Component display device supporting high flexibility multi-directional fast magnetic attraction output

CN224732356UActive Publication Date: 2026-09-08ORIGINAL PIONT DISPLAY SHENZHEN CO LTD
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Patent Information

Application Number
CN202521363741.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-06-30
Publication Date
2026-09-08
Estimated Expiration
2035-06-30

AI Technical Summary

Technical Problem

[0003]针对现有技术中,多个显示屏一般通过多跟线材共同连接于的同GPU模块上,无法很好的充分发挥Type-C接口的数据传输优势,且线材杂乱,影响桌面美观的技术问题,本实用新型提供一种解决方案

Benefits of technology

[0014] The beneficial effects of this utility model are as follows: Compared with the prior art, this utility model provides a component-type display device that supports highly flexible multi-directional fast magnetic output, including a main display module, a sub-display module, and connectors: the back of the main display module has at least one first connection part in the pre-installed position, and each connection part has a second connection point; the main control board is equipped with a USB-HUB module, which converts the input signal of the Type-C interface into a USB signal and then outputs it through the first connection point; the back of the sub-display module has a second connection part, and each second connection part forms a second connection point with the sub-control board; the two ends of the connectors are respectively The connector is magnetically connected to the first and second connecting parts and is equipped with data pins that are adapted to connect to the first and second connecting points. By physically connecting the connector to the first and second connecting parts, the display area is expanded. At the same time, the first and second connecting points are connected to the data pins. After the main display module processes the required signals, the USB-HUB module converts the Type-C signal into a USB signal. The connector can then transmit the final signal to the sub-display module, thereby effectively activating the sub-display module to achieve display. This fully leverages the advantage of the high data throughput of the Type-C interface, ensures the cleanliness of the desktop, and greatly improves the user experience.

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Abstract

The utility model discloses a kind of support high flexibility multidirectional quick magnetic attraction output's assembly type display equipment, including main display module, sub-display module and connecting piece: main control board inside main display module is electrically connected in Type-C interface, main control board is carried with USB-HUB module, USB-HUB module is with the input signal of Type-C interface Conversion into USB signal again by the first connecting point on first connecting part is output;Sub-display module is equipped with second connecting part and second connecting point;Connecting piece is used for magnetically attracting two connecting parts, and is equipped with the data stylus of connecting point adaptive connection;By connecting piece, it is expected to be fixed in the use time of the periphery of main display module to sub-display module, first connecting point, second connecting point and data stylus are connected, and then effectively activate sub-display module to realize display, sufficiently exert the advantage of the large data flux of Type-C interface, and guarantee the neatness of desktop.
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Description

Technical Field

[0001] This utility model relates to the field of display, and in particular to a component-type display device that supports highly flexible multi-directional fast magnetic output. Background Technology

[0002] With the development of technology, computer-based office work has become mainstream. In the process of analyzing and processing electronic information through computers, users often have practical needs for multiple screens or large screens. In actual use, users hope to use a complete system with one host and multiple monitors for simultaneous multi-screen display. This system generally includes a host, multiple (LCD) monitors, a multi-screen monitor stand, and matching keyboards and mice. A single keyboard and mouse can be used to quickly switch between screens, and each screen can display and run its own program completely independently. With the development of technology, hardware manufacturers have reserved Type-C interfaces to meet the needs of high data throughput in order to meet the data transmission speed requirements. However, current monitors cannot efficiently utilize the advantages of Type-C, requiring multiple separate cables to connect to the extended display, which is quite inconvenient. In terms of display quality, the high refresh rate of the main monitor is often backward compatible with the low refresh rate of the secondary monitor, preventing the main monitor from fully utilizing its advantages. Therefore, a more reasonable structural solution is urgently needed to solve the above-mentioned technical problems. Utility Model Content

[0003] In view of the technical problems in the prior art, where multiple displays are generally connected to the same GPU module through multiple cables, the data transmission advantages of the Type-C interface cannot be fully utilized, and the cables are messy and affect the aesthetics of the desktop, this utility model provides a solution.

[0004] To achieve the above objectives, this utility model provides a component-type display device that supports highly flexible, multi-directional, and rapid magnetic output, comprising: The main display module has a main control board inside and a Type-C interface electrically connected to the main control board on its outer wall. At least one first connection part is provided on the back of the main display module at a pre-installed location, and each of the connection parts has a first connection point. The main control board is equipped with a USB-HUB module, which converts the input signal from the Type-C interface into a USB signal and then outputs it through the first connection point. A sub-display module, wherein a second connecting portion is provided on the back of the sub-display module, and any second connecting portion forms a second connecting point; the display size of the sub-display module is smaller than the display size of the main display module; The connector has a sub-control board inside, and its two ends are magnetically connected to the first connecting part and the second connecting part, respectively. It also has data pins that are adapted to be magnetically connected to the first connecting point and the second connecting point.

[0005] As an improvement of this application, a plurality of first connecting parts are arranged around the edge of the main display module to form a plurality of pre-installed positions, the connecting parts are used to fix the sub-display module in the expected positions, and the sub-display module and the main display module generate display screens according to a protocol mode.

[0006] As an improvement of this application, when the two ends of the connector are respectively installed with the first connecting portion and the second connecting portion, at least one of the sub-display modules is fixed horizontally and vertically on the intended side of the main display module.

[0007] As an improvement of this application, each of the first connecting parts is provided with a first boss, and the first connection point is formed on the first boss; each of the second connecting parts is provided with a second boss, and the second connection point is formed on the boss; both ends of the connector are provided with grooves that are correspondingly adapted to the first boss and the second boss; the data pin is located at the bottom of the groove.

[0008] As an improvement of this application, the connector is composed of a first housing and a second housing, with one end of the first housing and the second housing facing each other connected by an adjustment mechanism to form the data stylus at the opposite end; the adjustment mechanism is such that the main display module and the sub-display module connected to the first housing and the second housing respectively form the expected taper.

[0009] As an improvement of this application, the adjustment mechanism is an arc-shaped plate, one end of which is fixedly connected to the first housing, and the other end extends and retracts within a pre-set movable channel in the second housing.

[0010] As an improvement of this application, the arc-shaped plate is further provided with a locking plate on both sides of one end near the active channel. The locking plate abuts against the exit edge of the active channel, thereby preventing the arc-shaped plate from completely disengaging from the active channel.

[0011] As an improvement of this application, the arc-shaped plate and the end of the card plate away from the first housing together form a guide portion.

[0012] As an improvement of this application, both the first connecting part and the second connecting part include magnetic strip grooves, and the two ends of the connector are provided with magnetic ribs that cooperate with the magnetic strip grooves.

[0013] As an improvement of this application, it also includes a bracket, which includes an adjustment end and a placement end, the free end being connected to a preset position on the back of the main display module, and the placement end being used to jointly support the main display module and the sub-display module.

[0014] The beneficial effects of this utility model are as follows: Compared with the prior art, this utility model provides a component-type display device that supports highly flexible multi-directional fast magnetic output, including a main display module, a sub-display module, and connectors: the back of the main display module has at least one first connection part in the pre-installed position, and each connection part has a second connection point; the main control board is equipped with a USB-HUB module, which converts the input signal of the Type-C interface into a USB signal and then outputs it through the first connection point; the back of the sub-display module has a second connection part, and each second connection part forms a second connection point with the sub-control board; the two ends of the connectors are respectively The connector is magnetically connected to the first and second connecting parts and is equipped with data pins that are adapted to connect to the first and second connecting points. By physically connecting the connector to the first and second connecting parts, the display area is expanded. At the same time, the first and second connecting points are connected to the data pins. After the main display module processes the required signals, the USB-HUB module converts the Type-C signal into a USB signal. The connector can then transmit the final signal to the sub-display module, thereby effectively activating the sub-display module to achieve display. This fully leverages the advantage of the high data throughput of the Type-C interface, ensures the cleanliness of the desktop, and greatly improves the user experience. Attached Figure Description

[0015] Figure 1 This is a connection architecture diagram of the present invention; Figure 2 This is a schematic diagram showing the cooperation between the main display module and the sub-display module of this utility model; Figure 3 This is a schematic diagram of the main display module of this utility model; Figure 4 This is a schematic diagram of the connector of this utility model; Figure 5 This is an exploded view of the connector of this utility model.

[0016] The symbols for the main components are explained below: 1. Main display module; 11. First connecting part; 111. First boss; 112. First connection point; 12. Type-C interface; 2. Sub-display module; 21. Second connecting part; 211. Second connecting point; 212. Second boss; 3. Connector; 31. Data pin; 32. Groove; 33. First housing; 34. Second housing; 35. Arc plate; 351. Clamping plate; 352. Guide; 36. Magnetic rib; 37. Movable channel; a. Magnetic suction groove. Detailed Implementation

[0017] To more clearly illustrate this utility model, the following description, in conjunction with the accompanying drawings, will provide a further picture.

[0018] In the following description, specific examples are given to provide a more in-depth understanding of the present invention. It is obvious that the described embodiments are only a part of the embodiments of the present invention, and not all of them. It should be understood that the specific embodiments described are only used to explain the present invention and are not intended to limit the present invention.

[0019] It should be understood that when the terms “comprising” and / or “including” are used in this specification, they indicate the presence of the said feature, integral, step, operation, element, or component, but do not exclude the presence or addition of one or more other features, integrals, steps, operations, elements, components, or combinations thereof.

[0020] To address the aforementioned technical problems, this application provides a component-type display device that supports highly flexible, multi-directional, and rapid magnetic output. Please refer to the appendix. Figure 1 To be continued Figure 5 The system includes a main display module 1, a sub-display module 2, and a connector 3. The main display module 1 has a main control board inside and a Type-C interface 12 electrically connected to the main control board on its outer wall. At least one first connection part is located on the back of the main display module at the pre-installation position, and each connection part has a first connection point. The main control board is equipped with a USB-HUB module, which converts the input signal from the Type-C interface into a USB signal and outputs it through the first connection point. The sub-display module 2 has a second connection part 21 on its back, and each second connection part 21 forms a second connection point 211. The connector 3 has a sub-control board inside, and its two ends are respectively connected to the first connection part 11 and the second connection part 21. It also has data pins 31 that are adapted to connect to the first connection point 112 and the second connection point 211. The second connection point 211 is electrically connected to the sub-control board. Furthermore, the display size of the sub-display module is smaller than that of the main display module, allowing for better utilization of the flexible assembly advantages of the sub-display module. The following describes the solution in this application using a practical application scenario: First, the main display module 1 is connected to the Type-C interface 12 of the display core unit of an external computer or host computer via a data cable. The Type-C interface 12 has multiple sets of transmission terminals, enabling the output of larger data volumes while supporting multiple high-speed data transmission channels and being compatible with the USB 2.0 protocol. This provides the basis for signal transmission in this application. Regarding signal channel construction, a USB-HUB module is mounted on the main control board. The USB-HUB module converts the input signal from the Type-C interface into a USB signal, which is then output through the first connection point, thus constructing multiple independent communication signals to enable output. It is understood that the number of sub-display modules 2 can be 1, 2, 3, or 4. During assembly, they can be fixedly installed on any side of the main display module 1 using only connectors 3. One can be installed, or up to four sub-display modules 2 can be installed on the intended side of the main display module 1 using multiple connectors 3. Regarding the connection with the main display module, the physical connection between connector 3 and the first connecting part 11 and the second connecting part 21, coupled with magnetic technology, enables quick assembly and disassembly. While expanding the display area, the first connecting point 112 and the second connecting point 211 are magnetically connected to the data pin 31. After processing the required signals, the main display module 1 transmits the USB signal to the sub-display module, effectively activating the sub-display module 2 to achieve display. In actual use, the main display module can display at 2K resolution and 4K resolution. The main display module operates at a resolution and high refresh rate of 144-244Hz, while the sub-display module operates at 1080p, 1200p, and a refresh rate of 60Hz. This fully leverages the high data throughput of the Type-C interface 12, while ensuring a clean desktop and greatly improving the user experience. The magnetic assembly scheme for the first connecting part 11, the second connecting part 21, and the connector 3 can be achieved by setting the magnetic elements inside the profile of the housing or in the inner wall of the housing, so it will not be elaborated further. As can be seen, in this embodiment, by means of the above-described structure, the main display module can achieve magnetic connection of the sub-display module to multiple pre-installed mounting positions and simultaneously output USB signals, thereby activating the sub-display module to perform collaborative display with the main display module. The overall assembly is simple and efficient, with high hardware resource utilization and excellent flexibility.

[0021] In this embodiment, multiple first connecting parts 11 are arranged around the edge of the main display module 1 to form multiple pre-installed positions. The connector 3 fixes the sub-display module 2 in the expected position, and the sub-display module 2 and the main display module 1 generate a display screen according to the protocol mode. When the two ends of the connector are connected to the first connecting part 11 and the second connecting part 21, the computer or host computer inputs the output signal to the main display module 1 through the Type-C interface 12. The main control board processes the audio and video signals and outputs the picture and sound, which constitutes the picture output of the main display module. At this time, the user can install the sub-display module in the desired position according to their own needs, habits, usage scenarios, etc. Based on the operating system, the user can realize the overall control of the sub-display screen and the content of the main display module through the screen allocation mode of the computer or host computer to form a display system that suits their own use.

[0022] In this embodiment, based on the arrangement of multiple second connecting parts 21 around the edge of the sub-display module 2, when the first connecting part 11 and the second connecting part 21 are installed at both ends of the connector 3, at least one sub-display module 2 is fixed horizontally or vertically on the intended side of the main display module 1. It is easy to understand that when viewing information such as vertical videos and news articles, if the display part used to expand the display area is placed vertically, it will be more suitable for the usage scenario. Therefore, in this embodiment, the first connecting part 11 and the second connecting part 21 are placed on the edge of their respective display modules. When installed by the connector 3, the user can install the sub-display module 2 vertically or horizontally on one side of the main display module 1. Vertical installation of the sub-display module 2 can better view short videos, news articles, etc.; while horizontal installation can form a shape similar to an "ultrawide screen"; it can also be installed on the long side of the main display module 1, which is more suitable for scenarios such as video editing and adding audio tracks, which require alignment with the working axis.

[0023] In this embodiment, each of the first connecting parts 11 is provided with a first boss 111, and a first connection point is formed on the first boss 111; each of the second connecting parts 21 is provided with a second boss 212, and a second connection point is formed on the boss; both ends of the connector 3 are provided with grooves 32 that are correspondingly adapted to the insertion of the first boss 111 and the second boss 212; the data pin 31 is located at the bottom of the groove of the groove 32; it is easy to understand that the first boss 111 and the second boss 212 have the same structure, which facilitates the quick installation of the connector 3; while the boss and the groove 32 are mutually fitted, the corresponding connection point and the data pin 31 are connected to realize the construction of the signal channel, which greatly provides the user with a quick assembly experience.

[0024] In this embodiment, the connector 3 consists of a first housing 33 and a second housing 34. The main body of the sub-control board can be placed inside the first housing 33 and the second housing 34. It is only necessary to electrically connect the data pins 31 at both ends to the sub-control board. The opposite ends of the first housing 33 and the second housing 34 are connected by an adjustment mechanism to form the data pins 31. The adjustment mechanism is used to make the main display module 1 and the sub-display module 2 connected to the first housing 33 and the second housing 34 form the expected taper. The adjustment structure can be a hinge structure, a hinge structure, or a structure that enables the first housing 33 and the second housing 34 to fold. Under the above structural scheme, the user can adjust the taper between the sub-display module 2 and the main display module 1 according to their own requirements during use, and can obtain a better user experience.

[0025] In this embodiment, the adjustment mechanism is an arc-shaped plate 35. One end of the arc-shaped plate 35 is fixedly connected to the first housing 33, and the other end extends and retracts within the movable channel 37 of the second housing 34. It is easy to understand that the arc-shaped plate 35 can be directly set on the profile of the first housing 33, and the second housing 34 forms a corresponding movable channel 37. The two display modules adjust according to the curvature of the arc-shaped plate 35. The overall solution is simpler, the two display modules can stop in time, and it does not depend on any elastic software, resulting in a longer and more stable structural life.

[0026] As an improvement of this application, the arc-shaped plate 35 is provided with clamping plates 351 on both sides of one end near the movable channel 37. The clamping plates 351 abut against the exit edge of the movable channel 37, thereby preventing the arc-shaped plate 35 from completely disengaging from the movable channel 37. This makes the arc-shaped plate 35 and the movable channel 37 more reasonable, preventing the arc-shaped plate 35 from completely disengaging due to excessive force by the user. In a further improvement, the arc-shaped plate 35 and the clamping plates 351 together form a guide portion 352 at the end away from the first housing 33, which facilitates the transfer and assembly by technicians and reduces production time.

[0027] In this embodiment, both the first connecting part 11 and the second connecting part 21 include a magnetic suction groove a, and the two ends of the connector 3 are provided with magnetic suction ribs 36 that cooperate with the magnetic suction groove a. The addition of the magnetic suction groove a and the magnetic suction ribs 36 can greatly improve the stability of the assembly, while the magnetic suction groove a and the magnetic suction ribs 36 can also provide a good guiding installation effect, enabling users to achieve precise assembly.

[0028] In this embodiment, there are multiple sets of magnetic suction slots, and the number of magnetic suction ribs matches the number of magnetic suction slots. The arrangement direction of the magnetic suction slots and the first connection point is perpendicular to each other. Under this design, after the connector is connected to the sub-display module and the main display module, the first connection point and the data pin achieve stable automatic alignment, further increasing the ability of the structure to connect quickly and making it convenient for users to use quickly.

[0029] The advantages of this utility model are: Through the physical connection between the connector and the first and second connecting parts, coupled with magnetic technology, quick assembly and disassembly can be achieved. While expanding the display area, the first and second connecting points are connected to the data pins. After the main display module processes the required signals, the idle channels of the Type-C interface can transmit signals to the sub-display module, thereby effectively activating the sub-display module to achieve display. This fully leverages the advantage of the high data throughput of the Type-C interface, while ensuring the cleanliness of the desktop and greatly improving the user experience.

[0030] The above-disclosed embodiments are only a few specific examples of this utility model. However, this utility model is not limited thereto. Any variations that can be conceived by those skilled in the art should fall within the protection scope of this utility model.

Claims

1. A component-type display device supporting highly flexible, multi-directional, and rapid magnetic output, characterized in that, include: The main display module has a main control board inside and a Type-C interface electrically connected to the main control board on its outer wall. At least one first connection part is provided on the back of the main display module at a pre-installed location, and each of the connection parts has a first connection point. The main control board is equipped with a USB-HUB module, which converts the input signal from the Type-C interface into a USB signal and then outputs it through the first connection point. A sub-display module, wherein a second connecting portion is provided on the back of the sub-display module, and any second connecting portion forms a second connecting point; the display size of the sub-display module is smaller than the display size of the main display module; The connector has a sub-control board inside, and its two ends are magnetically connected to the first connecting part and the second connecting part, respectively. It also has data pins that are adapted to be magnetically connected to the first connecting point and the second connecting point.

2. The component-type display device supporting highly flexible multi-directional rapid magnetic output according to claim 1, characterized in that, Multiple first connecting parts are arranged around the edge of the main display module to form multiple pre-installed positions. The connectors are used to fix the sub-display module in the expected position, and the sub-display module and the main display module generate a display screen according to the protocol mode.

3. The component-type display device supporting highly flexible multi-directional rapid magnetic output according to claim 2, characterized in that, When the first connecting portion and the second connecting portion are installed at both ends of the connector, at least one of the sub-display modules is fixed horizontally and vertically on the intended side of the main display module.

4. The component-type display device supporting highly flexible multi-directional rapid magnetic output according to claim 3, characterized in that, Each of the first connecting parts is provided with a first boss, and the first connection point is formed on the first boss; each of the second connecting parts is provided with a second boss, and the second connection point is formed on the boss; both ends of the connector are provided with grooves that are correspondingly adapted to the first boss and the second boss; the data pin is located at the bottom of the groove.

5. The component-type display device supporting highly flexible multi-directional rapid magnetic output according to claim 1, characterized in that, The connector consists of a first housing and a second housing. The opposite ends of the first housing and the second housing are connected by an adjustment mechanism to form the data stylus. The adjustment mechanism is designed to make the main display module and the sub-display module connected to the first housing and the second housing form a desired taper.

6. The component-type display device supporting highly flexible multi-directional rapid magnetic output according to claim 5, characterized in that, The adjustment mechanism is an arc-shaped plate, one end of which is fixedly connected to the first housing, and the other end extends and retracts within a pre-set movable channel in the second housing.

7. The component-type display device supporting highly flexible multi-directional rapid magnetic output according to claim 6, characterized in that, The arc-shaped plate is also provided with clamping plates on both sides of one end near the movable channel. The clamping plates abut against the exit edge of the movable channel, thereby preventing the arc-shaped plate from completely detaching from the movable channel.

8. The component-type display device supporting highly flexible multi-directional rapid magnetic output according to claim 7, characterized in that, The arc-shaped plate and the card plate together form a guide portion at the end away from the first housing.

9. The component-type display device supporting highly flexible multi-directional fast magnetic output according to any one of claims 1-8, wherein the first connecting part and the second connecting part both include magnetic strip grooves, and the two ends of the connecting member are provided with magnetic ribs that cooperate with the magnetic strip grooves.

10. The component-type display device supporting highly flexible multi-directional fast magnetic attraction output according to claim 9, wherein the number of magnetic attraction slots is multiple sets, the number of magnetic attraction ribs matches the number of magnetic attraction slots; the arrangement of the magnetic attraction slots and the first connection point is perpendicular to each other.