Modularized conveyor vestibule with built-in mobile monitor
By designing a combination of flexible rubber sheets and conductive components in the transport car corridor, the problem of poor sealing effect of the sliding contact line was solved, achieving stable operation of the equipment and cleaning of the monitoring module, thus improving the monitoring effect of the transport car corridor.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-11-21
- Publication Date
- 2026-04-21
AI Technical Summary
Existing mobile monitoring equipment in transport aircraft corridors is susceptible to dust interference due to poor sealing of the sliding contact line, which affects the stable operation of the equipment.
A modular transport car corridor with built-in mobile monitoring is designed. Flexible rubber sheets and conductive components are used in conjunction with the hanging rail frame. The slot is opened by the lifting rollers and pressure rollers to ensure stable circuit connection. The monitoring module is kept clean by the transparent cover and cleaning plate.
It effectively reduces dust entering the hanging rail frame, ensuring stable equipment operation, and facilitates easy installation and disassembly, maintaining the cleanliness and transparency of the monitoring module.
Smart Images

Figure CN121897845A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of transport aircraft corridors, and more particularly to a modular transport aircraft corridor with built-in motion monitoring. Background Technology
[0002] The conveyor corridor provides a closed and safe transport space for belt conveyors and is a key facility for the stable transport of materials in industrial production. To ensure the safe operation of belt conveyors in the corridor, monitoring facilities need to be installed in the corridor to monitor the operating status.
[0003] Due to the long distance of the corridor, the fixed-point monitoring mode requires a large number of monitoring devices to achieve comprehensive monitoring, which not only involves a large investment but also makes the maintenance of many monitoring devices difficult. Therefore, mobile monitoring has been gradually applied to transport aircraft corridors. Mobile monitoring uses a sliding contact line as the carrier for movement and power supply, allowing the monitoring equipment to move and cover the entire corridor. However, due to the large amount of dust inside the corridor, the current sliding contact line has poor sealing effect and is easily affected by dust interference, which affects the stable movement and operation of the monitoring equipment. Summary of the Invention
[0004] To overcome the shortcomings of existing technologies, the purpose of this invention is to provide a modular transport car corridor with built-in mobile monitoring, which solves the problems of poor sealing effect of the sliding contact line of mobile monitoring and susceptibility to dust inside the transport car corridor.
[0005] To address the problems of the prior art, the technical solution of the present invention is as follows: A modular transport car corridor with built-in mobile monitoring includes a corridor body, which is composed of several individual corridors continuously spliced together. The corridor body is equipped with a hanging rail frame inside, the bottom of the hanging rail frame has a linearly extending slot, the inside sides of the hanging rail frame are provided with conductive strips, and a sealing box is provided below the hanging rail frame. The bottom of the sealing box is equipped with monitoring components, and the sealing box moves linearly along the hanging rail frame through a driving component. A flexible rubber sheet is provided on the inner side of the opening. The packaging box is fixed with a bracket. A lifting wheel is rotatably installed on the top of the bracket. Conductive components are symmetrically arranged on both sides of the bracket. The bracket is inserted into the opening from bottom to top, so that the lifting wheel lifts the flexible rubber sheet to open the opening. The bracket is connected to two sets of pressure rollers, which are distributed at the front and rear positions in the direction of movement of the lifting wheel. The two sets of pressure rollers press down on the edge of the flexible rubber sheet to cover the opening, so that the part of the flexible rubber sheet that opens the opening is triangular and arched. The conductive component enters from the opening and slides laterally to contact the conductive strip.
[0006] Preferably, the inner wall of the hanging rail frame has protrusions at the two sides of the opening, and the bottom surface of the flexible rubber sheet has grooves at the two sides of the opening, and the protrusions and grooves are interference-fitted.
[0007] Preferably, the driving component includes a motor, the output shaft of which is connected to a linkage gear via gear meshing, the bottom of the hanging rail frame has a rack, the linkage gear meshes with the rack, the two sides of the hanging rail frame have raceways, and the encapsulation box is connected to two sets of guide wheels, which are engaged into the raceways from both sides.
[0008] Preferably, the conductive component includes a rotating arm, which is rotatably connected to the packaging box. The two rotating arms are distributed in a V-shape on both sides of the bracket. A brush block is provided on the top of the rotating arm, and a nut is provided on the inner side of the rotating arm. A sliding groove is symmetrically opened on the inner side of the rotating arm. A shaft is fixed to the nut and the shaft slides into the sliding groove. A screw is rotatably installed inside the packaging box. The two nuts are connected to the screw with opposite threads. Rotating the screw can drive the two rotating arms to open and close.
[0009] Preferably, the brush block is fixed to the surface of the insulating back plate, and the insulating back plate is connected to the rotating arm through a spring sheet. The spring sheet applies a spring force to the brush block in the direction of the conductive strip.
[0010] Preferably, two carrier plates are symmetrically distributed on both sides of the bracket, the pressure roller is rotatably mounted on the surface of the carrier plate, and a telescopic rod and a spring are connected between the carrier plate and the bracket, so that the two carrier plates tend to move closer together, and the rotating arm abuts against the inner side of the carrier plate.
[0011] Preferably, two carriers are symmetrically slidably arranged inside the packaging box, the guide wheel rotates on the surface of the carrier, and the screw is connected to the two carriers by reverse thread. Rotating the screw can push the two carriers to open and close and slide.
[0012] Preferably, the screw drives the two rotating arms and the two carriers to open and close in opposite directions.
[0013] Preferably, the monitoring component includes a ring seat and a connecting seat, which are fixed to the bottom of the encapsulation box. The connecting seat is used to connect the monitoring module. A ring sleeve is rotatably connected to the outside of the ring seat through a bearing. A transparent cover is fixedly connected to the ring sleeve. The monitoring module is encapsulated inside the transparent cover. A toothed ring is fixed to the outside of the ring sleeve. A rotating gear is connected to the toothed ring. The rotating gear is connected to the output shaft of the motor through a suitable worm gear and worm drive.
[0014] Preferably, the cleaning plate is elastically mounted on the side of the packaging box via a torsion spring. The surface of the cleaning plate is evenly provided with several air holes and bristles, which are attached to the transparent cover. The cleaning plate has a cavity inside, and the air holes communicate with the cavity of the cleaning plate. An air chamber is provided inside the packaging box, and the shaft of the motor passes through the air chamber and is connected to a fan blade. The exhaust end of the air chamber communicates with the cavity of the cleaning plate through a pipe.
[0015] Compared with the prior art, the advantages of the present invention are as follows: 1. This invention uses a lifting roller to lift a flexible rubber sheet and a pressure roller to press down on the edge of the flexible rubber sheet, causing the flexible rubber sheet at the packaging box part to arch into a triangular shape and open the slot, which facilitates stable circuit connection. The slot of the non-conductive part is covered and sealed by the flexible rubber sheet, which effectively reduces the amount of dust entering the hanging rail frame through the slot and avoids dust affecting the stable operation of the equipment.
[0016] 2. This invention uses a screw to drive the rotating arm, carrier plate, and carrier seat to open and close, thereby controlling the spacing between the guide wheel, brush block, and pressure roller, and can conveniently connect or disconnect the packaging box from the hanging rail frame.
[0017] 3. This invention uses a transparent cover to seal and protect the monitoring module. By driving the transparent cover to rotate, combined with air blowing and scraping actions, the dust on the outside of the transparent cover is cleaned, so that the transparent cover maintains a high degree of transparency and does not affect the operation of the monitoring module. Attached Figure Description
[0018] Figure 1 This is a schematic diagram of the overall structure of the modular transport aircraft corridor of the present invention.
[0019] Figure 2 This is a schematic diagram of the overall structure of the mobile monitoring facility of the present invention.
[0020] Figure 3 This is a schematic diagram showing the distribution of the picking wheel, pressure wheel, guide wheel, and brush block of the present invention.
[0021] Figure 4 This is a schematic diagram of the cross-sectional structure of the suspension rail frame of the present invention.
[0022] Figure 5 This is a schematic diagram of the open strip of the flexible rubber sheet of the present invention.
[0023] Figure 6 This is a schematic diagram of the combination of the packaging box and the hanging rail frame of the present invention.
[0024] Figure 7 This is a schematic diagram showing the separation of the packaging box and the hanging rail frame of the present invention.
[0025] Figure 8 This is a schematic diagram of the drive component structure of the present invention.
[0026] Figure 9 This is a schematic diagram of the brush block connection to the rotating arm of the present invention.
[0027] Figure 10 This is a schematic diagram of the cleaning plate structure of the present invention.
[0028] Reference numerals: 1. Hanging rail; 11. Roller track; 12. Conductive strip; 13. Rack; 14. Flexible rubber sheet; 15. Raised strip; 16. Channel; 2. Encapsulation box; 21. Bracket; 22. Drive cavity; 23. Motor; 24. Linkage gear; 25. Rotating gear; 26. Fan blade; 27. Air chamber; 3. Monitoring components; 31. Ring seat; 32. Ring sleeve; 33. Connecting seat; 34. Transparent cover; 4. Cleaning board; 41. Air holes; 42. Brush bristles; 5. Pressure roller; 51. Carrier plate; 52. Telescopic rod; 6. Picking wheel; 7. Brush block; 71. Rotary arm; 711. Nut; 712. Shaft; 713. Slide groove; 72. Insulating back plate; 73. Spring; 8. Guide wheel; 81. Carrier; 9. Screw; 10. Individual corridors. Detailed Implementation
[0029] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.
[0030] The modular transport corridor with built-in mobile monitoring consists of two parts: the corridor itself and the mobile monitoring facilities, such as... Figure 1 , Figure 2 As shown, the corridor body is composed of several individual corridors 10 continuously spliced together, and the mobile monitoring facilities include a hanging rail frame 1, a packaging box 2, and monitoring components 3.
[0031] like Figure 1 , Figure 4 As shown, the hanging rail frame 1 is installed on one side of the inner top surface of the corridor body, and the hanging rail frame 1 extends along the path of the corridor body. Conductive strips 12 are fixedly installed on the two inner side walls of the hanging rail frame 1. The outer side walls of the hanging rail frame 1 have recessed roller tracks 11. The bottom of the hanging rail frame 1 has a linearly extending slot. A flexible rubber sheet 14 is disposed inside the hanging rail frame 1. The width of the flexible rubber sheet 14 is greater than the width of the slot, so that the flexible rubber sheet 14 can cover the slot downwards.
[0032] like Figure 2 , Figure 5As shown, the encapsulation box 2 is located below the hanging rail frame 1. The upper surface of the encapsulation box 2 has a U-shaped indentation in the middle, so that the encapsulation box 2 covers the lower part of the hanging rail frame 1. Two sets of guide wheels 8 are installed on both sides of the U-shaped area of the encapsulation box 2. The two sets of guide wheels 8 roll and engage in the raceway 11, so that the encapsulation box 2 can move linearly along the hanging rail frame 1. The bracket 21 is fixed in the middle of the U-shaped area of the encapsulation box 2. The lifting wheel 6 is rotatably installed on the top of the bracket 21. The bracket 21 passes through the strip opening from bottom to top, so that the lifting wheel 6 lifts the flexible rubber sheet 14 to open the strip opening. Two sets of pressure rollers 5 are connected to both sides of the bracket 21. The two sets of pressure rollers 5 are distributed in the front and rear positions of the lifting wheel 6 in the direction of movement. The two sets of pressure rollers 5 press down on the edge of the flexible rubber sheet 14 to cover the strip opening, so that the part of the flexible rubber sheet 14 with the strip opening is triangularly arched. Conductive components are symmetrically arranged on both sides of the bracket 21. The conductive components enter from the opening part of the strip opening and slide laterally to contact the conductive strip 12.
[0033] like Figure 8 As shown, the driving component includes a motor 23, a driving cavity 22 is provided inside the package 2, the motor 23 is installed in the driving cavity 22, the bottom of the hanging rail frame 1 has a rack 13, the linkage gear 24 is rotatably installed in the driving cavity 22, and the upper part of the linkage gear 24 extends out of the driving cavity 22 and meshes with the rack 13. The output shaft of the motor 23 is connected to the linkage gear 24 through gear meshing.
[0034] The monitoring component 3 is installed at the bottom of the encapsulation box 2. The conductive strip 12 is connected to the external circuit. The brush block 7 is connected to the conductive strip 12 to supply power to the motor 23 and the monitoring component 3.
[0035] When conducting a comprehensive inspection of the corridor, the motor 23 is turned on to drive the linkage gear 24 to rotate. The linkage gear 24 meshes with the rack 13 for transmission, and the guide wheel 8 rolls along the raceway 11, causing the encapsulation box 2 to move the monitoring component 3 to inspect the inside of the corridor. During the movement of the packaging box 2, the flexible rubber sheet 14 is lifted by the lifting wheel 6 and pressed down by the pressure wheel 5 to keep the flexible rubber sheet 14 covering the opening of the packaging box 2 at the front and rear. Only the opening of the packaging box 2 is opened, and the conductive component is inserted into the hanging rail frame 1 through the open part of the opening to contact the conductive strip 12 and maintain stable conductivity. Throughout the inspection process, the opening was sealed by flexible rubber sheet 14 to prevent dust from entering the inside of the hanging rail frame 1 and interfering with the circuit.
[0036] like Figure 5As shown, the inner wall of the hanging rail frame 1 has protrusions 15 on both sides of the strip opening, and the bottom surface of the flexible rubber sheet 14 has grooves 16 on both sides of the bottom edge. The protrusions 15 and the grooves 16 are interference-fitted, so that the flexible rubber sheet 14 can stably seal the strip opening. The flexible rubber sheet 14 is lifted by the lifting wheel 6 to separate the grooves 16 from the protrusions 15 and open the strip opening. After the packaging box 2 moves away, the pressure wheel 5 at the rear presses down on the edge of the flexible rubber sheet 14 to make the grooves 16 and the protrusions 15 re-engage.
[0037] like Figure 9 As shown, the conductive component includes two rotating arms 71, which are distributed in a V-shape on both sides of the bracket 21. The brush block 7 is fixed to the surface of the insulating back plate 72. The insulating back plate 72 is connected to the rotating arms 71 through a spring plate 73. The spring plate 73 applies a spring force to the brush block 7 in the direction of the conductive strip 12 to keep the brush block 7 in stable contact with the conductive strip 12 for conduction.
[0038] The assembly and disassembly principle of the packaging box 2 and the hanging rail 1 is as follows: like Figure 3 , Figure 6 , Figure 7 As shown, the rotating arm 71 is rotatably connected to the packaging box 2. A nut 711 is provided on the inner side of the rotating arm 71. A sliding groove 713 is symmetrically opened on the inner side of the rotating arm 71. The nut 711 fixes the outer fixed shaft 712. The shaft 712 slides into the sliding groove 713, so that the nut 711 can slide and rotate along the sliding groove 713. The screw 9 is rotatably installed from one side of the packaging box 2 inward through a damping bearing. The middle part of the screw 9 has two opposite threaded parts, so that the two nuts 711 are connected to the screw 9 with opposite threads.
[0039] Two carrier plates 51 are symmetrically distributed on both sides of the bracket 21. The pressure roller 5 is rotatably mounted on the surface of the carrier plate 51. The carrier plate 51 is connected to the bracket 21 by a telescopic rod 52 and a spring, which makes the two carrier plates 51 tend to move closer together. The rotating arm 71 abuts against the inner side of the carrier plate 51.
[0040] Two carriers 81 are symmetrically slidably arranged inside the packaging box 2. The guide wheel 8 rotates on the surface of the carrier 81. The two ends of the screw 9 have two opposite threaded parts, so that the screw 9 is connected to the two carriers 81 in opposite directions. The screw 9 pushes the two rotating arms 71 and the two carriers 81 to open and close in opposite directions.
[0041] When connecting the packaging box 2 to the hanging rail frame 1, first rotate the screw 9 in the forward direction to push the two carriers 81 to drive the two sets of guide wheels 8 to unfold to a width greater than that of the hanging rail frame 1. The screw 9 simultaneously pushes the two nuts 711 together. Through the adaptive contact between the shaft column 712 and the slide groove 713, the two rotating arms 71 drive the brush blocks 7 to move together. At the same time, under the elastic force of the spring and the guidance of the telescopic rod 52, the two carrier plates 51 are retracted, keeping the width of the two sets of brush blocks 7 and the width of the two sets of pressure rollers 5 smaller than the width of the slot. The packaging box 2 is wrapped around the lower part of the hanging rail frame 1 from bottom to top, so that the height of the guide wheels 8 is aligned with the raceway 11. The lifting wheel 6 lifts up the flexible rubber sheet 14, and the brush blocks 7 and pressure rollers 5 are inserted into the interior of the hanging rail frame 1 through the slot. Then, the reverse screw 9 pushes the two carriers 81 to drive the two sets of guide wheels 8 to move closer and be inserted into the raceway 11. At the same time, the screw 9 pushes the two rotating arms 71 to rotate and expand, so that the brush block 7 abuts against the conductive strip 12 on the side. The rotating arm 71 abuts against the carrier plate 51 to overcome the elastic force and expand, so that the two sets of pressure rollers 5 are aligned with the edge of the flexible rubber sheet 14. Then, the edge of the flexible rubber sheet 14 is pressed onto the bottom of the pressure roller 5 to complete the installation. When separating the packaging box 2 from the hanging rail frame 1, pull the edge of the flexible rubber sheet 14 out from the bottom of the pressure roller 5, reverse the screw 9 to push the carrier 81 to drive the guide wheel 8 to expand and separate from the raceway 11, the screw 9 pushes the rotating arm 71 to drive the brush block 7 to retract, and at the same time the spring causes the carrier plate 51 to retract synchronously, so that the packaging box 2 can be separated from the hanging rail frame 1 downwards.
[0042] like Figure 2 , Figure 8 As shown, the monitoring component 3 includes a ring seat 31 and a connecting seat 33. The ring seat 31 and the connecting seat 33 are fixed to the bottom of the encapsulation box 2. The connecting seat 33 is used to connect and install the monitoring module. The monitoring module can be selected from existing monitoring cameras, infrared cameras or combinations of monitoring components as needed. These are all existing technologies and will not be described in detail here. like Figure 8 , Figure 10 As shown, the outer side of the ring seat 31 is rotatably mounted with a ring sleeve 32 via a bearing. The transparent cover 34 is a top-opening shell made of tempered glass or high-temperature resistant plastic. The transparent cover 34 encapsulates the monitoring module inside. The top opening of the transparent cover 34 is fixedly connected to the ring sleeve 32, so that the transparent cover 34 seals and protects the monitoring module. A toothed ring is fixed to the outside of the ring sleeve 32. A rotating gear 25 is rotatably mounted on the bottom of the encapsulation box 2. The rotating gear 25 meshes with the toothed ring. The shaft of the rotating gear 25 passes into the drive cavity 22 to fix the worm gear. The shaft of the motor 23 fixes the worm, and the worm meshes with the worm gear.
[0043] A cleaning plate 4 is elastically mounted on the side of the packaging box 2 by means of a torsion spring. Several air holes 41 and bristles 42 are evenly arranged on the surface of the cleaning plate 4. The air holes 41 and bristles 42 are attached to the transparent cover 34. The cleaning plate 4 has a cavity inside. The air holes 41 are connected to the cavity of the cleaning plate 4. An air chamber 27 is provided inside the packaging box 2. The shaft of the motor 23 passes through the air chamber 27 and connects to the fan blade 26. The exhaust end of the air chamber 27 is connected to the cavity of the cleaning plate 4 through a pipe. A filter screen is provided at the air inlet of the air chamber 27.
[0044] When the motor 23 drives the encapsulation box 2 to move along the hanging rail 1, the motor 23 synchronously drives the rotating gear 25 and the fan blade 26 to work. The rotating gear 25 drives the ring sleeve 32 to rotate the transparent cover 34, so that the transparent cover 34 slowly adjusts its angle. The fan blade 26 drives the airflow to be introduced into the cleaning plate 4. The airflow passes through the air hole 41 and is blown evenly onto the surface of the transparent cover 34. Together with the brush bristles 42, the surface of the transparent cover 34 is scraped to achieve cleaning of the surface of the transparent cover 34, avoid dust adhering to the surface of the transparent cover 34, and maintain a high transparency effect of the transparent cover 34 without affecting the operation of the monitoring module.
[0045] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention.
Claims
1. A modular transport corridor with built-in mobile monitoring, comprising a corridor body, the corridor body being composed of several individual corridors (10) continuously spliced together, wherein a hanging rail frame (1) is provided inside the corridor body, the bottom of the hanging rail frame (1) has a linearly extending slot, conductive strips (12) are provided on both sides inside the hanging rail frame (1), and an encapsulation box (2) is provided below the hanging rail frame (1), a monitoring component (3) is installed at the bottom of the encapsulation box (2), and the encapsulation box (2) moves linearly along the hanging rail frame (1) by a driving component; Its features are, A flexible rubber sheet (14) is provided covering the inner side of the opening. The packaging box (2) is fixed with a bracket (21). A lifting wheel (6) is rotatably installed on the top of the bracket (21). Conductive components are symmetrically arranged on both sides of the bracket (21). The bracket (21) passes through the opening from bottom to top, so that the lifting wheel (6) lifts the flexible rubber sheet (14) upward to open the opening. The bracket (21) is connected to two sets of pressure rollers (5). The two sets of pressure rollers (5) are distributed in the front and rear positions of the lifting wheel (6) in the direction of movement. The two sets of pressure rollers (5) press down on the edge of the flexible rubber sheet (14) to cover the opening, so that the part of the flexible rubber sheet (14) that opens the opening is triangular and arched. The conductive component enters from the opening part of the opening and slides laterally to contact the conductive strip (12).
2. The modular transport corridor with built-in mobile monitoring according to claim 1, characterized in that, The inner wall of the hanging rail frame (1) has a protrusion (15) at the two sides of the opening, and the bottom surface of the flexible rubber sheet (14) has a groove (16) at the two sides of the opening. The protrusion (15) and the groove (16) are interference-fitted.
3. The modular transport corridor with built-in mobile monitoring according to claim 1, characterized in that, The driving component includes a motor (23), the output shaft of the motor (23) is connected to a linkage gear (24) through gear meshing, the bottom of the hanging rail frame (1) has a rack (13), the linkage gear (24) meshes with the rack (13), the two sides of the hanging rail frame (1) have raceways (11), the encapsulation box (2) is connected to two sets of guide wheels (8), the two sets of guide wheels (8) are inserted into the raceways (11) from both sides.
4. The modular transport corridor with built-in mobile monitoring according to claim 3, characterized in that, The conductive component includes a rotating arm (71), which is rotatably connected to the encapsulation box (2). The two rotating arms (71) are distributed in a V shape on both sides of the bracket (21). A brush block (7) is provided on the top of the rotating arm (71). A nut (711) is provided on the inner side of the rotating arm (71). A sliding groove (713) is symmetrically opened on the inner side of the rotating arm (71). A shaft (712) is fixed to the nut (711). The shaft (712) slides into the sliding groove (713). A screw (9) is rotatably installed in the encapsulation box (2). The two nuts (711) are connected to the screw (9) with reverse threads. Rotating the screw (9) can push the two rotating arms (71) to open and close.
5. The modular transport corridor with built-in mobile monitoring according to claim 4, characterized in that, The brush block (7) is fixed to the surface of the insulating back plate (72). The insulating back plate (72) is connected to the rotating arm (71) through the spring piece (73). The spring piece (73) applies a spring force to the brush block (7) in the direction of the conductive strip (12).
6. The modular transport corridor with built-in mobile monitoring according to claim 4, characterized in that, The bracket (21) has two symmetrically distributed carrier plates (51) on both sides. The pressure roller (5) is rotatably installed on the surface of the carrier plate (51). The carrier plate (51) and the bracket (21) are connected by a telescopic rod (52) and a spring, so that the two carrier plates (51) tend to move closer together. The rotating arm (71) abuts against the inner side of the carrier plate (51).
7. The modular transport corridor with built-in mobile monitoring according to claim 4, characterized in that, Two carriers (81) are symmetrically slidably arranged inside the packaging box (2). The guide wheel (8) rotates on the surface of the carrier (81). The screw (9) is connected to the two carriers (81) by reverse thread. Rotating the screw (9) can push the two carriers (81) to open and close and slide.
8. The modular transport corridor with built-in mobile monitoring according to claim 7, characterized in that, The screw (9) drives the two rotating arms (71) and the two carriers (81) to open and close in opposite directions.
9. The modular transport corridor with built-in mobile monitoring according to claim 3, characterized in that, The monitoring component (3) includes a ring seat (31) and a connecting seat (33). The ring seat (31) and the connecting seat (33) are fixed to the bottom of the encapsulation box (2). The connecting seat (33) is used to connect the monitoring module. The outer side of the ring seat (31) is rotatably connected to a ring sleeve (32) through a bearing. The ring sleeve (32) is fixedly connected to a transparent cover (34). The monitoring module is encapsulated inside the transparent cover (34). A toothed ring is fixed to the outside of the ring sleeve (32). The toothed ring is connected to a rotating gear (25). The rotating gear (25) is connected to the output shaft of the motor (23) through a matching worm gear and worm drive.
10. The modular transport corridor with built-in mobile monitoring according to claim 9, characterized in that, The packaging box (2) is elastically mounted on the side by a torsion spring and a cleaning plate (4). The surface of the cleaning plate (4) is evenly provided with several air holes (41) and bristles (42). The air holes (41) and bristles (42) are attached to the transparent cover (34). The cleaning plate (4) has a cavity inside. The air holes (41) are connected to the cavity of the cleaning plate (4). The packaging box (2) is provided with a wind chamber (27). The shaft of the motor (23) is inserted into the wind chamber (27) and connected to a fan blade (26). The exhaust end of the wind chamber (27) is connected to the cavity of the cleaning plate (4) through a pipe.