A power equipment pipeline inspection device
By designing detection, scraping, collection, and dust extraction components, the problem of incomplete cleaning of power equipment pipelines has been solved, achieving effective cleaning of dust and dirt and heat dissipation, thus extending the service life of the pipelines.
Patent Information
- Application Number
- CN202510697784.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-28
- Publication Date
- 2025-10-31
- Estimated Expiration
- 2045-05-28
AI Technical Summary
Existing power equipment pipeline inspection devices lack collection devices when cleaning mud and dust, resulting in incomplete cleaning, affecting pipeline heat dissipation efficiency, and shortening service life.
An electrical equipment pipeline inspection device was designed, comprising a detection component, a scraping component, a collection component, a dust suction component, and a cleaning component. Damage is observed through a camera and a light source, the inner wall is cleaned by a scraper and a brush, the spiral blades collect dirt and dust, the dust suction pipe removes dust, and the dustproof screen is cleaned by an automatic adjustment component to ensure heat dissipation.
It achieves thorough cleaning of dust and dirt inside the pipes, preventing a decrease in heat dissipation efficiency, extending the stability and service life of the pipes, and automatically cleaning the dustproof screen to prevent blockage, thus improving practicality.
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Figure CN120522197B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of pipeline inspection technology, and in particular to a pipeline inspection device for power equipment. Background Technology
[0002] A support device for a pipeline inspection probe in power equipment, application number CN202120233925.6, includes a frame. A first fixing block is fixedly mounted on the upper surface of the frame, and a camera is detachably mounted inside the first fixing block. A groove is formed inside the frame, and a third fixing block is fixedly mounted on the upper surface of one end of the groove. A wire hole is formed in the third fixing block. Rollers are installed on the bottom surface of the frame, and the camera with light function is fixedly mounted on the upper surface to effectively and quickly inspect pipelines. The output end of the servo motor can drive the chuck and the conical probe to rotate through the external power supply. At the same time, the chuck drives the scraper to rotate, which can inspect and clean the soil inside the pipeline, saving a lot of time. Rollers are installed on the bottom surface of the frame, and the camera with light function is fixedly mounted on the upper surface to effectively and quickly inspect pipelines.
[0003] While the aforementioned technologies can effectively and quickly inspect pipelines, they only scrape away the dirt from the inner wall of the pipeline and lack a dirt collection device. This results in incomplete cleaning, making manual cleaning inconvenient. The dirt and dust remaining inside the pipeline reduces its heat dissipation efficiency, leading to internal overheating, which in turn shortens its service life and reduces its practicality and stability. Summary of the Invention
[0004] In view of the shortcomings of the existing technology, the present invention provides a power equipment pipeline inspection device.
[0005] An embodiment of the present invention provides a power equipment pipeline inspection device, comprising:
[0006] The mounting cylinder is equipped with a detection component and a collection component at its bottom. Multiple cylinders are fixedly mounted on both sides of the mounting cylinder, and drive wheels are mounted on the outer ends of the multiple cylinders.
[0007] The scraping assembly includes a motor, a reducer, a shaft, a scraper, and a first brush. The motor and reducer are both fixedly installed inside the mounting cylinder. A round rod is fixedly installed at the output end of the motor. The round rod is fixedly installed at the high-speed end of the reducer. The shaft is fixedly installed at the low-speed end of the reducer. The shaft passes through the bottom of the mounting cylinder and is rotatably mounted. A horizontal plate is fixedly installed at the outer end of the shaft. The scraper and the first brush are respectively fixedly installed at both ends of the horizontal plate.
[0008] Furthermore, the detection component includes a camera and a power supply. The camera is fixedly mounted on the top of the mounting cylinder, and a light is installed on the camera. A mounting box is fixedly provided on one side of the mounting cylinder, and the mounting cylinder passes through the mounting box. The power supply is installed at the bottom inside the mounting box, and heat dissipation holes are provided through the outside of the mounting box.
[0009] Furthermore, the collection assembly includes a collection box, a rotating rod, a spiral blade, and a guide block. The collection box is fixedly installed at the bottom of the mounting cylinder, and an mounting plate is fixedly installed on the inner top of the collection box. One end of the rotating rod is rotatably mounted on the mounting plate, and the other end of the rotating rod is provided with a transmission assembly. The rotating rod is fixedly installed through the spiral blade, and a guide hole is provided through the guide block. The spiral blade is slidably mounted against the inner wall of the guide hole.
[0010] Furthermore, the transmission assembly includes a large gear and a small gear. An L-shaped plate is fixedly provided on one side of the mounting cylinder. The shaft and the rotating rod are both rotatably disposed through the L-shaped plate. The large gear is fixedly sleeved on the shaft, and the small gear is fixedly sleeved on the rotating rod. The large gear and the small gear are meshed and connected.
[0011] Furthermore, it also includes a dust collection assembly, which includes a fan blade, a dust filter, and a dust collection tube. The fan blade is fixedly sleeved on a round rod, the dust filter is fixedly installed inside the mounting cylinder, the dust collection tube is fixedly installed through the top of the mounting cylinder, and a through hole is provided through the bottom of the mounting cylinder, the through hole being provided through the top of the collection box.
[0012] Furthermore, it also includes a cleaning component, which includes a sleeve, a second brush, and a movable plate. The sleeve is slidably fitted onto a shaft, and a sliding hole is provided through the shaft. A limit post is fixedly installed inside the sleeve and is slidably installed through the sliding hole. The sleeve is fixedly installed through the second brush and is rotatably installed through the movable plate. An automatic adjustment component is provided on the movable plate.
[0013] Furthermore, the automatic adjustment assembly includes piston cylinder one, piston one, connecting pipe, piston cylinder two, and piston two. Piston cylinder one is fixedly installed at the bottom of the mounting box, piston one is slidably installed inside piston cylinder one, and expansion fluid is filled between one side of piston one and piston cylinder one. Piston cylinder two is fixedly installed at the top of the mounting box, piston two is slidably installed inside piston cylinder two. The two ends of the connecting pipe are fixedly installed through one side of piston cylinder one and piston cylinder two, respectively. A connecting post is fixedly installed on one side of piston two, and the other end of the connecting post is fixedly installed on the moving plate.
[0014] Furthermore, the bottom of the collection box is arc-shaped, the guide block is fixedly installed on the inner wall of the collection box, and a box door is installed at the bottom of the collection box.
[0015] Compared with the prior art, the present invention has the following beneficial effects:
[0016] 1. It is equipped with a detection component and a scraping component, a camera and a light, which can be used to observe the damage inside the pipe. The motor can drive the shaft to rotate at low speed through the round rod and the reducer. The shaft can drive the scraper and the first brush to rotate through the cross plate, thereby scraping and cleaning the dirt and dust adhering to the inner wall of the pipe.
[0017] 2. A collection component and a transmission component are set up. The outer end of the collection box can scoop up the mud and dust at the bottom of the pipe. At this time, the shaft can drive the rotating rod and the spiral blade to rotate through the large gear and the small gear. The spiral blade can transport the mud and dust at the front of the collection box into the collection box through the guide block, thereby realizing the collection of mud and dust.
[0018] 3. A dust collection component is installed. The motor drives the fan blades to rotate at high speed via a round rod. The high-speed rotating fan blades suck air and dust from the pipe into the mounting cylinder through the dust collection pipe. At the same time, the air in the mounting cylinder and mounting box can be dissipated through the heat dissipation holes to achieve a cooling effect on the power supply. The dust filter can block the dust in the air and allow the dust to fall into the collection box through the through holes, thereby cleaning the dust in the pipe.
[0019] 4. A cleaning component is provided. The shaft can drive the sleeve and the second brush to rotate through the limit post. The second brush can brush the dust screen to sweep off the dust stuck to the dust screen, ensuring the effectiveness of heat dissipation and dust collection.
[0020] 5. An automatic adjustment component is installed. When the dust filter is clogged, it reduces airflow, thereby decreasing the power supply's heat dissipation and raising its temperature. This, in turn, raises the temperature of the expansion fluid inside piston cylinder one, causing it to expand and push piston cylinder one towards the connecting pipe. This forces air into piston cylinder two, pushing piston cylinder two outward. The connecting column then moves a moving plate, which, through a sleeve, moves the second brush towards the dust filter to clean it. Conversely, when the dust filter is clean and unclogging, the power supply's excellent heat dissipation lowers its temperature, reducing the temperature of the expansion fluid and causing it to contract. This causes piston cylinders one and two to move in the opposite direction and reset, leading to the second brush moving in the opposite direction and separating from the dust filter. This reduces wear on the second brush and dust filter, extending their lifespan and increasing practicality.
[0021] In summary, this invention can clean and collect dust and dirt inside pipes while detecting them, ensuring effective cleaning, avoiding impact on pipe heat dissipation efficiency, improving pipe stability, and automatically cleaning dust filters to prevent clogging and maintain dust collection efficiency. It also ensures power supply heat dissipation, has a long service life, and increases practicality. Attached Figure Description
[0022] Figure 1 This is a perspective view of a power equipment pipeline inspection device according to an embodiment of the present invention.
[0023] Figure 2 This is a cross-sectional view of a power equipment pipeline inspection device according to an embodiment of the present invention.
[0024] Figure 3 This is a perspective view of the scraping component in a power equipment pipeline inspection device according to an embodiment of the present invention.
[0025] Figure 4 This is a perspective view of the collection component in a power equipment pipeline inspection device according to an embodiment of the present invention.
[0026] Figure 5 This is a perspective view of the cleaning component in a power equipment pipeline inspection device according to an embodiment of the present invention.
[0027] Figure 6 This is a cross-sectional view of the automatic adjustment component in a power equipment pipeline inspection device according to an embodiment of the present invention.
[0028] In the above attached diagram: 1. Mounting cylinder, 11. Cylinder, 12. Drive wheel, 13. Camera, 14. Lighting lamp, 15. Mounting box, 16. Power supply, 17. Heat dissipation hole, 2. Scraping assembly, 21. Motor, 22. Round rod, 23. Reducer, 24. Shaft, 25. Horizontal plate, 26. Scraper, 27. First brush, 3. Dust collection assembly, 31. Fan blade, 32. Dustproof net, 33. Dust collection pipe, 34. Through hole, 4. Collection assembly, 41. Collection box, 42. Box door, 43. Mounting plate, 44. Rotating rod, 45. Spiral blade, 46. Guide block, 5. Transmission assembly, 51. L-shaped plate, 52. Large gear, 53. Small gear, 6. Cleaning assembly, 61. Sleeve, 62. Second brush, 63. Sliding hole, 64. Moving plate, 7. Automatic adjustment assembly, 71. Piston cylinder one, 72. Piston one, 73. Connecting pipe, 74. Piston cylinder two, 75. Piston two, 76. Connecting column. Detailed Implementation
[0029] The technical solutions of the present invention will be further described below with reference to the accompanying drawings and embodiments.
[0030] like Figures 1-6 As shown in the figure, an embodiment of the present invention provides a power equipment pipeline inspection device, comprising:
[0031] The mounting cylinder 1 has multiple cylinders 11 fixedly installed on both sides. Each cylinder 11 has a drive wheel 12 installed on its outer end. The cylinders 11 can drive the corresponding drive wheel 12 to move and abut against the inner wall of the pipe. The drive wheel 12 is equipped with a drive motor to drive the drive wheel 12 to rotate, thereby driving the device to move inside the pipe.
[0032] The installation cylinder 1 is equipped with a detection component, which includes a camera 13 and a power supply 16. The camera 13 is fixedly installed on the top of the installation cylinder 1. The camera 13 is existing technology and is used by workers to observe the damage inside the pipe. The camera 13 is equipped with a light 14, which is used to illuminate the inside of the pipe for clearer observation. An installation box 15 is fixedly installed on one side of the installation cylinder 1, and the installation cylinder 1 passes through the installation box 15. The power supply 16 is installed at the bottom of the installation box 15. The power supply 16 is electrically connected to the motor 21, the camera 13, the light 14, and multiple drive wheels 12. The power supply 16 is used to supply power to them. A heat dissipation hole 17 is provided through the outside of the installation box 15 for heat dissipation of the power supply 16.
[0033] A collection assembly 4 is installed at the bottom of the installation cylinder 1. The collection assembly 4 includes a collection box 41, a rotating rod 44, a spiral blade 45, and a guide block 46. The collection box 41 is fixedly installed at the bottom of the installation cylinder 1. The bottom of the collection box 41 is arc-shaped, so that the bottom of the collection box 41 is in contact with the inner wall of the pipe, thereby scooping up and collecting the soil at the bottom of the pipe. A door 42 is installed at the bottom of the collection box 41. The door 42 can be installed magnetically, so that the soil and dust inside the collection box 41 can be cleaned by opening the door 42. When the door 42 is closed, its outer surface is in contact with the collection box. The bottom of the collection box 41 is flush with the bottom so as not to affect the collection operation. The inner top of the collection box 41 is fixedly installed with a mounting plate 43. One end of the rotating rod 44 is rotatably mounted on the mounting plate 43. The rotating rod 44 passes through the spiral blade 45 and is fixedly installed. The spiral blade 45 can prevent soil and dust from accumulating at the front end of the collection box 41 and causing blockage. The guide block 46 is fixedly installed with the inner wall of the collection box 41. The guide block 46 is provided with a guide hole. The outer port of the guide hole is set in a bucket shape, which can guide the soil and move it into the guide hole. The spiral blade 45 slides against the inner wall of the guide hole.
[0034] The outer end of the collection box 41 can scoop up the mud and dust at the bottom of the pipe. Under the guidance of the guide block 46, the mud and dust move into the guide hole. At this time, the rotating rod 44 drives the spiral blade 45 to rotate, which transports the mud and dust in the guide hole into the collection box 41, thereby realizing the collection of mud and dust.
[0035] Scraping assembly 2 includes a motor 21, a reducer 23, a shaft 24, a scraper 26, and a first brush 27. The motor 21 and reducer 23 are both fixedly installed inside the mounting cylinder 1. A round rod 22 is fixedly installed at the output end of the motor 21, and the round rod 22 is fixedly installed at the high-speed end of the reducer 23. The shaft 24 is fixedly installed at the low-speed end of the reducer 23. The reducer 23 is existing technology; it reduces the output speed of the motor 21, thereby achieving a speed reduction effect. The shaft 26... 4. The bottom of the installation cylinder 1 is rotated through it. A horizontal plate 25 is fixedly installed at the outer end of the shaft 24. The scraper 26 and the first brush 27 are respectively fixed at both ends of the horizontal plate 25. The scraper 26 and the first brush 27 are fixed to the horizontal plate 25 by bolts. When the scraper 26 and the first brush 27 are worn out after long-term use, the bolts can be unscrewed and replaced. The scraper 26 and the first brush 27 are symmetrically arranged so that the scraper 26 and the first brush 27 are both set against the inner wall of the pipe.
[0036] The motor 21 can drive the high-speed end of the reducer 23 to rotate at high speed through the round rod 22. The reducer 23 can drive the shaft 24 to rotate at low speed. The shaft 24 can drive the scraper 26 and the first brush 27 to rotate through the cross plate 25. The rotating scraper 26 can scrape off the dirt stuck to the inner wall of the pipe, and the rotating first brush 27 can sweep off the dust on the inner wall of the pipe.
[0037] A transmission assembly 5 is provided between the rotating rod 44 and the shaft 24. The transmission assembly 5 includes a large gear 52 and a small gear 53. An L-shaped plate 51 is fixedly provided on one side of the mounting cylinder 1. The shaft 24 and the rotating rod 44 are both rotatably arranged through the L-shaped plate 51. The large gear 52 is fixedly sleeved on the shaft 24, and the small gear 53 is fixedly sleeved on the rotating rod 44. The large gear 52 and the small gear 53 are meshed and connected, so that the shaft 24 can drive the large gear 52 to rotate, the large gear 52 can drive the small gear 53 to rotate, and the small gear 53 can drive the rotating rod 44 to rotate. The diameter of the large gear 52 is larger than the diameter of the small gear 53, so that the rotation speed of the small gear 53 is faster than that of the large gear 52.
[0038] It also includes a dust collection component 3, which includes a fan blade 31, a dust filter 32, and a dust collection pipe 33. The fan blade 31 is fixedly sleeved on the round rod 22, the dust filter 32 is fixedly installed inside the mounting cylinder 1, the dust collection pipe 33 is fixedly installed through the top of the mounting cylinder 1, and a through hole 34 is provided through the bottom of the mounting cylinder 1, which is provided through the top of the collection box 41.
[0039] The motor 21 can drive the fan blade 31 to rotate at high speed through the round rod 22. The fan blade 31 can blow the air in the mounting cylinder 1 out through the heat dissipation hole 17, creating a negative pressure in the mounting cylinder 1. This causes the air in the pipe to be sucked in through the dust suction pipe 33, thereby sucking the dust in the air into the mounting cylinder 1. At this time, the dustproof net 32 can block the dust in the air, allowing the dust to fall into the collection box 41 through the through hole 34.
[0040] It also includes a cleaning component 6, which includes a sleeve 61, a second brush 62, and a movable plate 64. The sleeve 61 is slidably sleeved on the shaft 24, and a sliding hole 63 is provided through the shaft 24. A limit post is fixedly provided inside the sleeve 61 and is slidably provided through the sliding hole 63, so that the sleeve 61 can slide back and forth within the length range of the sliding hole 63. The limit post plays a limiting role for the sleeve 61, so that the shaft 24 can drive the sleeve 61 to rotate through the limit post. The sleeve 61 is fixedly provided through the second brush 62 and is rotatably provided through the movable plate 64. An automatic adjustment component 7 is provided on the movable plate 64.
[0041] The automatic adjustment assembly 7 includes piston cylinder 71, piston 72, connecting pipe 73, piston cylinder 74, and piston 75. Piston cylinder 71 is fixedly installed at the bottom of the mounting box 15. Piston 72 is slidably installed inside piston cylinder 71. An expansion fluid is filled between one side of piston 72 and piston cylinder 71. The expansion fluid is located on the other side of piston 72 opposite to the connecting pipe 73. The expansion fluid is dichloromethane (boiling point 39.75°C), which expands when heated and contracts when cooled. Piston cylinder 74 is fixedly installed at the top of the mounting box 1. Piston 75 is slidably installed inside piston cylinder 74. The two ends of the connecting pipe 73 are as follows: Figure 6 As shown, it is fixedly installed through one side of piston cylinder 1 71 and piston cylinder 2 74 respectively. A connecting post 76 is fixedly installed on one side of piston 2 75, and the other end of the connecting post 76 is fixedly installed on the movable plate 64.
[0042] The fan blades 31 can also dissipate heat from the power supply 16, preventing high temperatures from affecting its operation and improving stability. When the dust filter 32 is clogged with dust after prolonged use, it will reduce airflow and thus reduce the heat dissipation effect of the power supply 16. At this time, the temperature of the expansion fluid in the piston cylinder 1 71 will rise, causing the expansion fluid to expand and push the piston 1 72 to move. This will compress and deliver air into the piston cylinder 2 74 and push the piston 2 75 to move. This will drive the moving plate 64, sleeve 61, and second brush 62 to move towards the dust filter 32 and abut against it, thereby brushing the dust filter 32 and sweeping off the dust stuck to it, preventing clogging and ensuring the effectiveness of heat dissipation and dust collection.
[0043] The detailed working process of this invention is as follows:
[0044] 1. In use, multiple cylinders 11 first drive the corresponding drive wheels 12 to move and abut against the inner wall of the pipe. Then, start the motor 21, which will drive the device to move towards the inner wall of the pipe through the drive wheels 12. The motor 21 can drive the high-speed end of the reducer 23 to rotate at high speed through the round rod 22. The reducer 23 can drive the shaft 24 to rotate at low speed. The shaft 24 can drive the scraper 26 and the first brush 27 to rotate through the cross plate 25. The rotating scraper 26 can scrape off the dirt stuck to the inner wall of the pipe, and the rotating first brush 27 can sweep off the dust on the inner wall of the pipe, thereby cleaning the inner wall of the pipe.
[0045] 2. At the same time, the outer end of the collection box 41 can scoop up the mud and dust at the bottom of the pipe. Under the guidance of the guide block 46, the mud and dust will move into the guide hole. At this time, the shaft 24 drives the rotating rod 44 to rotate through the large gear 52 and the small gear 53. The rotating rod 44 can drive the spiral blade 45 to rotate, transporting the mud and dust in the guide hole into the collection box 41, thereby realizing the collection of mud and dust.
[0046] 3. At the same time, the motor 21 can drive the fan blade 31 to rotate at high speed through the round rod 22. The fan blade 31 can blow the air in the mounting cylinder 1 out through the heat dissipation hole 17, creating a negative pressure in the mounting cylinder 1. This allows the air and dust in the pipe to be sucked into the mounting cylinder 1 through the dust suction pipe 33. At this time, the dustproof net 32 can block the dust in the air, allowing the dust to fall into the collection box 41 through the through hole 34, thereby cleaning the dust in the pipe.
[0047] 4. The high-speed rotating fan blades 31 absorb dust and can also dissipate the air inside the mounting box 15 through the heat dissipation holes 17, thereby achieving the heat dissipation effect on the power supply 16. When the dust filter 32 is blocked by dust after long-term use, it will reduce the air flow and thus reduce the heat dissipation effect of the power supply 16.
[0048] 5. When the temperature of the power supply 16 rises, the temperature of the expansion fluid in piston cylinder 1 71 will also rise, causing the expansion fluid to expand and push piston 1 72 towards the connecting pipe 73. This compresses and delivers air into piston cylinder 2 74, thereby pushing piston 2 75 to move outward. This, in turn, drives the moving plate 64 to move via the connecting column 76. The moving plate 64, through the sleeve 61, drives the second brush 62 to move towards and abut against the dustproof net 32. At the same time, the shaft 24 can drive the sleeve 61 and the second brush 62 to rotate via the limiting column, thereby brushing the dustproof net 32 and sweeping off the dust adhering to the dustproof net 32, ensuring the effectiveness of heat dissipation and dust collection.
[0049] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and are not intended to limit it. Although the present invention has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solutions of the present invention without departing from the spirit and scope of the technical solutions of the present invention, and all such modifications or substitutions should be covered within the scope of the claims of the present invention.
Claims
1. A power equipment pipeline inspection device, characterized in that, include: The mounting cylinder (1) is provided with a detection component, and the bottom of the mounting cylinder (1) is provided with a collection component (4). Multiple cylinders (11) are fixedly provided on both sides of the mounting cylinder (1), and drive wheels (12) are installed on the outer ends of the multiple cylinders (11). The scraping assembly (2) includes a motor (21), a reducer (23), a shaft (24), a scraper (26), and a first brush (27). The motor (21) and the reducer (23) are both fixedly installed inside the mounting cylinder (1). A round rod (22) is fixedly provided at the output end of the motor (21). The round rod (22) is fixedly provided at the high-speed end of the reducer (23). The shaft (24) is fixedly provided at the low-speed end of the reducer (23). The shaft (24) is rotatably provided through the bottom of the mounting cylinder (1). A horizontal plate (25) is fixedly provided at the outer end of the shaft (24). The scraper (26) and the first brush (27) are respectively fixedly provided at both ends of the horizontal plate (25). The collection assembly (4) includes a collection box (41), a rotating rod (44), a spiral blade (45), and a guide block (46). The collection box (41) is fixedly installed at the bottom of the mounting cylinder (1). An mounting plate (43) is fixedly installed on the inner top of the collection box (41). One end of the rotating rod (44) is rotatably installed on the mounting plate (43). The other end of the rotating rod (44) is provided with a transmission assembly (5). The rotating rod (44) is fixedly installed through the spiral blade (45). A guide hole is provided through the guide block (46). The spiral blade (45) slides against the inner wall of the guide hole. It also includes a cleaning component (6), which includes a sleeve (61), a second brush (62), and a moving plate (64). The sleeve (61) is slidably fitted onto a shaft (24), and a sliding hole (63) is provided through the shaft (24). A limit post is fixedly installed inside the sleeve (61), and the limit post slides through the sliding hole (63). The sleeve (61) is fixedly installed through the second brush (62), and the sleeve (61) is rotatably installed through the moving plate (64). An automatic adjustment component (7) is provided on the moving plate (64). The automatic adjustment component (7) includes a piston cylinder one (71), a piston one (72), a connecting pipe (73), and a piston cylinder two (72). 74) and piston two (75), piston cylinder one (71) is fixedly installed at the bottom of the mounting box (15), piston one (72) is slidably installed in piston cylinder one (71), one side of piston one (72) and piston cylinder one (71) are filled with expansion fluid, piston cylinder two (74) is fixedly installed at the top of the mounting cylinder (1), piston two (75) is slidably installed in piston cylinder two (74), the two ends of the connecting pipe (73) are respectively fixedly installed through one side of piston cylinder one (71) and piston cylinder two (74), one side of piston two (75) is fixedly installed with a connecting column (76), and the other end of the connecting column (76) is fixedly installed on the moving plate (64).
2. The power equipment pipeline inspection device according to claim 1, characterized in that, in: The detection component includes a camera (13) and a power supply (16). The camera (13) is fixedly installed on the top of the mounting cylinder (1). A lighting lamp (14) is installed on the camera (13). A mounting box (15) is fixedly provided on one side of the mounting cylinder (1). The mounting cylinder (1) is provided through the mounting box (15). The power supply (16) is installed at the bottom inside the mounting box (15). A heat dissipation hole (17) is provided through the outside of the mounting box (15).
3. The power equipment pipeline inspection device according to claim 2, characterized in that, in: The transmission assembly (5) includes a large gear (52) and a small gear (53). An L-shaped plate (51) is fixedly installed on one side of the mounting cylinder (1). The shaft (24) and the rotating rod (44) are both rotatably installed through the L-shaped plate (51). The large gear (52) is fixedly sleeved on the shaft (24), and the small gear (53) is fixedly sleeved on the rotating rod (44). The large gear (52) and the small gear (53) are meshed together.
4. The power equipment pipeline inspection device according to claim 3, characterized in that, in: It also includes a dust collection assembly (3), which includes a fan blade (31), a dustproof net (32) and a dust collection pipe (33). The fan blade (31) is fixedly sleeved on the round rod (22), the dustproof net (32) is fixedly installed inside the mounting cylinder (1), the dust collection pipe (33) is fixedly installed through the top of the mounting cylinder (1), and a through hole (34) is provided through the bottom of the mounting cylinder (1). The through hole (34) is provided through the top of the collection box (41).
5. A power equipment pipeline inspection device according to claim 1, characterized in that, in: The bottom of the collection box (41) is arc-shaped, the guide block (46) is fixedly installed on the inner wall of the collection box (41), and the bottom of the collection box (41) is fitted with a box door (42).
Citation Information
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