Information data acquisition device based on artificial intelligence

Through the combination of the inner wall cleaning unit, the external cleaning unit and the cleaning and drying mechanism, the problem of residual soil in the sampling probe in the soil information collection device affecting the data accuracy is solved, and high-precision soil information collection is achieved.

CN120275610AInactive Publication Date: 2025-07-08XIJING UNIV
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Patent Information

Application Number
CN202510572271.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-06
Publication Date
2025-07-08
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

When the existing soil information data acquisition device collects soil information at different locations, the residual soil on the sampling probe affects the data accuracy and is difficult to effectively clean up, resulting in inaccurate data collection next time.

Method used

An artificial intelligence information data acquisition device is designed, including an inner wall cleaning unit, an external cleaning unit and a cleaning and drying mechanism. Through an electric telescopic rod, a rotating cleaning brush and a water spray drying device, the cleaning and drying of the inner and outer walls of the collection cylinder, sensors and other components are realized.

Benefits of technology

It improves the accuracy of soil information data collection, reduces the impact of residual soil on the next data collection, and ensures the cleanliness and detection accuracy of the sensor.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses an artificial intelligence-based information data acquisition device, and relates to the technical field of information data acquisition equipment, and the device comprises a data acquisition mechanism, the data acquisition mechanism comprises a mobile detection vehicle, the two side surfaces of the mobile detection vehicle are fixedly connected with driving structures, and the upper surfaces of the two driving structures are fixedly connected with AI processors; according to the information data acquisition device based on the artificial intelligence, the inner wall cleaning unit is arranged, residual soil adsorbed on the inner wall of the soil acquisition cylinder is cleaned, the inner wall of the soil acquisition cylinder is cleaned, the inner wall of the soil acquisition cylinder is cleaned, the inner wall of the soil acquisition cylinder is cleaned, and the inner wall of the soil acquisition cylinder is cleaned; as the device needs to be used for sampling the soil at different positions and analyzing the moisture condition of the soil, the problem that the detection data of the soil collected next time is influenced due to the fact that the soil collection cylinder collects the residual soil on the inner wall of the soil last time is solved, and the soil information data detection precision of the information data collection device is improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of information data acquisition devices, and particularly to an artificial intelligence-based information data acquisition device. Background Art

[0002] An artificial intelligence-based information data acquisition device is a device integrating advanced sensors, artificial intelligence algorithms, and data processing technologies, aiming to efficiently and accurately acquire and process data, and improve the value of data through intelligent analysis and decision support. Such a device can not only capture and store data, but also use AI technology to perform real-time analysis and processing on the data. During the irrigation management process of environmental soil, it is necessary to use this information data acquisition device to acquire and process the soil moisture condition information data at different positions.

[0003] When the existing soil information data acquisition device is in use, the device body can be moved to the position where soil information data needs to be acquired through a movable transport vehicle, and the same sampling probe is used to sample the soil at different positions and analyze its moisture condition. However, due to the different soil conditions at each position, the sampling probe cannot be cleaned in time after sampling the soil at one position. Since the soil has a certain viscosity and adheres to the inner and outer walls of the sampling probe, it may affect the soil information data acquisition of the next position due to the remaining soil from the previous time, thereby reducing the accuracy of the soil information data of this information data acquisition device.

[0004] Combining the above problems, we will find that it is very difficult for the existing information data acquisition devices on the market to avoid the above-mentioned problems simultaneously during use. And even if they can be solved, external tools need to be used for cooperation, thus failing to achieve the desired effect. Therefore, we propose an artificial intelligence-based information data acquisition device. Summary of the Invention

[0005] The purpose of the present invention is to provide an artificial intelligence-based information data acquisition device to solve the problems raised in the above background art.

[0006] To achieve the above object, the present invention provides the following technical solution: An artificial intelligence-based information data collection device, comprising a data collection mechanism. The data collection mechanism includes a mobile detection vehicle. Both side surfaces of the mobile detection vehicle are fixedly connected with driving structures. The upper surfaces of the two driving structures are fixedly connected with AI processors. One side surface of each of the two AI processors close to each other is fixedly connected with the two side surfaces of the mobile detection vehicle. Two mounting blocks are fixedly connected to the inner wall of the mobile detection vehicle. An electric driving rod and an electric driving column are respectively fixedly connected to one side surface of the two mounting blocks close to each other. The telescopic end of the electric driving column is fixedly connected with a plurality of detection sensors. Each detection sensor is data-connected to the AI processor through a wire. An internal and external cleaning mechanism is arranged inside the mobile detection vehicle;

[0007] The internal and external cleaning mechanism includes an inner wall cleaning unit. The inner wall cleaning unit is located inside the mobile detection vehicle and is used for cleaning the inner wall of the soil collection cylinder;

[0008] The internal and external cleaning mechanism further includes an external cleaning unit. The external cleaning unit is located outside the inner wall cleaning unit. The inner wall cleaning unit and the external cleaning unit are used in cooperation. The external cleaning unit is used for cleaning the outer surface of the soil collection cylinder, the telescopic end of the electric driving rod, the telescopic end of the electric driving column, and the outer surfaces of a plurality of detection sensors;

[0009] A cleaning and drying mechanism is arranged inside the mobile detection vehicle. The cleaning and drying mechanism is used in cooperation with the internal and external cleaning mechanism and is used for spraying water and drying the outer surfaces of the parts installed inside the mobile detection vehicle.

[0010] Preferably, the inner wall cleaning unit includes an electric telescopic rod, the outer surface of the electric telescopic rod is fixedly connected to the inner top wall of the mobile detection vehicle, a stable mounting frame is fixedly connected to the inner wall of the mobile detection vehicle, the telescopic end of the electric telescopic rod is slidably connected to the inside of the stable mounting frame, a limiting ring is fixedly connected to the bottom surface of the stable mounting frame, a sliding groove is formed in the bottom surface of the limiting ring, a rotating motor is fixedly connected to the telescopic end of the electric telescopic rod, the output end of the rotating motor is fixedly connected to a soil collection cylinder, rotation sliding grooves are formed in the outer surface of the soil collection cylinder in an equidistant circular arrangement, a moving plate is slidably connected to the inside of the soil collection cylinder, a pushing rod is fixedly connected to the bottom surface of the moving plate, a pushing cleaning plate is fixedly connected to the bottom end of the pushing rod, the pushing cleaning plate is slidably connected to the inside of the soil collection cylinder, sliding rods are fixedly connected to the outer surface of the moving plate in an equidistant circular arrangement, several sliding rods are respectively slidably connected to the inside of several rotation sliding grooves, a sliding block is fixedly connected to the top end of each sliding rod, each sliding block is slidably connected to the inside of the sliding groove, a rotating disc and a rotating cylinder are respectively sleeved on the outer surface of the pushing rod, the bottom surface of the rotating disc is fixedly connected to the upper surface of the rotating cylinder, the upper surface of the rotating disc is in contact with the bottom surface of the moving plate, the bottom surface of the rotating cylinder is in contact with the upper surface of the pushing cleaning plate, four rolling balls are rotatably connected to the inside of the rotating disc, four spiral sliding grooves are formed in the inner wall of the soil collection cylinder, the four rolling balls are respectively slidably connected to the inside of the four spiral sliding grooves, extension rods are fixedly connected to the outer surface of the rotating cylinder in an equidistant arrangement, a cleaning brush is fixedly connected to the end of each extension rod away from the rotating cylinder, and the cleaning end of each cleaning brush is in contact with the inner wall of the soil collection cylinder.

[0011] Preferably, a reinforcing ring is fixedly connected to the outer surface of the electric telescopic rod, and the bottom surface of the reinforcing ring is fixedly connected to the upper surface of the mobile detection vehicle.

[0012] Preferably, a stable retaining disc is fixedly connected to the outer surface of the soil collection cylinder, the side surfaces of several sliding rods close to each other are in contact with the outer surface of the stable retaining disc, and two data collection holes are formed in the outer surface of the soil collection cylinder and the two data collection holes communicate with each other.

[0013] Preferably, mobile power supplies are fixedly connected to the upper surface of the mobile detection vehicle in an equidistant arrangement, each mobile power supply is electrically connected to the electrical equipment of the device through a wire, a solar panel is fixedly connected to the upper surface of each mobile power supply, and each solar panel is electrically connected to each mobile power supply through a controller.

[0014] Preferably, the external cleaning unit includes a fixed cleaning frame, the outer surface of the fixed cleaning frame is fixedly connected to the inner wall of the mobile detection vehicle, a cleaning scraper is fixedly connected to the inner wall of the fixed cleaning frame, a mounting ring is fixedly connected to the common side surface of several sliding rods away from each other, a gear belt is fixedly connected to the outer surface of the mounting ring, a plurality of mounting sleeves arranged in an equidistant circular pattern are fixedly connected to the inner wall of the limiting ring, the number of the mounting sleeves is twelve, each mounting sleeve is fixedly communicated with a gear positioning cylinder on its outer surface, auxiliary rotating shafts are rotatably connected to the interiors of four of the mounting sleeves, rotating cleaning shafts are rotatably connected to the interiors of the other eight mounting sleeves, a rotating gear is fixedly connected to the outer surface of each auxiliary rotating shaft and the outer surface of each rotating cleaning shaft, several rotating gears are respectively rotatably connected to the interiors of several gear positioning cylinders, each rotating gear is meshed with the gear belt, a plurality of fixed rings arranged in an equidistant pattern are fixedly connected to the outer surface of each rotating cleaning shaft, a plurality of extending driving rods arranged in an equidistant pattern are fixedly connected to the outer surface of each fixed ring, a rotating cleaning brush is fixedly connected to the end of each extending driving rod away from the fixed ring, and the cleaning ends of several rotating cleaning brushes are in contact with the outer surface of the soil collection cylinder.

[0015] Preferably, a plurality of stable bearings arranged in an equidistant circular pattern are fixedly connected to the inner wall of the fixed cleaning frame, the number of the stable bearings is four, and the outer surfaces of the four rotating cleaning shafts are respectively fixedly connected to the inner rings of the four stable bearings.

[0016] Preferably, a stabilizing ring is fixedly connected to the outer surface of each extending driving rod, and the side surfaces of several stabilizing rings away from each other are respectively fixedly connected to the side surfaces of several rotating cleaning brushes close to each other.

[0017] Preferably, the cleaning and drying mechanism includes a water storage tank, the outer surface of the water storage tank is fixedly connected to the outer surface of the mobile detection vehicle, a plurality of water spray pipes arranged in an equidistant circular pattern are fixedly connected to the inner wall of the mobile detection vehicle, the input ends of several water spray pipes are fixedly communicated with the output end of the water storage tank through a gear pump, a water spray nozzle is fixedly communicated with the output end of each water spray pipe, an extending rotating shaft is fixedly connected to the top end of each auxiliary rotating shaft and the top end of each rotating cleaning shaft, a rotating fan blade is fixedly connected to the outer surface of each extending rotating shaft, a plurality of ventilation hoods arranged in an equidistant circular pattern are fixedly connected to the inner top wall of the mobile detection vehicle, several extending rotating shafts are respectively rotatably connected to several ventilation hoods, several rotating fan blades are respectively rotatably connected to the interiors of several ventilation hoods, and a heating wire is fixedly connected to the inner wall of each ventilation hood.

[0018] Preferably, a water adding pipe is fixedly communicated with the upper surface of the water storage tank, and a sealing plug is clamped in the interior of the water adding pipe.

[0019] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0020] 1. By setting the inner wall cleaning unit, the present invention can not only remove the collected soil on the inner wall of the soil collection cylinder, but also clean the remaining soil adsorbed on the inner wall of the soil collection cylinder. Since this information data collection device is required to sample the soil at different positions and analyze its moisture condition, the problem that the detection data of the soil collected next time is affected by the residual soil on the inner wall of the soil collection cylinder during the previous soil collection is reduced, thereby improving the accuracy of the soil information data detected by this information data collection device.

[0021] 2. By setting the external cleaning unit, the rotation gear outside the rotating cleaning shaft is driven by the gear belt fixed outside the mounting ring, and the rotating cleaning brush can be driven to rotate along the rotating cleaning shaft. It can not only clean the soil adsorbed on the outer surface of the soil collection cylinder by the rotating cleaning brush, but also clean the remaining soil adsorbed on the outer surfaces of the telescopic end of the electric drive rod, the telescopic end of the electric drive column and multiple detection sensors. Thus, the clean detection sensors can be used to detect the moisture condition of the non-polluted soil collected again, further improving the accuracy of the soil information data of this information data collection device.

[0022] 3. By setting the cleaning and drying mechanism, through the cooperation of the inner wall cleaning unit and the external cleaning unit, the inner and outer walls of the soil collection cylinder, the telescopic end of the electric drive rod, the telescopic end of the electric drive column and the outer surfaces of multiple detection sensors can be cleaned. And the cleaning water stored in the water storage tank is sprayed onto the outer surfaces of the parts cleaned in the mobile detection vehicle through the water spray pipe and the water spray nozzle, so that the outer surfaces of the parts contaminated with soil can be thoroughly cleaned. Then, the air heated by the heating wire is blown onto the wet outer surfaces of the parts by the rotating rotating fan blades, and the wet parts can be dried, further reducing the problem that the detection data of the soil collected next time is affected by the residual soil on the inner wall of the soil collection cylinder during the previous soil collection, and thus improving the accuracy of multiple soil information data. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] Figure 1 It is a schematic diagram of the overall structure of the present invention;

[0024] Figure 2 It is a schematic diagram of the bottom view structure of the mobile detection vehicle of the present invention;

[0025] Figure 3 It is a schematic diagram of the sectional structure of the mobile detection vehicle of the present invention;

[0026] Figure 4 It is a schematic diagram of the bottom view of the sectional view of the mobile detection vehicle of the present invention;

[0027] Figure 5 Schematic structural diagram of the soil collection cylinder of the present invention;

[0028] Figure 6 Schematic cross-sectional structural diagram of the soil collection cylinder of the present invention;

[0029] Figure 7 Schematic bottom view structural diagram of the pushing and cleaning plate of the present invention;

[0030] Figure 8 Schematic structural diagram of the rotating disk of the present invention;

[0031] Figure 9 Schematic structural diagram of the ventilation hood of the present invention;

[0032] Figure 10 Schematic bottom view structural diagram of the gear belt of the present invention;

[0033] Figure 11 Schematic structural diagram of the rotating cleaning brush of the present invention.

[0034] In the figure: 1. Data acquisition mechanism; 11. Mobile detection vehicle; 12. Driving structure; 13. Mobile power supply; 14. Solar panel; 15. AI processor; 16. Mounting block; 17. Electric drive rod; 18. Electric drive column; 19. Detection sensor; 2. Internal and external cleaning mechanism; 21. Inner wall cleaning unit; 2101. Electric telescopic rod; 2102. Stable mounting frame; 2103. Limiting ring; 2104. Sliding groove; 2105. Rotating motor; 2106. Stable stop disc; 2107. Soil collection cylinder; 2108. Rotating chute; 2109. Sliding rod; 2110. Sliding block; 2111. Spiral chute; 2112. Data acquisition hole; 2113. Moving plate; 2114. Pushing rod; 2115. Pushing and cleaning plate; 2116. Rotating disk; 2117. Ball; 2118. Rotating cylinder; 2119. Extension rod; 2120. Cleaning brush; 2121. Reinforcing ring; 22. External cleaning unit; 2201. Fixed cleaning frame; 2202. Cleaning scraper; 2203. Stable bearing; 2204. Mounting ring; 2205. Gear belt; 2206. Mounting sleeve; 2207. Gear positioning cylinder; 2208. Rotating gear; 2209. Auxiliary rotating shaft; 2210. Rotating cleaning shaft; 2211. Fixed ring; 2212. Extension driving rod; 2213. Rotating cleaning brush; 2214. Stable ring; 3. Cleaning and drying mechanism; 301. Water storage tank; 302. Water filling pipe; 303. Sealing plug; 304. Spraying water pipe; 305. Spraying nozzle; 306. Extension rotating shaft; 307. Ventilation hood; 308. Electric heating wire; 309. Rotating fan blade. Detailed implementation mode

[0035] The following will clearly and completely describe the technical solutions in the embodiments of the present invention with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts belong to the scope of protection of the present invention.

[0036] Embodiment 1: Please refer to Figures 1-10 , the present invention provides a technical solution: an artificial intelligence-based information data collection device, including a data collection mechanism 1. The data collection mechanism 1 includes a mobile detection vehicle 11. Both side surfaces of the mobile detection vehicle 11 are fixedly connected with drive structures 12. The drive structure 12 is a structure including parts such as an electric vehicle-like motor, gearbox, rotating shaft, and rotating rollers, which can drive the artificial intelligence-based information data collection device to move. The upper surfaces of both drive structures 12 are fixedly connected with AI processors 15. The AI processor 15 is a processor specifically designed to efficiently execute artificial intelligence-related tasks. They usually integrate dedicated AI accelerators, such as neural network accelerators, to provide more powerful AI computing capabilities than traditional CPUs or GPUs, so that the information data collection device can collect information data on the basis of artificial intelligence. One side surface of the two AI processors 15 close to each other is fixedly connected to both side surfaces of the mobile detection vehicle 11 respectively. Two mounting blocks 16 are fixedly connected to the inner wall of the mobile detection vehicle 11. An electric drive rod 17 and an electric drive column 18 are fixedly connected to one side surface of the two mounting blocks 16 close to each other respectively. The telescopic end of the electric drive column 18 is fixedly connected with a plurality of detection sensors 19. The plurality of detection sensors 19 include sensors such as soil moisture sensors and humidity sensors. The soil moisture sensor is an instrument for measuring soil moisture, and the humidity sensor is a device or apparatus that can sense humidity and convert it into an available output signal according to a certain rule. By detecting the soil with multiple detection sensors 19, the soil moisture condition can be monitored, the irrigation plan can be optimized, and water resources can be saved. Each detection sensor 19 is data-connected to the AI processor 15 through a wire. An internal and external cleaning mechanism 2 is arranged inside the mobile detection vehicle 11;

[0037] The upper surface of the mobile detection vehicle 11 is fixedly connected with mobile power supplies 13 arranged at equal distances. The mobile power supply 13 is an electric energy storage device of a portable charging device that integrates power supply and charging functions. Each mobile power supply 13 is electrically connected to the electrical equipment of the device through a wire. The upper surface of each mobile power supply 13 is fixedly connected with a solar panel 14. The solar panel 14 is a device that directly or indirectly converts solar radiant energy into electrical energy by absorbing sunlight through the photovoltaic effect or the photochemical effect. The model of the solar panel 14 is XTL110-12. Each solar panel 14 is electrically connected to each mobile power supply 13 through a controller. By absorbing solar energy through the solar panel 14 and converting it into electrical energy and storing it in the mobile power supply 13, it is possible to use the mobile power supply 13 to supply power to the mobile devices of the device, so that the device can move to a farther distance when restricted by the power supply.

[0038] The internal and external cleaning mechanism 2 includes an inner wall cleaning unit 21. The inner wall cleaning unit 21 is located inside the mobile detection vehicle 11, and the inner wall cleaning unit 21 is used to clean the inner wall of the soil collection cylinder 2107.

[0039] As a further limitation of the internal and external cleaning mechanism 2 of the present invention, the inner wall cleaning unit 21 includes an electric telescopic rod 2101. The outer surface of the electric telescopic rod 2101 is fixedly connected to the inner top wall of the mobile detection vehicle 11. A stable mounting frame 2102 is fixedly connected to the inner wall of the mobile detection vehicle 11. The telescopic end of the electric telescopic rod 2101 is slidably connected to the inside of the stable mounting frame 2102. A limit ring 2103 is fixedly connected to the bottom surface of the stable mounting frame 2102. A sliding groove 2104 is opened on the bottom surface of the limit ring 2103. A rotating motor 2105 is fixedly connected to the telescopic end of the electric telescopic rod 2101. A soil collection cylinder 2107 is fixedly connected to the output end of the rotating motor 2105. Rotating chutes 2108 arranged in an equidistant circular pattern are opened on the outer surface of the soil collection cylinder 2107. A moving plate 2113 is slidably connected to the inside of the soil collection cylinder 2107. A push rod 2114 is fixedly connected to the bottom surface of the moving plate 2113. A push cleaning plate 2115 is fixedly connected to the bottom end of the push rod 2114. The push cleaning plate 2115 is slidably connected to the inside of the soil collection cylinder 2107. Sliding rods 2109 arranged in an equidistant circular pattern are fixedly connected to the outer surface of the moving plate 2113. A plurality of sliding rods 2109 are respectively slidably connected to the inside of a plurality of rotating chutes 2108. A sliding block 2110 is fixedly connected to the top end of each sliding rod 2109. Each sliding block 2110 is slidably connected to the inside of the sliding groove 2104. A rotating disc 2116 and a rotating cylinder 2118 are respectively sleeved on the outer surface of the push rod 2114. The bottom surface of the rotating disc 2116 is fixedly connected to the upper surface of the rotating cylinder 2118. The upper surface of the rotating disc 2116 is in contact with the bottom surface of the moving plate 2113. The bottom surface of the rotating cylinder 2118 is in contact with the upper surface of the push cleaning plate 2115. Four balls 2117 are rotatably connected to the inside of the rotating disc 2116. Four spiral chutes 2111 are opened on the inner wall of the soil collection cylinder 2107. The four balls 2117 are respectively slidably connected to the inside of the four spiral chutes 2111. Extension rods 2119 arranged in an equidistant pattern are fixedly connected to the outer surface of the rotating cylinder 2118. A cleaning brush 2120 is fixedly connected to the end of each extension rod 2119 away from the rotating cylinder 2118. The cleaning end of each cleaning brush 2120 is in contact with the inner wall of the soil collection cylinder 2107. By setting the inner wall cleaning unit 21, not only can the collected soil on the inner wall of the soil collection cylinder 2107 be removed, but also the remaining soil adsorbed on the inner wall of the soil collection cylinder 2107 can be cleaned. Since this information data collection device is required to sample the soil at different positions and analyze its moisture condition, the problem that the detection data of the soil collected next time is affected by the residual soil on the inner wall of the soil collection cylinder 2107 during the previous soil collection is reduced, thereby improving the accuracy of the soil information data detected by this information data collection device;

[0040] A reinforcement ring 2121 is fixedly connected to the outer surface of the electric telescopic rod 2101. The bottom surface of the reinforcement ring 2121 is fixedly connected to the upper surface of the mobile detection vehicle 11. By using the reinforcement ring 2121, it is fixed at the connection between the electric telescopic rod 2101 and the mobile detection vehicle 11, thereby improving the connection stability between the electric telescopic rod 2101 and the mobile detection vehicle 11, and further enabling the electric telescopic rod 2101 to transmit power stably;

[0041] A stable retaining disk 2106 is fixedly connected to the outer surface of the soil collection cylinder 2107. One side surfaces of several sliding rods 2109 close to each other are all in contact with the outer surface of the stable retaining disk 2106. Two data collection holes 2112 are formed in the outer surface of the soil collection cylinder 2107, and the two data collection holes 2112 communicate with each other. By using the stable retaining disk 2106 fixed to the outer surface of the soil collection cylinder 2107, the sliding rods 2109 can slide along the outer surface of the stable retaining disk 2106, thereby improving the sliding stability of the stable retaining disk 2106. And by using the data collection holes 2112, the telescopic ends of the electric drive rod 17 and the electric drive column 18 can penetrate through the data collection holes 2112 to facilitate the detection of the soil moisture in the soil collection cylinder 2107 by several detection sensors 19.

[0042] The specific implementation manner of this embodiment is as follows: When it is necessary to use the artificial intelligence-based information data acquisition device to collect and process the soil moisture condition information data at different positions, first place the device on the horizontal ground manually. The driving structures 12 fixed on both sides of the mobile detection vehicle 11 can be used to drive the device to move on the horizontal ground, so that the information data acquisition device can be moved to the required position to collect the information data of the soil directly below it by using the soil collection cylinder 2107. Then, by controlling the power supply of the electric telescopic rod 2101, the power provided by the electric telescopic rod 2101 can be used to drive the rotation motor 2105 and the soil collection cylinder 2107 to move downward. At the same time, the moving plate 2113 can drive the pushing and cleaning plate 2115 to move upward in the soil collection cylinder 2107 by using the pushing rod 2114, and the sliding rod 2109 fixed outside the moving plate 2113 can slide along the rotation chute 2108 opened outside the soil collection cylinder 2107. At the same time, by controlling the power supply of the rotation motor 2105, the power provided by the rotation motor 2105 can be used to drive the soil collection cylinder 2107 to rotate. At this time, the sliding block 2110 fixed at the top of the sliding rod 2109 can also slide in the sliding groove 2104 opened on the bottom surface of the limiting ring 2103. Thus, the soil collection cylinder 2107 that rotates and moves can be used to sample the soil directly below it, and the sampled soil can be stuck inside the soil collection cylinder 2107 until the moving plate 2113 moves to the top of the soil collection cylinder 2107. Then, by controlling the power supplies of the electric telescopic rod 2101 and the rotation motor 2105, the sampled soil collection cylinder 2107 can be moved upward to the horizontal position corresponding to the electric drive rod 17 and the electric drive column 18 of the data collection holes 2112, and the soil collection cylinder 2107 can be rotated so that the two data collection holes 2112 are respectively arranged corresponding to the electric drive rod 17 and the electric drive column 18. At this time, by controlling the power supply of the electric drive rod 17, the telescopic end of the electric drive rod 17 can be driven to penetrate through the two data collection holes 2112, and a punching operation can be performed on the middle of the soil inside the soil collection cylinder 2107. And by controlling the power supply of the electric drive column 18, the detection sensor 19 fixed at the telescopic end of the electric drive column 18 can be made to penetrate through one data collection hole 2112 and extend into the punched part of the soil, so as to detect the data inside the sampled soil by using a plurality of detection sensors 19, and analyze the moisture condition of the soil at this position by using the data transmitted by the two AI processors 15 to the detection sensors 19. Then, by controlling the power supplies of the electric drive rod 17 and the electric drive column 18, the telescopic ends of the electric drive rod 17 and the electric drive column 18 can be retracted, and by controlling the power supply of the electric telescopic rod 2101, the soil collection cylinder 2107 can be moved upward. In the same steps as above, the moving plate 2113 can drive the pushing and cleaning plate 2115 to slide in the soil collection cylinder 2107 by using the pushing rod 2114,The soil sample in the soil collection cylinder 2107 is removed by pushing the cleaning plate 2115. While the cleaning plate 2115 is moving, the rolling balls 2117 inside the rotating disk 2116 can slide in the spiral chute 2111 opened on the inner wall of the soil collection cylinder 2107. Thus, through the cooperation of the four balls 2117 and the four spiral chutes 2111, the rotating disk 2116 can move inside the soil collection cylinder 2107, and the rotating disk 2116 can drive the rotating cylinder 2118 to rotate inside the soil collection cylinder 2107. At the same time, the cleaning brush 2120 connected to the outside of the rotating cylinder 2118 through the extension rod 2119 can clean the inner wall of the soil collection cylinder 2107. By controlling the electric telescopic rod 2101 to drive the soil collection cylinder 2107 to move up and down repeatedly, the rotating cleaning brush 2120 can be reused to clean the inner wall of the soil collection cylinder 2107, completing the thorough cleaning of the residual soil sample inside the soil collection cylinder 2107. Since this information data collection device is required to sample the soil at different positions and analyze its moisture condition, the problem that the detection data of the soil sampled next time is affected by the residual soil on the inner wall of the soil collection cylinder 2107 during the previous soil collection is reduced, thereby improving the accuracy of the soil information data detected by this information data collection device.

[0043] Embodiment 2: Please refer to Figures 1-4 and Figures 9-11 , the present invention provides a technical solution: an artificial intelligence-based information data collection device, and the present invention makes corresponding improvements to the technical problems mentioned in the background art.

[0044] As a further limitation of the internal and external cleaning mechanism 2 of the present invention, the internal and external cleaning mechanism 2 further includes an external cleaning unit 22. The external cleaning unit 22 is located outside the inner wall cleaning unit 21. The inner wall cleaning unit 21 and the external cleaning unit 22 are used in cooperation. The external cleaning unit 22 is used to clean the outer surface of the soil collection cylinder 2107, the telescopic end of the electric drive rod 17, the telescopic end of the electric drive column 18, and the outer surfaces of the multiple detection sensors 19;

[0045] The external cleaning unit 22 includes a fixed cleaning frame 2201, the outer surface of the fixed cleaning frame 2201 is fixedly connected to the inner wall of the mobile detection vehicle 11, a cleaning scraper 2202 is fixedly connected to the inner wall of the fixed cleaning frame 2201, the outer sides of a plurality of sliding rods 2109 are fixedly connected to an installation ring 2204 in common, a gear belt 2205 is fixedly connected to the outer surface of the installation ring 2204, a plurality of installation sleeves 2206 arranged in an equidistant circular pattern are fixedly connected to the inner wall of the limit ring 2103, the number of the installation sleeves 2206 is twelve, a gear positioning cylinder 2207 is fixedly communicated with the outer surface of each installation sleeve 2206, an auxiliary rotating shaft 2209 is rotatably connected to the inside of four of the installation sleeves 2206 respectively, a rotating cleaning shaft 2210 is rotatably connected to the inside of the other eight installation sleeves 2206, a rotating gear 2208 is fixedly connected to the outer surface of each auxiliary rotating shaft 2209 and the outer surface of each rotating cleaning shaft 2210, a plurality of the rotating gears 2208 are respectively rotatably connected to the inside of a plurality of the gear positioning cylinders 2207, each rotating gear 2208 is engaged with the gear belt 2205, a plurality of fixed rings 2211 arranged in an equidistant pattern are fixedly connected to the outer surface of each rotating cleaning shaft 2210, an extending driving rod 2212 arranged in an equidistant pattern is fixedly connected to the outer surface of each fixed ring 2211, a rotating cleaning brush 2213 is fixedly connected to the end of each extending driving rod 2212 away from the fixed ring 2211, the cleaning ends of a plurality of the rotating cleaning brushes 2213 are in contact with the outer surface of the soil collection cylinder 2107. By providing the external cleaning unit 22, the rotating gear 2208 outside the rotating cleaning shaft 2210 is driven to rotate by the gear belt 2205 fixed to the outside of the installation ring 2204, so as to drive the rotating cleaning brush 2213 to rotate along the rotating cleaning shaft 2210. It can not only clean the soil adsorbed on the outer surface of the soil collection cylinder 2107 by the rotating cleaning brush 2213, but also clean the remaining soil adsorbed on the outer surfaces of the telescopic ends of the electric driving rod 17, the telescopic end of the electric driving column 18 and a plurality of detection sensors 19, so that the clean detection sensors 19 can be used to detect the moisture condition in the non-polluted soil collected again, and further improve the soil information data accuracy of the information data collection device;

[0046] A plurality of stable bearings 2203 arranged in an equidistant circular pattern are fixedly connected to the inner wall of the fixed cleaning frame 2201, the number of the stable bearings 2203 is four, the outer surfaces of the four rotating cleaning shafts 2210 are respectively fixedly connected to the inner rings of the four stable bearings 2203. By providing the stable bearings 2203 outside the fixed cleaning frame 2201, since the length of the rotating cleaning shaft 2210 is too long, the bottom end of the rotating cleaning shaft 2210 is stabilized by the stable bearings 2203, and thus the rotation stability of the rotating cleaning shaft 2210 is improved;

[0047] A stabilizing ring 2214 is fixedly connected to the outer surface of each extension drive rod 2212. One side surfaces of a plurality of stabilizing rings 2214 away from each other are respectively fixedly connected to one side surfaces of a plurality of rotating cleaning brushes 2213 close to each other. By using the stabilizing ring 2214, it is fixed at the connection between the extension drive rod 2212 and the rotating cleaning brush 2213. And a relatively large torque will be applied to the connection between the extension drive rod 2212 and the rotating cleaning brush 2213. Therefore, by using the stabilizing ring 2214, the connection stability between the extension drive rod 2212 and the rotating cleaning brush 2213 is improved.

[0048] The specific implementation manner of this embodiment is as follows: While using the rotating cleaning brush 2120 to clean the inner wall of the soil collection cylinder 2107, by controlling the power supply of the rotating motor 2105 fixed to the telescopic end of the electric telescopic rod 2101, it is possible to drive the soil collection cylinder 2107 to rotate by using the rotating motor 2105, and it is also possible to drive multiple sliding rods 2109 to rotate outside the stable retaining disc 2106. By using the mounting rings 2204 fixed outside the multiple sliding rods 2109, it is possible to rotate the gear belt 2205 fixed outside the mounting ring 2204. By fixing multiple mounting sleeves 2206 on the inner wall of the limiting ring 2103, and fixing and communicating a gear positioning cylinder 2207 on the outer surface of each mounting sleeve 2206, it is convenient for the auxiliary rotating shaft 2209 and the rotating cleaning shaft 2210 to rotate in the mounting sleeve 2206, while the rotating gears 2208 fixed on the outer surface of the auxiliary rotating shaft 2209 and the outer surface of the rotating cleaning shaft 2210 rotate in the gear positioning cylinder 2207. Since a groove is provided on one side of each gear positioning cylinder 2207 close to the gear belt 2205, the rotating gear 2208 can extend from the gear positioning cylinder 2207 to the outside. Thus, by meshing the rotating gear belt 2205 with multiple rotating gears 2208, it is possible to form a planetary gear system with the gear belt 2205 and multiple rotating gears 2208. A planetary gear is a gear system in which, in addition to being able to rotate around its own rotation axis like a fixed-axis gear, its rotation axis also rotates around the axis of other gears with the planet carrier. Thus, it is possible to drive multiple rotating gears 2208 to rotate, and further, it is possible to make the auxiliary rotating shaft 2209 and the rotating cleaning shaft 2210 fixed in the rotating gear 2208 rotate in the mounting sleeve 2206. Multiple fixing rings 2211 are fixed outside the rotating rotating cleaning shaft 2210. Thus, it is possible to fix multiple rotating cleaning brushes 2213 on the outer surface of the fixing ring 2211 by using multiple extending driving rods 2212. Since the multiple rotating cleaning brushes 2213 rotate along the rotating cleaning shaft 2210, it is possible to clean the outer surface of the soil collection cylinder 2107, the telescopic end of the electric driving rod 17, the telescopic end of the electric driving column 18, and the outer surface of multiple detection sensors 19 by using the rotating rotating cleaning brushes 2213. Thus, it is possible to detect the internal moisture condition of the soil that is collected again without pollution by using the clean detection sensors 19. After the soil sampling at this position is completed by using the soil collection cylinder 2107, when the soil collection cylinder 2107 is moved upward by the power provided by the electric telescopic rod 2101, it is possible to install the cleaning scraper 2202 on the inner wall of the mobile detection vehicle 11 by using the fixed cleaning frame 2201. By contacting the cleaning scraper 2202 with the outer surface of the soil collection cylinder 2107, it is possible to scrape the soil adsorbed on the outer surface of the soil collection cylinder 2107 by using the cleaning scraper 2202, further improving the accuracy of the soil information data of this information data collection device.

[0049] Embodiment 3: Please refer toFigure 1 , Figure 4 , Figure 9 and Figure 10 , the present invention provides a technical solution: an artificial intelligence-based information data acquisition device, and the present invention makes corresponding improvements to the technical problems mentioned in the background art.

[0050] As a further limitation of the internal and external cleaning mechanism 2 of the present invention, a cleaning and drying mechanism 3 is provided inside the mobile detection vehicle 11. The cleaning and drying mechanism 3 is used in cooperation with the internal and external cleaning mechanism 2 and is used to spray and clean and dry the outer surfaces of the parts installed inside the mobile detection vehicle 11;

[0051] The cleaning and drying mechanism 3 includes a water storage tank 301. The outer surface of the water storage tank 301 is fixedly connected to the outer surface of the mobile detection vehicle 11. The inner wall of the mobile detection vehicle 11 is fixedly connected with spray pipes 304 arranged in an equidistant circular arrangement. The input ends of several spray pipes 304 are fixedly communicated with the output end of the water storage tank 301 through a gear pump. The gear pump is a rotary pump that relies on the change and movement of the working volume formed between the pump cylinder and the meshing gear to transport or pressurize the liquid. The gear pump is installed on the inner wall of the mobile detection vehicle 11 and can provide the power for the cleaning water in the water storage tank 301 to be sprayed out through the spray nozzles 305. The output end of each spray pipe 304 is fixedly communicated with a spray nozzle 305. The top of each auxiliary rotating shaft 2209 and the top of each rotating cleaning shaft 2210 are fixedly connected with an extension rotating shaft 306. The outer surface of each extension rotating shaft 306 is fixedly connected with a rotating fan blade 309. The inner top wall of the mobile detection vehicle 11 is fixedly connected with ventilation hoods 307 arranged in an equidistant circular arrangement. Several extension rotating shafts 306 are respectively rotatably connected to several ventilation hoods 307. Several rotating fan blades 309 are respectively rotatably connected to the inside of several ventilation hoods 307. The inner wall of each ventilation hood 307 is fixedly connected with a heating wire 308. The heating wire 308 is an iron-chromium-aluminum and nickel-chromium electric heating alloy with a large resistance and generates heat when energized. By setting the cleaning and drying mechanism 3, through the cooperation of the inner wall cleaning unit 21 and the external cleaning unit 22, it is possible to clean the inner and outer walls of the soil collection cylinder 2107, the telescopic ends of the electric drive rod 17, the telescopic ends of the electric drive column 18, and the outer surfaces of multiple detection sensors 19. Then, the cleaning water stored in the water storage tank 301 is sprayed onto the outer surfaces of the parts cleaned inside the mobile detection vehicle 11 through the spray pipes 304 and the spray nozzles 305, so as to facilitate the thorough cleaning of the outer surfaces of the parts contaminated with soil. Then, the air heated by the heating wire 308 is blown onto the wet outer surfaces of the parts by the rotating rotating fan blades 309, which can dry the wet parts, further reducing the problem that the detection data of the next soil collection is affected by the residual soil on the inner wall of the soil collection cylinder 2107 during the previous soil collection, and thus improving the accuracy of multiple soil information data;

[0052] A water inlet pipe 302 is fixedly connected to the upper surface of the water storage tank 301. A sealing plug 303 is clamped inside the water inlet pipe 302. By manually pulling the sealing plug 303 inside the water inlet pipe 302, it is convenient to add cleaning water into the water storage tank 301 through the water inlet pipe 302, so that the outer surfaces of the parts inside the mobile detection vehicle 11 can be conveniently rinsed with the cleaning water.

[0053] The specific implementation mode of this embodiment is as follows: While using the rotating cleaning brush 2120 to clean the inner wall of the soil collection cylinder 2107, and using the rotating cleaning brush 2213 to clean the outer surface of the soil collection cylinder 2107, the telescopic end of the electric drive rod 17, the telescopic end of the electric drive column 18, and the outer surfaces of multiple detection sensors 19, first, by manually pulling the sealing plug 303 inside the water inlet pipe 302, cleaning water for cleaning the device can be added into the water storage tank 301 through the water inlet pipe 302. Then, by controlling the power supply of the gear pump connected to the output end of the water storage tank 301, the cleaning water in the water storage tank 301 can be transported to the water spray nozzle 305 through the water spray pipe 304, so as to conveniently spray the cleaning water into the mobile detection vehicle 11 through the water spray nozzle 305. Cleaning water can be added while cleaning the inside and outside of the soil collection cylinder 2107 and the surfaces of other parts inside the mobile detection vehicle 11, so that the inside and outside of the soil collection cylinder 2107 and the surfaces of other parts inside the mobile detection vehicle 11 can be cleaned, further reducing the problem that the detection data of the next soil collection is affected by the residual soil on the inner wall of the soil collection cylinder 2107 during the previous soil collection, and thus improving the accuracy of multiple soil information data. After the cleaning is completed, by controlling the power supplies of the rotating motor 2105 and the heating wire 308, the rotating motor 2105 can be used to drive the soil collection cylinder 2107 to rotate while the auxiliary rotating shaft 2209 and the rotating cleaning shaft 2210 rotate inside the installation sleeve 2206. Since the top ends of the auxiliary rotating shaft 2209 and the rotating cleaning shaft 2210 are fixed with an extended rotating shaft 306 that drives the rotating fan blade 309 to rotate, and a ventilation hood 307 is fixed on the inner top wall of the mobile detection vehicle 11, the extended rotating shaft 306 and the rotating fan blade 309 can rotate inside the ventilation hood 307 respectively. Through the high-speed rotating fan blade 309, the air flow inside the mobile detection vehicle 11 can be accelerated, and heating wires 308 are fixed on the inner walls of each ventilation hood 307. The heat generated by the energized heating wires 308 can be used to heat the nearby air, so that the temperature inside the mobile detection vehicle 11 can be increased, and the wet surfaces of the parts inside the mobile detection vehicle 11 can be dried, reducing the problem that the soil detection data is inaccurate due to the wet detection parts inside the mobile detection vehicle 11.

[0054] It should be noted that in this text, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprising", "including" or any other variant thereof are intended to cover non-exclusive inclusion, such that a process, method, article or device comprising a series of elements not only includes those elements but also includes other elements not expressly listed, or further includes elements inherent to such process, method, article or device.

[0055] Although the embodiments of the present invention have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. An artificial intelligence-based information data acquisition device, comprising a data acquisition mechanism (1), characterized in that: The data acquisition mechanism (1) includes a mobile detection vehicle (11). Both side surfaces of the mobile detection vehicle (11) are fixedly connected with drive structures (12). The upper surfaces of the two drive structures (12) are fixedly connected with AI processors (15). One side surface of each of the two AI processors (15) close to each other is fixedly connected with the two side surfaces of the mobile detection vehicle (11). Two mounting blocks (16) are fixedly connected to the inner wall of the mobile detection vehicle (11). An electric drive rod (17) and an electric drive column (18) are fixedly connected to one side surface of each of the two mounting blocks (16) close to each other. The telescopic end of the electric drive column (18) is fixedly connected with a plurality of detection sensors (19). Each detection sensor (19) is data-connected to the AI processor (15) through a wire. An internal and external cleaning mechanism (2) is arranged inside the mobile detection vehicle (11); The internal and external cleaning mechanism (2) includes an inner wall cleaning unit (21). The inner wall cleaning unit (21) is located inside the mobile detection vehicle (11). The inner wall cleaning unit (21) is used for cleaning the inner wall of the soil collection cylinder; The internal and external cleaning mechanism (2) further includes an external cleaning unit (22). The external cleaning unit (22) is located outside the inner wall cleaning unit (21). The inner wall cleaning unit (21) and the external cleaning unit (22) are used in cooperation. The external cleaning unit (22) is used for cleaning the outer surface of the soil collection cylinder, the telescopic end of the electric drive rod (17), the telescopic end of the electric drive column (18), and the outer surfaces of a plurality of detection sensors (19); A cleaning and drying mechanism (3) is arranged inside the mobile detection vehicle (11). The cleaning and drying mechanism (3) is used in cooperation with the internal and external cleaning mechanism (2). The cleaning and drying mechanism (3) is used for spraying water and drying the outer surfaces of the parts installed inside the mobile detection vehicle (11).

2. The artificial-intelligence-based information data acquisition device according to claim 1, wherein: The inner wall cleaning unit (21) includes an electric telescopic rod (2101). The outer surface of the electric telescopic rod (2101) is fixedly connected to the inner top wall of the mobile detection vehicle (11). A stable mounting frame (2102) is fixedly connected to the inner wall of the mobile detection vehicle (11). The telescopic end of the electric telescopic rod (2101) is slidably connected to the inside of the stable mounting frame (2102). A limiting ring (2103) is fixedly connected to the bottom surface of the stable mounting frame (2102). A sliding groove (2104) is formed in the bottom surface of the limiting ring (2103). A rotating motor (2105) is fixedly connected to the telescopic end of the electric telescopic rod (2101). A soil collection cylinder (2107) is fixedly connected to the output end of the rotating motor (2105). Rotating chutes (2108) arranged in an equidistant circular pattern are formed on the outer surface of the soil collection cylinder (2107). A moving plate (2113) is slidably connected to the inside of the soil collection cylinder (2107). A push rod (2114) is fixedly connected to the bottom surface of the moving plate (2113). A push cleaning plate (2115) is fixedly connected to the bottom end of the push rod (2114). The push cleaning plate (2115) is slidably connected to the inside of the soil collection cylinder (2107). Sliding rods (2109) arranged in an equidistant circular pattern are fixedly connected to the outer surface of the moving plate (2113). Each of the plurality of sliding rods (2109) is slidably connected to the inside of one of the plurality of rotating chutes (2108). A sliding block (2110) is fixedly connected to the top end of each sliding rod (2109). Each sliding block (2110) is slidably connected to the inside of the sliding groove (2104). A rotating disc (2116) and a rotating cylinder (2118) are sleeved on the outer surface of the push rod (2114). The bottom surface of the rotating disc (2116) is fixedly connected to the upper surface of the rotating cylinder (2118). The upper surface of the rotating disc (2116) is in contact with the bottom surface of the moving plate (2113). The bottom surface of the rotating cylinder (2118) is in contact with the upper surface of the push cleaning plate (2115). Four ball bearings (2117) are rotatably connected to the inside of the rotating disc (2116). Four spiral chutes (2111) are formed in the inner wall of the soil collection cylinder (2107). The four ball bearings (2117) are respectively slidably connected to the inside of the four spiral chutes (2111). Extension rods (2119) arranged at equal intervals are fixedly connected to the outer surface of the rotating cylinder (2118). A cleaning brush (2120) is fixedly connected to the end of each extension rod (2119) away from the rotating cylinder (2118). The cleaning end of each cleaning brush (2120) is in contact with the inner wall of the soil collection cylinder (2107).

3. The artificial intelligence-based information data acquisition device according to claim 2, wherein: A reinforcing ring (2121) is fixedly connected to the outer surface of the electric telescopic rod (2101). The bottom surface of the reinforcing ring (2121) is fixedly connected to the upper surface of the mobile detection vehicle (11).

4. An artificial intelligence-based information data acquisition device according to claim 2, characterized in that: A stabilizing stop disk (2106) is fixedly connected to the outer surface of the soil collection cylinder (2107). One side surface of each of the plurality of sliding rods (2109) is in contact with the outer surface of the stabilizing stop disk (2106). Two data collection holes (2112) are formed in the outer surface of the soil collection cylinder (2107), and the two data collection holes (2112) communicate with each other.

5. An artificial intelligence-based information data acquisition device according to claim 1, characterized in that: A plurality of mobile power sources (13) arranged at equal intervals are fixedly connected to the upper surface of the mobile detection vehicle (11). Each mobile power source (13) is electrically connected to the electrical equipment of the device through a wire. A solar panel (14) is fixedly connected to the upper surface of each mobile power source (13), and each solar panel (14) is electrically connected to each mobile power source (13) through a controller.

6. The artificial intelligence-based information data acquisition device according to claim 2, characterized in that: The external cleaning unit (22) includes a fixed cleaning frame (2201). The outer surface of the fixed cleaning frame (2201) is fixedly connected to the inner wall of the mobile detection vehicle (11). A cleaning scraper (2202) is fixedly connected to the inner wall of the fixed cleaning frame (2201). A mounting ring (2204) is fixedly connected to one side surface of each of the plurality of sliding rods (2109) away from each other. A gear belt (2205) is fixedly connected to the outer surface of the mounting ring (2204). Mounting sleeves (2206) arranged in an equidistant circular pattern are fixedly connected to the inner wall of the limiting ring (2103). The number of the mounting sleeves (2206) is twelve. A gear positioning cylinder (2207) is fixedly communicated with the outer surface of each mounting sleeve (2206). An auxiliary rotating shaft (2209) is rotatably connected to the inside of four of the mounting sleeves (2206), and a rotating cleaning shaft (2210) is rotatably connected to the inside of the other eight mounting sleeves (2206). A rotating gear (2208) is fixedly connected to the outer surface of each auxiliary rotating shaft (2209) and the outer surface of each rotating cleaning shaft (2210). The plurality of rotating gears (2208) are respectively rotatably connected to the inside of the plurality of gear positioning cylinders (2207). Each rotating gear (2208) is engaged with the gear belt (2205). A plurality of fixed rings (2211) arranged at equal intervals are fixedly connected to the outer surface of each rotating cleaning shaft (2210). An extending driving rod (2212) arranged at equal intervals is fixedly connected to the outer surface of each fixed ring (2211). A rotating cleaning brush (2213) is fixedly connected to one end of each extending driving rod (2212) away from the fixed ring (2211). The cleaning ends of the plurality of rotating cleaning brushes (2213) are in contact with the outer surface of the soil collection cylinder (2107).

7. An artificial intelligence-based information data acquisition device according to claim 6, characterized in that: Stable bearings (2203) arranged in an equidistant circular pattern are fixedly connected to the inner wall of the fixed cleaning frame (2201). The number of the stable bearings (2203) is four. The outer surfaces of the four rotating cleaning shafts (2210) are respectively fixedly connected to the inner rings of the four stable bearings (2203).

8. The artificial intelligence-based information data acquisition device according to claim 6, wherein: A stabilizing ring (2214) is fixedly connected to the outer surface of each of the extension drive rods (2212), and one side surfaces of the plurality of stabilizing rings (2214) away from each other are fixedly connected to one side surfaces of the plurality of rotating cleaning brushes (2213) close to each other.

9. An artificial intelligence-based information data acquisition device according to claim 6, wherein: The cleaning and drying mechanism (3) includes a water storage tank (301), the outer surface of the water storage tank (301) is fixedly connected to the outer surface of the mobile detection vehicle (11), a water spray pipe (304) arranged in an equidistant circular arrangement is fixedly connected to the inner wall of the mobile detection vehicle (11), the input ends of the plurality of water spray pipes (304) are fixedly communicated with the output end of the water storage tank (301) through a gear pump together, a water spray nozzle (305) is fixedly communicated with the output end of each of the water spray pipes (304), an extension rotating shaft (306) is fixedly connected to the top end of each of the auxiliary rotating shafts (2209) and the top end of each of the rotating cleaning shafts (2210), a rotating fan blade (309) is fixedly connected to the outer surface of each of the extension rotating shafts (306), a ventilation hood (307) arranged in an equidistant circular arrangement is fixedly connected to the inner top wall of the mobile detection vehicle (11), the plurality of extension rotating shafts (306) are respectively rotatably connected to the plurality of ventilation hoods (307), the plurality of rotating fan blades (309) are respectively rotatably connected to the inside of the plurality of ventilation hoods (307), and a heating wire (308) is fixedly connected to the inner wall of each of the ventilation hoods (307).

10. An artificial intelligence-based information data acquisition device according to claim 9, characterized in that: A water adding pipe (302) is fixedly communicated with the upper surface of the water storage tank (301), and a sealing plug (303) is clamped inside the water adding pipe (302).