Data interface for high-definition picture processing host
By designing interface components with interchangeable interface types and dust removal and prevention components, the problems of insufficient data interface types and dust in computer hosts were solved, and a stable and multifunctional data interface connection was achieved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-11-28
- Publication Date
- 2026-03-20
AI Technical Summary
Existing computer mainframes have a limited range of data interfaces, which cannot meet various work requirements, and they are prone to dust accumulation and unstable connections.
A data interface for a high-definition image processing host is designed, comprising an interface component that can change the type of data interface, a dust cleaning component, and a dustproof component. The interface type can be switched by adjusting the rotation of the motor-driven mounting column, the dust cleaning component is used to clean the dust, and the dustproof component prevents dust from entering.
It enables the selection of appropriate interface types based on requirements, ensuring stable connections and preventing dust from affecting them, thus meeting various work needs and improving connection reliability.
Smart Images

Figure CN121705221A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of computer technology, specifically to a data interface for a high-definition image processing host. Background Technology
[0002] Data interfaces are used for data transfer between electronic devices. Currently, various standards and different uses exist for data interfaces. Most computers are equipped with USB data interfaces, but USB interfaces also vary. For example, USB 2.0 data interfaces have a maximum transfer speed of 480Mbps (60 MB / s) and are widely used to connect various external devices such as keyboards, mice, printers, and USB flash drives. USB 3.0 / 3.1 data interfaces offer significantly improved transfer speeds, with USB 3.0 reaching 5Gbps (625 MB / s) and USB 3.1 reaching 10Gbps (1250 MB / s). However, for processing certain high-definition images and videos, HDMI interfaces are more suitable. Therefore, traditional computer hosts have fewer types of data interfaces, which may not meet various work requirements. Furthermore, most existing data interfaces are exposed, making them prone to dust accumulation, and accidental contact during connection can easily break the connection. Therefore, improvements are needed. Summary of the Invention
[0003] The purpose of this invention is to provide a data interface for a high-definition image processing host to solve the problems mentioned in the background art.
[0004] To achieve the above objectives, the present invention provides the following technical solution: a data interface for a high-definition image processing host, comprising a host body, a connection window being provided at the upper front end of the host body, an installation chamber communicating with the connection window being provided inside the host body, and an interface component capable of changing the type of data interface being provided in the installation chamber; A dust removal component is provided below the interface component, and the dust removal component is used to clean the dust inside the interface component; A dustproof component is provided at the connection window to prevent dust from entering the data interface and to reinforce the connection of the data interface.
[0005] Preferably, the interface component includes a mounting post, on which several mounting surfaces for arranging plug interfaces are provided. Each mounting surface is provided with several plug interfaces, and the types of plug interfaces provided on different mounting surfaces are different. One of the mounting surfaces faces the connection window.
[0006] Preferably, each end of the mounting post is provided with a mounting shaft, which is rotatably mounted in the mounting cavity via bearings. A driven gear is provided on one side of the mounting shaft, and an adjusting motor is provided in the mounting cavity. A driving gear is provided on the output end of the adjusting motor. The driving gear and the driven gear are meshed and connected. By controlling the start of the adjusting motor, the driving gear and the driven gear are driven to rotate, which in turn controls the mounting shaft to drive the mounting post to rotate, thereby controlling the mounting post to face the mounting surface of the connection window.
[0007] Preferably, a connector is provided on the mounting shaft on the other side of the mounting column, and several connecting pins are provided on the connector. A docking assembly is provided on this side of the mounting column to connect with the connecting pins. The docking assembly is used to electrically connect with the connecting pins and can fix the mounting column to prevent it from moving.
[0008] Preferably, the docking assembly includes a movable block with a "U"-shaped structure. The connector is located in the middle of the movable block, and a connection socket is provided inside the movable block. One of the connection pins is inserted into the connection socket, and the connection pin is connected to the connector. A wire connected to the motherboard inside the host machine is provided on the movable block. The wire is connected to the connection socket. When the connection pin is inserted into the connection socket, the two form an electrical connection, which connects the connector to the motherboard. The movable block is slidably disposed in the fixed frame. A base frame is provided between the two pins at the bottom of the movable block. A first telescopic rod is installed between the base frame and the bottom of the fixed frame, and two tension springs are connected to the bottom of the movable block.
[0009] Preferably, each mounting surface has a side hole on both sides, and an inner partition is provided inside each plug-in interface. The inner partition has fine holes, and a cavity is formed between the inner partition and the inner end face of the plug-in interface. The side hole of each mounting surface is connected to the cavity.
[0010] Preferably, the dust removal assembly includes a filter frame, the upper surface of which is a sloping structure and corresponds to the mounting surface below the mounting column. An air inlet is provided on each side of the bottom surface of the filter frame, and an air duct is installed in the air inlet. A plug pipe is provided on the upper surface of the filter frame and communicates with the air inlet. The plug pipe corresponds to the side hole on the mounting surface below the mounting column. Two second telescopic rods are installed at the bottom of the filter frame. The filter frame is provided with an installation groove, which has openings on the top and back surfaces. A filter element is filled in the installation groove, and several air vents are provided on the filter element.
[0011] Preferably, the two openings of the vent are located on the top and back surfaces of the filter element, respectively. The vent has an S-shaped structure inside the filter element, and a coating for adsorbing dust is attached to the inner wall of the vent.
[0012] Preferably, the air vents are staggered inside the filter element, forming a mesh-like structure inside the filter element. Both of these structures are designed to increase the path length of air passing through the filter element, allowing dust in the air to be absorbed by the filter element, thereby achieving a purification effect.
[0013] Preferably, the dustproof component includes two symmetrically arranged outer sealing plates. A sliding groove is provided on the inner side wall of the connecting window. The two ends of the outer sealing plates are slidably embedded in the sliding groove. A clamping groove is provided on the outer sealing plate, and the position of the clamping groove corresponds to the insertion interface. A side block is provided on one side of the outer sealing plate, and a threaded hole is provided on the side block. A torsion column is rotatably installed on the main body. Two threaded columns are provided on the torsion column, and the threaded columns are respectively connected to the threaded holes on the two side blocks. By rotating the torsion column, the two side blocks move in opposite directions.
[0014] Preferably, ball bearings are installed on one side wall of the outer sealing plate to reduce friction during sliding.
[0015] Preferably, the clamping groove is provided with a mounting hole, and a stop block is movably inserted into the mounting hole, with a push spring connected to the bottom of the stop block.
[0016] Compared with the prior art, the beneficial effects of the present invention are: The present invention proposes a data interface for a high-definition image processing host. Because it is equipped with an interface component that can change the type of data interface, the appropriate type of plug interface can be selected according to the needs, thereby meeting different types of work requirements. In addition, it is equipped with a dust cleaning component and a dust prevention component to prevent dust from accumulating inside the plug interface and affecting the connection, and to make the connection more stable. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the external structure of the main body of the present invention.
[0018] Figure 2 This is a schematic diagram of the internal structure of the connection window of the present invention.
[0019] Figure 3 This is a schematic diagram of the interface component and the dust removal component of the present invention.
[0020] Figure 4 This is a schematic diagram of the internal structure of the connector of the present invention.
[0021] Figure 5 This is a schematic diagram of the connection pin connection structure of the present invention.
[0022] Figure 6 This is a diagram showing the connection structure of the docking component of the present invention.
[0023] Figure 7 This is a schematic diagram of the docking component structure of the present invention.
[0024] Figure 8 This is a schematic diagram of the structure of the dust removal component of the present invention.
[0025] Figure 9 This is another perspective view of the dust removal component of the present invention.
[0026] Figure 10 This is a schematic diagram of the filter element structure of the present invention.
[0027] Figure 11 This is a schematic diagram of the dustproof component structure of the present invention.
[0028] Figure 12 This is a schematic diagram of the outer sealing plate structure of the present invention.
[0029] Figure 13 for Figure 12 Enlarged view of point A in the middle.
[0030] Figure 14 This is a diagram of the block connection structure of the present invention.
[0031] In the diagram: 1. Main unit body, 101. Connecting window, 2. Mounting post, 3. Insertion interface, 301. Inner partition, 4. Mounting shaft, 5. Driven gear, 6. Adjusting motor, 7. Driven gear, 8. Connecting head, 9. Connecting insert, 10. Fixed frame, 11. Movable block, 12. Connecting hole, 13. Base frame, 14. First telescopic rod, 15. Tension spring, 16. Side hole, 17. Filter frame, 18. Air inlet, 19. Insertion pipe, 20. Second telescopic rod, 21. Filter element, 2101. Ventilation channel, 22. Outer sealing plate, 23. Clamping groove, 24. Side block, 25. Torsion post, 26. Threaded post, 27. Stop block, 28. Push spring. Detailed Implementation
[0032] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0033] Please see Figures 1 to 14This invention provides a technical solution: a data interface for a high-definition image processing host, including a host body 1, a connection window 101 on the upper front of the host body 1, an installation chamber communicating with the connection window 101 inside the host body 1, and an interface component capable of changing the type of data interface in the installation chamber; the interface component includes a mounting post 2, which has several mounting surfaces for arranging plug interfaces 3, each mounting surface having several plug interfaces 3, which are data interfaces, including USB 3.0, USB 3.1, Thunderbolt 1 / 2, Thunderbolt 3 / 4, HDMI, etc., each used for different functions, and the types of plug interfaces 3 on different mounting surfaces are different, one of the mounting surfaces facing the connection window 101, so that a plug can be connected when the connection window 101 is open.
[0034] A mounting shaft 4 is provided at each end of the mounting column 2. The mounting shaft 4 is rotatably mounted in the mounting chamber via bearings. A driven gear 5 is provided on one side of the mounting shaft 4. An adjusting motor 6 is provided in the mounting chamber. A driving gear 7 is provided on the output end of the adjusting motor 6. The driving gear 7 and the driven gear 5 are meshed. By controlling the adjustment motor 6 to start, the driving gear 7 and the driven gear 5 are driven to rotate, which in turn controls the mounting shaft 4 to drive the mounting column 2 to rotate. This controls the mounting column 2 to face the mounting surface of the connection window 101. Therefore, when the plug interface 3 on the mounting surface facing the connection window 101 is not suitable for use, it needs to be replaced with a plug interface 3 on another mounting surface. By controlling the adjustment motor 6 to start, the driving gear 7 is driven to rotate, which in turn drives the mounting column 2 to flip over, so that the mounting surface facing the connection window 101 has the required type of plug interface 3. The control method is not unique. A control panel can be set on the outside of the main body 1, or the control operation can be provided through a computer control interface. The method is not unique and is relatively simple, so it will not be described in detail.
[0035] A connector 8 is provided on the mounting shaft 4 on the other side of the mounting post 2. Several connecting pins 9 are provided on the connector 8. A docking assembly is provided on this side of the mounting post 2 to connect with the connecting pins 9. The docking assembly is used to electrically connect with the connecting pins 9 and can fix the mounting post 2 to prevent it from moving.
[0036] The docking assembly includes a movable block 11, which has a "U"-shaped structure. The connector 8 is located in the center of the movable block 11. A connection socket 12 is provided within the movable block 11, with a connecting pin 9 correspondingly inserted into the connection socket 12. The connecting pin 9 is connected to the connector 3. A wire connected to the motherboard inside the host chassis 1 is provided on the movable block 11, and the wire is connected to the connection socket 12. When the connecting pin 9 is inserted into the connection socket 12, an electrical connection is formed, connecting the connector 3 to the motherboard. When a plug is inserted into the connector 3, a computer can be connected. The specific circuit structure and device model settings of each component are common knowledge in the art and therefore will not be described in detail here. The movable block 11 is slidably mounted within the fixed frame 10. A base frame 13 is provided between the two columns at the bottom of the movable block 11. A first telescopic rod 14 is installed between the base frame 13 and the bottom of the fixed frame 10. Two tension springs 15 are connected to the bottom of the movable block 11. When it is necessary to adjust and rotate the mounting column 2, the base frame 13 and the movable block 11 are pushed upward by controlling the extension of the first telescopic rod 14, so that the connecting pin 9 is pulled out from the connecting hole 12 and disconnected. After the mounting column 2 is rotated, one of the connecting pins 9 is facing upward. Then the first telescopic rod 14 retracts so that the connecting pin 9 is inserted into the connecting hole 12 to complete the connection. At the same time, the movable block 11 fixes the connecting pin 9. The connector 8, mounting shaft 4 and mounting column 2 are all fixed and will not move freely, making the connection more stable and precise.
[0037] Each mounting surface has a side hole 16 on both sides. A filter screen can be installed inside the cavity. An inner partition 301 is installed inside each plug interface 3. The inner partition 301 has fine holes. A cavity is formed between the inner partition 301 and the inner end face of the plug interface 3. The side hole 16 of each mounting surface is connected to the cavity. A dust removal component is installed below the interface component to clean the dust inside the interface component. The dust removal component includes a filter frame 17, the upper surface of which is a sloping structure and corresponds to the mounting surface below the mounting post 2. An air inlet 18 is provided on each side of the bottom surface of the filter frame 17. A filter screen needs to be installed at the opening of the air inlet 18. An air duct device (such as a fan) is installed inside the air inlet 18. A plug pipe 19 connected to the air inlet 18 is provided on the upper surface of the filter frame 17. The plug pipe 19 corresponds to the side hole 16 on the mounting surface below the mounting post 2. Two second telescopic rods 20 are installed at the bottom of the filter frame 17. An installation groove is provided inside the filter frame 17. The installation groove has openings on the top and back surfaces of the filter frame 17. A filter element 21 is filled in the installation groove. Several ventilation channels 2101 are provided on the filter element 21.
[0038] The two openings of the vent 2101 are located on the top and back surfaces of the filter element 21, respectively. The vent 2101 has an S-shaped structure inside the filter element 21, and a coating for adsorbing dust is attached to the inner wall of the vent 2101. In another embodiment, the ventilation channels 2101 are staggered inside the filter element 21, forming a mesh structure inside the filter element 21. Both of these structures are designed to increase the path length of air passing through the filter element 21, allowing dust in the air to be absorbed by the filter element 21, thereby achieving a purification effect. After the equipment has been used for a long time, some dust may accumulate inside the connector 3. This dust can affect the connection of the equipment and needs to be cleaned in time. By controlling the extension of the second telescopic rod 20, the filter frame 17 is pushed up, so that the top surface of the filter frame 17 is attached to the mounting surface below the mounting column 2. At this time, the connector 19 is inserted into the side hole 16, and the air-driving device is activated. The air blows from the inside of the connector 3 outward, blowing the dust inside the connector 3 and towards the filter element 21. After the air carrying dust passes through the ventilation channels 2101, the dust is absorbed by the filter element 21, thus achieving a cleaning effect. After one mounting surface is cleaned, the mounting column 2 can be rotated to clean other mounting surfaces.
[0039] A dustproof component is provided at the connection window 101 to prevent dust from entering the data interface and to reinforce the connection of the data interface. The dustproof component includes two symmetrically arranged outer sealing plates 22. A sliding groove is provided on the inner side wall of the connection window 101. The two ends of the outer sealing plates 22 slide into the sliding groove. A ball bearing is installed on one side wall of the outer sealing plates 22 to reduce the friction during sliding. A clamping groove 23 is provided on the outer sealing plates 22. The shape of the clamping groove 23 matches the shape of the plug and can fix it. The position of the clamping groove 23 corresponds to the plug interface 3. A side block 24 is provided on one side of the outer sealing plates 22. The side block 24 has a threaded hole. A torsion post 25 is rotatably mounted on the main body 1. Two threaded posts 26 are provided on the torsion post 25. The threaded posts 26 are respectively connected to the threaded holes on the two side blocks 24. By rotating the torsion post 25, the two side blocks 24 move in opposite directions. The clamping groove 23 has an installation hole, and a stop 27 is movably inserted into the installation hole. A push spring 28 is connected to the bottom of the stop 27. When the connector 3 is not needed, the two outer sealing plates 22 are closed, and the upper and lower stop blocks 27 are also pushed together by the push spring 28, so that the connection window 101 is sealed and dust cannot enter the interior. When the connector 3 is needed, the outer sealing plates 22 are separated by rotating the knob on the top of the torsion column 25. After the plug is inserted into the connector 3 to complete the connection, the torsion column 25 is reversed to close the outer sealing plates 22. The connector wire is located at the clamping groove 23. The push springs 28 at the upper and lower ends are in a compressed state, and the stop 27 clamps the connector wire. The tail end of the plug is embedded in the inner end of the clamping groove 23. At this time, the connection window 101 is also in a relatively closed state and the plug is fixed, which is more stable and will not be easily pulled out.
[0040] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A data interface for a high-definition image processing host, comprising a host body, characterized in that: A connection window is provided at the upper end of the front of the main body of the host. An installation chamber connected to the connection window is provided inside the main body of the host, and an interface component capable of changing the types of data interfaces is provided in the installation chamber; A dust cleaning component is provided below the interface component, and the dust cleaning component is used to clean the dust in the interface component; A dust prevention component is provided at the connection window, and the dust prevention component is used to prevent dust from entering the data interface and strengthen the connection of the data interface.
2. The data interface for a high-definition image processing host according to claim 1, characterized in that: The interface component includes an installation column. Several installation surfaces for arranging plug interfaces are provided on the installation column. Several plug interfaces are provided on each installation surface, and the types of plug interfaces provided on different installation surfaces are different. One of the installation surfaces faces the connection window.
3. The data interface for a high-definition image processing host according to claim 2, characterized in that: One installation shaft is provided at each end of the installation column. The installation shaft is rotationally installed in the installation chamber through a bearing. A driven gear is provided on one of the installation shafts. An adjustment motor is provided in the installation chamber. A driving gear is provided at the output end of the adjustment motor. The driving gear is meshed and connected with the driven gear. By controlling the start of the adjustment motor, the driving gear and the driven gear are driven to rotate, and then the installation shaft is controlled to drive the installation column to rotate, so as to control the installation surface of the installation column facing the connection window.
4. The data interface for a high-definition image processing host according to claim 2, characterized in that: A connection head is provided on the installation shaft on the other side of the installation column. Several connection plug columns are provided on the connection head. A docking component connected to the connection plug columns is provided on this side of the installation column. The docking component is used for electrically connecting with the connection plug columns and can fix the installation column to prevent it from moving.
5. The data interface for a high-definition image processing host according to claim 4, characterized in that: The docking component includes a movable block. The movable block has a "C" - shaped structure. The connection head is located in the middle of the movable block. A connection jack is provided in the movable block. One of the connection plug columns is correspondingly inserted into the connection jack. The connection plug column is connected to the plug interface. A wire connected to the main board inside the main body of the host is provided on the movable block. The wire is connected to the connection jack. When the connection plug column is inserted into the connection jack, the two are electrically connected, and the plug interface can be connected to the main board. The movable block is slidably arranged in a fixed frame. A chassis is provided between the two columns at the bottom of the movable block. A first telescopic rod is installed between the chassis and the bottom of the fixed frame, and two tension springs are connected to the bottom of the movable block.
6. The data interface for a high-definition image processing host according to claim 2, characterized in that: One side hole is provided on each side of each installation surface. An inner partition is provided inside each plug interface. Fine holes are provided on the inner partition. A cavity is formed between the inner partition and the inner end surface of the plug interface. The side holes on each installation surface are connected to the cavity.
7. The data interface for a high-definition image processing host according to claim 1, characterized in that: The dust cleaning component includes a filter box. The upper surface of the filter box is of an inclined surface structure and corresponds to the installation surface below the installation column. An air inlet is provided on each side of the bottom surface of the filter box. An air guiding device is installed in the air inlet. A connecting pipe is provided on the upper surface of the filter box and is connected to the air inlet. The connecting pipe corresponds to the side hole on the installation surface below the installation column. Two second telescopic rods are installed at the bottom of the filter box; An installation groove is provided inside the filter box. The installation groove has openings on the top surface and the back surface of the filter box. A filter element is filled in the installation groove. Several ventilation channels are provided on the filter element.
8. The data interface for a high-definition image processing host according to claim 7, characterized in that: The two openings of the vent are located on the top and back surfaces of the filter element, respectively. The vent has an S-shaped structure inside the filter element, and a coating for adsorbing dust is attached to the inner wall of the vent.
9. The data interface for a high-definition image processing host according to claim 7, characterized in that: The air vents are staggered inside the filter element, forming a mesh-like structure. Both of these structures are designed to increase the path length of air passing through the filter element, allowing dust in the air to be absorbed by the filter element, thereby achieving a purification effect.
10. A data interface for a high-definition image processing host according to claim 1, characterized in that: The dustproof assembly includes two symmetrically arranged outer sealing plates. A sliding groove is provided on the inner side wall of the connecting window. The two ends of the outer sealing plate are slidably embedded in the sliding groove. A clamping groove is provided on the outer sealing plate, and the position of the clamping groove corresponds to the insertion interface. A side block is provided on one side of the outer sealing plate, and a threaded hole is provided on the side block. A torsion column is rotatably installed on the main body. Two threaded columns are provided on the torsion column, and the threaded columns are respectively connected to the threaded holes on the two side blocks. By rotating the torsion column, the two side blocks move in opposite directions.
11. A data interface for a high-definition image processing host according to claim 10, characterized in that: The outer sealing plate has ball bearings installed on one side wall to reduce friction during sliding.
12. The data interface for a high-definition image processing host according to claim 10, characterized in that: The clamping groove is provided with a mounting hole, and a stop block is movably inserted into the mounting hole. A push spring is connected to the bottom of the stop block.