A smart big data visualization processing device and processing method

By designing a smart big data visual processing device, using drone data acquisition and visual integration, the problem of limited traditional data acquisition scope is solved, efficient data acquisition and processing is achieved, adapting to diversified business needs, and improving the application scope and value of the system.

CN120171814BActive Publication Date: 2025-08-29BEIJING XIJIA CHUANGZHI EDUCATION TECH CO LTD
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Patent Information

Application Number
CN202510663734.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-05-22
Publication Date
2025-08-29
Estimated Expiration
2045-05-22

AI Technical Summary

Technical Problem

In traditional smart big data visualization, data acquisition relies on fixed sensor networks or manual acquisition, and the coverage is limited. It cannot quickly change the scope and method of data acquisition, and it is difficult to adapt to diversified business needs, which limits the application scope and value of the system.

Method used

A smart big data visual processing device is designed, including a trailer body, handling and auxiliary deployment mechanism, ejection takeoff mechanism, telescopic multi-layer charging compartment, data collection mechanism and signal transmission equipment. Through drone data acquisition and visual integration, an efficient data acquisition network is formed to realize the integrated process of data from collection and transmission to visual presentation.

Benefits of technology

It realizes the rapid deployment of drones in complex environments and different locations, improves data processing capabilities and operation efficiency, and can quickly respond and flexibly perform data acquisition tasks.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the technical field of data acquisition devices, and specifically discloses an intelligent big data visualization processing device and a processing method, comprising: a trailer body, a transporting and auxiliary deployment mechanism, a catapult take-off mechanism, a retractable multi-layer charging cabin, a data collection mechanism, a controller, and a signal transmission device; the transporting and auxiliary deployment mechanism is arranged on the top front side of the trailer body; and the catapult take-off mechanism is arranged on the middle part of the top rear side of the trailer body. The present invention deeply integrates multiple drone data acquisition and big data visualization to form an efficient data acquisition network, and realizes an integrated process from data acquisition, transmission, processing to visualization presentation, thereby improving the operating efficiency and data processing capabilities of the entire system, and constructing a flexible and movable drone launch platform, so that drones can be quickly deployed in various complex environments and different locations, and realize rapid response and flexible execution of data acquisition tasks.
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Description

Technical Field

[0001] The present invention relates to the technical field of data acquisition devices, and specifically to an intelligent big data visualization processing device and a processing method. Background Art

[0002] Smart big data visualization is a technology that uses intuitive visual forms such as graphics and charts to present massive amounts of complex and abstract big data information, helping users quickly and accurately grasp data patterns, trends, and relationships, and thus make informed decisions. It integrates key technologies such as data acquisition and preprocessing, visualization design, interactive technology, and artificial intelligence and machine learning. It is widely used in smart cities, commerce, healthcare, scientific research, and other fields, and has the advantages of improving decision-making efficiency, enhancing data understanding, promoting communication and collaboration, and supporting real-time monitoring. However, it also faces challenges such as data security and privacy protection, data quality, visualization effect evaluation, and technical complexity. As a key part of big data applications, it plays a vital role in various industries.

[0003] In the existing technical field, data collection in traditional smart big data visualization mostly relies on fixed sensor networks or manual collection. Due to the limited coverage of fixed sensor networks, manual collection is inefficient and has poor real-time performance. In the face of different application scenarios and needs, it is impossible to quickly change the scope and method of data collection, making it difficult to adapt to diverse business needs, which limits the application scope and value of the system. Summary of the Invention

[0004] The purpose of the present invention is to provide an intelligent big data visualization processing device and processing method to solve the technical problems mentioned in the above background technology.

[0005] To achieve the above-mentioned objectives, the present invention provides the following technical solutions: an intelligent big data visualization processing device, comprising: a trailer body, a transporting and auxiliary deployment mechanism, a catapult take-off mechanism, a retractable multi-layer charging cabin, a data collection mechanism, a controller and a signal transmission device; the transporting and auxiliary deployment mechanism is arranged on the top front side of the trailer body; the catapult take-off mechanism is arranged in the middle of the rear side of the top end of the trailer body; the number of the retractable multi-layer charging cabins is two, and the two retractable multi-layer charging cabins are respectively installed at the left and right ends of the front side of the top end of the trailer body; the number of the data collection mechanisms is several, and the several data collection mechanisms can be stored inside the front and rear two retractable multi-layer charging cabins; the controller is installed on the external front side of the retractable multi-layer charging cabin on the left side, and the controller and the retractable multi-layer charging cabin are electrically connected; the signal transmission device is installed at the left rear of the top end of the trailer body, and the signal transmission device and the controller are electrically connected.

[0006] Preferably, the data collection mechanism includes: a data collection drone, a wing body and a folding assembly; the data collection drone can be detachably placed inside the fixed component of the catapult take-off mechanism, and the data collection drone and the controller are remotely connected via a network; the number of the wing bodies is two, and the two wing bodies are respectively installed on the left and right sides of the data collection drone, and the wing body and the data collection drone are electrically connected; the number of the folding assemblies is two, and the two folding assemblies are respectively installed on the outside of the left and right wing bodies.

[0007] Preferably, the transporting and auxiliary deployment mechanism includes: a vertical frame, a roller lifting platform, a first electric telescopic rod, a multi-section telescopic arm and an execution component; the vertical frame is installed on the front side of the top end of the trailer body in the up-down direction; the roller lifting platform is arranged inside the vertical frame; there are two first electric telescopic rods, and the two first electric telescopic rods are installed on the left and right sides of the top end of the vertical frame in the up-down direction respectively, and the telescopic ends of the left and right first electric telescopic rods are respectively connected to the left and right sides of the top end of the roller lifting platform, and the first electric telescopic rod is electrically connected to the controller; the multi-section telescopic arm is installed on the inner side of the roller lifting platform in the front-to-back direction, and the multi-section telescopic arm is electrically connected to the controller; the execution component is installed at the bottom of the telescopic end of the multi-section telescopic arm.

[0008] Preferably, the execution component includes: a horizontal frame, a guide rail frame, a moving seat, a second electric telescopic rod, a first electric suction cup, a trough frame, a third electric telescopic rod, a mounting seat, a fourth electric telescopic rod and an insert block; the horizontal frame is installed at the bottom of the telescopic end of the multi-section telescopic arm along the front-to-back direction; the number of the guide rail frames is two, and the two guide rail frames are respectively installed at the front sides of the left and right ends of the inner side of the horizontal frame along the front-to-back direction; the moving seat is plugged into the inner sides of the left and right guide rail frames along the left and right directions; the second electric telescopic rod is installed at the middle of the inner rear end of the horizontal frame along the front-to-back direction, the telescopic end of the second electric telescopic rod is connected to the rear side of the moving seat, and the second electric telescopic rod is electrically connected to the controller; the number of the first electric suction cups is two, and the two first electric suction cups are respectively installed at the rear side of the bottom end of the horizontal frame and the bottom end of the moving seat, and the first electric suction cup and the controller The controller is electrically connected; the trough frame is installed in the middle of the top of the horizontal frame through the bracket along the left and right directions; the number of the third electric telescopic rods is two, and the two third electric telescopic rods are respectively installed on the left and right sides of the inner cavity of the trough frame, and the third electric telescopic rod is electrically connected to the controller; the number of the mounting seats is two, and the two mounting seats are respectively arranged on the left and right sides of the outside of the trough frame, and the telescopic ends of the left and right third electric telescopic rods are respectively connected to the inner sides of the left and right mounting seats; the number of the fourth electric telescopic rods is two, and the two fourth electric telescopic rods are respectively installed at the bottom ends of the left and right mounting seats, and the fourth electric telescopic rod is electrically connected to the controller; the number of the plug blocks is two, and the two plug blocks are respectively installed at the bottom of the telescopic ends of the left and right fourth electric telescopic rods; wherein, auxiliary deployment units are provided at the four corners of the middle of the top of the horizontal frame.

[0009] Preferably, the auxiliary deployment unit includes: a fixed seat, a rotating arm, a mounting slot frame, a fifth electric telescopic rod, a slot arm, a tenth electric telescopic rod, a telescopic arm, a sixth electric telescopic rod and a pressing seat; the fixed seat is mounted on the top of the horizontal frame in the up and down directions; one end of the rotating arm is rotatably mounted on the outer bottom of the fixed seat through a rotating shaft; the mounting slot frame is mounted on the outer side of the other end of the rotating arm; the fifth electric telescopic rod is rotatably mounted on the outer top of the fixed seat through a rotating shaft seat, the telescopic end of the fifth electric telescopic rod is rotatably connected to the inner upper side of the mounting slot frame through a rotating shaft, and the fifth electric telescopic rod is electrically connected to the controller; one end of the slot arm The sixth electric telescopic rod is rotatably connected to the lower inner side of the mounting slot frame through a rotating shaft; the sixth electric telescopic rod is rotatably mounted on the inner side of the bottom of the rotating arm through a rotating shaft seat, the telescopic end of the tenth electric telescopic rod is rotatably connected to the upper inner side of the slot arm through a rotating shaft seat, and the tenth electric telescopic rod is electrically connected to the controller; the telescopic arm is inserted into the inner side of the other end of the slot arm in the up-down direction; the sixth electric telescopic rod is installed in the inner cavity of the telescopic arm in the up-down direction, the telescopic end of the sixth electric telescopic rod is connected to the inner side of the telescopic arm, and the sixth electric telescopic rod is electrically connected to the controller; the pressing seat is rotatably connected to the outer side of the bottom end of the telescopic arm through a rotating shaft.

[0010] Preferably, the catapult take-off mechanism includes: a first rotating seat, a sliding platform, an electromagnetic catapult, a second rotating seat and a seventh electric telescopic rod; the first rotating seat is installed on the front side of the top end of the trailer body; the sliding platform is arranged at the top of the rotating end of the first rotating seat along the front-to-back direction; the electromagnetic catapult is arranged inside the sliding platform along the front-to-back direction, and the electromagnetic catapult is electrically connected to the controller; the number of the second rotating seats is two, and the two second rotating seats are respectively installed on the left and right sides of the middle part of the rear side of the top end of the trailer body; the number of the seventh electric telescopic rod is two, and the two seventh electric telescopic rods are respectively installed at the rotating ends of the left and right second rotating seats, the telescopic end of the seventh electric telescopic rod is rotatably connected to the bottom of the sliding platform through a rotating shaft seat, and the seventh electric telescopic rod is electrically connected to the controller; wherein, a fixing component is provided at the top of the ejection end of the sliding platform.

[0011] Preferably, the folding assembly includes: a connecting shell, a limiting groove, a limiting socket, a fixing pin, a slot block and a limiting spring; the number of the connecting shells is two, and the two connecting shells are respectively embedded in the openings in the middle of the outer sides of the left and right wing bodies; the number of the limiting grooves is two, and the two limiting grooves are respectively opened at the top ends of the left and right connecting shells; the number of the limiting sockets is two, and the two limiting sockets are respectively opened in the middle of the inner sides of the left and right connecting shells, and the inner bottoms of the left and right limiting grooves are respectively aligned with the left and right limiting sockets The inner cavities of the holes are connected above; there are two fixed pins, and the two fixed pins are respectively inserted in the inner cavities of the left and right limit holes; there are two slot blocks, and the two slot blocks are respectively installed on the tops of the left and right fixed pins, and the tops of the left and right slot blocks are respectively inserted in the inner cavities of the left and right limit slots; there are two limit springs, one end of the two limit springs is respectively installed on the inner ends of the inner cavities of the left and right limit holes, and the other ends of the two limit springs are respectively connected to the outer sides of the left and right fixed pins.

[0012] Preferably, the folding assembly also includes: a fixed shaft, a connecting seat, a torsion spring, a slot seat and a folding wing; the number of the fixed shafts is two groups, the number of the fixed shafts in each group is two, and the two groups of fixed shafts are respectively installed on the front and rear outer ends of the left and right connecting shells; the number of the connecting seats is two, and the two connecting seats are rotatably connected to the outside of the left and right groups of fixed shafts through bearings; the number of the torsion springs is two groups, the number of each group of torsion springs is two, one end of the two groups of torsion springs is respectively installed on the outer ends of the left and right groups of connecting seats, and the other ends of the two groups of torsion springs are respectively connected to the front and rear ends of the inner sides of the left and right connecting seats; the number of the slot seats is two, the two slot seats are respectively installed on the inner sides of the left and right connecting seats, and the outer ends of the two fixing pins can be inserted into the inner cavities of the left and right slot seats; the number of the folding wings is two, and the two folding wings are respectively fixedly installed on the outer sides of the left and right connecting seats, and the folding wings are electrically connected to the data collection drone.

[0013] Compared with the prior art, the present invention has the following beneficial effects:

[0014] 1. The data collection mechanism placed inside for charging is translated to the outside through the telescopic multi-layer charging cabin. The first electric telescopic rod drives the roller lifting platform to move up and down along the inner side of the vertical frame to the specified height position. The multi-section telescopic arm drives the actuator to move to the position above the data collection mechanism. The second electric telescopic rod drives the moving seat to move to the specified position along the inner side of the guide frame in the front and rear directions. The first electric suction cups on the front and rear sides contact the top of the data collection drone for adsorption and grasping. The third electric telescopic rod drives the mounting seat to move the fourth electric telescopic rod to the top of the slot block. The fourth electric telescopic rod drives the plug block to insert into the inner cavity of the slot block. The third electric telescopic rod drives the mounting seat to move inward, and with the cooperation of the plug block, drives the slot block to drive the fixed plug The pin moves inward and compresses the limit spring, and disengages the fixed pin from the inner cavity of the slot seat. The fifth electric telescopic rod drives the mounting slot frame to rotate the rotating arm upward or downward on the outside of the fixed seat. The tenth electric telescopic rod extends and shortens to drive the slot arm to rotate outward or inward on the inside of the mounting slot frame. The sixth electric telescopic rod drives the telescopic arm to extend and retract to a specified length on the inside of the slot arm, thereby making the pressing seat contact the folding wing, and pressing down the folding wing with the cooperation of the fifth electric telescopic rod, the tenth electric telescopic rod and the sixth electric telescopic rod. The folding wing drives the connecting seat to rotate outside the fixed shaft and compresses the torsion spring to rotate the folding wing downward to the horizontal position of the wing body, thereby completing the deployment of the outer wing body and folding wing of the data collection drone.

[0015] 2. The data collection mechanism is moved to the interior of the fixed component by driving the execution component through the cooperation of the first electric telescopic rod and the multi-section telescopic arm. The fixed component adsorbs and fixes the outside of the data collection drone. The first electric suction cup releases the adsorption connection to the top of the data collection drone. The second rotating seat extends and shortens to drive the rear end of the slide platform to move up or down, so that the slide platform rotates to a specified tilt angle position with the cooperation of the first rotating seat. The electromagnetic catapult uses electromagnetic force to push its own moving end to drive the mounting plate to move upward, and when the electromagnetic catapult moves to its own end, the fixed component releases the adsorption and fixation with the outside of the data collection drone, so that the mounting plate can eject the data collection mechanism according to a predetermined speed and trajectory with the cooperation of the upper fixed component.

[0016] In summary, the present invention deeply integrates the data collection of multiple drones and big data visualization to form an efficient data collection network, and realizes an integrated process from data collection, transmission, processing to visualization presentation, thereby improving the operating efficiency and data processing capabilities of the entire system, and constructing a flexible and mobile drone launch platform, so that drones can be quickly deployed in various complex environments and different locations, realizing rapid response and flexible execution of data collection tasks. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 It is a structural schematic diagram of the present invention;

[0018] Figure 2 for Figure 1 Exploded diagram of the handling and auxiliary deployment mechanism;

[0019] Figure 3 for Figure 2 Exploded diagram of the execution components;

[0020] Figure 4 for Figure 3 A magnified view of point A;

[0021] Figure 5 for Figure 1 Exploded diagram of the catapult takeoff mechanism;

[0022] Figure 6 for Figure 5 Enlarged view of point B;

[0023] Figure 7 for Figure 1 Exploded diagram of the data collection mechanism;

[0024] Figure 8 for Figure 7 Enlarged view of point C.

[0025] In the figure: 1. trailer body; 2. transport and auxiliary deployment mechanism; 21. vertical frame; 22. roller lifting platform; 23. first electric telescopic rod; 24. multi-section telescopic arm; 3. executive component; 31. horizontal frame; 32. guide rail frame; 33. moving seat; 34. second electric telescopic rod; 35. first electric suction cup; 36. slot frame; 37. third electric telescopic rod; 38. mounting seat; 39. fourth electric telescopic rod; 310. plug-in block; 311. fixing seat; 312. rotating arm; 313. mounting slot frame; 314. fifth electric telescopic rod; 315. slot arm; 316. tenth electric telescopic rod; 317. telescopic arm; 318. sixth electric telescopic rod; 319. pressing seat; 4. ejection mechanism; 4 1. First rotating seat; 42. Slide platform; 43. Electromagnetic catapult; 44. Second rotating seat; 45. Seventh electric telescopic rod; 46. Mounting platform; 47. Rotating shaft frame; 48. Rotating frame; 49. Eighth electric telescopic rod; 410. Second electric suction cup; 411. Ninth electric telescopic rod; 412. Support plate; 5. Telescopic multi-layer charging cabin; 6. Data collection mechanism; 61. Data collection drone; 62. Wing body; 63. Connecting shell; 64. Limiting groove; 65. Limiting jack; 66. Fixing pin; 67. Slot block; 68. Limiting spring; 69. Fixed shaft; 610. Connecting seat; 611. Torsion spring; 612. Slot seat; 613. Folding wing; 7. Controller; 8. Signal transmission equipment. DETAILED DESCRIPTION

[0026] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0027] See also Figures 1-8 , the present invention provides a technical solution: a smart big data visualization processing device, comprising: a trailer body 1, a transport and auxiliary deployment mechanism 2, a catapult take-off mechanism 4, a telescopic multi-layer charging cabin 5, a data collection mechanism 6, a controller 7 and a signal transmission device 8; the transport and auxiliary deployment mechanism 2 is arranged on the top front side of the trailer body 1; the catapult take-off mechanism 4 is arranged in the middle of the top rear side of the trailer body 1, and the catapult take-off mechanism 4 can break the limitation of the traditional fixed launch site of UAVs, so that UAVs can be quickly deployed in various complex environments and different locations, and realize rapid response and flexible execution of data collection tasks; the number of telescopic multi-layer charging cabins 5 is two, and the two telescopic multi-layer charging cabins 5 are respectively installed at the left and right ends of the top front side of the trailer body 1, and the telescopic multi-layer charging cabin 5 adopts a multi-layer structure design. The internal charging cabin of the telescopic multi-layer charging cabin 5 is provided with a telescopic bracket, which can charge the data collection UAV 61 stored inside itself with the wing body 62 and the folding wing 613 in a folded state; the data collection mechanism 6 The number is several, and several data collection mechanisms 6 can be stored inside the front and rear telescopic multi-layer charging cabins 5. With the cooperation of the transportation and auxiliary unfolding mechanism 2, the data collection mechanism 6 is unfolded from a folded state that is easy to store to a fixed-wing state, so that it has the characteristics of long range, fast flight speed and strong load capacity. At the same time, it can complete the data collection task of a large area in a short time; the controller 7 is installed on the external front side of the left telescopic multi-layer charging cabin 5, and the controller 7 is electrically connected to the telescopic multi-layer charging cabin 5. A preset program is set inside the controller 7 to automatically control the electrical components inside the device that are electrically connected to itself; the signal transmission device 8 is installed at the left rear of the top of the trailer body 1, and the signal transmission device 8 is electrically connected to the controller 7. The signal transmission device 8 can receive the data signal sent by the data collection drone 61 and establish a connection with the external data processing center. The data is transmitted to the external data processing center through a dedicated data communication link, and encryption technology is used during the transmission process to ensure the security and integrity of the data.

[0028] As a preferred solution, further, Figure 2As shown, the transport and auxiliary deployment mechanism 2 includes: a vertical frame 21, a roller lifting platform 22, a first electric telescopic rod 23, a multi-section telescopic arm 24 and an actuator 3; the vertical frame 21 is installed on the front side of the top of the trailer body 1 in the vertical direction; the roller lifting platform 22 is arranged inside the vertical frame 21, and a locking device is provided inside the roller lifting platform 22, which can be firmly fixed after reaching a preset specified height position to provide stable support for subsequent operations; the number of the first electric telescopic rods 23 is two, and the two first electric telescopic rods 23 are respectively installed on the left and right sides of the top of the vertical frame 21 in the vertical direction The telescopic ends of the two left and right first electric telescopic rods 23 are respectively connected to the left and right sides of the top of the roller lifting platform 22. The first electric telescopic rods 23 are electrically connected to the controller 7. The first electric telescopic rods 23 drive the roller lifting platform 22 to move up and down along the inner side of the vertical frame 21 by extending and shortening themselves; the multi-section telescopic arm 24 is installed on the inner side of the roller lifting platform 22 along the front-to-back direction. The multi-section telescopic arm 24 is electrically connected to the controller 7. The multi-section telescopic arm 24 can drive the actuator 3 to move horizontally to a specified position in the front-to-back direction through its own multi-stage extension and contraction; the actuator 3 is installed at the bottom of the telescopic end of the multi-section telescopic arm 24.

[0029] As a preferred solution, further, Figure 3 and Figure 4As shown, the actuator 3 includes: a horizontal frame 31, a guide rail frame 32, a movable seat 33, a second electric telescopic rod 34, a first electric suction cup 35, a trough frame 36, a third electric telescopic rod 37, a mounting seat 38, a fourth electric telescopic rod 39 and an insert block 310; the horizontal frame 31 is mounted on the bottom of the telescopic end of the multi-section telescopic arm 24 along the front-to-back direction; there are two guide rail frames 32, which are respectively mounted on the front left and right ends of the inner side of the horizontal frame 31 along the front-to-back direction; the movable seat 33 is plugged into the inner side of the left and right guide rail frames 32 along the left-right direction; the second electric telescopic rod 34 is mounted on the front-to-back direction Installed in the middle of the inner rear end of the horizontal frame 31, the telescopic end of the second electric telescopic rod 34 is connected to the rear side of the moving seat 33, the second electric telescopic rod 34 is electrically connected to the controller 7, and the second electric telescopic rod 34 drives the moving seat 33 to move along the inner front and rear direction of the guide rail frame 32 by its own extension and contraction; the number of the first electric suction cup 35 is two, and the two first electric suction cups 35 are respectively installed on the rear side of the bottom end of the horizontal frame 31 and the bottom end of the moving seat 33, the first electric suction cup 35 is electrically connected to the controller 7, and after the first electric suction cup 35 is fully fitted with the data collection drone 61, the first electric suction cup 35 is 35 passes negative pressure gas into the suction cup to generate adsorption force and firmly grasp the data collection drone 61; the trough frame 36 is installed in the middle of the top of the horizontal frame 31 through the bracket along the left and right directions; the number of the third electric telescopic rods 37 is two, and the two third electric telescopic rods 37 are respectively installed on the left and right sides of the inner cavity of the trough frame 36. The third electric telescopic rod 37 is electrically connected to the controller 7. The third electric telescopic rod 37 drives the mounting seat 38 to move outward or inward by its own extension and contraction; the number of the mounting seats 38 is two, and the two mounting seats 38 are respectively arranged on the left and right sides of the outside of the trough frame 36. The telescopic ends of the two third electric telescopic rods 37 are respectively connected to the inner sides of the left and right mounting seats 38; there are two fourth electric telescopic rods 39, which are respectively installed at the bottom ends of the left and right mounting seats 38, and the fourth electric telescopic rods 39 are electrically connected to the controller 7. The fourth electric telescopic rod 39 drives the plug block 310 to move downward or upward by its own extension and shortening; there are two plug blocks 310, which are respectively installed at the bottom of the telescopic ends of the left and right fourth electric telescopic rods 39; among which, auxiliary deployment units are provided at the four corners of the middle part of the top of the horizontal frame 31.

[0030] More specifically, the auxiliary deployment unit includes: a fixed base 311, a rotating arm 312, a mounting slot frame 313, a fifth electric telescopic rod 314, a slot arm 315, a tenth electric telescopic rod 316, a telescopic arm 317, a sixth electric telescopic rod 318 and a pressing base 319; the fixed base 311 is mounted on the top of the horizontal frame 31 in the up-down direction; one end of the rotating arm 312 is rotatably mounted on the outer bottom of the fixed base 311 through a rotating shaft, and the rotating arm 312 can rotate upward or downward on the outer side of the fixed base 311; the mounting slot frame 313 is mounted on the rotating arm 31 2; the fifth electric telescopic rod 314 is rotatably mounted on the outer top of the fixed seat 311 through the shaft seat, the telescopic end of the fifth electric telescopic rod 314 is rotatably connected to the inner upper side of the mounting slot frame 313 through the shaft, the fifth electric telescopic rod 314 is electrically connected to the controller 7, the fifth electric telescopic rod 314 drives the mounting slot frame 313 to rotate upward or downward by its own extension and contraction, and the fifth electric telescopic rod 314 can rotate itself in cooperation with the shaft seat connected to the fixed seat 311 during its own extension and contraction process; one end of the slot arm 315 is connected to the The rotating shaft is rotatably connected to the inner side of the mounting slot frame 313; the tenth electric telescopic rod 316 is rotatably mounted on the inner side of the bottom of the rotating arm 312 through the rotating shaft seat, and the telescopic end of the tenth electric telescopic rod 316 is rotatably connected to the inner side of the slot arm 315 through the rotating shaft seat. The tenth electric telescopic rod 316 is electrically connected to the controller 7. The tenth electric telescopic rod 316 drives the slot arm 315 to rotate upward or downward on the inner side of the mounting slot frame 313 by extending and shortening itself. During the process of extending and shortening itself, the tenth electric telescopic rod 316 can be connected to the slot arm 315 The telescopic arm 317 is inserted into the inner side of the other end of the slot arm 315 in the up-down direction; the sixth electric telescopic rod 318 is installed in the inner cavity of the telescopic arm 317 in the up-down direction, and the telescopic end of the sixth electric telescopic rod 318 is connected to the inner side of the telescopic arm 317. The sixth electric telescopic rod 318 is electrically connected to the controller 7. The fourth electric telescopic rod 39 drives the telescopic arm 317 to move downward or upward in the inner cavity of the slot arm 315 by its own extension and contraction; the pressing seat 319 is rotatably connected to the outer side of the bottom end of the telescopic arm 317 through the rotating shaft.

[0031] As a preferred solution, further, Figure 5 and Figure 6As shown, the catapult take-off mechanism 4 includes: a first rotating base 41, a sliding platform 42, an electromagnetic catapult 43, a second rotating base 44 and a seventh electric telescopic rod 45; the first rotating base 41 is installed on the front side of the top end of the trailer body 1; the sliding platform 42 is arranged at the top of the rotating end of the first rotating base 41 along the front-to-back direction, and the sliding platform 42 can rotate upward or downward with the cooperation of the first rotating base 41; the electromagnetic catapult 43 is arranged inside the sliding platform 42 along the front-to-back direction, and the electromagnetic catapult 43 is electrically connected to the controller 7. The electromagnetic catapult 43 can realize the accelerated movement of its own ejection end, so that the ejected object above the ejection end can be ejected according to a predetermined speed and trajectory; the second rotating base 44 There are two of them, and the two second rotating seats 44 are respectively installed on the left and right sides of the middle part of the top rear side of the trailer body 1; there are two of the seventh electric telescopic rods 45, and the two seventh electric telescopic rods 45 are respectively installed on the rotating ends of the left and right second rotating seats 44, the telescopic end of the seventh electric telescopic rod 45 is rotatably connected to the bottom of the slide platform 42 through the rotating shaft seat, the seventh electric telescopic rod 45 is electrically connected to the controller 7, and the seventh electric telescopic rod 45 drives the slide platform 42 to rotate upward or downward by its own extension and contraction. During the extension and contraction process of the seventh electric telescopic rod 45 itself, it can rotate itself with the cooperation of the second rotating seat 44; wherein, a fixed component is provided on the top of the ejection end of the slide platform 42.

[0032] More specifically, the fixed components include: a mounting plate 46, a rotating shaft frame 47, a rotating frame 48, an eighth electric telescopic rod 49, a second electric suction cup 410, a ninth electric telescopic rod 411 and a support plate 412. The mounting plate 46 is mounted on the top of the ejection end of the sliding platform 42; there are two rotating shaft frames 47, which are respectively mounted on the left and right sides of the top of the mounting plate 46; there are two rotating frames 48, which are respectively mounted on the outside of the rotating shaft of the rotating shaft frame 47, and the rotating frame 48 can rotate inward or outward with the cooperation of the rotating shaft inside the rotating shaft frame 47; there are two eighth electric telescopic rods 49, which are respectively mounted on the front and rear ends of the left and right sides of the top of the mounting plate 46 through the rotating shaft seats, and the telescopic ends of the two eighth electric telescopic rods 49 are respectively rotatably connected to the left and right rotating frames 48 through the rotating shaft. The electric telescopic rod 49 is electrically connected to the controller 7, and the eighth electric telescopic rod 49 drives the rotating frame 48 to rotate inward or outward by its own extension and contraction; there are two second electric suction cups 410, and the two second electric suction cups 410 are respectively installed on the inner top ends of the left and right rotating frames 48. The second electric suction cup 410 is electrically connected to the controller 7. After the second electric suction cup 410 is completely fitted with the data collection drone 61, the second electric suction cup 410 introduces negative pressure gas into the suction cup to generate adsorption force and firmly grasp the data collection drone 61; the ninth electric telescopic rod 411 is installed in the middle of the top end of the mounting plate 46, and the ninth electric telescopic rod 411 is electrically connected to the controller 7. The ninth electric telescopic rod 411 drives the support plate 412 to rotate upward or downward by its own extension and contraction; the support plate 412 is installed at the top of the lifting end of the ninth electric telescopic rod 411.

[0033] As a preferred solution, further, Figure 7 and Figure 8 As shown, the data collection mechanism 6 includes: a data collection drone 61, a wing body 62 and a folding component; the data collection drone 61 can be disassembled and placed inside a fixed component, the data collection drone 61 and the controller 7 are remotely connected via a network, a control module is provided inside the data collection drone 61, which can automatically control electrically connected electrical components, the data collection drone 61 is equipped with different types of sensors according to actual needs, the data collection drone 61 has a built-in data processing unit, which can perform data compression processing on the collected raw data; there are two wing bodies 62, and the two wing bodies 62 are respectively installed on the left and right sides of the data collection drone 61, the wing body 62 and the data collection drone 61 are electrically connected, a movable flap structure is provided inside the wing body 62, and there are two folding components, and the two folding components are respectively installed on the outside of the left and right wing bodies 62.

[0034] More specifically, the folding assembly includes: a connecting shell 63, a limiting groove 64, a limiting socket 65, a fixing pin 66, a slot block 67, a limiting spring 68, a fixing shaft 69, a connecting seat 610, a torsion spring 611, a slot seat 612 and a folding wing 613; there are two connecting shells 63, and the two connecting shells 63 are respectively embedded in the middle openings on the outer sides of the left and right wing bodies 62; there are two limiting grooves 64, and the two limiting grooves 64 are respectively opened at the top of the left and right connecting shells 63; there are two limiting sockets 65, and the two limiting sockets 65 are respectively opened at the left and right connecting shells 63 In the middle of the inner side, the bottom of the inner cavity of the left and right limit grooves 64 is respectively communicated with the upper part of the inner cavity of the left and right limit holes 65; the number of fixed pins 66 is two, and the two fixed pins 66 are respectively inserted into the inner cavity of the left and right limit holes 65, and the fixed pins 66 can move in and out of the inner cavity of the limit holes 65; the number of slot blocks 67 is two, and the two slot blocks 67 are respectively installed on the top of the left and right fixed pins 66, and the top of the left and right slot blocks 67 are respectively inserted into the inner cavity of the left and right limit grooves 64, and the slot blocks 67 can move in and out of the inner cavity of the limit groove 64; the number of limit springs 68 is two, One end of the two limit springs 68 is respectively installed in the inner end of the inner cavity of the left and right limit sockets 65, and the other end of the two limit springs 68 is respectively connected to the outer side of the left and right fixed pins 66; the number of fixed shafts 69 is two groups, and the number of each group of fixed shafts 69 is two. The two groups of fixed shafts 69 are respectively installed at the front and rear outer ends of the left and right connecting shells 63; the number of connecting seats 610 is two, and the two connecting seats 610 are respectively rotatably connected to the outside of the left and right groups of fixed shafts 69 through bearings; the number of torsion springs 611 is two groups, and the number of each group of torsion springs 611 is two. One end of the two groups of torsion springs 611 is divided into They are respectively installed on the outer ends of the left and right groups of connecting seats 610, and the other ends of the two groups of torsion springs 611 are respectively connected to the front and rear ends of the inner sides of the left and right connecting seats 610; there are two slot seats 612, and the two slot seats 612 are respectively installed on the inner sides of the left and right connecting seats 610, and the outer ends of the two fixed pins 66 can be inserted into the inner cavities of the left and right slot seats 612; there are two folding wings 613, and the two folding wings 613 are respectively fixed on the outer sides of the left and right connecting seats 610, the folding wings 613 are electrically connected to the data collection drone 61, and a movable aileron structure is provided inside the folding wings 613.

[0035] The detailed connection means are well-known technologies in this field. The following mainly introduces the working principle and process. The specific work is as follows.

[0036] Step 1: Preliminary preparation: Determine the data collection goals and scope, clarify the type of data to be collected, delineate the data collection area according to the needs of different industries, determine the time period and frequency of data collection, and select appropriate big data visualization tools. Combined with self-developed functions, build a visualization platform that meets specific needs, construct data processing algorithm modules in the platform, and establish a visualization chart template library covering various chart types to facilitate rapid call based on data characteristics. Finally, through the ground control station, plan the flight mission for the UAV based on the data collection goals and scope;

[0037] Step 2: Data Collection

[0038] S1: The staff tows the trailer body 1 to the designated position, and the controller 7 is started. The preset program in the controller 7 controls the telescopic multi-layer charging cabin 5, the first electric telescopic rod 23, the multi-section telescopic arm 24, the second electric telescopic rod 34 and the first electric suction cup 35 to start. The telescopic multi-layer charging cabin 5 opens and moves the data collection mechanism 6 placed inside for charging to the outside. The first electric telescopic rod 23 extends and shortens to drive the roller lifting platform 22 to move up and down along the inner side of the vertical frame 21 to a designated height position. The multi-section telescopic arm 24 drives the actuator 3 to move to a position above the data collection mechanism 6. The second electric telescopic rod 34 extends and shortens to drive the moving seat 33 to move forward and backward along the inner side of the guide frame 32 to a designated position to adapt to the length of the data collection drone 61. With the cooperation of the first electric telescopic rod 23 and the multi-section telescopic arm 24, the first electric suction cups 35 on the front and rear sides are in contact with the top of the data collection drone 61, and the first electric suction cups 35 absorb and grab the data collection drone 61.

[0039] S2: The preset program in the controller 7 starts the third electric telescopic rod 37, the fourth electric telescopic rod 39, the fifth electric telescopic rod 314, the tenth electric telescopic rod 316 and the sixth electric telescopic rod 318. The third electric telescopic rod 37 extends to drive the mounting seat 38 to move outward, so that the fourth electric telescopic rod 39 moves to above the slot block 67. The fourth electric telescopic rod 39 extends to drive the insert block 310 to move downward and insert into the inner cavity of the slot block 67. The third electric telescopic rod 37 shortens to drive the mounting seat 38 to move inward, and in the arrangement of the insert block 310, When the slot block 67 is closed, it moves inward along the inner cavity of the limit slot 64. The slot block 67 drives the fixed pin 66 to move inward along the inner cavity of the limit slot 64 and compresses the limit spring 68, so that the fixed pin 66 is disengaged from the inner cavity of the slot seat 612, thereby releasing the fixation of the connecting seat 610. The fifth electric telescopic rod 314 extends and shortens to drive the mounting slot frame 313 to move upward or downward, so that the mounting slot frame 313 drives the rotating arm 312 to rotate upward or downward outside the fixing seat 311. The tenth electric telescopic rod 316 extends and shortens to drive the slot arm 31 The sixth electric telescopic rod 318 rotates outward or inward inside the mounting slot 313, extending and contracting the telescopic arm 317 to a specified length inside the slot arm 315. This causes the pressing seat 319 to contact the folding wing 613. The folding wing 613 is pressed downward by the cooperation of the fifth electric telescopic rod 314, the tenth electric telescopic rod 316, and the sixth electric telescopic rod 318. The folding wing 613 then drives the connecting seat 610 to rotate outside the fixed shaft 69 and compress the torsion spring 611, causing the folding wing 613 to rotate downward to a position horizontal to the wing body 62. At this point, the fourth electric telescopic rod 39 shortens, causing the plug block 310 to disengage from the inner cavity of the slot block 67. The limit spring 68, under its own elastic action, drives the fixing pin 66 to move outward and reinsert it into the inner cavity of the slot seat 612, thereby fixing the connecting seat 610 in the current position, thereby completing the deployment of the outer wing body 62 and the folding wing 613 of the data collection drone 61. The fifth electric telescopic rod 314, the tenth electric telescopic rod 316 and the sixth electric telescopic rod 318 cooperate to cause the fourth electric telescopic rod 39 to disengage from the surface of the folding wing 613.

[0040] S3: The first electric telescopic rod 23 and the multi-section telescopic arm 24 cooperate to drive the execution component 3 to move the data collection mechanism 6 to the position above the installation platform 46 in the catapult take-off mechanism 4. The preset program in the controller 7 controls the ninth electric telescopic rod 411, the eighth electric telescopic rod 49, the second electric suction cup 410, the second rotating seat 44 and the electromagnetic catapult 43 to start. The ninth electric telescopic rod 411 extends to drive the support plate 412 to move upward so that the support plate 412 contacts the bottom of the data collection drone 61. The eighth electric telescopic rod 49 shortens to drive the rotating frame 48 to rotate inward inside the rotating shaft frame 47, thereby causing the rotating frames 48 on the left and right sides to drive the second electric suction cup 410 to contact the left and right sides of the outside of the data collection drone 61. The second electric suction cups 410 on the left and right sides contact the data collection drone The machine 61 is adsorbed and fixed on the outside, the first electric suction cup 35 releases the adsorption connection with the top of the data collection drone 61, the second rotating seat 44 extends and shortens to drive the rear end of the slide 42 to move upward or downward, so that the slide 42 rotates to a specified tilt angle position with the cooperation of the first rotating seat 41, and the electromagnetic catapult 43 uses electromagnetic force to push its own moving end to drive the mounting plate 46 to move upward, and at the same time as the electromagnetic catapult 43 drives the mounting plate 46 to move to its own end, the left and right second electric suction cups 410 are released from the external adsorption and fixation with the data collection drone 61, the eighth electric telescopic rod 49 extends to drive the rotating frame 48 to drive the second electric suction cup 410 to rotate outward, so that the mounting plate 46 is ejected according to a predetermined speed and trajectory with the cooperation of the upper fixed component;

[0041] S4: The sensors carried by the data collection drone 61 collect images, videos, and environmental data in real time. The data processing unit built into the data collection drone 61 performs preliminary processing on the collected raw data to reduce the amount of data transmission. The processed data is then transmitted to an external data processing center via a dedicated data communication link by the signal transmission device 8. Encryption technology is used during the transmission process to ensure the security and integrity of the data.

[0042] Step 3: Data transmission and processing: After receiving the data transmitted by the signal transmission device 8, the data processing center uses the data cleaning algorithm in the pre-built visualization platform to perform data processing such as denoising, filling missing values, and correcting erroneous data. It also uses big data analysis technology and machine learning algorithms to conduct in-depth analysis of the integrated data, extract valuable information, and provide data support for visualization.

[0043] Step 4: Visual presentation: Based on the data analysis results and data characteristics, select the appropriate chart type from the visualization chart template library, map the analyzed data to the selected visualization chart, and display the data visualization results in real-time dynamic manner on the visualization platform. Users can view the latest data visualization information anytime and anywhere through computers, mobile phones, large-screen monitors and other devices, and keep abreast of data changes to provide support for decision-making.

[0044] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.

Claims

1. A smart big data visualization processing device, characterized in that: include: trailer body (1); A transport and auxiliary deployment mechanism (2) is arranged on the top front side of the trailer body (1); A catapult take-off mechanism (4) is arranged at the middle portion of the rear side of the top end of the trailer body (1); A telescopic multi-layer charging cabin (5), wherein the number of the telescopic multi-layer charging cabin (5) is two, and the two telescopic multi-layer charging cabins (5) are respectively installed at the left and right ends of the front side of the top end of the trailer body (1); A data collection mechanism (6), wherein the number of the data collection mechanisms (6) is several, and the several data collection mechanisms (6) can be stored inside the front and rear telescopic multi-layer charging compartments (5); A controller (7) is mounted on the front side of the telescopic multi-layer charging cabin (5) on the left side, and the controller (7) and the telescopic multi-layer charging cabin (5) are electrically connected; A signal transmission device (8) is installed at the left rear of the top of the trailer body (1), and the signal transmission device (8) is electrically connected to the controller (7); The data collection mechanism (6) includes: A data collection drone (61) is detachably placed inside a fixed component of the ejection takeoff mechanism (4), wherein the data collection drone (61) and the controller (7) are remotely connected via a network; A wing body (62), wherein the number of the wing bodies (62) is two, and the two wing bodies (62) are respectively installed on the left and right sides of the data collection drone (61), and the wing body (62) and the data collection drone (61) are electrically connected; Folding components, the number of the folding components is two, and the two folding components are respectively installed on the outsides of the left and right wing bodies (62); The transport and auxiliary deployment mechanism (2) comprises: A vertical frame (21) is mounted on the front side of the top end of the trailer body (1) in the up-down direction; A roller lifting platform (22) is arranged inside the vertical frame (21); a first electric telescopic rod (23), wherein the number of the first electric telescopic rods (23) is two, and the two first electric telescopic rods (23) are respectively installed on the left and right sides of the top of the vertical frame (21) in the up-down direction, and the telescopic ends of the left and right first electric telescopic rods (23) are respectively connected to the left and right sides of the top of the roller lifting platform (22), and the first electric telescopic rods (23) are electrically connected to the controller (7); A multi-section telescopic arm (24) is installed on the inner side of the roller lifting platform (22) along the front-back direction, and the multi-section telescopic arm (24) is electrically connected to the controller (7); The execution component (3) is installed at the bottom of the telescopic end of the multi-section telescopic arm (24).

2. The intelligent big data visualization processing device according to claim 1, characterized in that: The execution component (3) includes: A horizontal frame (31) is mounted on the bottom of the telescopic end of the multi-section telescopic arm (24) in the front-to-back direction; Guide rail frames (32), the number of the guide rail frames (32) is two, and the two guide rail frames (32) are respectively installed on the front sides of the left and right ends of the inner side of the horizontal frame (31) along the front-back direction; The movable seat (33) is plugged into the inner sides of the left and right guide rail frames (32) along the left and right directions; A second electric telescopic rod (34) is installed in the middle of the inner rear end of the horizontal frame (31) along the front-to-back direction, the telescopic end of the second electric telescopic rod (34) is connected to the rear side of the movable seat (33), and the second electric telescopic rod (34) is electrically connected to the controller (7); a first electric suction cup (35), wherein the number of the first electric suction cups (35) is two, and the two first electric suction cups (35) are respectively mounted on the rear side of the bottom end of the horizontal frame (31) and the bottom end of the movable seat (33), and the first electric suction cup (35) is electrically connected to the controller (7); The trough frame (36) is mounted on the top middle portion of the horizontal frame (31) via a bracket in the left-right direction; a third electric telescopic rod (37), wherein the number of the third electric telescopic rods (37) is two, and the two third electric telescopic rods (37) are respectively mounted on the left and right sides of the inner cavity of the tank frame (36), and the third electric telescopic rods (37) are electrically connected to the controller (7); A mounting seat (38), wherein the number of the mounting seats (38) is two, and the two mounting seats (38) are respectively arranged on the left and right sides of the outside of the trough frame (36), and the telescopic ends of the left and right third electric telescopic rods (37) are respectively connected to the inner sides of the left and right mounting seats (38); A fourth electric telescopic rod (39), wherein the number of the fourth electric telescopic rods (39) is two, and the two fourth electric telescopic rods (39) are respectively mounted on the bottom ends of the left and right mounting seats (38), and the fourth electric telescopic rods (39) are electrically connected to the controller (7); Insertion blocks (310), the number of the insertion blocks (310) is two, and the two insertion blocks (310) are respectively installed at the bottom of the telescopic ends of the left and right fourth electric telescopic rods (39); Wherein, auxiliary deployment units are provided at the four corners of the top middle portion of the horizontal frame (31).

3. The intelligent big data visualization processing device according to claim 2, characterized in that: The auxiliary deployment unit comprises: A fixing seat (311) is mounted on the top of the horizontal frame (31) in the up-down direction; A rotating arm (312), one end of which is rotatably mounted on the outer bottom of the fixed seat (311) via a rotating shaft; A mounting slot frame (313) is mounted on the outside of the other end of the rotating arm (312); A fifth electric telescopic rod (314) is rotatably mounted on the outer top of the fixed seat (311) via a rotating shaft seat, a telescopic end of the fifth electric telescopic rod (314) is rotatably connected to the inner upper side of the mounting slot frame (313) via a rotating shaft, and the fifth electric telescopic rod (314) is electrically connected to the controller (7); A slot arm (315), one end of which is rotatably connected to the lower inner side of the mounting slot frame (313) via a rotating shaft; The tenth electric telescopic rod (316) is rotatably mounted on the inner side of the bottom of the rotating arm (312) via a rotating shaft seat, the telescopic end of the tenth electric telescopic rod (316) is rotatably connected to the upper inner side of the slot arm (315) via the rotating shaft seat, and the tenth electric telescopic rod (316) is electrically connected to the controller (7); A telescopic arm (317) is inserted into the inner side of the other end of the slot arm (315) in the up-down direction; a sixth electric telescopic rod (318) installed in the inner cavity of the telescopic arm (317) in the up-down direction, the telescopic end of the sixth electric telescopic rod (318) being connected to the inner side of the telescopic arm (317), and the sixth electric telescopic rod (318) being electrically connected to the controller (7); The pressing seat (319) is rotatably connected to the outer side of the bottom end of the telescopic arm (317) via a rotating shaft.

4. The intelligent big data visualization processing device according to claim 3, characterized in that: The ejection take-off mechanism (4) comprises: A first rotating seat (41) is mounted on the front side of the top end of the trailer body (1); A sliding platform (42) is arranged on the top of the rotating end of the first rotating seat (41) along the front-back direction; An electromagnetic catapult (43) is arranged inside the slide platform (42) along the front-rear direction, and the electromagnetic catapult (43) is electrically connected to the controller (7); A second rotating seat (44), the number of the second rotating seat (44) is two, and the two second rotating seats (44) are respectively installed on the left and right sides of the middle part of the rear side of the top end of the trailer body (1); A seventh electric telescopic rod (45), wherein the number of the seventh electric telescopic rod (45) is two, and the two seventh electric telescopic rods (45) are respectively mounted on the rotating ends of the left and right second rotating seats (44), the telescopic end of the seventh electric telescopic rod (45) is rotatably connected to the bottom of the sliding platform (42) via a rotating shaft seat, and the seventh electric telescopic rod (45) is electrically connected to the controller (7); Wherein, a fixing component is provided on the top of the ejection end of the sliding platform (42).

5. The intelligent big data visualization processing device according to claim 4, characterized in that: The folding assembly comprises: A connecting shell (63), wherein the number of the connecting shells (63) is two, and the two connecting shells (63) are respectively embedded in the middle openings on the outer sides of the left and right wing bodies (62); Limiting grooves (64), the number of the limiting grooves (64) is two, and the two limiting grooves (64) are respectively opened at the top ends of the left and right connecting shells (63); A limiting jack (65), wherein the number of the limiting jacks (65) is two, and the two limiting jacks (65) are respectively opened in the middle of the inner side of the left and right connecting shells (63), and the bottom of the inner cavity of the left and right limiting grooves (64) is respectively communicated with the upper part of the inner cavity of the left and right limiting jacks (65); A fixed pin (66), wherein the number of the fixed pins (66) is two, and the two fixed pins (66) are respectively plugged into the inner cavities of the left and right limiting sockets (65); A slot block (67), wherein the number of the slot blocks (67) is two, and the two slot blocks (67) are respectively mounted on the tops of the left and right fixing pins (66), and the tops of the left and right slot blocks (67) are respectively plugged into the inner cavities of the left and right limiting slots (64); The limit spring (68) is provided in two numbers, one end of each of the limit springs (68) is mounted on the inner end of the inner cavity of the left and right limit sockets (65), and the other end of each of the limit springs (68) is connected to the outer sides of the left and right fixed pins (66).

6. The intelligent big data visualization processing device according to claim 5, characterized in that: The folding assembly further comprises: Fixed shafts (69), the number of the fixed shafts (69) is two groups, the number of the fixed shafts (69) in each group is two, and the two groups of fixed shafts (69) are respectively installed at the front and rear outer ends of the left and right connecting shells (63); A connecting seat (610), wherein the number of the connecting seats (610) is two, and the two connecting seats (610) are rotatably connected to the outside of the left and right sets of fixed shafts (69) respectively through bearings; Torsion springs (611), the number of the torsion springs (611) being two groups, the number of the torsion springs (611) in each group being two, one end of the two groups of torsion springs (611) being respectively mounted on the outer ends of the left and right groups of connecting seats (610), and the other ends of the two groups of torsion springs (611) being respectively connected to the inner front and rear ends of the left and right connecting seats (610); A slot seat (612), wherein the number of the slot seats (612) is two, and the two slot seats (612) are respectively installed on the inner sides of the left and right connecting seats (610), and the outer ends of the two fixing pins (66) can be plugged into the inner cavities of the left and right slot seats (612); Folding wings (613), the number of the folding wings (613) is two, the two folding wings (613) are fixedly mounted on the outsides of the left and right connecting seats (610), respectively, and the folding wings (613) are electrically connected to the data collection drone (61).

7. A method for intelligent big data visualization processing, applied to an intelligent big data visualization processing device as claimed in claim 6, characterized in that: The following steps are involved: Step a: The staff tows the trailer body (1) to the designated location, and starts the controller (7). The preset program in the controller (7) controls the telescopic multi-layer charging cabin (5), the first electric telescopic rod (23), the multi-section telescopic arm (24), the second electric telescopic rod (34) and the first electric suction cup (35) to start. The telescopic multi-layer charging cabin (5) is opened to move the data collection mechanism (6) placed inside the charging cabin to the outside. The first electric telescopic rod (23) is extended and shortened to drive the roller lifting platform (22) to move up and down along the inner side of the vertical frame (21) to the designated height. The multi-section telescopic arm (24) drives the actuator (3) to move to a position above the data collection mechanism (6), and the second electric telescopic rod (34) extends and shortens to drive the movable seat (33) to move to a designated position along the front-rear direction of the inner side of the guide rail frame (32) to adapt to the length of the data collection drone (61). Under the cooperation of the first electric telescopic rod (23) and the multi-section telescopic arm (24), the first electric suction cups (35) on the front and rear sides are in contact with the top of the data collection drone (61), and the first electric suction cups (35) adsorb and grab the data collection drone (61); Step b, the controller (7) is internally preset with a program to control the third electric telescopic rod (37), the fourth electric telescopic rod (39), the fifth electric telescopic rod (314), the tenth electric telescopic rod (316) and the sixth electric telescopic rod (318) to start, the third electric telescopic rod (37) is extended to drive the mounting seat (38) to move outward, so that the fourth electric telescopic rod (39) moves to above the slot block (67), the fourth electric telescopic rod (39) is extended to drive the plug block (310) to move downward and insert into the inner cavity of the slot block (67), the third electric telescopic rod (37) is shortened to drive the mounting seat (38) to move inward, and the plug block (310) is moved to the inner cavity of the slot block (67). Cooperating with the lower driving slot block (67) to move inward along the inner cavity of the limiting slot (64), the slot block (67) drives the fixed pin (66) to move inward along the inner cavity of the limiting slot (64) and compresses the limiting spring (68), and makes the fixed pin (66) disengage from the inner cavity of the slot seat (612), thereby releasing the fixation of the connecting seat (610), and the fifth electric telescopic rod (314) stretches and shortens to drive the mounting slot frame (313) to move upward or downward, so that the mounting slot frame (313) drives the rotating arm (312) to rotate upward or downward outside the fixing seat (311), and the tenth electric telescopic rod (316) stretches and shortens to drive the slot arm (31 5) The sixth electric telescopic rod (318) is rotated outward or inward on the inner side of the mounting slot frame (313), and the telescopic arm (317) is extended and shortened to extend to a specified length on the inner side of the slot arm (315), thereby making the pressing seat (319) contact the folding wing (613), and the folding wing (613) is pressed down under the cooperation of the fifth electric telescopic rod (314), the tenth electric telescopic rod (316) and the sixth electric telescopic rod (318), and the folding wing (613) is driven by the connecting seat (610) to rotate on the outer side of the fixed shaft (69) and compress the torsion spring (611), so that the folding wing (613) is rotated downward to the level of the wing body (62). At the position, the fourth electric telescopic rod (39) is shortened to disengage the plug block (310) from the inner cavity of the slot block (67), and the limit spring (68) drives the fixed pin (66) to move outward under its own elastic action and reinsert it into the inner cavity of the slot seat (612), thereby fixing the connecting seat (610) at the current position, thereby completing the deployment of the outer wing body (62) and the folding wing (613) of the data collection drone (61), and the fifth electric telescopic rod (314), the tenth electric telescopic rod (316) and the sixth electric telescopic rod (318) cooperate to disengage the fourth electric telescopic rod (39) from the surface contact with the folding wing (613); In step c, the first electric telescopic rod (23) and the multi-section telescopic arm (24) cooperate to drive the execution component (3) to move the data collection mechanism (6) into the interior of the fixed component. The fixed component adsorbs and fixes the outside of the data collection drone (61). The first electric suction cup (35) releases the adsorption connection to the top of the data collection drone (61). The second rotating seat (44) drives the rear end of the slide (42) to move upward or downward, so that the slide (42) rotates to a specified tilt angle position in cooperation with the first rotating seat (41). The electromagnetic catapult (43) uses electromagnetic force to push its own mobile end to drive the fixed component to move upward. The fixed component releases the fixation of the data collection drone (61), and the data collection drone (61) is ejected at a predetermined speed and trajectory.

Citation Information

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