Anti-intrusion railway edge intelligent analysis all-in-one machine

By designing components such as fan chassis, motor, fourth synchronization shaft and copper water tank in the railway edge intelligent analysis all-in-one machine, combined with the articulated structure and filter net, the problem of poor heat dissipation effect in the existing technology is solved, and efficient dust protection and heat dissipation effect is achieved.

CN120201692APending Publication Date: 2025-06-24SHAANXI MAKALU INFORMATION TECH CO LTD
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Patent Information

Application Number
CN202510342980.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-21
Publication Date
2025-06-24

AI Technical Summary

Technical Problem

The existing railway edge intelligent analysis machine cannot effectively ensure the heat dissipation effect while ensuring dustproof effect.

Method used

An anti-invasion intelligent analysis machine is designed, using components such as fan chassis, motor, fourth synchronization shaft and copper water tank. Through the dual cooling system of air-cooling and liquid-cooling, combined with the articulated structure and filter net, it achieves good dust protection and heat dissipation effects.

Benefits of technology

While ensuring dustproof effect, the dual cooling system of air-cooled and liquid-cooled cooling is achieved, which significantly improves the heat dissipation efficiency of the intelligent analysis all-in-one machine and ensures the stable operation of the equipment in a high-temperature environment.

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Abstract

The anti-intrusion railway edge intelligent analysis all-in-one machine comprises a lower shell, an upper shell and an intelligent analysis all-in-one machine body arranged in the lower shell, the lower shell and the upper shell are oppositely arranged in the vertical direction, a fan box is arranged at the bottom of the lower shell, a motor is arranged at the bottom of the fan box, and the motor is connected with the intelligent analysis all-in-one machine body. The output end of the motor extends into the fan box to be connected with a fourth synchronous shaft, a plurality of air conveying blades are arranged on the fourth synchronous shaft, and the fan box communicates with the interior of the lower shell. According to the intelligent analysis all-in-one machine, gas in the lower shell and the upper shell can be extracted outwards through the arranged fan box, motor and fourth synchronous shaft, then air cooling is conducted on the intelligent analysis all-in-one machine body, the arranged first filter screen can filter the gas when the gas enters the lower shell and the upper shell, entering dust is reduced, and the intelligent analysis all-in-one machine is more convenient to use. And meanwhile, the cooling effect on the intelligent analysis all-in-one machine body can be enhanced through the copper water tank and the cooling liquid.
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Description

Technical Field

[0001] The present invention relates to the field of AI edge intelligent analysis all-in-one machines, and particularly to an anti-intrusion railway edge intelligent analysis all-in-one machine. Background Art

[0002] An AI edge intelligent analysis all-in-one machine is an industrial intelligent analysis device designed and developed for the intelligent upgrade of front-end ordinary network cameras, integrating multiple technologies such as video decoding, intelligent algorithms, and data transmission. It conducts intelligent analysis on the objects appearing in the video images of ordinary network cameras and outputs abnormal alarm signals to achieve abnormal event alarm.

[0003] The current railway edge intelligent analysis all-in-one machines have the following problems: the heat dissipation and dust prevention effects are not very good, and it is impossible to ensure both the dust prevention effect and the heat dissipation effect at the same time. Summary of the Invention

[0004] To solve the above problems, the present invention proposes an anti-intrusion railway edge intelligent analysis all-in-one machine to solve the problems existing in the above-mentioned prior art.

[0005] To achieve the above object, an anti-intrusion railway edge intelligent analysis all-in-one machine provided by the present invention includes: a lower housing and an upper housing arranged opposite to each other up and down, and an intelligent analysis all-in-one machine body disposed inside the lower housing. A blower box is arranged at the bottom of the lower housing, a motor is arranged at the bottom of the blower box, the output end of the motor extends into the blower box and is connected to a fourth synchronous shaft, a plurality of air delivery blades are arranged on the fourth synchronous shaft, and the blower box is communicated with the inside of the lower housing;

[0006] A plurality of strip-shaped ventilation openings are respectively opened at the top of the upper housing and the bottom of the blower box. A first filter screen is arranged at the top of the upper housing, and a second filter screen is arranged at the bottom of the blower box;

[0007] A copper water tank is arranged at the inner bottom of the lower housing. Ventilation grooves are opened on both sides of the copper water tank, a coolant is arranged inside the copper water tank, and the intelligent analysis all-in-one machine body is arranged on the top of the copper water tank.

[0008] Further, a lower protective shell is arranged on one outer wall of the lower housing, an upper protective shell is arranged on one outer wall of the upper housing. A first hinge rod and a second hinge rod are respectively slidably arranged on both sides inside the lower protective shell. The first hinge rod and the second hinge rod intersect with each other, and the intersection is hinged to each other. The tops of the first hinge rod and the second hinge rod are rotatably connected to the inner wall of the upper protective shell;

[0009] A driving component is arranged at the bottom of the lower housing. The driving component is connected to the first hinge rod and the fourth synchronizing shaft and is used to drive the bottom of the first hinge rod to move.

[0010] Further, the driving component includes an L-shaped housing installed at the bottom of the lower housing, a transmission mechanism rotatably installed inside the L-shaped housing, and a gear connected to the transmission mechanism. The transmission mechanism is connected to the fourth synchronizing shaft;

[0011] The L-shaped housing is internally communicated with the lower housing. The gear is arranged inside the L-shaped housing. A first rack and a second rack are slidably arranged on the inner bottom of the lower protective housing. The top of the second rack is hinged to the bottom of the first hinge rod. The top of the first rack is hinged to the bottom of the second hinge rod. The first rack and the second rack are arranged oppositely. The gear is located between the first rack and the second rack and is meshed and connected with the first rack and the second rack.

[0012] The transmission mechanism is connected to the copper water tank.

[0013] Further, the transmission mechanism includes a first synchronizing shaft and a second synchronizing shaft rotatably arranged at both ends inside the L-shaped housing, a first synchronous belt tensioned on the first synchronizing shaft and the second synchronizing shaft, a third synchronizing shaft fixedly installed at the bottom of the second synchronizing shaft, and a second synchronous belt tensioned on one end of the third synchronizing shaft and the fourth synchronizing shaft;

[0014] The top of the first synchronizing shaft is fixedly connected to the bottom of the gear;

[0015] The top of the second synchronizing shaft extends into the copper water tank.

[0016] Further, installation cavities are respectively formed inside three outer walls of the lower housing. A copper plate is slidably arranged inside the installation cavity. A second delivery pipe is communicated at the bottom of the copper plate. One end of the second delivery pipe is communicated with the copper water tank.

[0017] Further, one end of the copper plate enters the inside of the lower housing. A wedge surface is arranged at the other end of the copper plate. An L-shaped rod is slidably arranged up and down inside the installation cavity. An arc surface adapted to the wedge surface is arranged at the bottom of the L-shaped rod and is in contact with the bottom of the wedge surface. The top of the L-shaped rod is connected to the bottom of the upper housing.

[0018] Further, a circular box is arranged at one end inside the copper water tank. A water inlet is formed at one end of the circular box. The other end of the circular box is communicated with one of the second delivery pipes. The three copper plates are communicated with each other through two first delivery pipes.

[0019] Furthermore, the top of the second synchronizing shaft extends into the interior of the copper water tank, and a plurality of pumping vanes are arranged at the top of the second synchronizing shaft;

[0020] Furthermore, an electric telescopic rod is fixedly installed at the bottom of the L-shaped housing. A connecting column is slidably connected inside the third synchronizing shaft. A plurality of bumps are arranged on the outer wall of the connecting column. A groove adapted to the connecting column is opened inside the second synchronizing shaft. The output end of the electric telescopic rod is connected to the bottom of the bump.

[0021] Furthermore, a plurality of socket cylinders are arranged inside the copper water tank. A piston column is slidably arranged inside the socket cylinder. A return spring is arranged at the inner bottom of the socket cylinder. The top of the return spring is connected to the bottom of the piston column. The top of the piston column extends out of the socket cylinder and is provided with a mounting plate. Three top columns are arranged on the top of the mounting plate. The top of the top column extends out of the copper water tank and contacts the bottom of the intelligent analysis all-in-one machine body. A plurality of the socket cylinders are interconnected through a plurality of linkage pipes. One of the socket cylinders is connected to the circular box through one of the linkage pipes. A pressure relief pipe is arranged at the top of one of the socket cylinders. A one-way valve is arranged inside the pressure relief pipe.

[0022] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0023] 1. By providing the fan box, the motor, and the fourth synchronizing shaft, the gas inside the lower housing and the upper housing can be pumped outwards, thereby air-cooling and cooling the intelligent analysis all-in-one machine body. The first filter screen can filter the gas when the gas enters the lower housing and the upper housing, reducing the entry of dust and achieving a good dust-proof effect. At the same time, the cooling effect on the intelligent analysis all-in-one machine body can be enhanced through the copper water tank and the coolant.

[0024] 2. When the temperature of the intelligent analysis all-in-one machine body is too high, start the driving component to work, and at the same time increase the power of the motor and the rotation speed of the fourth synchronizing shaft, thereby enhancing the air extraction effect. Under the action of the driving component, drive the bottoms of the first hinge rod and the second hinge rod to move closer to each other, and then jack up the upper housing through the first hinge rod and the second hinge rod to separate it from the lower housing, facilitating heat dissipation and at the same time facilitating the entry of gas and accelerating the cooling speed.

[0025] 3. When the upper housing moves upwards, it will drive the L-shaped rod to move upwards. Through the action of the bottom of the L-shaped rod and the wedge surface, the L-shaped rod will push the copper plate closer to the outer wall of the intelligent analysis all-in-one machine body while moving upwards, making the copper plate contact the outer wall of the intelligent analysis all-in-one machine body. The coolant inside the copper plate can cool the outer wall of the intelligent analysis all-in-one machine body, further improving the heat dissipation efficiency.

[0026] 4. When the second synchronization shaft rotates, the coolant inside the copper water tank can be conveyed to the inside of the circular tank through the provided pumping blades, and then the coolant is conveyed to the inside of one of the copper plates through the second conveying pipe. Then, the coolant flows inside the three copper plates through the first conveying pipe, which helps to improve the heat dissipation efficiency of the intelligent analysis all-in-one machine body.

[0027] For better understanding and implementation, the present invention will be described in detail below with reference to the accompanying drawings. Description of the Drawings

[0028] Figure 1 is the first three-dimensional structure schematic diagram of the present invention;

[0029] Figure 2 is the second three-dimensional structure schematic diagram of the present invention;

[0030] Figure 3 is the structure schematic diagram of the intelligent analysis all-in-one machine body in the present invention;

[0031] Figure 4 is the top view of the lower housing in the present invention;

[0032] Figure 5 is the internal structure schematic diagram of the lower housing in the present invention;

[0033] Figure 6 is the structure schematic diagram of the water tank in the present invention;

[0034] Figure 7 is the internal structure schematic diagram of the upper protective shell in the present invention;

[0035] Figure 8 is the internal structure schematic diagram of the L-shaped housing in the present invention;

[0036] Figure 9 is the internal structure schematic diagram of the lower protective shell in the present invention;

[0037] Figure 10 is the partial structure diagram of the lower housing in the present invention;

[0038] Figure 11 is the appendix of the present invention Figure 10 The enlarged view of the structure at point A in;

[0039] Figure 12 is the internal structure schematic diagram of the circular tank in the present invention;

[0040] Figure 13 is the internal structure schematic diagram of the blower box in the present invention;

[0041] Figure 14 is the structure schematic diagram of the connecting column in the present invention;

[0042] Figure 15 It is a cross-sectional view of the copper water tank in the present invention;

[0043] Figure 16 It is a cross-sectional view of the socket cylinder in the present invention.

[0044] In the figure: 1, lower housing; 2, upper housing; 3, upper protective housing; 4, L-shaped housing; 5, lower protective housing; 6, first filter screen; 7, blower box; 8, second filter screen; 9, motor; 10, intelligent analysis all-in-one machine body; 11, copper water tank; 12, copper plate; 13, first delivery pipe; 14, ventilation slot; 15, first hinge rod; 16, second hinge rod; 17, first synchronous shaft; 18, second synchronous shaft; 19, third synchronous shaft; 20, first synchronous belt; 21, second synchronous belt; 22, first rack; 23, second rack; 24, gear; 25, installation cavity; 26, L-shaped rod; 27, wedge surface; 28, second delivery pipe; 29, circular box; 30, pumping blade; 31, water inlet; 32, fourth synchronous shaft; 33, air delivery blade; 34, electric telescopic rod; 35, connecting column; 36, convex block; 37, top column; 38, socket cylinder; 39, linkage pipe; 40, pressure relief pipe; 41, return spring; 42, piston column; 43, mounting plate. Detailed implementation manners

[0045] For a clearer understanding of the technical features, objectives and effects of the present invention, the specific implementation manners of the present invention are now described with reference to the accompanying drawings. However, the protection scope of the present invention is not limited to the following description.

[0046] Referring to Figure 1-16 As shown, an intelligent analysis all-in-one machine for preventing intrusion at the railway edge includes: a lower housing 1 and an upper housing 2 arranged opposite to each other up and down, and an intelligent analysis all-in-one machine body 10 arranged inside the lower housing 1. A blower box 7 is arranged at the bottom of the lower housing 1, a motor 9 is arranged at the bottom of the blower box 7, the output end of the motor 9 extends into the blower box 7 and is connected to a fourth synchronous shaft 32, a plurality of air delivery blades 33 are arranged on the fourth synchronous shaft 32, and the blower box 7 is communicated with the inside of the lower housing 1; a plurality of strip-shaped ventilation openings are opened at the top of the upper housing 2 and the bottom of the blower box 7. A first filter screen 6 is arranged at the top of the upper housing 2, and a second filter screen 8 is arranged at the bottom of the blower box 7; a copper water tank 11 is arranged at the inner bottom of the lower housing 1, ventilation slots 14 are opened on both sides of the copper water tank 11, a coolant is arranged inside the copper water tank 11, and the intelligent analysis all-in-one machine body 10 is arranged on the top of the copper water tank 11;

[0047] On one side outer wall of the lower housing 1, a lower protective shell 5 is arranged. On one side outer wall of the upper housing 2, an upper protective shell 3 is arranged. On both sides inside the lower protective shell 5, a first hinge rod 15 and a second hinge rod 16 are slidably arranged respectively. The first hinge rod 15 and the second hinge rod 16 cross each other, and the intersection is hinged to each other. The tops of the first hinge rod 15 and the second hinge rod 16 are rotatably connected to the inner wall of the upper protective shell 3. At the bottom of the lower housing 1, a driving assembly is arranged. The driving assembly is connected to the first hinge rod 15 and the fourth synchronous shaft 32 for driving the bottom of the first hinge rod 15 to move.

[0048] A technical solution provided by the present invention, when in use, through the provided fan box 7, motor 9, and fourth synchronous shaft 32, the gas inside the lower housing 1 and the upper housing 2 can be pumped outwards, thereby air-cooling and cooling the intelligent analysis all-in-one machine body 10. The provided first filter screen 6 can filter the gas when the gas enters the inside of the lower housing 1 and the upper housing 2, reducing the entry of dust and achieving a good dust-proof effect. At the same time, through the copper water tank 11 and the coolant, the cooling effect on the intelligent analysis all-in-one machine body 10 can be enhanced. After the coolant volatilizes completely, it is added through the water injection port on the copper water tank 11. When the temperature of the intelligent analysis all-in-one machine body 10 is too high, start the driving assembly to work, and at the same time increase the power of the motor 9 and increase the rotation speed of the fourth synchronous shaft 32, thereby enhancing the air extraction effect. Under the action of the driving assembly, drive the bottoms of the first hinge rod 15 and the second hinge rod 16 to move closer to each other, and then lift the upper housing 2 through the first hinge rod 15 and the second hinge rod 16 to separate it from the lower housing 1, which is convenient for heat dissipation and at the same time convenient for gas to enter, accelerating the cooling speed.

[0049] Preferably: The driving assembly includes an L-shaped housing 4 installed at the bottom of the lower housing 1, a transmission mechanism rotatably installed inside the L-shaped housing 4, and a gear 24 connected to the transmission mechanism. The transmission mechanism is connected to the fourth synchronous shaft 32;

[0050] The L-shaped housing 4 is in communication with the inside of the lower housing 1. The gear 24 is arranged inside the L-shaped housing 4. On the inner bottom of the lower protective shell 5, a first rack 22 and a second rack 23 are slidably arranged. The top of the second rack 23 is hinged to the bottom of the first hinge rod 15. The top of the first rack 22 is hinged to the bottom of the second hinge rod 16. The first rack 22 and the second rack 23 are arranged oppositely. The gear 24 is located between the first rack 22 and the second rack 23 and is meshed and connected to the first rack 22 and the second rack 23;

[0051] The transmission mechanism includes a first synchronous shaft 17 and a second synchronous shaft 18 rotatably arranged at both ends inside the L-shaped housing 4, a first synchronous belt 20 tensioned on the first synchronous shaft 17 and the second synchronous shaft 18, a third synchronous shaft 19 fixedly installed at the bottom of the second synchronous shaft 18, and a second synchronous belt 21 tensioned on one end of the third synchronous shaft 19 and the fourth synchronous shaft 32. The top of the first synchronous shaft 17 is fixedly connected to the bottom of the gear 24;

[0052] An electric telescopic rod 34 is fixedly installed at the bottom of the L-shaped housing 4. A connecting column 35 is slidably connected inside the third synchronous shaft 19. A plurality of bumps 36 are arranged on the outer wall of the connecting column 35. The output end of the electric telescopic rod 34 is connected to the bottom of the bump 36 through a bearing.

[0053] Specifically, when using the driving component, first start the electric telescopic rod 34. The connecting column 35 is driven by the electric telescopic rod 34 to move upward. Circular grooves are provided inside both the third synchronous shaft 19 and the second synchronous shaft 18 for accommodating the connecting column 35. The inner wall of the circular groove is provided with a plurality of strip-shaped grooves adapted to the bumps. Therefore, the connecting column 35 can rotate following the third synchronous shaft 19. When the top of the connecting column 35 driven by the electric telescopic rod 34 is inserted into the second synchronous shaft 18, the second synchronous shaft 18 is driven to rotate by the connecting column 35. The provided first synchronous belt 20 will synchronously drive the first synchronous shaft 17 to rotate. The gear 24 is driven to rotate by the first synchronous shaft 17. The first rack 22 and the second rack 23 move relative to each other by the rotation of the gear 24, and finally the bottoms of the first hinge rod 15 and the second hinge rod 16 move closer to each other.

[0054] Preferably: Installation cavities 25 are provided inside the three outer walls of the lower housing 1. A copper plate 12 is slidably arranged inside the installation cavity 25. A second delivery pipe 28 is connected to the bottom of the copper plate 12. One end of the second delivery pipe 28 is connected to the copper water tank 11. One end of the copper plate 12 enters the inside of the lower housing 1. A wedge surface 27 is provided at the other end of the copper plate 12. An L-shaped rod 26 is slidably arranged up and down inside the installation cavity 25. An arc surface adapted to the wedge surface 27 is provided at the bottom of the L-shaped rod 26 and is in contact with the bottom of the wedge surface 27. The top of the L-shaped rod 26 is connected to the bottom of the upper housing 2.

[0055] Specifically, when the upper housing 2 moves upward, the L-shaped rod 26 will be driven to move upward. Due to the action of the bottom of the L-shaped rod 26 and the wedge surface 27, when the L-shaped rod 26 moves upward, it simultaneously pushes the copper plate 12 to move closer to the outer wall of the intelligent analysis all-in-one machine body 10, so that the copper plate 12 contacts the outer wall of the intelligent analysis all-in-one machine body 10. The outer wall of the intelligent analysis all-in-one machine body can be cooled by the coolant inside the copper plate 12, further improving the heat dissipation efficiency.

[0056] Preferably, a circular box 29 is arranged at one end inside the copper water tank 11. A water inlet 31 is provided at one end of the circular box 29. The other end of the circular box 29 is communicated with one of the second conveying pipes 28. The three copper plates 12 are communicated with each other through two first conveying pipes 13. The top of the second synchronous shaft 18 extends into the circular box 29. A plurality of water pumping blades 30 are arranged at the top of the second synchronous shaft 18.

[0057] Specifically, when the second synchronous shaft 18 rotates, the coolant inside the copper water tank 11 can be conveyed into the circular box 29 through the provided water pumping blades 30, and then the coolant is conveyed into one of the copper plates 12 through the second conveying pipe 28, and then the coolant flows inside the three copper plates 12 through the first conveying pipe 13, which is convenient for improving the heat dissipation efficiency of the intelligent analysis all-in-one body 10.

[0058] Preferably, a plurality of socket cylinders 38 are arranged inside the copper water tank 11. A piston column 42 is slidably arranged inside the socket cylinder 38. A return spring 41 is arranged at the inner bottom of the socket cylinder 38. The top of the return spring 41 is connected to the bottom of the piston column 42. The top of the piston column 42 extends out of the socket cylinder 38 and an installation plate 43 is arranged. Three top columns 37 are arranged at the top of the installation plate 43. The top of the top columns 37 extends out of the copper water tank 11 and contacts the bottom of the intelligent analysis all-in-one body 10. The plurality of socket cylinders 38 are communicated with each other through a plurality of linkage pipes 39. One of the socket cylinders 38 is communicated with the circular box 29 through one of the linkage pipes 39. A pressure relief pipe 40 is arranged at the top of one of the socket cylinders 38. A check valve is arranged inside the pressure relief pipe 40.

[0059] Specifically, when the water-cooled liquid is input into the copper plate 12 through the circular box 29, a part of the water-cooled liquid is simultaneously conveyed into the socket cylinder 38 through the provided linkage pipe 39, and then the piston column 42 is driven to move upward by the water pressure. The top column 37 is driven to move upward by the piston column 42. The intelligent analysis all-in-one body 10 can be lifted upward by the plurality of top columns 37. After being lifted, the flow of gas is facilitated, the heat dissipation speed is accelerated, and rapid heat dissipation is convenient. The water-cooled liquid can be discharged outward through the provided pressure relief pipe 40 to prevent excessive pressure.

[0060] The above-disclosed are only the preferred embodiments of the present invention. Of course, the scope of the rights of the present invention cannot be limited by this. Therefore, equivalent changes made according to the claims of the present invention still fall within the scope covered by the present invention.

Claims

1. An anti-intrusion railway edge intelligent analysis integrated machine, comprising a lower shell (1) and an upper shell (2) arranged opposite to each other, and an intelligent analysis integrated machine body (10) arranged inside the lower shell (1), characterized in that: A fan box (7) is arranged at the bottom of the lower housing (1), a motor (9) is arranged at the bottom of the fan box (7), an output end of the motor (9) extends to the inside of the fan box (7) and is connected to a fourth synchronous shaft (32), a plurality of air delivery blades (33) are arranged on the fourth synchronous shaft (32), and the fan box (7) is in communication with the inside of the lower housing (1); The top of the upper shell (2) and the bottom of the fan box (7) are both provided with a plurality of strip-shaped ventilation openings, the top of the upper shell (2) is provided with a first filter screen (6), and the bottom of the fan box (7) is provided with a second filter screen (8); A copper water tank (11) is arranged at the inner bottom of the lower shell (1), ventilation grooves (14) are provided on both sides of the copper water tank (11), a coolant is provided inside the copper water tank (11), and the intelligent analysis all-in-one machine body (10) is arranged on the top of the copper water tank (11).

2. The anti-intrusion railway edge intelligent analysis integrated machine according to claim 1 is characterized by: A lower protective shell (5) is arranged on one side outer wall of the lower shell (1), and an upper protective shell (3) is arranged on one side outer wall of the upper shell (2); a first hinge rod (15) and a second hinge rod (16) are slidably arranged on both sides of the interior of the lower protective shell (5); the first hinge rod (15) and the second hinge rod (16) intersect each other and are hinged to each other at the intersection; the tops of the first hinge rod (15) and the second hinge rod (16) are both rotatably connected to the inner wall of the upper protective shell (3); A driving assembly is arranged at the bottom of the lower housing (1); the driving assembly is connected to the first hinge rod (15) and the fourth synchronization shaft (32) and is used to drive the bottom of the first hinge rod (15) to move.

3. The anti-intrusion railway edge intelligent analysis integrated machine according to claim 2 is characterized by: The driving assembly comprises an L-shaped housing (4) mounted at the bottom of the lower housing (1), a transmission mechanism rotatably mounted inside the L-shaped housing (4), and a gear (24) connected to the transmission mechanism, wherein the transmission mechanism is connected to the fourth synchronization shaft (32); The L-shaped housing (4) is connected to the interior of the lower housing (1); the gear (24) is arranged inside the L-shaped housing (4); a first rack (22) and a second rack (23) are slidably arranged at the inner bottom of the lower protective shell (5); the top of the second rack (23) is hinged to the bottom of the first hinge rod (15); the top of the first rack (22) is hinged to the bottom of the second hinge rod (16); the first rack (22) and the second rack (23) are arranged opposite to each other; the gear (24) is located between the first rack (22) and the second rack (23), and is meshedly connected with the first rack (22) and the second rack (23); The transmission mechanism is connected to the copper water tank (11).

4. The anti-intrusion railway edge intelligent analysis integrated machine according to claim 3 is characterized by: The transmission mechanism comprises a first synchronous shaft (17) and a second synchronous shaft (18) rotatably arranged at two ends inside the L-shaped housing (4), a first synchronous belt (20) tensioned on the first synchronous shaft (17) and the second synchronous shaft (18), a third synchronous shaft (19) fixedly mounted on the bottom of the second synchronous shaft (18), and a second synchronous belt (21) tensioned on one end of the third synchronous shaft (19) and the fourth synchronous shaft (32); The top of the first synchronization shaft (17) is fixedly connected to the bottom of the gear (24); The top of the second synchronous shaft (18) extends to the inside of the copper water tank (11).

5. The anti-intrusion railway edge intelligent analysis integrated machine according to claim 1 is characterized by: The three outer walls of the lower shell (1) are each provided with an installation cavity (25), a copper plate (12) is slidably arranged inside the installation cavity (25), a second delivery pipe (28) is arranged in communication with the bottom of the copper plate (12), and one end of the second delivery pipe (28) is in communication with the copper water tank (11).

6. The anti-intrusion railway edge intelligent analysis integrated machine according to claim 5, characterized in that: One end of the copper plate (12) enters the interior of the lower shell (1), and the other end of the copper plate (12) is provided with a wedge surface (27). An L-shaped rod (26) is arranged inside the installation cavity (25) to slide up and down, and the bottom of the L-shaped rod (26) is provided with an arc surface that matches the wedge surface (27) and contacts the bottom of the wedge surface (27), and the top of the L-shaped rod (26) is connected to the bottom of the upper shell (2).

7. The anti-intrusion railway edge intelligent analysis integrated machine according to claim 5 is characterized by: A circular box (29) is arranged at one end of the copper water tank (11), a water inlet (31) is opened at one end of the circular box (29), and the other end of the circular box (29) is connected to the second delivery pipe (28), and the three copper plates (12) are connected to each other through two first delivery pipes (13).

8. The anti-intrusion railway edge intelligent analysis integrated machine according to claim 4 is characterized by: The top of the second synchronous shaft (18) extends to the inside of the copper water tank (11), and a plurality of pumping blades (30) are arranged on the top of the second synchronous shaft (18).

9. The anti-intrusion railway edge intelligent analysis integrated machine according to claim 4, characterized in that: An electric telescopic rod (34) is fixedly mounted on the bottom of the L-shaped housing (4); a connecting column (35) is slidably connected inside the third synchronous shaft (19); a plurality of protrusions (36) are arranged on the outer wall of the connecting column (35); a groove matching the connecting column (35) is provided inside the second synchronous shaft (18); and an output end of the electric telescopic rod (34) is connected to the bottom of the protrusion (36).

10. The anti-intrusion railway edge intelligent analysis integrated machine according to claim 7, characterized in that: The copper water tank (11) is provided with a plurality of sleeves (38) inside, a piston column (42) is slidably provided inside the sleeve (38), a return spring (41) is provided at the inner bottom of the sleeve (38), the top of the return spring (41) is connected to the bottom of the piston column (42), the top of the piston column (42) extends out of the sleeve (38) and a mounting plate (43) is provided inside, and three top columns (33) are provided on the top of the mounting plate (43). 7), the top of the top column (37) extends out of the interior of the copper water tank (11) and contacts the bottom of the intelligent analysis all-in-one machine body (10), the multiple sleeve tubes (38) are interconnected through multiple linkage pipes (39), one of the sleeve tubes (38) is used to communicate with the circular box (29) through one of the linkage pipes (39), and a pressure relief pipe (40) is provided at the top of one of the sleeve tubes (38), and a one-way valve is provided inside the pressure relief pipe (40).