Electric automatic pipeline guiding equipment
By designing pipeline guidance equipment for beam wires and tightening devices, the problem of line dismantling and maintenance in the prior art is solved, efficient maintenance and line protection are achieved, and service life is extended.
Patent Information
- Application Number
- CN202510598113.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-09
- Publication Date
- 2025-08-08
AI Technical Summary
The existing electrical automation pipeline guide devices need to expose the lines to be disassembled during maintenance, resulting in wasted working time and line damage. The line wrapping and friction with the inner wall of the pipeline lead to low maintenance efficiency and reduced service life.
A pipeline guide device including a wiring device and a tightening device is designed. Through the coordination of the flip door and the adjustment disc, the wiring is classified and automatic restraint is realized, so that the pipeline can be removed and maintenance can be carried out. The tightening device prevents the wiring from rubbing with the inner wall of the pipeline.
It realizes maintenance without dismantling the pipeline, improves maintenance efficiency, reduces line wear, extends service life, and simplifies line installation and classification operations.
Smart Images

Figure CN120453947A_ABST
Abstract
Description
Technical Field
[0001] The invention belongs to the field of electrical automation equipment, in particular to an electrical automation pipeline guide device. Background Art
[0002] Electrical Engineering and Automation is an emerging discipline in the electrical information field. However, due to its close relevance to daily life and industrial production, it has developed rapidly and is now relatively mature. It has become a vital component of the high-tech industry, widely used in industry, agriculture, national defense, and other fields, and plays an increasingly important role in the national economy.
[0003] A patent application with publication number CN111834964A discloses an electrical automation pipeline guide device, including an installation structure, a support structure, an adjustment structure, a storage structure and a limiting structure; the installation structure is easy to install and disassemble, which makes it convenient for maintenance workers to inspect and repair the wires inside the pipeline, and the operation is simple, convenient and fast; the support structure makes it easy to open the installation structure, which makes it convenient for maintenance workers to inspect the lines, greatly improving the maintenance efficiency of maintenance workers; the adjustment structure makes it easy to adjust the height of the line inside the pipeline, effectively preventing the line from being damaged due to friction with the pipeline, greatly improving the service life of the electrical automation line; the storage structure makes it easy to store the wires, prevent the wires from being entangled and affecting the maintenance efficiency, and effectively manages different lines, with high maintenance efficiency; the limiting structure effectively limits the electrical automation wires, prevents the wires from slipping and affecting the circuit operation, classifies the circuits, and has a good processing effect.
[0004] The above solution still has some problems in actual application. Although this electrical automation pipeline guide device solves the problem of messy electrical automation lines in the pipeline, subsequent maintenance still requires exposing the internal lines to the outside for maintenance, which forces the device to be disassembled. Only after the lines are exposed during disassembly can maintenance operations be carried out. This distributed operation not only wastes working time, but the subsequent secondary installation is also likely to cause damage to the lines.
[0005] To this end, the present invention provides an electrically automated pipeline guiding device. Summary of the Invention
[0006] In order to make up for the deficiencies of the prior art, at least one technical problem raised in the background technology is solved.
[0007] The technical solution adopted by the present invention to solve the technical problem is as follows: the electrical automation pipeline guiding device of the present invention includes a regulating pipeline, the interior of the regulating pipeline is used to pass the electrical automation line, the interior of the regulating pipeline is provided with a wire bundle device, and one side of the regulating pipeline is provided with a flip door; Wherein, the wiring device includes: A fixed disc, the fixed disc being fixedly connected to the inner wall of the regulating pipe; A plurality of wire harness frames slide inside the fixed disc, with one end of each of the wire harness frames contacting each other; a first sliding bar fixedly connected to one side of the cable harness frame; An adjusting disc, the adjusting disc being rotatably connected to the surface of the fixed disc; A first sliding groove is provided on the surface of the adjusting disc, and the first sliding groove is in an ascending shape, and a small slot is provided inside thereof for limiting the position of the first sliding bar, and the first sliding bar slides on the inner wall of the first sliding groove; The flip door is rotatably connected to the inside of the regulating pipe and fits closely with the regulating pipe.
[0008] Specifically, since the electrical automation lines are installed in the pipeline, they are prone to entanglement, resulting in low maintenance efficiency. At the same time, the messy internal lines are prone to friction with the inner wall of the pipeline, resulting in serious wear of the lines, which greatly reduces the service life. At this time, the adjusting disc is rotated to make the first sliding bar move in the first sliding groove opened on the surface of the adjusting disc. Since the harness frame can only move horizontally on the surface of the fixed disc, and since the first sliding groove is in an ascending shape, when the adjusting disc is rotated, the first sliding bar will drive the harness frame to spread around. At this time, there is space between each harness frame inside to place the line, and different lines can also be classified. After the placement is completed, the adjusting disc is rotated in the opposite direction to tighten the harness frames around to form a ring, thereby completing the binding of the classified lines. At the same time, the small card slot inside the first sliding groove can also limit and fix the first sliding bar so that the line will not fall off. During subsequent maintenance, only the flip door needs to be turned to repair the line without disassembling the pipeline.
[0009] Preferably, the fixed disc is fixedly connected to the inner wall of the regulating pipe.
[0010] A plurality of wire harness frames slide inside the fixed disc, with one end of each of the wire harness frames contacting each other; a first sliding bar fixedly connected to one side of the cable harness frame; An adjusting disc, the adjusting disc being rotatably connected to the surface of the fixed disc; A first sliding groove is provided on the surface of the adjusting disc, and the first sliding groove is in an ascending shape, and a small slot is provided inside thereof for limiting the position of the first sliding bar, and the first sliding bar slides on the inner wall of the first sliding groove; An adjusting disc, one side of which is fixedly connected to an auxiliary shaft, and a surface of the auxiliary shaft is provided with spiral patterns; An auxiliary shaft, a traction rope fixedly connected to the arc surface of the auxiliary shaft, the traction rope being fixedly connected to the flip door and connected to the upper side of the flip door; A tightening device, which is arranged inside the regulating pipe and is kept at the same horizontal line as the cable bundle device; The tightening device includes: A fixed frame, which is fixed to the inner wall of the regulating pipe and has a circular groove inside for passing the electrical automation line; A chute is provided on one side of the fixed frame, and there are several chute, and several small slots are provided on the inner wall; A tightening strip, which is slidably connected to the inner wall of the chute and rubs against the small groove on the inner wall of the chute; a second sliding bar, the second sliding bar being fixedly connected to one side of the tightening bar; a rotating frame, the rotating frame rotating on the surface of the fixed frame; The second sliding groove is provided on the surface of the rotating frame and is in an ascending shape. The second sliding bar slides on the inner wall of the second sliding groove.
[0011] Specifically, since the electrical automation lines are installed in the pipeline, they are prone to entanglement, resulting in low maintenance efficiency. At the same time, the messy internal lines are prone to friction with the inner wall of the pipeline, causing serious wear of the lines, which greatly reduces the service life. At this time, first open the flip door to rotate the flip door. At the same time, during the opening process of the flip door, the auxiliary shaft will be driven to rotate through the traction rope. When the auxiliary shaft rotates, it will also drive the adjusting disc to flip, so that the first sliding bar moves in the first sliding groove opened on the surface of the adjusting disc. Since the wire harness frame can only move horizontally on the surface of the fixed disc, and since the first sliding groove is in an ascending shape, when the adjusting disc rotates, the first sliding bar will drive the wire harness frame to spread around. At this time, there is a space between each wire harness frame inside where the lines can be placed. The space can also be used to classify different lines. After the placement is completed, the lines are uniformly placed in the circular groove inside the fixed frame, and the rotating frame is rotated. At this time, the second sliding bar slides on the inner wall of the second sliding groove, so that the second sliding bar drives the tightening bar to squeeze into the circular groove inside the fixed frame, tightening the line placed in the circular groove inside the fixed frame, and the tightening bar will also be stuck in the small groove on the inner wall of the slide to fix it. After completing the above operations, turn the flip door to close the flip door, the auxiliary shaft will also retract the traction rope and drive the adjusting disc to reverse, so that the cable bundle frame can be automatically tightened and fixed, and the lines can be classified. This tightening device can not only fix the line as a whole for a second time, but also avoid friction between the line and the inner wall of the pipeline, reducing the service life.
[0012] Preferably, a fixed rack is fixedly connected to one end of the arc surface of the rotating frame near the flip door, the fixed rack meshing with the movable rack, a connecting arm is fixedly connected to one end of the flip door near the fixed rack, the connecting arm is rotatably connected to a slider, a slide rail is provided on one side of the movable rack, and the slider slides on the inner wall of the slide rail. When the flip door is opened and flipped, the flip door will drive the connecting arm to move, and the connecting arm will also drive the slider to slide on the inner wall of the slide rail. When the slider slides to the top, it will abut against the movable rack, causing the movable rack to flip. At the same time, because the fixed rack meshes with the movable rack, the fixed rack will also rotate the rotating frame as a whole, causing the tightening bar to retract and stop restraining the internal wiring. When the flip door is fully opened, the tightening bar is fully retracted, making it convenient to organize and repair the wiring. After the repair is completed, the flip door only needs to be closed, and the tightening bar can be automatically extended to tighten and fix the wiring again.
[0013] Preferably, a coil spring is provided inside the auxiliary shaft, and the coil spring is fixedly connected to the adjustment disc. The coil spring inside the auxiliary shaft allows the traction rope to be quickly and accurately retracted when the flip door is closed, thereby preventing the traction rope from becoming entangled with the internal wiring due to failure to retract or retraction being too slow, resulting in the flip door being unable to open again.
[0014] Preferably, the harness and tightening device are both located inside the regulating pipe, and are on the same horizontal line. When the harness is used to classify the lines, since the harness frames are in a spread-out state and each type of line is enclosed in a different harness frame, if there are too many adjacent lines that have been bundled, they are likely to be squeezed inside the pipe, causing friction with the inner wall of the regulating pipe. In this case, since the tightening device is provided at the same horizontal direction as the harness, the fixing frame therein can perform a secondary fixation on the already bundled lines, which can not only ensure the classification of the lines, but also avoid friction between the lines and the inner wall of the pipe, thereby reducing the service life.
[0015] Preferably, sealing strips are provided on both sides and the upper end of the flip door, and the sealing strips abut against the regulating duct. The sealing strips on both sides and the upper end of the flip door ensure that the flip door fits snugly against the regulating duct when closed, leaving no gaps. This prevents small animals from accidentally entering the regulating duct and damaging the wiring, while also ensuring a dry environment inside the regulating duct.
[0016] Preferably, the flip door is provided with a sliding wall inside, a rotating gear is rotatably connected to the inside of the sliding wall, a movable card is slidably connected to the inside of the sliding wall, a clip is fixedly connected to one end of the movable card close to the rotating gear, the rotating gear extends to the outside of the flip door, the rotating gear engages with the clip below the movable card, the movable card slides inside the sliding wall, and the upper and lower ends of the rotating gear are provided with movable cards. When fixing the flip door, relying solely on the friction between the sealing strip and the regulating pipe can easily cause the flip door to flip inward when encountering greater pressure, resulting in the interior of the regulating pipe being exposed to the outside. In this case, by providing the movable card inside the flip door, the rotating gear can be flipped when the flip door is closed, so that the two movable cards can be moved to the left and right sides and inserted into the grooves provided inside the regulating pipe, thereby fixing the flip door.
[0017] Preferably, both sides of the regulating pipe are provided with a clamping device; The clamping device comprises: A fixed ring, which is fixedly connected to the regulating pipe and has a hollow interior; Positioning posts, the positioning posts are fixedly connected to the interior of the fixed ring and are evenly arranged in an arc shape inside the fixed ring; A moving bar, the moving bar moving in a groove inside the fixed ring; An inverted tooth buckle, the inverted tooth buckle is fixedly connected to the upper surface of the moving bar and abuts against the positioning column; A limit block, which is fixedly connected to the inner wall of the fixed ring and is used to separate the two moving strips; The inclined surface abutment plate is fixedly connected to the lower end of the moving bar.
[0018] Specifically, since the adjusting pipe is used to splice the fixed pipe, the internal line can be adjusted. However, due to the inconsistent sizes of the fixed pipes, accurate docking cannot be performed during installation. At this time, the fixed ring is abutted against the port of the fixed pipe. The fixed pipe will squeeze the inclined plate inside the fixed ring, so that the inclined plate carries the moving bar to move toward the inside of the fixed ring. The moving bar moves in the groove inside the fixed ring, and the inverted tooth buckle at the upper end of the moving bar abuts against the positioning column. Since the inverted tooth buckle is arc-shaped and its smooth surface abuts against the positioning column, the moving bar can only move forward and cannot move backward. The size of the fixed pipe will be determined by the moving distance of the moving bar, so that splicing can be performed.
[0019] Preferably, one side of the inclined abutment plate is triangular in shape, with the inclined surface facing outwards, contacting the fixed pipe. Since the fixed ring needs to abut the port of the fixed pipe, the inclined abutment plate at the abutment point is triangular in shape, with the inclined surface facing outwards towards the fixed pipe. This ensures that the abutment does not affect the splicing of fixed pipes of different sizes, and reduces friction during splicing, making the splicing smoother.
[0020] Preferably, a compression spring is provided at the lower end of the stop block, and the compression spring is fixedly connected to the inclined support plate. When the inclined support plate contacts the fixed pipe to achieve size matching, the inclined support plate will move upward with the moving bar. At this time, the compression spring between the inclined support plate and the stop block will be compressed, making the contact force of the inclined support plate below more stable.
[0021] The beneficial effects of the present invention are as follows: 1. The electrical automation pipeline guiding device described in the present invention can bundle and classify the electrical automation lines in the regulating pipeline through the bundle frame in the bundle device, and can also cancel the bundle in the later maintenance to achieve repeated bundle.
[0022] 2. The electrically automated pipeline guiding device described in the present invention can, through a tightening device, perform secondary fixation of the line that has passed through the bundle in the front of the adjustment pipeline as a whole, thereby avoiding the problem of severe wear of the line due to friction between the line and the inner wall of the pipeline, and extending the service life.
[0023] 3. The electrically automated pipeline guiding device described in the present invention can inspect and repair the internal circuits without disassembling the regulating pipeline through the flip door. At the same time, when the flip door is opened, the wiring device and the tightening device inside the regulating pipeline will be released, making the inspection more convenient. At the same time, after the inspection is completed, the wiring device and the tightening device will be opened again when the flip door is closed to continue the wiring processing.
[0024] 4. The electrically automated pipe guiding device described in the present invention uses a clamping device. When installing the regulating pipe, the regulating pipe needs to be spliced to the port of the fixed pipe. The fixed rings on both sides of the regulating pipe can be adjusted according to the size of the fixed pipe, so that the regulating pipe can be spliced according to the specific size of the fixed pipe. BRIEF DESCRIPTION OF THE DRAWINGS
[0025] The present invention will be further described below with reference to the accompanying drawings.
[0026] Figure 1 is a perspective view of embodiment 1 of the present invention; Figure 2 This is a diagram illustrating the first embodiment of the present invention; Figure 3 is a partial view of the tightening device of the present invention; Figure 4 yes Figure 3 A partial enlarged view of the middle A; Figure 5 is a partial view of the wiring harness device of the present invention; Figure 6 is a side view of the wiring harness device of the present invention; Figure 7 is an expanded view of the flip door of the present invention; Figure 8 is an interior view of the flip door of the present invention; Figure 9 It is a partial view of the clamping device of the present invention; Figure 10 yes Figure 9 A partial enlarged view of point B in the middle; In the figure: 1. Adjusting pipe; 2. Wire harness device; 21. Fixed disc; 22. Wire harness frame; 23. Adjusting disc; 24. First sliding groove; 25. First sliding bar; 26. Auxiliary shaft; 27. Coil spring; 28. Pulling rope; 3. Tightening device; 301. Fixed frame; 302. Slide groove; 303. Tightening bar; 304. Second sliding bar; 305. Second sliding groove; 306. Rotating frame; 307. Fixed rack; 308. Moving rack; 309. Slide rail; 310. Slider; 311. Connecting arm; 4. Flip door; 41. Sealing strip; 42. Moving card plate; 43. Card strip; 44. Rotating gear; 45. Sliding wall; 5. Clamping device; 51. Fixed ring; 52. Positioning column; 53. Limit block; 54. Moving bar; 55. Compression spring; 56. Inclined plate; 57. Inverted tooth buckle DETAILED DESCRIPTION
[0027] In order to make the technical means, creative features, objectives and effects achieved by the present invention easier to understand, the present invention is further described below in conjunction with specific implementation methods. Example 1
[0028] like Figures 1 to 2 As shown, an electrical automation pipeline guiding device according to an embodiment of the present invention includes an adjusting pipeline 1, the interior of the adjusting pipeline 1 is used for passing the electrical automation line, the interior of the adjusting pipeline 1 is provided with a wire bundle device 2, and one side of the adjusting pipeline 1 is provided with a flip door 4; The wiring harness device 2 includes: A fixed disc 21, the fixed disc 21 is fixedly connected to the inner wall of the regulating pipe 1; A plurality of wire harness frames 22 slide inside the fixed disc 21, with one end of each other in contact with each other; A first sliding bar 25 , which is fixedly connected to one side of the harness frame 22 ; The adjusting disc 23 is rotatably connected to the surface of the fixed disc 21; The first sliding groove 24 is provided on the surface of the adjusting disc 23 and is in an ascending shape. A small slot is provided inside the first sliding groove 24 for limiting the position of the first sliding bar 25. The first sliding bar 25 slides on the inner wall of the first sliding groove 24; The flip door 4 is rotatably connected to the inside of the regulating pipe 1 and fits closely with the regulating pipe 1 .
[0029] Specifically, since the electrical automation lines are installed in the pipeline, they are prone to entanglement, resulting in low maintenance efficiency. At the same time, the internal messy lines are prone to friction with the inner wall of the pipeline, resulting in serious wear of the lines, which greatly reduces the service life. At this time, the adjusting disc 23 is rotated to make the first sliding bar 25 move in the first sliding groove 24 opened on the surface of the adjusting disc 23. Since the wire harness frame 22 can only move horizontally on the surface of the fixed disc 21, and since the first sliding groove 24 is in an ascending shape, when the adjusting disc 23 is rotated, the first sliding bar 25 will drive The wire harness frame 22 spreads out in all directions. At this time, there is space between each wire harness frame 22 inside to place the line, and different lines can also be classified. After the placement is completed, the adjusting disk 23 is rotated in the opposite direction to tighten the wire harness frames 22 around to form a circular ring, thereby completing the binding of the classified and placed lines. At the same time, the small card slot inside the first sliding groove 24 can also limit and fix the first sliding bar 25 so that the line will not fall off. During subsequent maintenance, it is only necessary to rotate the flip door 4 to inspect the line without disassembling the pipeline.
[0030] like Figures 1 to 5 As shown, the fixed disc 21 is fixedly connected to the inner wall of the regulating pipe 1.
[0031] A plurality of wire harness frames 22 slide inside the fixed disc 21, with one end of each other in contact with each other; A first sliding bar 25 , which is fixedly connected to one side of the harness frame 22 ; The adjusting disc 23 is rotatably connected to the surface of the fixed disc 21; The first sliding groove 24 is provided on the surface of the adjusting disc 23 and is in an ascending shape. A small slot is provided inside the first sliding groove 24 for limiting the position of the first sliding bar 25. The first sliding bar 25 slides on the inner wall of the first sliding groove 24; An adjusting disc 23, one side of which is fixedly connected to an auxiliary shaft 26, and a surface of the auxiliary shaft 26 is provided with spiral patterns; Auxiliary shaft 26, the arc surface of the auxiliary shaft 26 is fixedly connected to a traction rope 28, the traction rope 28 is fixedly connected to the flip door 4, and is connected to the inner upper side of the flip door; The tightening device 3 is arranged inside the regulating pipe 1 and is kept at the same horizontal line as the wire bundling device 2; The tightening device 3 includes: The fixing frame 301 is fixed to the inner wall of the regulating pipe 1 and has a circular groove inside for passing the electrical automation line; The slide groove 302 is provided on one side of the fixed frame 301 and is in a plurality of numbers, and a plurality of small slots are provided on the inner wall; The tightening strip 303 is slidably connected to the inner wall of the slide groove 302 and rubs against the small groove on the inner wall of the slide groove 302; A second sliding bar 304, which is fixedly connected to one side of the tightening bar 303; The rotating frame 306 rotates on the surface of the fixed frame 301; The second sliding groove 305 is provided on the surface of the rotating frame 306 and is in an ascending shape. The second sliding bar 304 slides on the inner wall of the second sliding groove 305 .
[0032] Specifically, since the electrical automation lines are installed in the pipeline, they are prone to entanglement, resulting in low maintenance efficiency. At the same time, the messy internal lines are prone to friction with the inner wall of the pipeline, resulting in serious wear of the lines, which greatly reduces the service life. At this time, the flip door 4 is opened first to rotate the flip door 4. At the same time, during the opening process, the flip door 4 will drive the auxiliary shaft 26 to rotate through the traction rope 28. When the auxiliary shaft 26 rotates, it will also drive the adjusting disc 23 to flip, so that the first sliding bar 25 moves in the first sliding groove 24 opened on the surface of the adjusting disc 23. Since the wire harness frame 22 can only move horizontally on the surface of the fixed disc 21, and since the first sliding groove 24 is in an ascending shape, when the adjusting disc 23 rotates, the first sliding bar 25 will drive the wire harness frame 22 to spread out in all directions. At this time, there is space between each wire harness frame 22 inside to place the line, which is also After the cam 308 is closed, the second locking cam 306 is rotated, and the second locking cam 308 is tightened and fixed, so that the cam 308 is tightened and fixed.
[0033] like Figures 3 and 4As shown, the arc surface of the rotating frame 306 is fixedly connected to a fixed rack 307 at one end close to the flip door 4, and the fixed rack 307 is engaged with the movable rack 308. The flip door 4 is fixedly connected to a connecting arm 311 at one end close to the fixed rack 307, and the connecting arm 311 is rotatably connected to the slider 310. A slide rail 309 is provided on one side of the movable rack 308, and the slider 310 slides on the inner wall of the slide rail 309.
[0034] Specifically, when the flip door 4 is opened, the flip door 4 is flipped. At this time, the flip door 4 will drive the connecting arm 311 to move, and the connecting arm 311 will also drive the slider 310 to slide on the inner wall of the slide rail 309. When sliding to the top, the slider 310 will press against the moving rack 308, causing the moving rack 308 to flip. At the same time, since the fixed rack 307 is engaged with the moving rack 308, the fixed rack 307 will also rotate the rotating frame 306 as a whole, so that the tightening bar 303 is retracted and stops restraining the internal line. At this time, when the flip door 4 is fully opened, the tightening bar 303 is fully retracted, which is convenient for arranging and repairing the line. After the repair is completed, you only need to close the flip door 4 to automatically extend the tightening bar 303 and tighten and fix the line again.
[0035] like Figure 6 As shown, a coil spring 27 is provided inside the auxiliary shaft 26 , and the coil spring 27 is fixedly connected to the adjusting disc 23 .
[0036] Specifically, the coil spring 27 inside the auxiliary shaft 26 can quickly and accurately retract the traction rope 28 when the flip door 4 is closed, avoiding the traction rope 28 from being entangled with the internal line due to the inability to retract or retracting too slowly, resulting in the flip door 4 being unable to open again.
[0037] like Figures 2 to 7 As shown, the wire bundling device 2 and the tightening device 3 are both located inside the regulating pipe 1, and the wire bundling device 2 and the tightening device 3 are on the same horizontal line.
[0038] Specifically, when the wiring harness device 2 is classifying the wiring, since the wiring harness frame 22 is in a scattered state and each type of wiring is wrapped in a different wiring harness frame 22, if the number of two adjacent wiring harnesses is too large, it is easy for them to be squeezed in the pipeline, resulting in friction with the inner wall of the regulating pipeline 1. At this time, since a tightening device 3 is provided in the same horizontal direction as the wiring harness device 2, the fixed frame 301 therein can perform secondary fixation on the wiring harnessed. This can not only ensure the classification of the wiring, but also avoid friction between the wiring and the inner wall of the pipeline, thereby reducing the service life.
[0039] like Figure 8As shown, sealing strips 41 are provided on both sides and the upper end of the flip door 4 , and the sealing strips 41 abut against the regulating duct 1 .
[0040] Specifically, sealing strips 41 are provided on both sides and the upper end of the flip door 4, so that when the flip door 4 is closed, it can fit together with the regulating pipe 1 without leaving any gaps. This can prevent some small animals from accidentally entering the regulating pipe 1 and damaging the circuit, and can also ensure a dry environment inside the regulating pipe 1.
[0041] like Figures 7 and 8 As shown, a sliding wall 45 is provided inside the flip door 4, and a rotating gear 44 is rotatably connected inside the sliding wall 45. A moving card plate 42 is slidably connected inside the sliding wall 45, and a card strip 43 is fixedly connected to the end of the moving card plate 42 close to the rotating gear 44. The rotating gear 44 extends to the outside of the flip door, and the rotating gear 44 engages with the card strip 43 below the moving card plate 42. The moving card plate 42 slides inside the sliding wall 45, and a moving card plate 42 is provided at the upper and lower ends of the rotating gear 44.
[0042] Specifically, when fixing the flip door 4, relying solely on the friction between the sealing strip 41 and the regulating pipe 1 can easily cause the flip door 4 to flip inward when encountering greater pressure, causing the interior of the regulating pipe 1 to be exposed to the outside. At this time, by providing a movable card plate 42 inside the flip door 4, the rotating gear 44 can be flipped when the flip door 4 is closed, and the two movable card plates 42 can be moved to the left and right sides and inserted into the grooves opened inside the regulating pipe 1, so that the flip door 4 can be fixed. Example 2
[0043] like Figures 9 and 10 As shown, in comparison with Example 1, another embodiment of the present invention is that: both sides of the regulating pipe 1 are provided with a clamping device 5; The clamping device 5 comprises: A fixed ring 51, which is fixedly connected to the regulating pipe 1 and has a hollow interior; Positioning posts 52, which are fixedly connected to the interior of the fixed ring 51 and are evenly arranged in an arc shape inside the fixed ring 51; A movable bar 54 , which moves in a groove inside the fixed ring 51 ; The inverted tooth buckle 57 is fixedly connected to the upper surface of the movable bar 54 and abuts against the positioning column 52; A limit block 53 is fixedly connected to the inner wall of the fixed ring 51 and is used to separate the two movable bars 54; The inclined surface abutment plate 56 is fixedly connected to the lower end of the moving bar 54 .
[0044] Specifically, since the adjustment pipe 1 is used to splice the fixed pipes, the internal lines can be adjusted. However, due to the inconsistent sizes of the fixed pipes, accurate docking cannot be performed during installation. At this time, the fixed ring 51 is abutted against the port of the fixed pipe. The fixed pipe will squeeze the inclined plate 56 inside the fixed ring 51, so that the inclined plate 56 moves with the moving bar 54 toward the inside of the fixed ring 51. The moving bar 54 moves in the groove inside the fixed ring 51, and the inverted tooth buckle 57 at the upper end of the moving bar 54 abuts against the positioning column 52. Since the inverted tooth buckle 57 is arc-shaped and its smooth surface abuts against the positioning column 52, the moving bar 54 can only move forward and cannot move backward. The size of the fixed pipe will be determined by the moving distance of the moving bar 54, so that splicing can be performed.
[0045] like Figures 9 and 10 As shown, one side of the inclined surface abutting plate 56 is set to be triangular, and the inclined surface faces outward and contacts the fixed pipe.
[0046] Specifically, since the fixed ring 51 needs to abut the port of the fixed pipe, the inclined plate 56 at the abutment point is set to a triangle, and the inclined surface corresponds to the fixed pipe outward, so that when abutting, it will not affect the splicing of fixed pipes of different sizes, and can reduce friction during splicing, making the splicing smoother.
[0047] like Figures 9 and 10 As shown, a compression spring 55 is provided at the lower end of the limit block 53 , and the compression spring 55 is fixedly connected to the inclined surface support plate 56 .
[0048] Specifically, when the inclined plate 56 contacts the fixed pipe for size matching, the inclined plate 56 will move upward with the movable bar 54. At this time, the compression spring 55 between the inclined plate 56 and the limit block 53 will be compressed, making the abutment force of the inclined plate 56 below more stable.
[0049] Working principle: Since the electrical automation lines are installed in the pipeline, they are prone to entanglement, resulting in low maintenance efficiency. At the same time, the internal messy lines are prone to friction with the inner wall of the pipeline, resulting in serious wear of the lines, which greatly reduces the service life. At this time, open the flip door 4 first to rotate the flip door 4. At the same time, during the opening process of the flip door 4, the auxiliary shaft 26 will be driven to rotate through the traction rope 28. When the auxiliary shaft 26 rotates, it will also drive the adjusting disc 23 to flip, so that the first sliding bar 25 moves in the first sliding groove 24 opened on the surface of the adjusting disc 23. Since the wire harness frame 22 is fixed on the fixed disc The surface of 21 can only move horizontally, and because the first sliding groove 24 is in an ascending shape, when the adjusting disc 23 rotates, the first sliding bar 25 will drive the wire harness frame 22 to spread out in all directions. At this time, there is space between each wire harness frame 22 to place the line, and different lines can also be classified. When the flip door 4 is opened, it will also drive the connecting arm 311 to move, and at the same time, the connecting arm 311 will also drive the slider 310 to slide on the inner wall of the slide rail 309. When sliding to the top, the slider 310 will press against the moving rack 308, causing the moving rack 308 to flip over. Since the fixed rack 307 is meshed with the movable rack 308, the fixed rack 307 will also rotate the rotating frame 306 as a whole, so that the tightening strip 303 is retracted and the internal line is no longer restrained. At this time, when the flip door 4 is fully opened, the tightening strip 303 is completely retracted, and the circular groove inside the fixed frame 301 will no longer be blocked by the tightening strip 303. After the placement is completed, the lines are uniformly placed in the circular groove inside the fixed frame 301, and the rotating frame 306 is rotated. At this time, the second sliding bar 304 slides on the inner wall of the second sliding groove 305, so that the second sliding bar 30 4 drives the tightening strip 303 to be squeezed into the circular groove inside the fixed frame 301, tightening the line placed in the circular groove inside the fixed frame 301, and at the same time, the tightening strip 303 will also be stuck in the small groove on the inner wall of the slide groove 302 and fixed. After completing the above operations, the flip door 4 is rotated to close the flip door 4, and the auxiliary shaft 26 will also retract the traction rope 28 and drive the adjustment disk 23 to reverse, so that the cable frame 22 can be automatically tightened and fixed, and the lines can be bundled and classified. This tightening device 3 can not only perform secondary fixation on the line as a whole, but also avoid friction between the line and the inner wall of the pipeline, reducing the service life.
[0050] Since the adjustment pipe 1 is used to splice the fixed pipes, the internal lines can be adjusted. However, due to the inconsistent sizes of the fixed pipes, it is impossible to accurately dock them during installation. At this time, the fixed ring 51 is abutted against the port of the fixed pipe. The fixed pipe will squeeze the inclined plate 56 inside the fixed ring 51, so that the inclined plate 56 moves with the moving bar 54 to the inside of the fixed ring 51. The moving bar 54 moves in the groove inside the fixed ring 51, and the inverted tooth buckle 57 at the upper end of the moving bar 54 is aligned with the positioning column. 52 are in contact with each other. Since the inverted tooth buckle 57 is arc-shaped and its smooth surface abuts the positioning column 52, the moving bar 54 can only move forward and cannot move backward. At the same time, when the inclined surface abutting plate 56 contacts the fixed pipe for size matching, the inclined surface abutting plate 56 will move upward with the moving bar 54. At this time, the compression spring 55 between the inclined surface abutting plate 56 and the limit block 53 will be compressed, so that the abutting force of the inclined surface abutting plate 56 below is more stable. When the moving bar 54 stops moving, the splicing is completed.
[0051] The basic principles, main features, and advantages of the present invention are shown and described above. Those skilled in the art should understand that the present invention is not limited to the foregoing embodiments. The foregoing embodiments and descriptions are merely illustrative of the principles of the present invention. Various changes and modifications may be made to the present invention without departing from the spirit and scope of the present invention. Such changes and modifications are intended to fall within the scope of the present invention. The scope of protection claimed in the present invention is defined by the appended claims and their equivalents.
Claims
1. An electrically automated pipeline guiding device, characterized in that: The regulating pipe (1) comprises a regulating pipe (1), the interior of the regulating pipe (1) is used for passing an electrical automation line, a wiring harness device (2) is provided inside the regulating pipe (1), and a flip door (4) is provided on one side of the regulating pipe (1); Wherein, the wiring device (2) comprises: A fixed disc (21), wherein the fixed disc (21) is fixedly connected to the inner wall of the regulating pipe (1); A plurality of wire harness frames (22) slide inside the fixed disc (21) and have one end in contact with each other; A first sliding bar (25), the first sliding bar (25) being fixedly connected to one side of the wire harness frame (22); An adjusting disc (23), the adjusting disc (23) being rotatably connected to the surface of the fixed disc (21); A first sliding groove (24), the first sliding groove (24) is provided on the surface of the regulating disc (23), and the first sliding groove (24) is in an ascending shape, and a small slot is provided inside thereof for limiting the first sliding bar (25), and the first sliding bar (25) slides on the inner wall of the first sliding groove (24); The flip door (4) is rotatably connected to the inside of the regulating pipe (1) and fits closely with the regulating pipe (1).
2. The electrically automated pipeline guiding device according to claim 1, characterized in that: The fixed disc (21) is fixedly connected to the inner wall of the regulating pipe (1); A plurality of wire harness frames (22) slide inside the fixed disc (21) and have one end in contact with each other; A first sliding bar (25), the first sliding bar (25) being fixedly connected to one side of the wire harness frame (22); An adjusting disc (23), the adjusting disc (23) being rotatably connected to the surface of the fixed disc (21); A first sliding groove (24), the first sliding groove (24) is provided on the surface of the regulating disc (23), and the first sliding groove (24) is in an ascending shape, and a small slot is provided inside thereof for limiting the first sliding bar (25), and the first sliding bar (25) slides on the inner wall of the first sliding groove (24); An adjusting disc (23), one side of the adjusting disc (23) is fixedly connected to an auxiliary shaft (26), and a surface of the auxiliary shaft (26) is provided with spiral patterns; An auxiliary shaft (26), wherein the arc surface of the auxiliary shaft (26) is fixedly connected to a traction rope (28), and the traction rope (28) is fixedly connected to the flip door (4) and connected to the upper side of the flip door; A tightening device (3), the tightening device (3) being arranged inside the regulating pipe (1) and being located on the same horizontal line as the wire bundling device (2); The tightening device (3) comprises: A fixed frame (301), the fixed frame (301) is fixed to the inner wall of the regulating pipe (1), and has a circular groove inside for passing the electrical automation line; A chute (302), wherein the chute (302) is provided on one side of the fixed frame (301), and is in a plurality of numbers, and a plurality of small slots are provided on the inner wall; A tightening strip (303), wherein the tightening strip (303) is slidably connected to the inner wall of the slide groove (302) and rubs against the small groove on the inner wall of the slide groove (302); a second sliding bar (304), the second sliding bar (304) being fixedly connected to one side of the tightening bar (303); A rotating frame (306), wherein the rotating frame (306) rotates on the surface of the fixed frame (301); The second sliding groove (305) is provided on the surface of the rotating frame (306) and is in an ascending shape. The second sliding bar (304) slides on the inner wall of the second sliding groove (305).
3. The electrically automated pipeline guiding device according to claim 2, characterized in that: A fixed rack (307) is fixedly connected to one end of the arc surface of the rotating frame (306) close to the flip door (4), and the fixed rack (307) is meshed with the movable rack (308). A connecting arm (311) is fixedly connected to one end of the flip door (4) close to the fixed rack (307), and the connecting arm (311) is rotatably connected to a slider (310). A slide rail (309) is provided on one side of the movable rack (308), and the slider (310) slides on the inner wall of the slide rail (309).
4. The electrically automated pipeline guiding device according to claim 2, characterized in that: A coil spring (27) is provided inside the auxiliary shaft (26), and the coil spring (27) is fixedly connected to the adjustment disc (23).
5. The electrically automated pipeline guiding device according to claim 4, characterized in that: The wire bundling device (2) and the tightening device (3) are both located inside the regulating pipe (1), and the wire bundling device (2) and the tightening device (3) are located on the same horizontal line.
6. The electrically automated pipeline guiding device according to claim 4, characterized in that: Sealing strips (41) are provided on both sides and the upper end of the flip door (4), and the sealing strips (41) and the regulating pipe (1) are in contact with each other.
7. The electrically automated pipeline guiding device according to claim 6, characterized in that: A sliding wall (45) is provided inside the flip door (4), and a rotating gear (44) is rotatably connected to the inside of the sliding wall (45). A movable card plate (42) is slidably connected to the inside of the sliding wall (45), and a clamping strip (43) is fixedly connected to one end of the movable card plate (42) close to the rotating gear (44). The rotating gear (44) extends to the outside of the flip door, and the rotating gear (44) engages with the clamping strip (43) below the movable card plate (42). The movable card plate (42) slides inside the sliding wall (45), and the upper end and the lower end of the rotating gear (44) are both provided with a movable card plate (42).
8. The electrically automated pipeline guiding device according to claim 2, characterized in that: Both sides of the regulating pipe (1) are provided with a clamping device (5); The clamping device (5) comprises: A fixed ring (51), wherein the fixed ring (51) is fixedly connected to the regulating pipe (1), and the interior of the fixed ring (51) is hollow; Positioning posts (52), the positioning posts (52) are fixedly connected to the interior of the fixed ring (51), and are evenly arranged in an arc shape inside the fixed ring (51); A movable bar (54), wherein the movable bar (54) moves in a groove inside the fixed ring (51); An inverted tooth buckle (57), wherein the inverted tooth buckle (57) is fixedly connected to the upper surface of the moving bar (54) and abuts against the positioning column (52); A limit block (53), the limit block (53) is fixedly connected to the inner wall of the fixed ring (51) and is used to separate the two moving bars (54); An inclined surface abutment plate (56) is fixedly connected to the lower end of the moving bar (54).
9. The electrically automated pipeline guiding device according to claim 8, characterized in that: One side of the inclined surface abutting plate (56) is configured in a triangular shape, with the inclined surface facing outwards and in contact with the fixed pipe.
10. The electrically automated pipeline guiding device according to claim 9, characterized in that: A compression spring (55) is provided at the lower end of the limit block (53), and the compression spring (55) is fixedly connected to the inclined surface support plate (56).
Citation Information
Patent Citations
Electrical automatic pipeline guiding device
CN111834964A