Multi-source heterogeneous data integrated processing system

By designing an automatic plugging and cleaning mechanism, the problems of loose cables and port cleaning in multi-source heterogeneous data processing systems were solved, thereby improving the stability of device connections and system efficiency.

CN121815588APending Publication Date: 2026-04-07GUANGZHOU INST OF TECH
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2024-01-17
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

Existing multi-source heterogeneous data processing systems are prone to data transmission interruptions due to loose cables when connecting and disconnecting devices. Furthermore, they are difficult to maintain automatically and port cleaning is challenging, which affects system efficiency.

Method used

A multi-source heterogeneous data integration processing system was designed, which uses an auxiliary mechanism to automatically plug and unplug cable ends, achieves automatic maintenance through a mini electromagnetic reversing valve, sets up a cleaning mechanism to clean the ports, and a guiding mechanism to organize the cables, ensuring stable cable plugging and port cleanliness.

Benefits of technology

It enables automatic insertion and removal of cable ends and automatic cleaning of ports, improving system stability and efficiency, and avoiding connection errors and port blockage caused by manual operation.

✦ Generated by Eureka AI based on patent content.

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Abstract

A multi-source heterogeneous data integrated processing system disclosed by the present invention comprises a cabinet, a server installed in the cabinet and a port installed on the front side of the server, an auxiliary mechanism is arranged on the front side of the server, installation plates are arranged on the inner wall of the cabinet and located on the two sides of the auxiliary mechanism, the inner walls of the installation plates are connected with clamping blocks, and the clamping blocks are connected with the server. A groove is formed in the top of the front side of the server, a cleaning mechanism is mounted in the groove, and guide mechanisms are mounted on the upper surface and the lower surface of the server; the auxiliary mechanism comprises a movable plate, and clamping grooves are formed in the two sides of the movable plate. According to the invention, through the arrangement of the auxiliary mechanism, the automatic plugging and unplugging effect of the cable end and the port can be realized; by arranging a mini electromagnetic directional valve, the effects of automatic maintenance of connection looseness of the server and automatic disconnection of equipment connection can be achieved; and by arranging the cleaning mechanism, exhaust of the air cylinder can be used for cleaning the interior of the port, and the problems of dust accumulation, impurity blockage and the like in the port can be effectively solved.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of multi-source heterogeneous data processing, in particular to a multi-source heterogeneous data integrated processing system. BACKGROUND

[0002] Multi-source heterogeneous data is simply composed of multiple components from different sources, including mixed data (including structured and unstructured) and discrete data (data distributed in different systems or platforms). Multi-source mainly refers to the diversification of data sources, such as remote sensing images, cameras, questionnaire surveys, mobile phone signaling, GPS tracking, etc. Heterogeneous mainly refers to the difference in data structure. Compared with traditional processing systems, the processing system for collecting multiple data has more efficient servers and more external ports, which facilitates the data input of multiple collection devices.

[0003] Currently, the processing system connects other devices mainly through cable external ports. Since the cable is connected to the port through the terminal, if the terminal and the port are loose during use, it will directly affect the data transmission between the device and the processing system. The existing processing system cannot be automatically maintained, and only the user can manually tighten the connection, which affects the efficient processing of multi-source heterogeneous data. In addition, when disconnecting a device, the user needs to observe the port number from the rear side of the server, and pull out the cable from the port with the corresponding number. Manual disconnection not only wastes time but also easily damages the port due to improper operation. SUMMARY

[0004] The purpose of the present application is to provide a multi-source heterogeneous data integrated processing system to solve the problems raised in the background.

[0005] To achieve the above purpose, the present application provides the following technical scheme: a multi-source heterogeneous data integrated processing system, comprising a cabinet, a server installed in the cabinet, and a port installed on the front side of the server, the front side of the server is provided with an auxiliary mechanism, the inner wall of the cabinet is provided with a mounting plate on both sides of the auxiliary mechanism, the inner wall of the mounting plate is connected with a clamping block, the top of the front side of the server is provided with a groove, the inner part of the groove is installed with a cleaning mechanism, and the upper and lower surfaces of the server are installed with a guide mechanism. The auxiliary mechanism comprises a movable plate, the movable plate is provided with a clamping groove on both sides, a wire slot is formed through the middle part of the movable plate, rectangular grooves are formed on the upper and lower sides of the wire slot, a pressing plate is installed in the rectangular groove, an electromagnetic lock is embeddedly installed at one end of the rectangular groove, a gas cylinder is connected to the rear wall of the movable plate, an installation seat is connected to the side of the pressing plate away from the movable plate, a mini electromagnetic reversing valve is installed on the front wall of the installation seat, an air inlet pipe is connected to one side of the installation seat, and an air outlet pipe is connected to the side of the installation seat close to the pressing plate.

[0006] Preferably, the mounting plate is mounted on the inner wall of the two sides of the cabinet, the width of the clamping block is matched with the width of the clamping groove, the clamping block is slidably clamped in the clamping groove, and the movable plate is slidably connected with the mounting plate through the clamping block.

[0007] Preferably, a first pin shaft is arranged at one end of the pressing plate away from the electromagnetic lock, a fixing cylinder is arranged in the pressing plate, a movable groove is formed in the fixing cylinder, a piston is arranged in the movable groove, an air inlet hole is formed in one side of the movable groove close to the mounting seat, a piston rod is connected to one side of the piston away from the air inlet hole, a top block is connected to the piston rod, and an expansion groove is formed in one side of the pressing plate close to the wire slot.

[0008] Preferably, the pressing plate is in a rectangular strip shape, the pressing plate is rotatably connected with the inner wall of the rectangular groove through the first pin shaft, the rectangular groove is communicated with the wire slot, a positioning groove is formed at one end of the pressing plate away from the first pin shaft, and the electromagnetic lock is inserted into the pressing plate through the positioning groove.

[0009] Preferably, one end of the air inlet hole is communicated with the movable groove, the other end of the air inlet hole is communicated with an air outlet pipe, the number of the air outlet pipes is several, the several air outlet pipes are communicated with the air inlet pipe through the several mini electromagnetic reversing valves, and the air inlet pipe is externally connected with compressed air.

[0010] Preferably, the cleaning mechanism comprises a cleaning pipe, an air outlet hole is formed in the bottom of the cleaning pipe, fixing rings are arranged at both ends of the cleaning pipe, a connecting block is integrally connected to the bottom of each fixing ring, a second pin shaft is arranged in the bottom of the connecting block, and a torque spring is arranged outside the second pin shaft.

[0011] Preferably, the cleaning pipe is in a circular tube shape, the cleaning pipe is connected with the two fixing rings respectively at both ends, the connecting block is rotatably connected with the server shell through the second pin shaft in the groove, the number of the air outlet holes is several, and the air outlet holes are equidistantly arranged at the bottom of the cleaning pipe, and the air outlet direction of the air outlet hole is towards the port.

[0012] Preferably, the cleaning pipe is connected with an air pipe at both ends, the side wall of the air cylinder is connected with an air cylinder exhaust pipe, an air valve is arranged between the air pipe and the air cylinder exhaust pipe, the air pipe is communicated with the air cylinder exhaust pipe through the air valve, and the air cylinder exhaust pipe is connected with the air cylinder at one end and externally connected with compressed air at the other end.

[0013] Preferably, the guide mechanism comprises a fixed guide plate, a fixed block is arranged on the rear side of the fixed guide plate, a guide rod is connected between the fixed guide plate and the fixed block, a movable guide plate is arranged between the fixed guide plate and the fixed block, sliding holes are formed in both ends of the movable guide plate, and wire clamping grooves are formed in the surfaces of the fixed guide plate and the movable guide plate.

[0014] Preferably, the movable guide plate is slidably connected to the slide rod via a sliding hole, the cable clamping groove is arc-shaped, and the cable end on the port is clamped inside the cable clamping groove.

[0015] Compared with the prior art, the beneficial effects of the present invention are: 1. This multi-source heterogeneous data integration processing system, through the setting of an auxiliary mechanism, inserts the cable end of the external device into the cable placement groove, and introduces compressed gas into the air outlet pipe through the air inlet pipe. Air enters the inner cavity of the fixed cylinder, and the air pressure squeezes the piston to slide in the movable groove. The piston drives the top block to extend out of the telescopic groove through the piston rod. The top block inserts into the cable placement groove and squeezes the cable end in the cable placement groove, clamping and positioning the cable end. In conjunction with the cylinder, the movable plate moves, and the movable plate drives the cable end to be inserted into the port, realizing the automatic insertion and removal of the cable end and the port.

[0016] 2. This multi-source heterogeneous data integration processing system uses mini electromagnetic reversing valves, each connected to a number of air inlets. When a connection at a specific port becomes loose, the corresponding mini electromagnetic reversing valve opens, clamping only the top of the loose cable end with a top block. Combined with the movement of a movable plate, this allows for automatic reconnection of the loose cable, achieving automatic maintenance. Furthermore, when disconnecting a device, there's no need for manual inspection of the cable connection port; simply opening the mini electromagnetic reversing valve at the corresponding port and using an auxiliary mechanism to clamp and pull out the end allows for automatic maintenance of loose server connections and automatic disconnection of devices.

[0017] 3. This multi-source heterogeneous data integration processing system, by setting up a cleaning mechanism, exhausts gas through the cylinder exhaust pipe when the cylinder extends and retracts to move the auxiliary equipment. By opening the vent valve, the compressed gas in the cylinder exhaust pipe is introduced into the vent pipe, and the air enters the cleaning pipe from the vent pipe and finally exits from the air outlet at the bottom of the cleaning pipe. The compressed gas sprayed out cleans the dust adhering to the inner wall of the port. Using the cylinder exhaust for cleaning the inside of the port can effectively prevent dust accumulation and impurity blockage inside the port.

[0018] 4. This multi-source heterogeneous data integration processing system, through the setting of a guide mechanism, allows cables at the connection port to connect to other devices from above or below the server. By inserting the cables into the cable slots on the fixed guide plate and the movable guide plate, multiple cables are separated by several equally spaced cable slots, so that the cables are neatly pulled on the server. The movable guide plate can slide on the guide rod, which can quickly organize the cables and make it convenient for users to quickly observe the devices connected to the cables. Attached Figure Description

[0019] Figure 1 This is a schematic diagram of the overall structure of the present invention; Figure 2 This is a schematic diagram of the server structure of the present invention; Figure 3 This is an exploded view of the auxiliary mechanism structure of the present invention; Figure 4 This is a schematic diagram of the connection structure between the pressure plate and the mounting base of the present invention; Figure 5 This is a schematic diagram of the internal structure of the pressure plate of the present invention; Figure 6 This is a schematic diagram of the cleaning mechanism structure of the present invention; Figure 7 This is a schematic diagram of the guiding mechanism structure of the present invention.

[0020] In the diagram: 1. Server rack; 2. Server; 3. Port; 4. Auxiliary mechanism; 41. Movable plate; 42. Card slot; 43. Cable tray; 44. Rectangular slot; 45. Pressure plate; 451. First pin; 452. Fixed cylinder; 453. Movable slot; 454. Piston; 455. Piston rod; 456. Top block; 457. Telescopic slot; 458. Air inlet; 46. Electromagnetic lock; 47. Cylinder; 48. Mounting base; 49. Mini electromagnetic directional valve; 410 1. Intake pipe; 4. Exit pipe; 5. Mounting plate; 5. Locking block; 6. Groove; 7. Cleaning mechanism; 7. Cleaning pipe; 7. Exit hole; 7. Fixing ring; 7. Connecting block; 7. Second pin; 76. Torque spring; 77. Vent pipe; 78. Vent valve; 79. Cylinder exhaust pipe; 8. Guide mechanism; 81. Fixed guide plate; 82. Fixing block; 83. Guide rod; 84. Movable guide plate; 85. Sliding hole; 86. Cable groove. Detailed Implementation

[0021] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0022] In the description of this invention, it should be noted that the terms "upper," "lower," "inner," "outer," "front end," "rear end," "both ends," "one end," and "the other end," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are used only for the convenience of describing this invention and for simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this invention. Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.

[0023] In the description of this invention, it should be noted that, unless otherwise explicitly specified and limited, the terms "installed," "equipped with," "connected," etc., should be interpreted broadly. For example, "connection" can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium; it can be a connection within two components. Those skilled in the art can understand the specific meaning of the above terms in this invention based on the specific circumstances.

[0024] like Figures 1 to 7 As shown, the multi-source heterogeneous data integrated processing system of this embodiment includes a cabinet 1, a server 2 installed inside the cabinet 1, and ports 3 installed on the front side of the server 2. The server 2 is used to process multi-source heterogeneous data. There are many ports 3. All acquisition devices are connected to the ports 3 through cables, which facilitates diverse data transmission and realizes data transmission with the server 2 to meet the needs of multi-source heterogeneous data use. An auxiliary mechanism 4 is provided on the front side of the server 2. Mounting plates 5 are provided on both sides of the inner wall of the cabinet 1 at the auxiliary mechanism 4. The inner wall of the mounting plate 5 is connected to the card block 51, and the card block 51 is integrally connected to the mounting plate 5. A groove 6 is opened on the top front side of the server 2. A cleaning mechanism 7 is installed inside the groove 6 to clean the dust and impurities accumulated in the port 3. A guide mechanism 8 is installed on the upper and lower surfaces of the server 2 for cable traction and guidance. The auxiliary mechanism 4 includes a movable plate 41. Slots 42 are provided on both sides of the movable plate 41. A cable placement groove 43 is provided through the middle of the movable plate 41. The number of cable placement grooves 43 corresponds to the number and position of ports 3 on the server 2. Rectangular slots 44 are provided on the upper and lower sides of the cable placement groove 43. A pressure plate 45 is installed inside the rectangular slot 44. An electromagnetic lock 46 is embedded in one end of the rectangular slot 44 to lock the pressure plate 45. A cylinder 47 is connected to the rear wall of the movable plate 41 and is installed on the upper surface of the server 2. The cylinder 47 is used to push the movable plate 41 to move back and forth. The pressure plate 45 is located at... A mounting base 48 is connected to one side of the movable plate 41. The mounting base 48 is used to install multiple mini electromagnetic reversing valves 49. The mini electromagnetic reversing valves 49 are installed on the front side wall of the mounting base 48. An air inlet pipe 410 is connected to one side of the mounting base 48. An air outlet pipe 411 is connected to the side of the mounting base 48 near the pressure plate 45. An exhaust hole is also provided on the side of the mounting base 48 away from the air inlet pipe 410. When the electromagnetic reversing valve is open, the air inlet pipe 410 and the air outlet pipe 411 are connected to introduce compressed gas into the fixed cylinder 452. When the electromagnetic reversing valve is closed, the exhaust hole and the air outlet pipe 411 are connected to exhaust gas to balance the air pressure in the fixed cylinder 452.

[0025] Specifically, the mounting plate 5 is installed on the inner walls of both sides of the cabinet 1. The width of the locking block 51 is adapted to the width of the slot 42. The locking block 51 slides inside the slot 42. The locking block 51 limits the movement of the movable plate 41, so that the movable plate 41 is stably placed between the two mounting plates 5. The movable plate 41 is slidably connected to the mounting plate 5 through the locking block 51. The cable end clamped is inserted into the port 3 by moving the movable plate 41 back and forth.

[0026] Furthermore, a first pin 451 is provided through the end of the pressure plate 45 away from the electromagnetic lock 46. The first pin 451 realizes the rotatable connection between the pressure plate 45 and the rectangular slot 44, allowing the pressure plate 45 to rotate out of the rectangular slot 44, facilitating the insertion of multiple cable ends into the cable placement slot 43 from the rectangular slot 44. A fixed cylinder 452 is provided inside the pressure plate 45, and a movable slot 453 is opened inside the fixed cylinder 452. A piston 454 is provided inside the movable slot 453. The piston 454 interacts with the movable slot 453. The wall is slidably connected. An air inlet 458 is provided on the side of the movable groove 453 near the mounting base 48. An air outlet pipe 411 is fixed inside the air inlet 458 to form a connection. A piston rod 455 is connected to the side of the piston 454 away from the air inlet 458. A top block 456 is connected to the piston rod 455. The top block 456 is frustum-shaped. A telescopic groove 457 is provided on the side of the pressure plate 45 near the wire placement groove 43. When the top block 456 extends out of the telescopic groove 457, it contacts the cable end in the wire placement groove 43.

[0027] Furthermore, the pressure plate 45 is rectangular strip-shaped. The pressure plate 45 is rotatably connected to the inner wall of the rectangular groove 44 via the first pin 451. The rectangular groove 44 is connected to the wire placement groove 43. The end of the cable to be connected is inserted into the corresponding position of the wire placement groove 43 from the rectangular groove 44 according to the position of the connection port 3. A positioning groove is opened at the end of the pressure plate 45 away from the first pin 451. The electromagnetic lock 46 is inserted into the pressure plate 45 via the positioning groove. By rotating the pressure plate 45 around the first pin 451, the pressure plate 45 is inserted into the rectangular groove 44. The electromagnetic lock 46 locks the pressure plate 45 after it is inserted into the rectangular groove 44.

[0028] Furthermore, one end of the air inlet 458 is connected to the movable slot 453, and the other end of the air inlet 458 is connected to the air outlet 411. There are several air outlets 411, which are connected to the air inlet 410 via several mini electromagnetic reversing valves 49. The air inlet 410 is connected to compressed air. By introducing compressed gas into the air inlet 410, the air enters the air outlet 411 from the air inlet 410, and then enters the inner cavity of the fixed cylinder 452 from the air outlet 411 through the air inlet 458. The arrangement of several air outlets 411 connected to the air inlet 410 via several mini electromagnetic reversing valves 49 allows for individual clamping of a specific end. This facilitates timely clamping and reconnection of a loose end, and also allows for clamping to disconnect the cable of a specific device.

[0029] Furthermore, the cleaning mechanism 7 includes a cleaning pipe 71, which is a rigid PVC pipe. A number of air vents 72 are provided at the bottom of the cleaning pipe 71, allowing for unified cleaning of several ports 3. Both ends of the cleaning pipe 71 are fitted with fixing rings 73, and a connecting block 74 is integrally connected to the bottom of each fixing ring 73. The connecting block 74 is inserted into the groove 6, and a second pin 75 is provided at the bottom of the connecting block 74. A torque spring 76 is fitted on the outside of the second pin 75. The connecting block 74 is rotatably connected to the groove 6 via the second pin 75. When the movable plate 41 is in front of the server 2, the connecting block 74 tilts forward within the groove 6, and the air vents 72 at the bottom of the cleaning pipe 71 tilt upwards towards the ports 3. When the movable plate 41 moves backward to fit against the server 2, the movable plate 41 squeezes the cleaning pipe 71, causing the connecting block 74 to rotate within the groove 6, compressing the torque spring 76. Once the movable plate 41 moves forward, the torque spring 76 rebounds, causing the connecting block 74 to rotate.

[0030] Furthermore, the cleaning tube 71 is cylindrical, with two fixed rings 73 connected to both ends of the cleaning tube 71. The fixed rings 73 connect the cleaning tube 71 to the vent tube 77. The connecting block 74 is rotatably connected to the server 2 housing via the second pin 75 inside the groove 6. There are several vent holes 72, which are evenly spaced at the bottom of the cleaning tube 71. The vent holes 72 are vented towards the port 3. By opening the vent valve 78, the compressed gas in the cylinder exhaust pipe 79 is introduced into the vent tube 77. Air enters the cleaning tube 71 from the vent tube 77 and is finally discharged from the vent holes 72 at the bottom of the cleaning tube 71. The compressed gas sprays out to clean the dust adhering to the inner wall of the port 3.

[0031] Furthermore, both ends of the cleaning pipe 71 are connected to a vent pipe 77, which is a flexible hose. The side wall of the cylinder 47 is connected to a cylinder exhaust pipe 79. There are two cylinder exhaust pipes 79, which are installed at the front and rear positions on the same side of the cylinder 47, respectively. Both cylinder exhaust pipes 79 are connected to compressed air. The vent pipe 77 is only connected to the cylinder exhaust pipe 79 located on the rear side. A vent valve 78 is installed between the vent pipe 77 and the cylinder exhaust pipe 79. When the vent valve 78 is open, the cylinder exhaust pipe 79 is connected to the vent pipe 77. When the vent valve 78 is closed, the cylinder exhaust pipe 79 is not connected to the vent pipe 77. The vent pipe 77 is connected to the cylinder exhaust pipe 79 through the vent valve 78. One end of the cylinder exhaust pipe 79 is connected to the cylinder 47, and the other end is connected to compressed air. The exhaust from the cylinder 47 is used for cleaning the inside of port 3, which can effectively prevent dust accumulation and impurities from clogging the inside of port 3.

[0032] Furthermore, the guiding mechanism 8 includes a fixed guide plate 81, which is fixed to the upper and lower surfaces of the server 2. A fixing block 82 is provided on the rear side of the fixed guide plate 81. A guide rod 83 is connected between the fixed guide plate 81 and the fixing block 82. A movable guide plate 84 is provided between the fixed guide plate 81 and the fixing block 82. Sliding holes 85 are provided through both ends of the movable guide plate 84. The inner diameter of the slider is adapted to the outer diameter of the guide rod 83. A wire-locking groove 86 is provided on the surface of both the fixed guide plate 81 and the movable guide plate 84.

[0033] Furthermore, the movable guide plate 84 is slidably connected to the slide rod via the sliding hole 85. The movable guide plate 84 can slide on the guide rod 83, which allows for quick cable management and facilitates users to quickly observe the equipment connected to the cable. The cable clamping groove 86 is arc-shaped, and the cable end on the port 3 is clamped inside the cable clamping groove 86. By clamping the cable into the cable clamping groove 86 on the fixed guide plate 81 and the movable guide plate 84, multiple cables are separated by several equally spaced cable clamping grooves 86, so that the cables are neatly pulled on the server 2.

[0034] The usage method of this embodiment is as follows: When the user actually uses the server 2 in a processing system to process multi-source heterogeneous data, data from multiple sources is transmitted to the server 2 via cables through multiple devices. The terminals on the cables are movably connected to the ports 3 on the server 2. When the server 2 is initially deployed, the cylinder 47 is first activated, and the cylinder 47 extends to push the movable plate 41 to move. The locking block 51 slides in the locking slot 42, causing the movable plate 41 to move to the front of the server 2. The end of the cable to be connected is inserted into the corresponding cable placement slot 43 from the rectangular slot 44 according to the position of the connection port 3. Then, the pressure plate 45 is rotated around the first pin 451, and the pressure plate 45 is inserted into the rectangular slot 44. The pressure plate 45 is locked in the groove 44 by an electromagnetic lock 46. Then, compressed gas is introduced into the air inlet pipe 410. Air enters the air outlet pipe 411 from the air inlet pipe 410, and then enters the inner cavity of the fixed cylinder 452 from the air outlet pipe 411 through the air inlet hole 458. The air generates air pressure in the movable groove 453, which compresses the piston 454 to move within the movable groove 453. The piston 454 drives the top block 456 to extend out of the telescopic groove 457 via the piston rod 455. The top block 456 extends from the insertion slot 43 and compresses the cable end in the slot 43, clamping and positioning the cable end. Then, the cylinder 47 is controlled to retract. When the cylinder 47 retracts, compressed air is discharged towards the cylinder exhaust pipe 79, and the ventilation is opened at the same time. Valve 78 allows compressed gas from cylinder exhaust pipe 79 to enter vent pipe 77. Air enters cleaning pipe 71 from vent pipe 77 and finally exits from vent hole 72 at the bottom of cleaning pipe 71. The compressed gas sprays out to clean the dust adhering to the inner wall of port 3. Cylinder 47 retracts, pulling movable plate 41 backward. Movable plate 41 moves the cable end held inside until the cable end is inserted into port 3, completing the batch connection of cable user ports 3. Then, the cables in the upper row are clamped in the fixed guide plate 81 at the top of server 2, and the cables in the lower row are clamped in the fixed guide plate 81 at the bottom of server 2. The cables are pulled backward to connect to other devices and are clamped into the movable plate 81. In the moving guide plate 84, several equally spaced cable clamping slots 86 separate multiple cables, allowing the cables to be neatly pulled on the server 2. When a cable end becomes loosely connected to port 3, causing a data transmission interruption between a device and the server 2, the server 2 queries the port 3 number to which the device is connected and transmits the number data to the control center. The control center controls the electromagnetic steering valve corresponding to the port 3 position of that number to open, while other electromagnetic steering valves close. Then, compressed gas is introduced into the air intake pipe 410, and the air passes through the electromagnetic steering valve into the fixed cylinder 452, causing the loose end to be clamped by the top block 456. Then, the end insertion operation is repeated to reconnect the end to port 3.

[0035] Finally, it should be noted that the above descriptions are merely preferred embodiments of the present invention and are not intended to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

Claims

1. A multi-source heterogeneous data integrated processing system, comprising a cabinet (1), a server (2) installed inside the cabinet (1), and a port (3) installed on the front side of the server (2), characterized in that: An auxiliary mechanism (4) is provided on the front side of the server (2). Mounting plates (5) are provided on both sides of the inner wall of the cabinet (1) at the auxiliary mechanism (4). A locking block (51) is connected to the inner wall of the mounting plate (5). A groove (6) is provided on the top front side of the server (2). A cleaning mechanism (7) is installed inside the groove (6). A guide mechanism (8) is installed on the upper and lower surfaces of the server (2). The auxiliary mechanism (4) includes a movable plate (41), on both sides of the movable plate (41) are slots (42), and a wire placement groove (43) is opened through the middle of the movable plate (41). A rectangular groove (44) is opened on both the upper and lower sides of the wire placement groove (43). A pressure plate (45) is installed inside the rectangular groove (44). An electromagnetic lock (46) is embedded in one end of the rectangular groove (44). A cylinder (47) is connected to the rear side wall of the movable plate (41). A mounting base (48) is connected to the side of the pressure plate (45) away from the movable plate (41). A mini electromagnetic reversing valve (49) is installed on the front side wall of the mounting base (48). An air inlet pipe (410) is connected to one side of the mounting base (48). An air outlet pipe (411) is connected to the side of the mounting base (48) near the pressure plate (45).

2. The multi-source heterogeneous data integration processing system according to claim 1, characterized in that: The mounting plate (5) is installed on the inner walls of both sides of the cabinet (1). The width of the card block (51) is adapted to the width of the card slot (42). The card block (51) slides inside the card slot (42). The movable plate (41) is connected to the mounting plate (5) via the card block (51).

3. The multi-source heterogeneous data integration processing system according to claim 1, characterized in that: A first pin (451) is provided through the end of the pressure plate (45) away from the electromagnetic lock (46). A fixed cylinder (452) is provided inside the pressure plate (45). A movable groove (453) is provided inside the fixed cylinder (452). A piston (454) is provided inside the movable groove (453). An air inlet (458) is provided on the side of the movable groove (453) near the mounting base (48). A piston rod (455) is connected to the side of the piston (454) away from the air inlet (458). A top block (456) is connected to the piston rod (455). A telescopic groove (457) is provided on the side of the pressure plate (45) near the wire placement groove (43).

4. The multi-source heterogeneous data integration processing system according to claim 3, characterized in that: The pressure plate (45) is rectangular strip-shaped. The pressure plate (45) is rotatably connected to the inner wall of the rectangular groove (44) via the first pin (451). The rectangular groove (44) is connected to the wire placement groove (43). A positioning groove is provided at one end of the pressure plate (45) away from the first pin (451). The electromagnetic lock (46) is inserted into the pressure plate (45) via the positioning groove.

5. The multi-source heterogeneous data integration processing system according to claim 3, characterized in that: One end of the air inlet (458) is connected to the movable slot (453), and the other end of the air inlet (458) is connected to the air outlet (411). There are several air outlets (411), and several air outlets (411) are connected to the air inlet (410) through several mini electromagnetic reversing valves (49). The air inlet (410) is connected to compressed air.

6. The multi-source heterogeneous data integration processing system according to claim 1, characterized in that: The cleaning mechanism (7) includes a cleaning tube (71), with an air outlet (72) extending through the bottom of the cleaning tube (71). Both ends of the cleaning tube (71) are fitted with fixing rings (73), and a connecting block (74) is integrally connected to the bottom of the fixing ring (73). A second pin (75) extends through the bottom of the connecting block (74), and a torque spring (76) is fitted on the outside of the second pin (75).

7. The multi-source heterogeneous data integration processing system according to claim 6, characterized in that: The cleaning tube (71) is cylindrical. Both ends of the cleaning tube (71) are connected to two fixing rings (73). The connecting block (74) is rotatably connected to the server (2) housing via a second pin (75) inside the groove (6). There are several air outlets (72), which are equidistantly arranged at the bottom of the cleaning tube (71). The air outlets (72) are vented towards the port (3).

8. The multi-source heterogeneous data integration processing system according to claim 6, characterized in that: Both ends of the cleaning pipe (71) are connected to vent pipes (77). The side wall of the cylinder (47) is connected to a cylinder exhaust pipe (79). A vent valve (78) is installed between the vent pipe (77) and the cylinder exhaust pipe (79). The vent pipe (77) is connected to the cylinder exhaust pipe (79) via the vent valve (78). One end of the cylinder exhaust pipe (79) is connected to the cylinder (47), and the other end is connected to compressed air.

9. The multi-source heterogeneous data integration processing system according to claim 1, characterized in that: The guiding mechanism (8) includes a fixed guide plate (81), a fixed block (82) is provided on the rear side of the fixed guide plate (81), a guide rod (83) is connected between the fixed guide plate (81) and the fixed block (82), a movable guide plate (84) is provided between the fixed guide plate (81) and the fixed block (82), and sliding holes (85) are provided through both ends of the movable guide plate (84). The surfaces of the fixed guide plate (81) and the movable guide plate (84) are both provided with wire-locking grooves (86).

10. The multi-source heterogeneous data integration processing system according to claim 9, characterized in that: The movable guide plate (84) is slidably connected to the slide rod via the sliding hole (85), the wire clamping groove (86) is arc-shaped, and the cable end on the port (3) is clamped inside the wire clamping groove (86).