism 400 includes one or more rotating components 220.

[0120] It is understood that one or more rotating components 220 provided in the second rotating mechanism 400 are the same as the rotating components 220 provided in the first rotating mechanism 200, and their working principle and function are the same, so they will not be described again.

[0121] In one embodiment, the second rotating mechanism 400 is provided with a rotating component 220. It is understood that in other embodiments, the number of rotating components 220 in the second rotating mechanism 400 may also be two, three, etc., and this application does not limit it.

[0122] See Figures 23-24 The second rotating mechanism 400 also includes a second rotating stop plate 229. The middle part of the second rotating stop plate 229 can be engaged with the second cable post 806 to transmit torque. A third stop post 2291 is provided on the side of the second rotating stop plate 229 facing the first support rod 300. The second support rod 500 is fixedly connected to the third rotating stop plate 410. A fourth arc-shaped slide 411 is provided on the third rotating stop plate 410. The third stop post 2291 is located in the fourth arc-shaped slide 411. When the second rotating mechanism 400 rotates, the second cable post 806 inside the second rotating mechanism 400 can drive the second rotating stop plate 229 to rotate, and the third stop post 2291 slides in the fourth arc-shaped slide rail 411. When the second rotating stop plate 229 rotates at a certain angle, causing the third stop post 2291 to slide to the end of the fourth arc-shaped slide rail 411, the third stop post 2291 is limited and cannot continue to slide, thereby preventing the cable from breaking or the signal from being interrupted due to excessive rotation angle.

[0123] In some embodiments of this application, the arc of the fourth arc-shaped slide 411 is 120°, and a rotating component 220 is provided in the second rotating mechanism 400. The arc of the arc-shaped slide and the arc-shaped guide groove in the rotating component 220 are both set to 120°. Therefore, the second rotating mechanism 400 can rotate within a 360° range.

[0124] It is understood that other curvatures, such as 150°, 180°, etc., can be used for each arc-shaped slide and arc-shaped guide groove, and this application does not limit them.

[0125] In some embodiments of this application, see Figure 2 , Figure 27 and Figure 28The second support rod 500 includes a support housing 510 and a fourth connector 530. The fourth connector 530 is connected to the second rotating mechanism 400. One end of the support housing 510 is connected to the fourth connector 530, and the other end is connected to the angle adjustment mechanism 600. A portion of the cable assembly 800 is located inside the support housing 510 and is electrically connected to the portions of the cable assembly 800 located in the second rotating mechanism 400 and the angle adjustment mechanism 600, respectively.

[0126] Specifically, the cable assembly 800 includes a ribbon cable 818, with a third male terminal block 819 and a female terminal block 820 connected to both ends of the ribbon cable 818. The ribbon cable 818 is located inside the support housing 510 and is electrically connected to portions of the cable assembly 800 located in the second rotating mechanism 400 and the angle adjustment mechanism 600 via the third male terminal block 819 and the female terminal block 820, respectively. A third connecting disc 520 is fixedly connected to the end of the ribbon cable 818 near the third male terminal block 819. The third connecting disc 520 is fixedly connected to the cable connecting disc 221 in the second rotating mechanism 400. The third male terminal block 819 is used to connect to the first cable post 801 in the second rotating mechanism 400, and the female terminal block 820 is used to connect to the cable in the angle adjustment mechanism 600. The ribbon cable 818 is a flexible structure that can be bent to adjust its height and supports the electronic equipment via the support housing 510.

[0127] In some embodiments of this application, see Figure 29 The angle adjustment mechanism 600 includes a horizontal angle adjustment component 610, a pitch angle adjustment component 620, and a tilt angle adjustment component 630. The horizontal angle adjustment component 610 is used to adjust the horizontal angle of the electronic device 700, the pitch angle adjustment component 620 is used to adjust the pitch angle of the electronic device 700, and the tilt angle adjustment component 630 is used to adjust the tilt angle of the electronic device 700.

[0128] Specifically, the horizontal angle adjustment component 610 has a vertical rotation axis, allowing it to rotate horizontally. The pitch angle adjustment component 620 has a horizontal rotation axis, which is parallel to the plane where the electronic device 700 is located, allowing it to adjust the pitch angle of the electronic device 700. The tilt angle adjustment component 630 has a rotation axis that is perpendicular to the other two rotation axes, allowing it to adjust the tilt angle of the electronic device 700. The adjustable angles that each component can achieve can be flexibly set according to the component cable length and deformation space, and can rotate 120 degrees or 180 degrees, without any limitation.

[0129] In some embodiments of this application, see Figure 29 and Figure 30The horizontal angle adjustment component 610 includes a first rotating coil chamber 611 and a first connector 612. The first connector 612 is connected to the second support rod 500. The first rotating coil chamber 611 is rotatably connected to the first connector 612. The cable assembly 800 includes a third cable post 810 and a third spiral coil 811 disposed in the first rotating coil chamber 611. The third cable post 810 is rotatably connected to the first rotating coil chamber 611. The third cable post 810 is electrically connected to the portion of the cable assembly 800 located in the second support rod 500. The inner end of the third spiral coil 811 is connected to the third cable post 810.

[0130] For details, please refer to Figure 27 and Figure 30 The first connector 612 is provided with a fourth male terminal block 821, which is connected to a female terminal block 820. The fourth male terminal block 821 is connected to a third cable post 810. The first connector 612 is connected to the support housing 510, and the third cable post 810 serves as a rotating shaft, allowing the first rotating coil housing 611 to rotate around it. The inner end of the third spiral coil 811 is connected to the third cable post 810, and the outer end passes through the terminal block and connects to the cable in the pitch angle adjustment mechanism. When adjusting the horizontal angle of the electronic device 700, the horizontal angle can be manually adjusted, which drives the first rotating coil housing 611 to rotate, and the first rotating coil housing 611 drives the third spiral coil 811 to rotate. Because the third spiral coil 811 has a spiral coil structure, it increases the space for deformation of the cable assembly 800 and reduces the relative deformation. When the third spiral coil 811 contracts or expands, the deformation can be evenly transmitted to all parts of the third spiral coil 811, which can make the deformation of the cable more uniform, prevent fatigue fracture in a certain part of the cable, and avoid cable breakage or signal interruption.

[0131] In some embodiments of this application, see Figure 29 and Figure 30 The pitch angle adjustment assembly 620 includes a second rotating coil chamber 621 and a second connector 622. The second rotating coil chamber 621 is fixedly connected to the first rotating coil chamber 611, and the second connector 622 is rotatably connected to the second rotating coil chamber 621. The cable assembly 800 includes a fourth cable post 813 and a fourth spiral coil 812 located in the second rotating coil chamber 621. The fourth cable post 813 is rotatably connected to the second rotating coil chamber 621. The inner end of the fourth spiral coil 812 is connected to the fourth cable post 813, and the outer end of the fourth spiral coil 812 is electrically connected to the outer end of the third spiral coil 811. The fourth cable post 813 is connected with a bent ribbon cable 814.

[0132] Specifically, the second rotating coil chamber 621 can rotate together with the first rotating coil chamber 611. Both ends of the fourth cable post 813 are rotatably connected to the second rotating coil chamber 621, serving as the rotation axis of the second connector 622, which can rotate around the fourth cable post 813. The outer end of the fourth spiral coil 812 is connected to the outer end of the third spiral coil 811 via a terminal block. One end of the fourth cable post 813 is connected to a bent ribbon cable 814, which is connected to the cable inside the tilt angle adjustment assembly 630. When the pitch angle of the electronic device 700 is adjusted, the bent ribbon cable 814, the fourth spiral coil 812, and the second connector 622 can rotate around the fourth cable post 813. Because the fourth spiral coil 812 has a spiral coil structure, it increases the space for deformation of the cable assembly 800 and reduces the relative deformation. When the fourth spiral coil 812 contracts or expands, the deformation can be evenly transmitted to all parts of the fourth spiral coil 812, which can make the deformation of the cable more uniform, prevent fatigue fracture in a certain part of the cable, and avoid cable breakage or signal interruption.

[0133] In some embodiments of this application, see Figures 28-31 The tilt angle adjustment assembly 630 includes a third rotating coil chamber 632 and a third connector 631. The third rotating coil chamber 632 is fixedly connected to the second connector 622, and the third connector 631 is rotatably connected to the third rotating coil chamber 632. The cable assembly 800 includes a fifth cable post 815 and a fifth spiral coil 816 disposed in the third rotating coil chamber 632. The fifth cable post 815 is rotatably connected to the third rotating coil chamber. The outer end of the fifth spiral coil 816 is used to connect to the electronic device 700, and the inner end of the fifth spiral coil 816 is connected to the fifth cable post 815. The fifth cable post 815 is electrically connected to the bent ribbon cable 814.

[0134] Specifically, the fifth cable post 815 serves as the rotation axis of the third connector 631, which can rotate around the fifth cable post 815. The fifth cable post 815 is connected to the outer end of the fourth spiral coil 812, and the outer end of the fifth spiral coil 816 is connected to the electronic device 700. When the tilt angle of the electronic device 700 is adjusted, the third connector 631 and the fifth spiral coil 816 can rotate around the fifth cable post 815. Because the fifth spiral coil 816 has a spiral coil structure, it increases the space for deformation of the cable assembly 800 and reduces the relative deformation. When the fifth spiral coil 816 contracts or expands, the deformation can be evenly transmitted to all parts of the fifth spiral coil 816, making the cable deformation more uniform, preventing fatigue fracture in a certain part of the cable, and avoiding cable breakage or signal interruption.

[0135] In some embodiments of this application, see Figure 31 and Figure 32 The third connector 631 is provided with a second snap ring sleeve 6321, and the second snap ring 634 is installed in the second snap ring sleeve 6321. The outer side of the third rotating coil chamber 632 is provided with a second annular groove 6311, which engages with the second snap ring 634, thereby realizing the rotational connection between the third connector 631 and the third rotating coil chamber 632.

[0136] In some embodiments of this application, see Figure 31 and Figure 32 The third connector 631 is provided with a bearing retaining ring 6322, and a bearing 633 is provided on the bearing retaining ring 6322. The inner ring of the bearing 633 is connected to the bearing retaining ring 6322, and the outer ring of the bearing 633 is connected to the third rotating coil chamber 632 to reduce friction during rotation.

[0137] In some embodiments of this application, see Figure 32 The third connector 631 is provided with a branch terminal assembly hole 635, and the outer end of the fifth spiral coil 816 is connected to a second branch terminal 817, which is used to connect to the electronic device 700.

[0138] In some embodiments of this application, see Figure 1 , Figure 2 and Figure 28 The adjustable bracket also includes a height adjustment mechanism 900 for adjusting the height of the electronic device 700. In some embodiments, the height adjustment mechanism 900 includes a hydraulic rod 910, the two ends of which are hinged to the fourth connector 530 and the first connector 612, respectively, and the height of the electronic device 700 is adjusted by extending and shortening the hydraulic rod. A hydraulic rod protective shell 920 is provided on the outer side of the hydraulic rod 910, and the two ends of the hydraulic rod protective shell 920 are hinged to the fourth connector 530 and the first connector 612, respectively.

[0139] It is understood that the height adjustment mechanism 900 may also adopt other structures, and this application does not limit it.

[0140] In some embodiments of this application, the cable assembly 800 includes a variety of cables (such as signal transmission cables, power supply cables and other functional cables), and the various cables are combined to form a spiral coil structure.

[0141] A second aspect of this application also provides an electronic device 700, including the electronic device bracket provided in the first aspect.

[0142] Given that the electronic device 700 in this embodiment includes the electronic device bracket described in any of the above embodiments, the structure and beneficial effects of the electronic device 700 including the electronic device bracket will not be described in detail here.

[0143] In some embodiments of this application, the electronic device 700 is a display device, such as a display screen or a computer. It is understood that in other embodiments of this application, the electronic device may also be a microphone, a speaker, etc. This application does not limit the scope of the application.

[0144] The various embodiments or implementation methods described in this specification are presented in a progressive manner. Each embodiment focuses on the differences from other embodiments, and the same or similar parts between the embodiments can be referred to each other.

[0145] It should be noted that the terms "one embodiment," "embodiment," "exemplary embodiment," "some embodiments," etc., mentioned in the specification indicate that the described embodiment may include a specific feature, structure, or characteristic, but not every embodiment necessarily includes that specific feature, structure, or characteristic. Furthermore, such phrases do not necessarily refer to the same embodiment. Moreover, when a specific feature, structure, or characteristic is described in connection with an embodiment, implementing such a feature, structure, or characteristic in conjunction with other embodiments, whether explicitly described or not, is within the knowledge scope of those skilled in the art.

[0146] Finally, it should be noted that other embodiments of this application will readily conceive of by those skilled in the art upon consideration of the specification and practice of the application disclosed herein. This application is intended to cover any variations, uses, or adaptations of this application that follow the general principles of this application and include common knowledge or customary techniques in the art not disclosed herein, and is not limited to the precise structures described above and shown in the accompanying drawings, and various modifications and alterations may be made without departing from its scope. The scope of this application is limited only by the appended claims.

Claims

1. An electronic device bracket, characterized in that, include: A base for supporting electronic devices; An adjustable bracket is provided on the base for adjusting the spatial position and angle of the electronic device; A cable assembly is inserted inside the adjustable bracket for connecting the electronic device, and at least a portion of the cable assembly at the joint of the adjustable bracket is a spiral coil structure.

2. The electronic device bracket according to claim 1, characterized in that, The adjustable bracket includes a first rotating mechanism, a first support rod, and an angle adjustment mechanism. The first rotating mechanism is disposed on the base. The two ends of the first support rod are respectively connected to the first rotating mechanism and the angle adjustment mechanism. The angle adjustment mechanism is connected to the electronic device.

3. The electronic device bracket according to claim 2, characterized in that, The first rotating mechanism includes a rotating housing and at least one rotating component disposed inside the rotating housing. The rotating component is rotatably connected to the rotating housing. The cable assembly includes a first cable post, a first spiral coil, and a first L-shaped terminal block. The inner end of the first spiral coil is connected to the first cable post, and the outer end of the first spiral coil is connected to the first L-shaped terminal block. The first cable post is located inside the rotating component, and the rotating component can drive the first cable post to rotate.

4. The electronic device bracket according to claim 3, characterized in that, The cable assembly further includes a second cable post, a second spiral coil, and a second L-shaped terminal block. The inner end of the second spiral coil is connected to the second cable post, and the outer end of the second spiral coil is connected to the second L-shaped terminal block. The first L-shaped terminal block is connected to the second L-shaped terminal block. The second cable post is located inside the rotating assembly, and the rotating assembly can drive the second cable post to rotate.

5. The electronic device bracket according to claim 4, characterized in that, The rotating assembly includes a cable connection reel and a rotating housing top cover, a first coil compartment, a first coil compartment fixing plate, a terminal block fixing compartment, a second coil compartment fixing plate, a second coil compartment, and a rotating housing bottom cover, which are sequentially fixedly connected. The cable connection reel is connected to a first cable post and is used to drive the first cable post to rotate. A rotating push post is provided on the cable connection reel. A first arc-shaped slide is provided on the rotating housing top cover. The rotating push post is located in the first arc-shaped slide. The first helical coil is located in the first coil compartment. The first coil compartment fixing plate is provided with a first arc-shaped guide groove. The first L-shaped terminal block includes a first guide post. The outer end of the first helical coil is connected to the first guide post. The first guide post is located in the first arc-shaped guide groove. The two sides of the terminal block fixing compartment abut against the first L-shaped terminal block and the second L-shaped terminal block, respectively. The second helical coil is located in the second coil compartment. The second coil compartment fixing plate is provided with a second arc-shaped guide groove. The second L-shaped terminal block includes a second guide post. The outer end of the second helical coil is connected to the second guide post. The second guide post is located in the second arc-shaped guide groove.

6. The electronic device bracket according to claim 5, characterized in that, The top cover of the rotating housing has a third arc-shaped guide groove on the side facing the first L-shaped terminal block, and the free end of the first guide post is located in the third arc-shaped guide groove. The bottom cover of the rotating housing has a fourth arc-shaped guide groove on the side facing the second L-shaped terminal block, and the free end of the second guide post is located in the fourth arc-shaped guide groove.

7. The electronic device bracket according to claim 5, characterized in that, The first coil compartment fixing plate includes a first fixing plate body and a first guide part. The first fixing plate body and the first guide part are detachably connected. The first arc-shaped guide groove is disposed on the first guide part and is open at one end. And / or, the second coil housing fixing plate includes a second fixing plate body and a second guide portion, the second fixing plate body and the second guide portion are detachably connected, the second arc-shaped guide groove is disposed on the second guide portion, and one end is open.

8. The electronic device bracket according to claim 5, characterized in that, The rotating assembly further includes a rotating shaft, the first cable post and the second cable post are coaxially arranged, and the first cable post, the second cable post, the first L-shaped terminal and the second L-shaped terminal are all provided with through holes for the rotating shaft to pass through.

9. The electronic device bracket according to claim 5, characterized in that, The first coil compartment and the second coil compartment are provided with a first annular groove on their outer sides. The rotating housing is provided with a first retaining spring sleeve along the circumference. A first retaining spring is provided in the first retaining spring sleeve and the first retaining spring is engaged with the first annular groove.

10. The electronic device bracket according to any one of claims 5-9, characterized in that, The rotating housing contains a plurality of rotating components, and the end of the second cable post facing away from the second L-shaped terminal block is engaged with the cable connection disc in the adjacent rotating component.

11. The electronic device bracket according to any one of claims 5-9, characterized in that, The first rotating mechanism further includes a connecting seat and a first rotating stop plate. The connecting seat is located in the base and is provided with a cable post terminal and a first branch terminal. The cable post terminal is electrically connected to the first branch terminal and is connected to the end of the second cable post away from the second L-shaped terminal. The bottom cover of the rotating housing is provided with a second arc-shaped slide on the side facing the first rotating stop plate, and the connecting seat is provided with a third arc-shaped slide. A first stop post and a second stop post are respectively provided on both sides of the first rotating stop plate. The first stop post is located in the second arc-shaped slide, and the second stop post is located in the third arc-shaped slide.

12. The electronic device bracket according to any one of claims 5-9, characterized in that, One end of the first support rod is fixedly connected to the cable connection reel. Both ends of the first support rod are provided with terminals. One of the terminals is electrically connected to the first cable post, and the other terminal is electrically connected to the angle adjustment mechanism. A portion of the cable assembly is located inside the first support rod and is electrically connected to the two terminals respectively.

13. The electronic device bracket according to claim 3, characterized in that, The adjustable bracket further includes a second rotating mechanism and a second support rod. The second rotating mechanism is connected to the end of the first support rod away from the first rotating mechanism, and the two ends of the second support rod are respectively connected to the second rotating mechanism and the angle adjustment mechanism.

14. The electronic device bracket according to claim 13, characterized in that, The second rotating mechanism includes one or more of the aforementioned rotating components.

15. The electronic device bracket according to claim 14, characterized in that, The second support rod includes a support housing and a fourth connector. The fourth connector is connected to the second rotating mechanism. One end of the support housing is connected to the fourth connector, and the other end is connected to the angle adjustment mechanism. A portion of the cable assembly is located inside the support housing and is electrically connected to the portions of the cable assembly located in the second rotating mechanism and the angle adjustment mechanism, respectively.

16. The electronic device bracket according to claim 13, characterized in that, The angle adjustment mechanism includes a horizontal angle adjustment component, a pitch angle adjustment component, and a tilt angle adjustment component. The horizontal angle adjustment component is used to adjust the horizontal angle of the electronic device, the pitch angle adjustment component is used to adjust the pitch angle of the electronic device, and the tilt angle adjustment component is used to adjust the tilt angle of the electronic device.

17. The electronic device bracket according to claim 16, characterized in that, The horizontal angle adjustment assembly includes a first rotating coil chamber and a first connector. The first connector is connected to the second support rod. The first rotating coil chamber is rotatably connected to the first connector. The cable assembly includes a third cable post and a third spiral coil disposed in the first rotating coil chamber. The third cable post is rotatably connected to the first rotating coil chamber. The third cable post is electrically connected to the portion of the cable assembly located in the second support rod. The inner end of the third spiral coil is connected to the third cable post.

18. The electronic device bracket according to claim 17, characterized in that, The pitch angle adjustment assembly includes a second rotating coil housing and a second connector. The second rotating coil housing is fixedly connected to the first rotating coil housing, and the second connector is rotatably connected to the second rotating coil housing. The cable assembly includes a fourth cable post and a fourth helical coil located in the second rotating coil housing. The fourth cable post is rotatably connected to the second rotating coil housing. The inner end of the fourth helical coil is connected to the fourth cable post, and the outer end of the fourth helical coil is electrically connected to the outer end of the third helical coil. The fourth cable post is connected with a bent ribbon cable.

19. The electronic device bracket according to claim 18, characterized in that, The tilt angle adjustment assembly includes a third rotating coil chamber and a third connector. The third rotating coil chamber is fixedly connected to the second connector, and the third connector is rotatably connected to the third rotating coil chamber. The cable assembly includes a fifth cable post and a fifth spiral coil disposed in the third rotating coil chamber. The fifth cable post is rotatably connected to the third rotating coil chamber. The outer end of the fifth spiral coil is used to connect to the electronic device, and the inner end of the fifth spiral coil is connected to the fifth cable post. The fifth cable post is electrically connected to the bent ribbon cable.

20. The electronic device bracket according to any one of claims 1-19, characterized in that, The adjustable bracket also includes a height adjustment mechanism for adjusting the height of the electronic device.

21. An electronic device comprising the electronic device holder according to any one of claims 1-20.