Audio and video data analysis device based on distributed storage
By adopting a combined structure of top disk, rotating air disk and positioning round table in distributed storage devices, a cyclone outflow area is formed, and the rotation of the positioning round table is controlled through transmission combination, the problem of poor uniformity of storage disk cooling processing and the need for shutdown of storage disk increase is solved, and efficient ventilation and heat dissipation and flexible expansion of data storage units are achieved.
Patent Information
- Application Number
- CN202510147686.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-11
- Publication Date
- 2025-06-03
- Estimated Expiration
- 2045-02-11
AI Technical Summary
When storing audio and video data, existing distributed storage devices have defects such as poor uniformity of storage disk cooling processing and increased storage disk shutdown, which affects the storage speed and normal operation of the equipment.
A distributed storage audio-visual data analysis device is designed, and a combined structure of top disk, rotating air disk and positioning round table is used to form a cyclone outflow area to ensure that each data storage unit is in a ventilation and heat dissipation state. The rotation of the positioning round table is controlled through transmission combination to achieve uniform ventilation and heat dissipation of the data storage unit.
Through this device, each data storage unit can maintain a stable ventilation and heat dissipation state, improve access processing efficiency, and realize flexible increase and decrease of data storage units without affecting the normal operation of other units.
Smart Images

Figure CN120089167A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of data distributed storage, and particularly to an analysis device for distributed storage audio-visual data. Background Art
[0002] When storing audio-visual data, it needs to be analyzed and processed, and then stored after analysis. Audio-visual data is usually stored in a storage disk (such as a solid-state drive). Due to the large amount of audio-visual data, in order to facilitate storage, a distributed storage method is usually used. The existing distributed storage mainly means that the circuit board on the analysis processing module can increase the storage disk as needed to expand the storage access space.
[0003] Currently, the main structure of the existing distributed storage device includes a chassis, a PC circuit board, and a storage disk. The PC circuit board is fixedly installed in the chassis, and the storage disk is plugged into the PC circuit board through a data cable. When it is necessary to expand the storage disk, a storage disk needs to be added in the chassis. However, this device for distributed storage of audio-visual data still has deficiencies in use: 1. The uniformity of the temperature reduction treatment of the storage disk is poor. Simply put, multiple storage disks are usually installed on the side walls of the chassis, resulting in different uniformity of the cooling treatment for each storage disk, which will affect the access speed of the storage disk; 2. When adding a storage disk, the entire storage device needs to be shut down. Specifically, the operating space for adding a storage disk in the chassis is small, and other operating components are easily touched during the installation operation. Therefore, shutting down the device will affect the normal operation of the storage device.
[0004] Therefore, the present invention proposes an analysis device for distributed storage audio-visual data. Summary of the Invention
[0005] The purpose of the present invention is to propose an analysis device for distributed storage audio-visual data to solve the problems mentioned in the background art.
[0006] In order to achieve the above purpose, the present invention adopts the following technical solutions:
[0007] Distributed storage audio-visual data analysis device, including a data analysis module, a data storage unit and a placement seat. One side of the data storage unit is connected with a plug through a data line. The placement seat is provided with a top plate. The data analysis module is fixedly arranged on the top of the top plate, and a circumferentially uniformly distributed docking seat is arranged at the bottom thereof. A rotating air disk is arranged below the top plate, and a cyclone outer flow area is formed between the rotating air disk and the top plate. The top plate is provided with a plurality of positioning round tables that are evenly distributed around the center and located in the cyclone outer flow area. A plurality of insertion sleeves that are circumferentially uniformly distributed are arranged on the outer circumference of the positioning round table. One side of the data storage unit is fixedly connected with an insertion plate that is inserted and matched with the insertion sleeve. The positioning round table is rotatably connected with the top plate, and a transmission combination is arranged between the top plate and the rotating air disk, and this transmission combination has the function of controlling the positive and negative buffering rotation of the positioning round table.
[0008] As a further description of the above technical solution:
[0009] The bottom of the top plate is fixedly connected with a suspension tube parallel to the meridian. A positioning table is fixedly connected to the suspension tube. The bottom of the positioning round table is fixedly connected with a positioning shaft that penetrates the positioning table and is rotatably connected. The top of the positioning round table is fixedly connected with a support shaft, and the top of the support shaft is fixedly connected with a wire dividing disk. Axially uniformly distributed wire dividing holes are formed on the disk surface of the wire dividing disk.
[0010] As a further description of the above technical solution:
[0011] A circular hole for accommodating the wire dividing disk is formed through the disk surface of the top plate. A wire channel communicating adjacent circular holes is formed on the outer peripheral wall of the top plate. The wire dividing hole is of an arc hole structure, and one end thereof extends to the outer peripheral wall of the wire dividing disk.
[0012] As a further description of the above technical solution:
[0013] The middle of the upper end surface of the top plate is fixedly connected with an air collecting cylinder. A plurality of the docking seats are arranged around the air collecting cylinder. The bottom of the air collecting cylinder is open. The middle of the top of the rotating air disk is fixedly connected with a drainage air cylinder whose top extends into the air collecting cylinder. A plurality of circumferentially uniformly distributed upper wind blades are fixedly connected to the outer peripheral wall of the drainage air cylinder. A plurality of lower wind plates distributed around the drainage air cylinder are fixedly connected to the upper end surface of the rotating air disk. An air inlet is arranged on the outer peripheral wall of the air collecting cylinder.
[0014] As a further description of the above technical solution:
[0015] The transmission combination includes a transmission gear, a toothed plate, a bi-directional torsion spring, and a reciprocating transmission mechanism. One end of the toothed plate is connected with an adapter plate that is slidably connected to the bottom of the suspension pipe. The transmission gear is sleeved on the positioning shaft and meshes with the toothed plate. The transmission gear is rotatably connected to the positioning shaft, and a bi-directional torsion spring is arranged at the rotational connection. The reciprocating transmission mechanism is used to control the reciprocating movement of the toothed plates under all the suspension pipes.
[0016] As a further description of the above technical solution:
[0017] The reciprocating transmission mechanism includes a reciprocating lead screw, a lead screw sleeve, a bevel gear disk, and a bevel gear. The reciprocating lead screw is rotatably sleeved in the suspension pipe. One end of the reciprocating lead screw is fixedly connected with a bevel gear arranged close to the air guiding cylinder. The bevel gear disk is fixedly sleeved on the outside of the air guiding cylinder and meshes with the bevel gear on its outer circumference. The lead screw sleeve is sleeved on the reciprocating lead screw and is slidably connected to the suspension pipe. The outer peripheral wall of the lead screw sleeve is fixedly connected with the adjacent adapter plate.
[0018] As a further description of the above technical solution:
[0019] The toothed plate has a waist-shaped frame structure, and a section of teeth is fixedly connected to both sides inside. The section of teeth on both sides inside the toothed plate does not mesh with the transmission gear simultaneously. One end of the toothed plate is elastically slidably matched with the adapter plate.
[0020] As a further description of the above technical solution:
[0021] The transmission combination further includes a belt type limiter, which includes a first belt pulley, a second belt pulley, a transmission belt, and a limiting pile. A positioning pile is fixedly connected to the top of the suspension pipe. The first belt pulley is sleeved on the positioning pile. The second belt pulley is fixedly sleeved on the positioning shaft and is connected to the first belt pulley through the transmission belt. A baffle is fixedly arranged on the outer peripheral wall of the transmission belt. The limiting pile is fixedly arranged on the top of the suspension pipe and is located outside the transmission belt.
[0022] To sum up, due to the adoption of the above technical solution, the beneficial effects of the present invention are as follows:
[0023] 1. In the present invention, a top plate, a rotating air disk, and a positioning round table are provided. The rotating air disk is located below the top plate, and the two enclose an annular cyclone outer flow area. There are multiple positioning round tables, and circumferentially distributed detachable data storage units are arranged on them. Moreover, the data storage units are located in the cyclone outer flow area. This setting enables each data storage unit to be in a state of ventilation and heat dissipation, and further enables each data storage unit to be in a more stable state.
[0024] 2. In the present invention, by providing a control combination for controlling the back-and-forth rotation of the positioning frustum, data storage units located in the cyclone outer flow region all have the opportunity to be in the windward direction, thereby ensuring the ventilation and heat dissipation efficiency of each data storage unit, and thus improving the access and processing efficiency of each data storage unit.
[0025] 3. In the present invention, a bi-directional torsion spring, a toothed plate, and a transmission gear are provided in the control combination. When the toothed plate reciprocates, it drives the positioning frustum to rotate back and forth through the transmission gear and the bi-directional torsion spring. Due to the buffering function of the bi-directional torsion spring, the back-and-forth operation of the data storage unit has a buffering characteristic, thereby ensuring the reliability of the data storage unit during access and processing under dynamic conditions.
[0026] 4. In the present invention, the provided plate teeth are elastically slidably connected to the connecting plate, and a section of tooth teeth is provided on each of the opposite sides inside the plate teeth. The two sections of tooth teeth and the transmission gear are not in a meshing state at the same time. Thus, when the two sections of tooth teeth on both sides are not meshed with the transmission gear, data storage units can be added or removed on the corresponding positioning frustum at this time, without affecting the normal dynamic ventilation and heat dissipation of the data storage units on other positioning frustums when adding or removing data storage units. BRIEF DESCRIPTION OF THE DRAWINGS
[0027] Figure 1 is a schematic structural diagram of a distributed storage audio-visual data analysis device proposed by the present invention;
[0028] Figure 2 is a schematic structural diagram of the top plate and the rotary air disk of the distributed storage audio-visual data analysis device proposed by the present invention after explosion and expansion;
[0029] Figure 3 is Figure 2 the front view of;
[0030] Figure 4 is Figure 2 a schematic diagram of the bottom;
[0031] Figure 5 is Figure 4 a schematic diagram of the enlarged partial "a" in;
[0032] Figure 6 is a plan view of the cooperation of the positioning shaft, the transmission gear, and the bi-directional torsion spring of the distributed storage audio-visual data analysis device proposed by the present invention;
[0033] Figure 7 is a schematic diagram of the belt limiter of the distributed storage audio-visual data analysis device proposed by the present invention;
[0034] Figure 8 is Figure 5 a schematic diagram of the enlarged partial "b" in.
[0035] Legend:
[0036] 1. Data analysis module; 11. Docking base; 2. Data storage unit; 21. Plugboard; 3. Placing base; 31. Top plate; 311. Suspended pipe; 3111. Positioning platform; 3112. Positioning pile; 312. Round hole; 313. Wire channel; 314. Air collecting cylinder; 3141. Air inlet; 32. Rotating air disc; 321. Air guiding cylinder; 3211. Upper wind blade; 322. Lower wind plate; 33. Positioning round platform; 331. Positioning shaft; 332. Support shaft; 3321. Wire dividing disc; 33211. Wire dividing hole; 3321. Wire dividing disc; 333. Socket; 34. Transmission combination; 341. Transmission gear; 342. Rack; 3421. Connecting plate; 3422. First section of tooth teeth; 343. Bi-directional torsion spring; 344. Reciprocating transmission mechanism; 3441. Reciprocating lead screw; 3442. Nut sleeve; 3443. Bevel gear disc; 3444. Bevel gear; 345. Belt type limiter; 3451. First pulley; 3452. Second pulley; 3453. Transmission belt; 34531. Baffle; 3454. Limiting pile; 4. Cyclone outer flow area. Detailed implementation manners
[0037] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0038] Embodiment 1
[0039] Please refer to Figures 1-8 , a distributed storage audio-visual data analysis device, including a data analysis module 1, a data storage unit 2, and a placing base 3. The data analysis module 1 uses a processor for analyzing and processing audio-visual data in the prior art, including integrated circuit boards and microprocessors and other components therein. One side of the data storage unit 2 is connected with a plug through a data line. An access disk with read and write functions is provided in the data storage unit 2. A top plate 31 is provided on the placing base 3. The data analysis module 1 is fixedly arranged on the top of the top plate 31, and a circumferentially uniformly distributed docking base 11 is arranged at the bottom thereof. The docking base 11 is connected to the integrated circuit board in the data analysis module 1. When the plug is connected to the docking base 11 on the data analysis module 1, the function of adding a storage disk to the device is realized.
[0040] In this technical solution, a rotary air disc 32 is arranged below the top disc 31. A cyclone outer flow area 4 is formed between the rotary air disc 32 and the top disc 31. This area is a ventilation and heat dissipation area. A number of positioning round platforms 33 are arranged on the top disc 31, which are evenly distributed around the center and located in the cyclone outer flow area 4. A number of socket sleeves 333 are arranged on the outer periphery of the positioning round platform 33 in a circumferentially uniform distribution. One side of the data storage unit 2 is fixedly connected with a plug board 21 which is inserted and matched with the socket sleeve 333. One positioning round platform 33 can expand multiple data storage units 2. A plurality of positioning round platforms 33 are arranged on one top disc 33. This setting has the function of increasing expansion positions in the cyclone outer flow area 4. Moreover, when the air flow in the cyclone outer flow area 4 flows outward, it will pass through the data storage units 2 on each positioning round platform 33, so as to ensure the ventilation and heat dissipation of all data storage units 2 located in the cyclone outer flow area 4.
[0041] Furthermore, the positioning round platform 33 is rotatably connected with the top disc 31. A transmission combination 34 is arranged between the top disc 31 and the rotary air disc 32. The transmission combination 34 has the function of controlling the forward and reverse buffering rotation of the positioning round platform 33. When the positioning round platform 33 rotates forward and backward, each data storage unit 2 on its outer periphery can be in the windward position. This setting can improve the uniformity of ventilation and heat dissipation of each data storage unit 2.
[0042] Specifically, a suspension pipe 311 parallel to the meridian is fixedly connected to the bottom of the top disc 31. During specific implementation, a suspension plate can be welded to the bottom of the top disc 31, and the suspension plate is fixedly connected with the suspension pipe 311. A positioning platform 3111 is fixedly connected to the suspension pipe 311. The bottom of the positioning round platform 33 is fixedly connected with a positioning shaft 331 which penetrates through the positioning platform 3111 and is rotatably connected. The top of the positioning round platform 33 is fixedly connected with a support shaft 332. The top of the support shaft 332 is fixedly connected with a wire dividing disc 3321. When the positioning round platform 33 rotates, it will drive the wire dividing disc 3321 to rotate. The function of the wire dividing disc 3321 is to separate the data lines on each data storage unit 2 and avoid the problem of wire pulling at the same time. Axially evenly distributed wire dividing holes 33211 are arranged on the disc surface of the wire dividing disc 3321. During use, the data lines on each data storage unit 2 are passed through a wire dividing hole 33211. One data storage unit 2 corresponds to one wire dividing hole 33211. A certain length is reserved for the data line led out from the wire dividing hole 33211. After the plug on the data line is inserted into the docking seat 11, when the positioning round platform 33 is controlled to rotate back and forth, the data line will move passively, and the extra length will compensate for this movement, avoiding the problem of the data line being damaged.
[0043] Further, a circular hole 312 for accommodating the wire dividing plate 3321 is formed through the disk surface of the top disk 31. A wire channel 313 communicating adjacent circular holes 312 is formed on the outer peripheral wall of the top disk 31. The wire dividing hole 33211 is of an arc-shaped hole structure and one end thereof extends to the outer peripheral wall of the wire dividing plate 3321. This setting has the function of facilitating the data lines on each data storage unit 2 to enter and exit the wire dividing hole 33211, and the structure of the arc-shaped wire dividing hole 33211 makes the data lines entering it not easily slide out. When it is necessary to increase the data storage unit 2, rotate the positioning turntable 33 to make one of the idle socket sleeves 333 face outwards, then insert the plug board 21 on the data storage unit 2 into the above socket sleeve 333, then slide the data line on the data storage unit 2 into the wire channel 313, and then enter the wire dividing hole 33211 opposite to the wire channel 313. At this time, the installation of the data storage unit 2 is completed.
[0044] In this embodiment, an air collecting cylinder 314 is fixedly connected to the middle of the upper end surface of the top disk 31. A plurality of docking seats 11 are arranged around the air collecting cylinder 314. The bottom of the air collecting cylinder 314 is open. A drainage air cylinder 321 with the top extending into the air collecting cylinder 314 is fixedly connected to the middle of the top of the rotary air disk 32. The outer peripheral wall of the drainage air cylinder 321 is fixedly connected with upper wind blades 3211 evenly distributed in the circumferential direction. When the rotary air disk 32 drives the drainage air cylinder 321 to rotate, the upper wind blades 3211 will drive the air flow in the air collecting cylinder 314 to flow downward. A plurality of lower wind plates 322 distributed around the drainage air cylinder 321 are fixedly connected to the upper end surface of the rotary air disk 32. When the rotary air disk 32 rotates, the lower wind plates 322 will push the downward flowing air flow around. An air inlet 3141 is arranged on the outer peripheral wall of the air collecting cylinder 314, and the air inlet 3141 is a supplementary port for fresh air to enter the air collecting cylinder 314. When in use, a driving motor can be installed at the top in the air collecting cylinder 314, and the output shaft of the driving motor is fixedly connected to the top of the drainage air cylinder 321, thereby realizing the control of the rotation of the rotary air disk 32.
[0045] Further, the transmission assembly 34 includes a transmission gear 341, a toothed plate 342, a bi-directional torsion spring 343, and a reciprocating transmission mechanism 344. One end of the toothed plate 342 is connected with an adapter plate 3421 that is slidably connected to the bottom of the suspension pipe 311. The transmission gear 341 is sleeved on the positioning shaft 331 and meshes with the toothed plate 342. The transmission gear 341 is rotatably connected to the positioning shaft 331, and a bi-directional torsion spring 343 is provided at the rotational connection. That is to say, when the transmission gear 341 rotates, the bi-directional torsion spring 343 will be torsionally deformed, and the positioning shaft 331 will rotate laggingly. Therefore, the function of the bi-directional torsion spring 343 is to achieve the above-mentioned function of controlling the positive and negative buffering rotation of the positioning turntable 33, aiming to eliminate the inertial impact force on the data storage unit 2 thereon when the positioning turntable 33 rotates forward and backward, so that the data storage unit 2 can operate reliably. When the toothed plate 342 reciprocates, it will push the positioning turntable 33 to rotate back and forth through the transmission gear 341.
[0046] Among them, the reciprocating transmission mechanism 344 is used to control the reciprocating movement of the toothed plates 342 below all the suspension pipes 311.
[0047] Specifically, the reciprocating transmission mechanism 344 includes a reciprocating lead screw 3441, a lead screw sleeve 3442, a bevel gear disk 3443, and a bevel gear 3444. The reciprocating lead screw 3441 is rotatably sleeved in the suspension pipe 311. One end of the reciprocating lead screw 3441 is fixedly connected with a bevel gear 3444 disposed close to the air guiding cylinder 321. The bevel gear disk 3443 is fixedly sleeved on the outside of the air guiding cylinder 321 and meshes with the bevel gear 3444 on its outer periphery. That is to say, the rotation of the reciprocating lead screw 3441 is controlled by the rotating air guiding cylinder 321. The lead screw sleeve 3442 is sleeved on the outside of the reciprocating lead screw 3441 and is slidably connected to the suspension pipe 311. Specifically in implementation, the lead screw sleeve 3442 is sleeved in the suspension pipe 311, and then a rectangular hole communicating with the inner cavity is opened at the bottom of the suspension pipe 311. The outer peripheral wall of the lead screw sleeve 3442 is fixedly connected with the adjacent adapter plate 3421, and the adapter plate 3421 is slidably matched with the rectangular hole.
[0048] Among them, the tooth plate 342 has a kidney-shaped frame structure, and a section of tooth 3422 is fixedly connected to both sides inside it. The two sections of teeth 3422 on both sides inside the tooth plate 342 do not mesh with the transmission gear 341 simultaneously. When the transmission gear 341 does not mesh with either of the two sections of teeth inside the tooth plate 342, the transmission gear 341 is in a free state at this time. In this state, the operator can freely rotate the positioning turntable 33 to place the socket 333 thereon at the optimal expansion position. One end of the tooth plate 342 is elastically and slidably matched with the connecting plate 3421. Specifically, during implementation, a guiding shaft can be welded to one end of the tooth plate 342, and then a positioning hole slidably matched with the guiding shaft can be opened on the connecting plate 3421. Finally, a return spring located on both sides of the connecting plate 3421 is sleeved on the guiding shaft. Therefore, the function of the above elastic sliding setting enables the tooth plate 342 to stop moving after being restricted. Thus, when it is necessary to expand the data storage unit 2 for one of the positioning turntables 33, the other positioning turntables 33 can normally perform forward and reverse ventilation and heat dissipation. During use, a hand-held lever can be welded to the other end of the tooth plate 342, and the operator holds the hand-held lever to control the tooth plate 342 to be in a non-meshing state with the adjacent transmission gear 341. At this time, the corresponding positioning turntable 33 can be rotated for expansion operation.
[0049] Furthermore, the transmission assembly 34 further includes a belt type limiter 345. The function of this belt type limiter 345 is to prevent the problem of excessive pulling of the data cable caused by the positioning turntable 33 rotating too many circles in one direction. Specifically, the belt type limiter 345 includes a pulley one 3451, a pulley two 3452, a transmission belt 3453, and a limiting pile 3454. Among them, the transmission belt 3453 is a synchronous belt. A positioning pile 3112 is fixedly connected to the top of the suspension pipe 311. The pulley one 3451 is sleeved on the positioning pile 3112, and the pulley one 3451 is rotatably connected to the positioning pile 3112. The pulley two 3452 is fixedly sleeved on the positioning shaft 331 and is connected to the pulley one 3451 through the transmission belt 3453. When the positioning turntable 33 rotates, the pulley two 3452 will drive the transmission belt 3453 to operate. A baffle 34531 is fixedly arranged on the outer peripheral wall of the transmission belt 3453. The limiting pile 3454 is fixedly arranged on the top of the suspension pipe 311 and is located outside the transmission belt 3453. When the baffle 34531 touches the limiting pile 3454, the transmission belt 3453 cannot continue to rotate in one direction, thereby effectively avoiding the situation where the positioning turntable 33 rotates too many circles in one direction.
[0050] Working principle: Before use, a suspension rod can be fixedly welded to the top of the top plate 31, and then a mounting plate is welded to the top of the suspension rod. Mounting holes are opened on the mounting plate, and through these mounting holes, the top plate 31 is mounted on an external support frame. During normal use, the rotary air disc 32 is controlled to rotate. Due to the negative pressure in the air collecting cylinder 314, external airflows enter through the air inlet 3141. The upper wind blades 3211 and the lower wind plates 322 cause the airflows to move in the cyclone outer flow area 4. Each positioning frustum 33 will be evenly impacted by the airflows. Moreover, through the transmission of the reciprocating lead screw 3441 and the nut sleeve 3442, the toothed plate 342 reciprocates, and the positioning frustum 33 rotates back and forth. The data storage units 2 on its outer periphery will enter the windward position at different times, thereby enabling a large number of data storage units 2 to be in an approximately uniform ventilation and heat dissipation state. When the storage space is insufficient to store audio-visual data, one of the toothed plates 342 is manually restricted to be in a non-engaged state with the transmission gear 341, and then the corresponding positioning frustum 33 can be manually rotated so that one of the socket sleeves 333 on it faces the operator. Then, the plug board 21 on the data storage unit 2 that needs to be expanded is inserted into the socket sleeve 333. Then, the data line on the data storage unit 2 is led into a corresponding branch hole 33211 through the wire duct 313. One end of the data line is plugged into the docking seat 11 below the data analysis module 1, and finally the toothed plate 342 is released to complete the expansion of the storage space.
[0051] The above is only a preferred specific embodiment of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present invention, according to the technical solution of the present invention and its inventive concept, makes equivalent substitutions or changes, and all should be covered within the protection scope of the present invention.
Claims
1. An audio-visual data analysis device based on distributed storage, comprising a data analysis module (1), a data storage unit (2) and a placement seat (3), wherein one side of the data storage unit (2) is connected to a plug via a data cable, characterized in that: The placement seat (3) is provided with a top plate (31), the data analysis module (1) is fixedly arranged on the top of the top plate (31) and a docking seat (11) is arranged at the bottom thereof and is evenly distributed in the circumferential direction; a rotating wind plate (32) is arranged below the top plate (31), a cyclone outflow area (4) is formed between the rotating wind plate (32) and the top plate (31), and a plurality of positioning truncated cones (32) are evenly distributed around the center and are located in the cyclone outflow area (4) are arranged on the top plate (31). 33), the outer circumference of the positioning circular table (33) is provided with a plurality of circumferentially evenly distributed plug sleeves (333), one side of the data storage unit (2) is fixedly connected with a plug plate (21) plugged into and matched with the plug sleeve (333), the positioning circular table (33) and the top plate (31) are rotatably connected, and a transmission assembly (34) is provided between the top plate (31) and the rotating wind disk (32), and the transmission assembly (34) has the function of controlling the forward and reverse buffering rotation of the positioning circular table (33).
2. The apparatus for analyzing audio and video data based on distributed storage according to claim 1, characterized in that: The bottom of the top plate (31) is fixedly connected to a suspension tube (311) parallel to the meridian, the suspension tube (311) is fixedly connected to a positioning platform (3111), the bottom of the positioning circular table (33) is fixedly connected to a positioning shaft (331) penetrating the positioning platform (3111) and being rotatably connected, the top of the positioning circular table (33) is fixedly connected to a support shaft (332), the top of the support shaft (332) is fixedly connected to a line distribution plate (3321), and the surface of the line distribution plate (3321) is provided with line distribution holes (33211) evenly distributed in the axial direction.
3. The apparatus for analyzing audio and video data based on distributed storage according to claim 2, characterized in that: A circular hole (312) for accommodating a line distribution plate (3321) is provided through the plate surface of the top plate (31), and a line channel (313) for connecting adjacent circular holes (312) is provided on the outer peripheral wall of the top plate (31), and the line distribution hole (33211) is an arc-shaped hole structure, and one end thereof extends to the outer peripheral wall of the line distribution plate (3321).
4. The apparatus for analyzing audio and video data based on distributed storage according to claim 2, characterized in that: A wind collecting cylinder (314) is fixedly connected to the middle of the upper end surface of the top plate (31), and a plurality of docking seats (11) are arranged around the wind collecting cylinder (314). The bottom of the wind collecting cylinder (314) is open. A drainage cylinder (321) extending from the top to the inside of the wind collecting cylinder (314) is fixedly connected to the middle of the top of the rotating wind disk (32). The outer peripheral wall of the drainage cylinder (321) is fixedly connected with upper wind blades (3211) evenly distributed in the circumferential direction. The upper end surface of the rotating wind disk (32) is fixedly connected with a plurality of lower wind plates (322) distributed around the drainage cylinder (321), and the outer peripheral wall of the wind collecting cylinder (314) is provided with an air inlet (3141).
5. The apparatus for analyzing audio and video data based on distributed storage according to claim 4 is characterized in that: The transmission assembly (34) comprises a transmission gear (341), a tooth plate (342), a bidirectional torsion spring (343) and a reciprocating transmission mechanism (344); one end of the tooth plate (342) is connected to a connecting plate (3421) slidably connected to the bottom of the suspension tube (311); the transmission gear (341) is sleeved on the positioning shaft (331) and meshed with the tooth plate (342); the transmission gear (341) and the positioning shaft (331) are rotationally connected and a bidirectional torsion spring (343) is provided at the rotational connection; the reciprocating transmission mechanism (344) is used to control the reciprocating motion of the tooth plates (342) below all the suspension tubes (311).
6. The apparatus for analyzing audio and video data based on distributed storage according to claim 5, characterized in that: The reciprocating transmission mechanism (344) comprises a reciprocating screw (3441), a thread sleeve (3442), a bevel gear (3443) and a bevel gear (3444); the reciprocating screw (3441) is rotatably sleeved in the suspension tube (311); one end of the reciprocating screw (3441) is fixedly connected to a bevel gear (3444) arranged near the drainage air cylinder (321); the bevel gear (3443) is fixedly sleeved on the outside of the drainage air cylinder (321) and meshes with the bevel gear (3444) on the outer periphery thereof; the thread sleeve (3442) is sleeved on the outside of the reciprocating screw (3441) and is slidably connected to the suspension tube (311); the outer peripheral wall of the thread sleeve (3442) is fixedly connected to the adjacent connecting plate (3421).
7. The apparatus for analyzing audio and video data based on distributed storage according to claim 5, characterized in that: The tooth plate (342) has a waist-shaped frame structure and has a section of teeth (3422) fixedly connected on both sides thereof. The sections of teeth (3422) on both sides of the tooth plate (342) and the transmission gear (341) are not meshed at the same time, and one end of the tooth plate (342) and the connecting plate (3421) are elastically slidably matched.
8. The apparatus for analyzing audio and video data based on distributed storage according to claim 7, characterized in that: The transmission assembly (34) further comprises a belt stopper (345), which comprises a first pulley (3451), a second pulley (3452), a transmission belt (3453) and a limiting pile (3454); the top of the suspension tube (311) is fixedly connected with a positioning pile (3112); the first pulley (3451) is sleeved on the positioning pile (3112); the second pulley (3452) is fixedly sleeved on the positioning shaft (331) and connected to the first pulley (3451) via the transmission belt (3453); a baffle (34531) is fixedly arranged on the outer peripheral wall of the transmission belt (3453); and the limiting pile (3454) is fixedly arranged on the top of the suspension tube (311) and is located on the outer side of the transmission belt (3453).
Citation Information
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