Information transfer system and equipment for big data processing
The information transfer system addresses overheating and cooling inefficiencies in large data processing units by using a liftable top cover and a recirculating water cooling system, enhancing data processing efficiency and extending the life of the unit.
Patent Information
- Application Number
- CN202510415384.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-03
- Publication Date
- 2025-07-15
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Big data all-in-one machine is prone to overheating during processing, which leads to difficulty in dissipating heat and affects service life.
An information transfer equipment is designed, using a lifting roof and a temperature monitoring device, combined with a ventilation fan and a cooling water system, and the transportation and recycling of cooling water are controlled by lifting the roof to achieve rapid heat dissipation.
It effectively avoids overheating of the equipment, improves heat dissipation efficiency, extends the service life of the equipment, and realizes emergency heat dissipation through cooling water circulation to ensure stable operation of the equipment.
Smart Images

Figure CN120315554A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of big data devices, and particularly to an information transfer system and device for big data processing. Background Art
[0002] The characteristics of big data mainly include large quantity, variety, fast generation speed, low value density, etc., which makes the traditional data processing and storage means gradually insufficient. In this context, the demand of enterprises for efficient and reliable data processing and analysis systems is increasing day by day. Traditional database systems often cannot cope with such a large amount of data, resulting in problems such as slow data processing speed, high storage cost, and insufficient data value mining. In addition, the diversity and distribution of data make the information island phenomenon more and more serious, affecting information sharing and collaborative applications. To address these challenges, the construction of information transfer systems is becoming increasingly important. The information transfer system aims to effectively integrate, transmit, and transform data from different sources, providing convenience for real-time data processing and decision support. Modern big data processing architectures usually need to have high concurrent processing capabilities, real-time data transmission, and flexible scalability to meet the needs of different business scenarios.
[0003] On this basis, the big data all-in-one machine emerged as an integrated solution. It integrates data collection, storage, computing, and analysis functions, can simplify the deployment and management of infrastructure, and efficiently complete information transfer tasks. Since the big data all-in-one machine integrates various devices for data collection, storage, computing, and analysis, it is inevitable to cause device centralization while avoiding excessive volume, making it difficult for the all-in-one machine to dissipate heat, and prone to local overheating, which affects the service life of the all-in-one machine. Summary of the Invention
[0004] The purpose of the present invention is to provide an information transfer system and device for big data processing, so as to avoid overheating of the information transfer device and solve the problems raised in the above background art.
[0005] To achieve the above object, the present invention provides the following technical solution: An information transfer device for big data processing, including an integrated chassis, on which a liftable top cover is provided, and the top cover is driven by a lift cylinder. A temperature monitoring device is arranged inside the integrated chassis to control the lift cylinder. A ventilation fan is arranged on the top cover. A vertical guiding track is arranged on the back of the integrated chassis, and a water tank is connected to the guiding track in a limited way. A lifting seat is connected to the water tank, and a lifting and dropping transmission structure with a distance amplification function is arranged on the integrated chassis. The lifting and dropping transmission structure is connected to the top cover and the lifting seat, and the lifting of the lifting seat is controlled by the lifting of the top cover. A return port and a pressing member are arranged on the water tank, and a storage tank is installed on the top of the water tank. A heat absorption pipe embedded in the outer wall of the integrated chassis is connected to the storage tank, and the bottom end of the heat absorption pipe is connected to a diversion groove. An end pipe is installed at the end of the diversion groove, and a telescopic water discharge head is arranged on the end pipe. When the water tank moves to the bottom of the guiding track, the water discharge head can extend above the return port and open when it extends. An L-shaped pipe is rotatably installed on the water tank, and when the water tank moves to the top of the guiding track, the L-shaped pipe can rotate to a horizontal state, and the end of the L-shaped pipe falls on the water inlet groove of the storage tank. Cooling water can be stored in the storage tank and the water tank. A solenoid valve controlled by the temperature monitoring device is arranged between the storage tank and the heat absorption pipe.
[0006] Preferably, the lift cylinder is vertically installed on the outer wall of the integrated chassis, and a retractable isolation net is arranged between the top cover and the integrated chassis. The ventilation fan is installed on the air inlet groove of the top cover, and an air outlet groove is arranged at the bottom of the integrated chassis. The temperature monitoring device is provided with a monitoring threshold value. When the temperature inside the integrated chassis is higher than the monitoring threshold value, the top cover is lifted by the lift cylinder.
[0007] Preferably, the guiding track is vertically arranged, and the lifting seat is connected to the side wall of the water tank. The lifting and dropping transmission structure includes a driving shaft rotatably installed on the integrated chassis, and a winding wheel and a first gear are fixedly connected to the driving shaft. A lifting rope is wound around the winding wheel, and a top block is fixedly installed on the top cover, and a first rack is connected to the top block.
[0008] Preferably, the driving shaft is vertically connected to the outer wall of the integrated chassis, and the diameter of the winding wheel is 3-5 times the diameter of the first gear, and this multiple is the multiple of the lifting distance of the water tank and the lifting distance of the top cover. The first rack meshes with the first gear, and the lifting rope is fixedly connected to the lifting seat.
[0009] Preferably, the opening of the return port faces upward, and the pressing member is of a T-shaped structure. A perforated baffle is movably installed in the end pipe through an elastic member. The water discharge head is movably connected in the end pipe, and a spring is fixedly connected to the water discharge head. A wedge block is installed on the top surface of the water discharge head, and the wedge block is located below the pressing member.
[0010] Preferably, the storage tank is installed on the side wall of the integrated chassis, and the heat absorption tubes are arranged in an array. The heat absorption tubes are connected to the bottom of the storage tank, and the diversion groove is inclined. The end tube is connected to the lower end of the diversion groove.
[0011] Preferably, a sealing seat is provided on the water tank, and the L-shaped tube is rotatably installed in the sealing seat in a sealed manner. A torsion spring is connected to the L-shaped tube, and a connecting tube is installed at the top end of the L-shaped tube.
[0012] Preferably, a second gear is installed at the bottom end of the L-shaped tube, and an upper bracket is installed at the top end of the guiding track. A second rack is fixedly connected to the upper bracket.
[0013] Preferably, the second rack is located on the moving path of the second gear, and the opening of the water inlet groove faces upward. When the L-shaped tube rotates to the horizontal state, the connecting tube can be connected to the water inlet groove.
[0014] An information transfer system is carried on an information transfer device for big data processing. The system includes the following modules: intelligent data acquisition module, data storage module, data processing and analysis module, intelligent data transmission and publishing module, interactive user experience module, intelligent monitoring and optimization module, privacy protection and compliance module; the intelligent data acquisition module is used for real-time and offline acquisition of automated and multi-source data, and optimizing data acquisition strategies; the data storage module is based on hierarchical storage of cloud-native architecture, and is used for intelligent management of hot data and cold data to improve storage efficiency; the data processing and analysis module is used for integrating stream processing and batch processing, and the engine dynamically selects the processing method to achieve fast data cleaning and analysis; the intelligent data transmission and publishing module is used for fast and secure data transmission based on the microservices architecture, and supports real-time data transfer and update functions; the interactive user experience module is used for providing a visual interface, simplifying the data analysis process and report generation; the intelligent monitoring and optimization module is used for continuously monitoring the system performance, and using machine learning for automatic resource allocation and intelligent warning; the privacy protection and compliance module is used for embedding data privacy protection mechanisms to ensure that data processing complies with legal and regulatory requirements.
[0015] Compared with the prior art, the beneficial effects of the present invention are: 1. The information transfer device of the present invention can dissipate heat through the ventilation fan located at the top. When the temperature monitoring device in the integrated chassis detects that the temperature is too high, the top cover can be lifted to increase the heat dissipation space and quickly dissipate the heat of the all-in-one machine. The present invention is also provided with a storage tank, which can load cooling water. When the temperature in the integrated chassis is too high, while lifting the top cover, the solenoid valve on the storage tank can also be opened, so that the cooling water flows from the storage tank into the heat absorption tubes, and the heat is carried away by the cooling water to quickly perform emergency heat dissipation and avoid overheating of the all-in-one machine.
[0016] 2. The present invention is provided with a cooling water transfer mechanism that operates according to the lifting of the top cover. The cooling water can be recovered and transferred through a water tank. The water tank can move up and down along the guiding track, and the movement of the water tank is opposite to that of the top cover. When overheated, the top cover rises while the water tank moves downward. Conversely, when the top cover descends and closes on the integrated chassis, the water tank can move to the top of the integrated chassis. The return port on the water tank can recover the cooling water from the position of the diversion trough. When the water tank moves to the bottom, the cooling water can enter the water tank through the water discharge head, completing the recovery of the cooling water. After the water tank has completed the recovery of the cooling water, it can also move to the top of the integrated chassis with the descent of the top cover and re-send the cooling water into the storage tank for the next emergency heat dissipation, thus completing the circulation of the cooling water. BRIEF DESCRIPTION OF THE DRAWINGS Figure 1 It is a schematic diagram of the emergency heat dissipation state of the structure of the present invention.
[0017] Figure 2 It is a schematic diagram of the normal heat dissipation state of the structure of the present invention.
[0018] Figure 3 It is a schematic diagram of the door-opening state of the present invention.
[0019] Figure 4 It is a schematic diagram of the top cover structure of the present invention.
[0020] Figure 5 It is a schematic diagram of the hoisting transmission structure of the present invention.
[0021] Figure 6 It is a schematic diagram of the double water tank structure of the present invention.
[0022] Figure 7 It is a schematic diagram of the heat absorption tube structure of the present invention.
[0023] Figure 8 It is a schematic diagram of the water discharge head structure of the present invention.
[0024] Figure 9 It is a schematic diagram of the single water tank structure of the present invention.
[0025] Figure 10 It is a schematic diagram of the guiding track structure of the present invention.
[0026] In the figure: 1, integrated chassis; 2, top cover; 3, lifting cylinder; 4, isolation net; 5, ventilation fan; 6, top block; 7, first rack; 8, guiding track; 9, water tank; 10, lifting seat; 11, suspension rope; 12, winding wheel; 13, driving shaft; 14, first gear; 15, return port; 16, pressing member; 17, storage tank; 18, heat absorption pipe; 19, diversion groove; 20, end pipe; 21, elastic member; 22, perforated baffle; 23, water drain head; 24, spring; 25, wedge block; 26, L-shaped pipe; 27, connecting pipe; 28, second gear; 29, upper bracket; 30, second rack; 31, water inlet groove. Detailed implementation manners
[0027] Next, in combination with the accompanying drawings and the detailed implementation manners, the present invention will be further described. It should be noted that, on the premise of no conflict, the following-described embodiments or technical features can be arbitrarily combined to form new embodiments. It should be known that the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments in the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the scope of protection of the present invention.
[0028] Please refer to Figures 1 to 10 , the present invention provides a technical solution: an information transfer device for big data processing, including an integrated chassis 1, on which a liftable top cover 2 is provided, and the top cover 2 is driven by a lifting cylinder 3. A temperature monitoring device is provided inside the integrated chassis 1, and the lifting cylinder 3 is controlled by the temperature monitoring device. A ventilation fan 5 is provided on the top cover 2. A vertical guiding track 8 is provided on the back of the integrated chassis 1, and a water tank 9 is connected to the guiding track 8 in a limited way. A lifting seat 10 is connected to the water tank 9, and a suspension and transmission structure with a distance amplification function is provided on the integrated chassis 1. The suspension and transmission structure is connected to the top cover 2 and the lifting seat 10, and the lifting of the top cover 2 controls the lifting of the lifting seat 10. A return port 15 and a pressing member 16 are provided on the water tank 9, and a storage tank 17 is installed on the top of the water tank 9. A heat absorption pipe 18 embedded in the outer wall of the integrated chassis 1 is connected to the storage tank 17, and the bottom end of the heat absorption pipe 18 is connected to a diversion groove 19. An end pipe 20 is installed at the end of the diversion groove 19, and a telescopic water drain head 23 is provided on the end pipe 20. When the water tank 9 moves to the bottom of the guiding track 8, the water drain head 23 can extend above the return port 15 and is opened when it extends. An L-shaped pipe 26 is rotatably installed on the water tank 9, and when the water tank 9 moves to the top of the guiding track 8, the L-shaped pipe 26 can rotate to a horizontal state, and the end of the L-shaped pipe 26 falls on the water inlet groove 31 of the storage tank 17. Cooling water can be stored in the storage tank 17 and the water tank 9, and a solenoid valve controlled by the temperature monitoring device is provided between the storage tank 17 and the heat absorption pipe 18.
[0029] The lifting cylinder 3 is vertically installed on the outer wall of the integrated chassis 1, and a retractable isolation net 4 is arranged between the top cover 2 and the integrated chassis 1. The ventilation fan 5 is installed on the air intake groove of the top cover 2, and an air outlet groove is arranged at the bottom of the integrated chassis 1. The temperature monitoring device is provided with a monitoring threshold value. When the temperature inside the integrated chassis 1 is higher than the monitoring threshold value, the top cover 2 is lifted by the lifting cylinder 3.
[0030] The information transfer device of the present invention adopts a big data all-in-one machine, which mainly dissipates heat through the ventilation fan 5 located at the top. And when the temperature monitoring device inside the integrated chassis 1 detects that the temperature is too high, the top cover 2 is lifted by the lifting cylinder 3 to increase the heat dissipation space, enabling the all-in-one machine to dissipate heat quickly. The isolation net 4 arranged on the top cover 2 can prevent dust from entering the box.
[0031] The storage tank 17 is installed on the side wall of the integrated chassis 1, and the heat absorption pipes 18 are arranged in an array. The heat absorption pipes 18 are connected to the bottom of the storage tank 17, and the flow guide groove 19 is inclined. The end pipe 20 is connected to the lower end of the flow guide groove 19.
[0032] Cooling water can be loaded in the storage tank 17 of the present invention, and the heat absorption pipes 18 are arranged at the bottom of the storage tank 17 and are embedded in the integrated chassis 1. When the temperature inside the integrated chassis 1 is too high, in addition to lifting the top cover 2, the solenoid valve on the storage tank 17 can also be opened, so that the cooling water can flow from the storage tank 17 into the heat absorption pipes 18, and the heat is taken away by the cooling water. The heated cooling water can enter the flow guide groove 19 and be recycled from the position of the end pipe 20.
[0033] The guiding track 8 is vertically arranged, and the lifting seat 10 is connected to the side wall of the water tank 9. The hoisting transmission structure includes a driving shaft 13 rotatably installed on the integrated chassis 1, and a winding wheel 12 and a first gear 14 are fixedly connected to the driving shaft 13. A lifting rope 11 is wound around the winding wheel 12, and a top block 6 is fixedly installed on the top cover 2, and a first rack 7 is connected to the top block 6. The driving shaft 13 is vertically connected to the outer wall of the integrated chassis 1, and the diameter of the winding wheel 12 is 3 - 5 times the diameter of the first gear 14, and this multiple is the multiple of the lifting distance of the water tank 9 and the lifting distance of the top cover 2. The first rack 7 meshes with the first gear 14, and the lifting rope 11 is fixedly connected to the lifting seat 10.
[0034] The present invention recovers and transports the cooling water through the water tank 9. The water tank 9 can be lifted and lowered along the guiding track 8, and the lifting of the water tank 9 is opposite to that of the top cover 2. When overheated, the top cover 2 rises. At this time, the top block 6 drives the first rack 7 to move upward, so that the first gear 14, the drive shaft 13 and the winding wheel 12 rotate. At this time, the winding wheel 12 can lower the lifting rope 11 thereon, so that the lifting seat 10 and the water tank 9 move downward. Since the diameter of the winding wheel 12 is a corresponding multiple of that of the first gear 14, when the top cover 2 rises to the limit, the water tank 9 can also move to the bottom of the guiding track 8. On the contrary, when the top cover 2 descends and closes on the integrated chassis 1, the water tank 9 can move to the top of the integrated chassis 1.
[0035] The opening of the return port 15 is arranged upward, and the pressing member 16 is of a T-shaped structure. A perforated baffle 22 is movably installed in the end pipe 20 through an elastic member 21. The water discharge head 23 is movably connected in the end pipe 20, and a spring 24 is fixedly connected to the water discharge head 23. A wedge block 25 is installed on the top surface of the water discharge head 23, and the wedge block 25 is located below the pressing member 16.
[0036] The return port 15 on the water tank 9 can recover the cooling water from the position of the diversion groove 19. The end pipe 20 and the water discharge head 23 on the diversion groove 19 are usually in a closed state. The water discharge head 23 is retracted into the end pipe 20 by the elastic force of the spring 24, and the tail of the water discharge head 23 is blocked by the perforated baffle 22, so that the cooling water will not flow out. When the water tank 9 moves to the bottom, the pressing member 16 thereon acts on the wedge block 25, generating a lateral force to make the water discharge head 23 extend above the return port 15. At this time, the tail of the water discharge head 23 is separated from the perforated baffle 22, and the cooling water can enter the water tank 9 from the water discharge head 23, completing the recovery of the cooling water.
[0037] A sealing seat is arranged on the water tank 9, and the L-shaped pipe 26 is rotatably installed in the sealing seat in a sealed manner. A torsion spring is connected to the L-shaped pipe 26, and a connecting pipe 27 is installed at the top end of the L-shaped pipe 26. A second gear 28 is installed at the bottom end of the L-shaped pipe 26, and an upper support 29 is installed at the top end of the guiding track 8. A second rack 30 is fixedly connected to the upper support 29. The second rack 30 is located on the moving path of the second gear 28, and the opening of the water inlet groove 31 is arranged upward. When the L-shaped pipe 26 rotates to a horizontal state, the connecting pipe 27 can be connected to the water inlet groove 31.
[0038] After the cooling water recovery is completed, the water tank 9 of the present invention can also move to the top of the integrated chassis 1 as the top cover 2 descends, and re-send the cooling water into the storage tank 17 for the next emergency heat dissipation. When the water tank 9 is at the bottom, under the action of the torsion spring, the L-shaped pipe 26 remains in the vertical state to prevent the cooling water in the water tank 9 from flowing out. When the water tank 9 moves to the top, the second rack 30 can act on the second gear 28, causing the L-shaped pipe 26 to rotate to the horizontal state. At this time, the connecting pipe 27 at its end just falls on the water inlet groove 31, so that the cooling water in the water tank 9 flows into the storage tank 17.
[0039] An information transfer system is carried on an information transfer device for big data processing. The system includes the following modules: intelligent data acquisition module, data storage module, data processing and analysis module, intelligent data transmission and publishing module, interactive user experience module, intelligent monitoring and optimization module, privacy protection and compliance module; The intelligent data acquisition module is used for real-time and offline acquisition of automated and multi-source data, and optimizing data acquisition strategies; The data storage module is based on hierarchical storage of cloud-native architecture and is used for intelligent management of hot data and cold data to improve storage efficiency; The data processing and analysis module is used for integrating stream processing and batch processing, and the engine dynamically selects the processing method to achieve fast data cleaning and analysis; The intelligent data transmission and publishing module is used for fast and secure data transmission based on the microservices architecture, and supports real-time data transfer and update functions; The interactive user experience module is used for providing a visual interface to simplify the data analysis process and report generation; The intelligent monitoring and optimization module is used for continuously monitoring the system performance, and using machine learning for automatic resource allocation and intelligent early warning; The privacy protection and compliance module is used for embedding data privacy protection mechanisms to ensure that data processing complies with legal and regulatory requirements.
[0040] When the information transfer device of the present invention is in use: First, the information transfer device of the present invention adopts a big data all-in-one machine, which mainly dissipates heat through the ventilation fan 5 located at the top. And when the temperature monitoring device in the all-in-one chassis 1 detects that the temperature is too high, the top cover 2 is lifted by the lifting cylinder 3 to increase the heat dissipation space, enabling rapid heat dissipation of the all-in-one machine. The isolation net 4 provided on the top cover 2 can prevent dust from entering the box. In the storage tank 17 of the present invention, cooling water can be loaded, and a heat absorption tube 18 is provided at the bottom of the storage tank 17. The heat absorption tube 18 is embedded in the all-in-one chassis 1. When the temperature in the all-in-one chassis 1 is too high, in addition to lifting the top cover 2, the solenoid valve on the storage tank 17 can also be opened, so that the cooling water can flow from the storage tank 17 into the heat absorption tube 18, and the heat is taken away by the cooling water. The heated cooling water can enter the diversion groove 19 and be recovered from the position of the end pipe 20. The present invention recovers and transports the cooling water through the water tank 9. The water tank 9 can move up and down along the guiding track 8, and the movement of the water tank 9 is opposite to that of the top cover 2. When the top cover 2 rises due to overheating, at this time, the top block 6 drives the first rack 7 to move upward, so that the first gear 14, the driving shaft 13 and the winding wheel 12 rotate. At this time, the winding wheel 12 can lower the lifting rope 11 thereon, so that the lifting seat 10 and the water tank 9 move downward. Since the diameter of the winding wheel 12 is a corresponding multiple of the first gear 14, when the top cover 2 rises to the limit, the water tank 9 can also move to the bottom of the guiding track 8. On the contrary, when the top cover 2 descends and closes on the all-in-one chassis 1, the water tank 9 can move to the top of the all-in-one chassis 1. The return port 15 provided on the water tank 9 can recover the cooling water from the position of the diversion groove 19. The end pipe 20 and the water release head 23 on the diversion groove 19 are usually in a closed state. The water release head 23 is retracted into the end pipe 20 by the elastic force of the spring 24, and the tail of the water release head 23 is blocked by the perforated baffle 22, so that the cooling water will not flow out. When the water tank 9 moves to the bottom, the pushing member 16 thereon acts on the wedge block 25, generating a lateral force that causes the water release head 23 to extend above the return port 15. At this time, the tail of the water release head 23 is separated from the perforated baffle 22, and the cooling water can enter the water tank 9 from the water release head 23, completing the recovery of the cooling water. After the water tank 9 of the present invention has completed the recovery of the cooling water, it can also move to the top of the all-in-one chassis 1 as the top cover 2 descends, and re-send the cooling water into the storage tank 17 for the next emergency heat dissipation. When the water tank 9 is at the bottom, under the action of the torsion spring, the L-shaped pipe 26 remains in the vertical state to prevent the cooling water in the water tank 9 from flowing out. When the water tank 9 moves to the top, the second rack 30 can act on the second gear 28, causing the L-shaped pipe 26 to rotate to the horizontal state. At this time, the connecting pipe 27 at its end just falls on the water inlet groove 31, so that the cooling water in the water tank 9 flows into the storage tank 17.
[0041] Although embodiments of the present invention have been shown and described, it will be understood by those of ordinary skill in the art that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. An information transfer device for big data processing, comprising an integrated chassis (1), characterized in that: The integrated chassis (1) is provided with a liftable top cover (2), and the top cover (2) is driven by a lift cylinder (3). A temperature monitoring device is arranged inside the integrated chassis (1) to control the lift cylinder (3). A ventilation fan (5) is arranged on the top cover (2). A vertical guide rail (8) is arranged on the back of the integrated chassis (1), and a water tank (9) is connected to the guide rail (8) in a limited way. A lift seat (10) is connected to the water tank (9), and a lifting and dropping transmission structure with a distance amplification function is arranged on the integrated chassis (1). The lifting and dropping transmission structure is connected to the top cover (2) and the lift seat (10), and the lifting of the lift seat (10) is controlled by the lifting of the top cover (2). A return port (15) and a pressing member (16) are arranged on the water tank (9), and a storage tank (17) is installed at the top of the water tank (9). A heat absorption pipe (18) embedded in the outer wall of the integrated chassis (1) is connected to the storage tank (17), and the bottom end of the heat absorption pipe (18) is connected to a diversion groove (19). An end pipe (20) is installed at the end of the diversion groove (19), and a telescopic water discharge head (23) is arranged on the end pipe (20). When the water tank (9) moves to the bottom of the guide rail (8), the water discharge head (23) can extend above the return port (15) and is opened when it extends. An L-shaped pipe (26) is rotatably installed on the water tank (9), and when the water tank (9) moves to the top of the guide rail (8), the L-shaped pipe (26) can rotate to a horizontal state, and the end of the L-shaped pipe (26) falls on the water inlet groove (31) of the storage tank (17). Cooling water can be stored in the storage tank (17) and the water tank (9), and an electromagnetic valve controlled by the temperature monitoring device is arranged between the storage tank (17) and the heat absorption pipe (18).
2. The information transfer device for big data processing according to claim 1, characterized in that: The lift cylinder (3) is vertically installed on the outer wall of the integrated chassis (1), and a retractable isolation net (4) is arranged between the top cover (2) and the integrated chassis (1). The ventilation fan (5) is installed on the air inlet groove of the top cover (2), and an air outlet groove is arranged at the bottom of the integrated chassis (1). The temperature monitoring device is provided with a monitoring threshold. When the temperature inside the integrated chassis (1) is higher than the monitoring threshold, the top cover (2) rises through the lift cylinder (3).
3. An information transfer device for big data processing according to claim 1, characterized in that: The guide rail (8) is vertically arranged, and the lift seat (10) is connected to the side wall of the water tank (9). The lifting and dropping transmission structure includes a driving shaft (13) rotatably installed on the integrated chassis (1), and a winding wheel (12) and a first gear (14) are fixedly connected to the driving shaft (13). A lifting rope (11) is wound on the winding wheel (12), and a top block (6) is fixedly installed on the top cover (2). A first rack (7) is connected to the top block (6).
4. An information transfer device for big data processing according to claim 3, characterized in that: The driving shaft (13) is vertically connected to the outer wall of the integrated chassis (1), and the diameter of the winding wheel (12) is 3 - 5 times the diameter of the first gear (14), and this multiple is the multiple of the lifting distance of the water tank (9) and the lifting distance of the top cover (2). The first rack (7) meshes with the first gear (14), and the lifting rope (11) is fixedly connected to the lifting seat (10).
5. An information transfer device for big data processing according to claim 1, characterized in that: The opening of the return port (15) is arranged upward, and the pressing member (16) has a T-shaped structure. A perforated baffle (22) is movably installed in the end pipe (20) through an elastic member (21). The water release head (23) is movably connected in the end pipe (20), and a spring (24) is fixedly connected to the water release head (23). A wedge block (25) is installed on the top surface of the water release head (23), and the wedge block (25) is located below the pressing member (16).
6. An information transfer device for big data processing according to claim 1, characterized in that: The storage tank (17) is installed on the side wall of the integrated chassis (1), and the heat absorption pipes (18) are arranged in a row. The heat absorption pipes (18) are connected to the bottom of the storage tank (17), and the flow guiding groove (19) is inclined. The end pipe (20) is connected to the lower end of the flow guiding groove (19).
7. An information transfer device for big data processing according to claim 1, characterized in that: A sealing seat is provided on the water tank (9), and the L-shaped pipe (26) is rotatably installed in the sealing seat in a sealed manner. A torsion spring is connected to the L-shaped pipe (26), and a connecting pipe (27) is installed at the top end of the L-shaped pipe (26).
8. An information transfer device for big data processing according to claim 7, characterized in that: A second gear (28) is installed at the bottom end of the L-shaped pipe (26), and an upper bracket (29) is installed at the top end of the guiding track (8). A second rack (30) is fixedly connected to the upper bracket (29).
9. An information transfer device for big data processing according to claim 8, characterized in that: The second rack (30) is located on the moving path of the second gear (28), and the opening of the water inlet groove (31) is arranged upward. When the L-shaped pipe (26) rotates to the horizontal state, the connecting pipe (27) can be connected to the water inlet groove (31).
10. An information transfer system, mounted on the information transfer device for big data processing as described in any one of claims 1-9, characterized in that: The system includes the following modules: intelligent data acquisition module, data storage module, data processing and analysis module, intelligent data transmission and publishing module, interactive user experience module, intelligent monitoring and optimization module, privacy protection and compliance module; The intelligent data acquisition module is used for real-time and offline acquisition of automated and multi-source data, and optimizing data acquisition strategies; The data storage module, based on hierarchical storage of cloud-native architecture, is used for intelligent management of hot data and cold data to improve storage efficiency; The data processing and analysis module is used for integrating stream processing and batch processing, and the engine dynamically selects the processing method to achieve fast data cleaning and analysis; The intelligent data transmission and publishing module is used for fast and secure data transmission based on the microservices architecture, supporting real-time data transfer and update functions; The interactive user experience module is used for providing a visual interface, simplifying the data analysis process and report generation; The intelligent monitoring and optimization module is used for continuously monitoring system performance, and using machine learning for automatic resource allocation and intelligent warning; The privacy protection and compliance module is used for embedding data privacy protection mechanisms to ensure that data processing complies with legal and regulatory requirements.