An audio-visual data storage device

By designing the plug-in channel, switching mechanism and heat dissipation mechanism of the audio-visual data storage device, the cumbersome operation problems in the prior art are solved, and the fast connection, positioning and targeted heat dissipation of the hard disk are realized, and the stability and security of storage are improved.

CN119400218BActive Publication Date: 2025-07-01CHINA YANGTZE POWER
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Patent Information

Application Number
CN202411528975.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-10-30
Publication Date
2025-07-01
Estimated Expiration
2044-10-30

AI Technical Summary

Technical Problem

The existing audio and video data storage devices are cumbersome during operation, and cannot efficiently connect, transmit, dissipate heat and re-plug and unplug, and cannot provide stability and reliability.

Method used

An audio-visual data storage device is designed, including a storage compartment, air-cooling component, positioning mechanism and transmission component. Through the combination of plug-in channels, switching mechanisms and heat dissipation mechanisms, it can achieve rapid connection, positioning and targeted heat dissipation, avoiding interference and friction of hard disks.

Benefits of technology

It improves the uniformity and stability of data management, ensures fast connection and transmission of hard disks and targeted heat dissipation effects, avoids hard disk shaking and friction, and improves storage security and reliability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention provides an audio-visual data storage device, which relates to the technical field of data storage, and comprises a storage device body, wherein the storage device body comprises a storage bin, an air cooling component, a positioning mechanism and a transmission component, wherein a plurality of plug-in channels are provided inside the storage bin, a partition is inserted at the top of the plug-in channel, a guide cavity is provided at the top of the partition, a heat dissipation mechanism is embedded at the bottom of the guide cavity, a cover is hingedly provided at the outer side of the plug-in channel, an outer air outlet is provided on the surface of the cover, and a lifting channel is provided at the inner rear end of the storage bin. The audio-visual data storage device improves the uniformity of data management, and the heat dissipation mechanism is linked and controlled by means of a switching mechanism, so that an audio-visual data hard disk at any position can be quickly connected and targeted heat dissipation treatment can be provided, and a clamping effect is also provided in the connected state, thereby improving the stability and reliability in the connection transmission process.
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Description

Technical Field

[0001] The present invention relates to the technical field of data storage, and particularly to an audio-visual data storage device. Background Art

[0002] In the case of a large amount of audio-visual data, it is necessary to uniformly store the hard disks of this part of audio-visual data, so as to improve the efficiency and security of data management. Through unified storage, the access and security of audio-visual data can be better controlled, preventing data leakage and improper use. In addition, unified storage can also improve the reliability and availability of data, ensuring that once a storage unit fails, the system can automatically switch to a standby storage unit to ensure normal access to data.

[0003] In the prior art, for the storage device of audio-visual data, the hard disks recording a large amount of audio-visual data are directly stacked inside the hard disk box and closed. However, in the subsequent use of one of the data storage hard disks, the entire storage device needs to be opened, and then manually connected. This process has cumbersome operation steps, interferes with the storage status of multiple hard disks, and can only provide a single storage function, unable to provide efficient control assistance for subsequent data connection, transmission, heat dissipation, and re-plugging storage processes. Summary of the Invention

[0004] Aiming at the deficiencies of the prior art, the purpose of the present invention is to provide an audio-visual data storage device to solve the problems raised in the above background art. The present invention improves the unity of data management, can quickly connect the audio-visual data hard disks at any position and provide targeted heat dissipation treatment, and at the same time provides a clamping effect in the connected state, improving the stability and reliability in the connection and transmission process.

[0005] To achieve the above purpose, the present invention is realized through the following technical solutions: An audio-visual data storage device, including a storage device body, the storage device body includes a storage bin, an air-cooling component, a positioning mechanism, and a transmission component. A plurality of insertion channels are opened inside the storage bin, a partition is inserted at the top of the insertion channel, a diversion cavity is opened at the top of the partition, a heat dissipation mechanism is embedded at the bottom of the diversion cavity, a cover plate is hinged on the outside of the insertion channel, an outer air outlet is opened on the surface of the cover plate, a lifting channel is opened at the rear end inside the storage bin, the transmission component is embedded inside the lifting channel, telescopic slots are opened at both ends of the transmission component, the positioning mechanism is embedded inside the telescopic slots, a switching mechanism is installed on the inner wall of the insertion channel, a rotating shaft is inserted through the middle of the switching mechanism, and both ends of the rotating shaft are embedded on the inner wall of the insertion channel through bearings.

[0006] Further, the transmission component includes a plug-in board and an extension board. A diversion plate is welded to the top of the plug-in board. An air-cooling duct is plugged into the top of the diversion plate. The extension board is welded to the rear end of the plug-in board, and threaded sleeves are provided on the surface of the extension board.

[0007] Further, a motor is screwed to the top of the lifting channel. A lead screw is inserted into the output end of the motor. The lead screw passes through the inside of the threaded sleeve, and the end of the lead screw is embedded in the bottom position of the lifting channel through a bearing.

[0008] Further, an air-cooling component is screwed to the top of the storage bin. One end of the air-cooling duct is inserted into the air-cooling component. The side of the plug-in board abuts against the inner wall of the lifting channel, and a plurality of data connection ports are provided on the surface of the plug-in board.

[0009] Further, the positioning mechanism includes a threaded post and a plug-in post. The plug-in post is embedded in the inside of the telescopic groove. A second spring is connected to the rear end of the plug-in post. A threaded hole is provided on the side of the storage bin, and the threaded post is inserted through the threaded hole.

[0010] Further, a knob is integrally formed at the front end of the threaded post, and a top piece is integrally formed at the rear end of the threaded post. A ball is embedded at the front end of the plug-in post. The rear end of the second spring is fixedly connected to the inner wall of the telescopic groove. The top piece is used to be embedded into the inner wall of the storage bin or flush with the inner wall of the storage bin.

[0011] Further, the switching mechanism includes a rotating shaft, a pressing rod and a front baffle. Transmission plates are welded to both ends of the rotating shaft. The pressing rod and the front baffle are respectively welded to both ends of the transmission plate. A second magnetic plate is attached to the end of the front baffle.

[0012] Further, a first magnetic plate is also attached to the top of the plug-in board. After the second magnetic plate rotates to a horizontal state around the rotating shaft, it is partially adsorbed and attached to the first magnetic plate.

[0013] Further, the heat dissipation mechanism includes a heat conduction plate and heat dissipation fins. The heat dissipation fins are integrally formed on the top of the heat conduction plate. Side baffles are welded to both ends of the surface of the heat conduction plate, and a top plate is integrally formed on the top of the side baffles.

[0014] Further, a first spring is connected to the bottom of the top plate. The bottom end of the first spring is fixed to the partition board. The side baffles pass through the surface of the partition board. An inner air outlet is provided on the surface of one of the side baffles.

[0015] Advantages of the present invention:

[0016] 1. The audio - visual data storage device is built - in with a transmission component. The transmission component can be quickly positioned and moved to the position of the data hard disk that needs to be connected and transmitted through the driving structure at the top and the positioning mechanism inserted on the side, improving the efficiency of data docking and transmission. And in this process, it is not necessary to take out the audio - visual data hard disk, and it also avoids causing additional interference to other hard disks that do not need to be connected.

[0017] 2. The audio - visual data storage device is equipped with an independent heat - dissipation mechanism and a switching mechanism inside each plug - in channel. With the help of the switching mechanism, a more enclosed space can be provided when storing each data hard disk, and its moving position can be restricted, avoiding large - amplitude shaking of the internal data hard disks when the entire storage bin is collided, thus improving the storage security.

[0018] 3. When the data hard disk is placed inside the storage bin, the heat - dissipation mechanism will not rub against the surface of the data hard disk at this time. Only when reading and writing data to this data hard disk subsequently, will the fitting process of this data hard disk be realized by the cooperation of the transmission component and the switching mechanism, and it is ensured that the air - cooling component at the top can also provide heat - dissipation treatment only for the used data hard disk, providing a more targeted heat - dissipation effect and also avoiding the friction problem of the heat - dissipation component. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] Figure 1 is a schematic structural diagram of the outer shape of an audio - visual data storage device of the present invention;

[0020] Figure 2 is a schematic structural diagram of the transmission component part of the present invention;

[0021] Figure 3 is a side cross - sectional view of an audio - visual data storage device of the present invention;

[0022] Figure 4 is a schematic structural diagram of the heat - dissipation mechanism part of the present invention;

[0023] Figure 5 is a schematic structural diagram of the switching mechanism part of the present invention;

[0024] Figure 6 is Figure 3 an enlarged view of area A in

[0025] Figure 7 is a split view of the positioning mechanism part of the present invention;

[0026] In the figure: 1, storage bin; 2, cover plate; 3, outer air outlet; 4, air-cooling component; 5, air-cooling duct; 6, motor; 7, positioning mechanism; 8, transmission component; 9, extension plate; 10, lead screw; 11, plug-in plate; 12, threaded sleeve; 13, first magnetic attraction plate; 14, guide plate; 15, telescopic groove; 16, plug-in channel; 17, heat dissipation mechanism; 18, lifting channel; 19, threaded hole; 20, switching mechanism; 21, heat conduction plate; 22, heat dissipation fins; 23, side baffle; 24, top plate; 25, inner air outlet; 26, first spring; 27, rotating shaft; 28, transmission plate; 29, pressing rod; 30, front baffle; 31, second magnetic attraction plate; 32, partition board; 33, diversion cavity; 34, knob; 35, threaded column; 36, abutting piece; 37, plug-in column; 38, ball; 39, second spring. Specific embodiments

[0027] In order to make the technical means, creative features, achieved purposes and effects of the present invention easy to understand, the present invention will be further described below in conjunction with specific embodiments.

[0028] Please refer to Figures 1 to 7 , the present invention provides the following technical solutions: An audio-visual data storage device, including a storage device body, the storage device body includes a storage bin 1, an air-cooling component 4, a positioning mechanism 7 and a transmission component 8. A plurality of plug-in channels 16 are opened inside the storage bin 1. A partition board 32 is inserted at the top of the plug-in channel 16. A diversion cavity 33 is opened at the top of the partition board 32. A heat dissipation mechanism 17 is embedded at the bottom of the diversion cavity 33. A cover plate 2 is hinged outside the plug-in channel 16. An outer air outlet 3 is opened on the surface of the cover plate 2. A lifting channel 18 is opened at the rear end inside the storage bin 1. The transmission component 8 is embedded inside the lifting channel 18. Telescopic grooves 15 are opened at both ends of the transmission component 8. The positioning mechanism 7 is embedded inside the telescopic groove 15. A switching mechanism 20 is installed on the inner wall of the plug-in channel 16. A rotating shaft 27 is inserted through the middle of the switching mechanism 20. Both ends of the rotating shaft 27 are embedded on the inner wall of the plug-in channel 16 through bearings. This audio-visual data storage device is used for storing hard disk devices recorded with a large amount of audio-visual data, and can also be used for connecting and reading and writing the stored data hard disks.

[0029] When the present invention is in use, first open the cover plate 2 on the surface of the storage bin 1, then insert the data hard disk that needs to be stored into the interior of the insertion channel 16. After completion of the insertion, the cover plate 2 can be closed to achieve long-term storage of the inserted data hard disk. When a read / write operation needs to be performed on one of the stored data hard disks, first manually control the positioning mechanism 7 to rotate the knob 34 corresponding to the data hard disk, so that the top piece 36 corresponding to the end of the knob 34 is partially inserted into the inner wall of the lifting channel 18. Then, the motor 6 at the top can be started, and the driving device drives the transmission component 8 at the bottom to move downward along the lifting channel 18 until it reaches the position of the hidden top piece 36. Then, the positioning of the transmission component 8 can be achieved by means of the concave holes on the inner wall of the lifting channel 18 in cooperation with the positioning mechanism 7. At this time, the positioning process between the transmission mechanism and the data hard disk to be connected is completed. Finally, manually push the data hard disk to connect it with the transmission component 8, and then the subsequent read / write process can be carried out.

[0030] In this embodiment, the transmission component 8 includes a plug-in board 11 and an extension board 9. A flow guide plate 14 is welded to the top of the plug-in board 11. An air-cooling pipe 5 is inserted into the top of the flow guide plate 14. The extension board 9 is welded to the rear end of the plug-in board 11. A threaded sleeve 12 is provided on the surface of the extension board 9. A motor 6 is screwed to the top of the lifting channel 18. The output end of the motor 6 is inserted with a lead screw 10. The lead screw 10 passes through the interior of the threaded sleeve 12, and the end of the lead screw 10 is embedded in the bottom of the lifting channel 18 through a bearing. An air-cooling component 4 is screwed to the top of the storage bin 1. One end of the air-cooling pipe 5 is inserted into the air-cooling component 4. The side of the plug-in board 11 abuts against the inner wall of the lifting channel 18, and a plurality of data connection ports are provided on the surface of the plug-in board 11.

[0031] Specifically, when a read / write operation needs to be performed on the data hard disk, start the motor 6. The motor 6 controls the rotation of the lead screw 10 at the bottom. After the lead screw 10 rotates, it can cooperate with the threaded sleeve 12 at the bottom to drive the plug-in board 11 below to move downward until the plug-in board 11 is docked with the part of the positioning mechanism 7 outside through the positioning mechanism 7 inside the telescopic slot 15, realizing the positioning process between the plug-in board 11 and the data hard disk. At the same time, this process will also align a part of the top flow guide plate 14 with the interior of the flow guide cavity 33, so that the air flow blown in by the top air-cooling component 4 enters the flow guide cavity 33 along the interior of the air-cooling pipe 5 and the flow guide plate 14, and cooperates with the heat dissipation mechanism 17 to achieve heat dissipation treatment for the data hard disk placed below.

[0032] In this embodiment, the positioning mechanism 7 includes a threaded column 35 and a plug-in column 37. The plug-in column 37 is embedded inside the telescopic groove 15. A second spring 39 is connected to the rear end of the plug-in column 37. A threaded hole 19 is formed in the side of the storage bin 1, and the threaded column 35 is inserted through the threaded hole 19. A knob 34 is integrally formed at the front end of the threaded column 35, and a top piece 36 is integrally formed at the rear end of the threaded column 35. A ball 38 is embedded at the front end of the plug-in column 37. The rear end of the second spring 39 is fixedly connected to the inner wall of the telescopic groove 15. The top piece 36 is used to be embedded into the inner wall of the storage bin 1 or flush with the inner wall of the storage bin 1. A transmission component 8 is built in, and the transmission component 8 can be quickly positioned and moved to the position of the data hard disk that needs to be connected and transmitted through the driving structure at the top and the positioning mechanism 7 inserted on the side, improving the efficiency of data docking and transmission. And in this process, it is not necessary to take out the audio-visual data hard disk, and it also avoids causing additional interference to other hard disks that do not need to be connected.

[0033] Specifically, when the transmission component 8 needs to be positioned, first rotate the corresponding knob 34 at the position of the data hard disk to be positioned. After the knob 34 rotates, the top piece 36 at the rear end is driven by the threaded column 35 and the threaded hole 19 to be embedded into the inner wall of the lifting channel 18, so that a concave hole structure is formed in the inner wall of the lifting channel 18. At this time, after the motor 6 runs to pull the plug-in board 11 down, finally the ball 38 at the end of the rotating shaft 27 will be pulled down until it moves to the area where the top piece 36 is recessed and embedded. Then, under the action of the subsequent second spring 39, the plug-in column 37 will also be embedded into the area where the top piece 36 is recessed, and the plug-in column 37 is clamped. Therefore, in this state, the driving structure at the top cannot further control the movement of the plug-in board 11, achieving the purpose of automatically positioning to the corresponding area of the data hard disk.

[0034] In this embodiment, the switching mechanism 20 includes a rotating shaft 27, a pressing rod 29 and a front baffle 30. Transmission plates 28 are welded to both ends of the rotating shaft 27. The pressing rod 29 and the front baffle 30 are respectively welded to both ends of the transmission plate 28. A second magnetic attraction plate 31 is attached to the end of the front baffle 30. A first magnetic attraction plate 13 is also attached to the top of the plugging plate 11. After the second magnetic attraction plate 31 rotates around the rotating shaft 27 to a horizontal state, it is partially adsorbed and attached to the first magnetic attraction plate 13. An independent heat dissipation mechanism 17 and a switching mechanism 20 are installed inside each plugging channel 16. With the help of the switching mechanism 20, a more enclosed space can be provided when storing each data hard disk, and its moving position can be restricted, avoiding large-amplitude shaking of the internal data hard disks when the entire storage bin 1 is collided, and improving the storage safety. The heat dissipation mechanism 17 includes a heat conducting plate 21 and heat dissipation fins 22. The heat dissipation fins 22 are integrally formed on the top of the heat conducting plate 21. Side baffles 23 are welded to both ends of the surface of the heat conducting plate 21. A top plate 24 is integrally formed on the top of the side baffle 23. A first spring 26 is connected to the bottom of the top plate 24. The bottom end of the first spring 26 is fixed to a partition plate 32. The side baffle 23 passes through the surface of the partition plate 32. An inner layer air outlet 25 is formed on the surface of one of the side baffles 23. When the data hard disk is placed inside the storage bin 1, the heat dissipation mechanism 17 will not rub against the surface of the data hard disk at this time. Only when reading and writing data to this data hard disk subsequently, the cooperation of the transmission component 8 and the switching mechanism 20 will be used to achieve the fitting process of this data hard disk, and it is ensured that the air cooling component 4 at the top can also only provide heat dissipation treatment for the used data hard disk, providing a more targeted heat dissipation effect, and at the same time avoiding the friction problem of the heat dissipation component.

[0035] Specifically, in the initial state of the switching mechanism 20, the front baffle 30 droops to block the front end position of the plugging channel 16. When data connection and transmission are required for the data hard disk corresponding to the inside of the switching mechanism 20, the data hard disk is pushed to press the front baffle 30 against the front end. Then, the rotating shaft 27 can drive the pressing rod 29 at the top to rotate until the pressing rod 29 is pressed in the protruding area at the front end of the heat conducting plate 21. Finally, the heat conducting plate 21 is pressed downward along with the pressing rod 29 until the heat conducting plate 21 is pressed on the surface of the data hard disk. Subsequently, the air flow blown into the diversion cavity 33 can blow out the heat absorbed by the heat conducting plate 21 and the heat dissipation fins 22, and finally discharge from the inner layer air outlet 25 and the outer layer air outlet 3, achieving the purpose of targeted heat dissipation.

[0036] The foregoing has shown and described the basic principles, main features and advantages of the present invention. For a person skilled in the art, it is obvious that the present invention is not limited to the details of the above-mentioned exemplary embodiments, and without departing from the spirit or basic characteristics of the present invention, the present invention can be implemented in other specific forms.

[0037] In addition, it should be understood that although this specification is described in terms of embodiments, not every embodiment contains only one independent technical solution. This narrative manner of the specification is only for clarity. Those skilled in the art should regard the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.

Claims

1. An audio and video data storage device, comprising a storage device body, characterized in that: The storage device body comprises a storage bin (1), an air cooling component (4), a positioning mechanism (7) and a transmission component (8); a plurality of plug-in channels (16) are provided inside the storage bin (1); a partition (32) is inserted at the top of the plug-in channel (16); a guide cavity (33) is provided at the top of the partition (32); a heat dissipation mechanism (17) is embedded at the bottom of the guide cavity (33); a cover plate (2) is hingedly connected to the outside of the plug-in channel (16); an outer air outlet (3) is provided on the surface of the cover plate (2); a lifting channel (18) is provided at the rear end of the storage bin (1); the transmission component (8) is embedded in the lifting channel (18); and extension channels (18) are provided at both ends of the transmission component (8). The telescopic slot (15) is provided with a positioning mechanism (7) embedded in the interior of the telescopic slot (15); a switching mechanism (20) is installed on the inner wall of the plug-in channel (16); a rotating shaft (27) is inserted in the middle of the switching mechanism (20); both ends of the rotating shaft (27) are embedded in the inner wall of the plug-in channel (16) through bearings; the transmission component (8) comprises a plug-in plate (11) and an extension plate (9); a guide plate (14) is welded on the top of the plug-in plate (11); a wind cooling pipe (5) is plugged on the top of the guide plate (14); the extension plate (9) is welded to the rear end of the plug-in plate (11); a threaded sleeve (12) is provided on the surface of the extension plate (9); the positioning mechanism (7) comprises a threaded column (35 ) and a plug-in column (37), the plug-in column (37) being embedded in the interior of the telescopic slot (15), the rear end of the plug-in column (37) being connected to a second spring (39), a threaded hole (19) being provided on the side of the storage bin (1), a threaded column (35) being inserted into the interior of the threaded hole (19), a knob (34) being integrally formed at the front end of the threaded column (35), a top support plate (36) being integrally formed at the rear end of the threaded column (35), a ball bearing (38) being embedded at the front end of the plug-in column (37), the rear end of the second spring (39) being fixedly connected to the inner wall of the telescopic slot (15), the top support plate (36) being used to be embedded in the inner wall of the storage bin (1) or to be flush with the inner wall of the storage bin (1), the The switching mechanism (20) comprises a rotating shaft (27), a pressure rod (29) and a front baffle (30); transmission plates (28) are welded to both ends of the rotating shaft (27); the pressure rod (29) and the front baffle (30) are respectively welded to both ends of the transmission plate (28); a second magnetic plate (31) is mounted on the end of the front baffle (30); a first magnetic plate (13) is also mounted on the top of the plug board (11); the second magnetic plate (31) is rotated around the rotating shaft (27) to a horizontal state and then partially adsorbed and fitted with the first magnetic plate (13); the heat dissipation mechanism (17) comprises a heat conducting plate (21) and heat dissipation fins (22); the heat dissipation fins (22) are integrally formed on the top of the heat conducting plate (21);Side baffles (23) are welded at both ends of the surface of the heat conducting plate (21), a top plate (24) is integrally formed on the top of the side baffles (23), a first spring (26) is connected to the bottom of the top plate (24), the bottom end of the first spring (26) is fixed to the partition (32), the side baffles (23) pass through the surface of the partition (32), and an inner layer air outlet (25) is opened on the surface of one of the side baffles (23).

2. An audio and video data storage device according to claim 1, characterized in that: A motor (6) is screwed to the top of the lifting channel (18), a screw rod (10) is inserted into the output end of the motor (6), the screw rod (10) passes through the inside of the threaded sleeve (12), and the end of the screw rod (10) is embedded in the bottom position of the lifting channel (18) through a bearing.

3. An audio and video data storage device according to claim 2, characterized in that: An air cooling component (4) is screwed onto the top of the storage bin (1), one end of the air cooling pipe (5) is inserted into the air cooling component (4), the side of the plug board (11) is pressed against the inner wall of the lifting channel (18), and a plurality of data connection ports are provided on the surface of the plug board (11).

Citation Information

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