A modular integrated wiring device
The modular cable line deployment system addresses inefficiencies in cable line deployment by using dual rotating reels and synchronized gear systems to enhance alignment and reduce friction, improving installation efficiency and reducing cable wear.
Patent Information
- Application Number
- CN202211148715.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-09-21
- Publication Date
- 2025-07-15
- Estimated Expiration
- 2042-09-21
AI Technical Summary
During the process of laying modular cables, the replacement cost of longer cables is high and the construction efficiency is low, making it difficult for existing equipment to efficiently arrange cables.
The modular integrated wiring device is adopted, including a base, mounting plate, wiring wheel, re-standing mechanism and flat gear system. Through the meshing gear drive, re-standing mechanism and height adjustment structure, efficient laying and alignment of the cable is achieved.
Improves the construction efficiency of modular cable laying, reduces the possibility of friction between cables and pipes and skin damage, ensures cables and pipes aligned, and simplifies operational steps.
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Figure CN115528607B_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of wiring equipment, and in particular to a modular integrated wiring device. Background Art
[0002] Wiring, also known as cable layout, refers to the reasonable and scientific arrangement of various communication, monitoring, and power cables according to design standards and specifications. The equipment required during the wiring construction process is called wiring equipment, which usually includes wiring machines, vehicle-mounted distribution frames, etc.
[0003] The longer the signal transmission distance between two adjacent positions, the longer the required cable length. However, when the cable fails and needs to be replaced, the longer the length of a single cable, the greater the cost required for cable replacement. Therefore, the operator needs to modularize the layout of the longer cable, that is, divide the originally long cable into several consecutive connection segments according to the terrain and underground buildings, set inspection wells between adjacent connection segments, and lay and repair the cables on both sides of the inspection wells through the inspection wells.
[0004] Usually, the operator needs to thread the cables into the cable ducts of the connection segments on both sides of the inspection well in sequence, which reduces the construction efficiency of modular cable laying. Summary of the Invention
[0005] In order to improve the construction efficiency of modular cable laying, this application provides a modular integrated wiring device.
[0006] A modular integrated wiring device provided by this application adopts the following technical solution:
[0007] A modular integrated wiring device includes a base, two oppositely arranged mounting plates are installed on the base, two wiring wheels are rotatably installed on the opposite inner sides of the two mounting plates, cables are wound on the wiring wheels, a rotating shaft is installed at each end of each wiring wheel, and the wiring wheel is rotatably installed on the mounting plate through the rotating shaft. An installation cavity is formed in one of the mounting plates, two spur gears are rotatably installed in the installation cavity, the two spur gears are respectively installed on the two rotating shafts extending into the installation cavity, and the two spur gears are meshed with each other. A cable straightening mechanism capable of restoring the cable to a straight state is arranged on the base, and there are two groups of the cable straightening mechanisms, and the two groups of cable straightening mechanisms and the two wiring wheels are arranged in one-to-one correspondence.
[0008] With the above technical solution, when an operator needs to lay cables into the cable ducts on both sides of an inspection well, first place the device into the inspection well, then restore the cables originally wound on the cable reels to a straight state through the straightening mechanism, then introduce the end portions of the cables on the two cable reels into the corresponding cable ducts respectively, and finally rotate one of the cable reels. This cable reel drives the other cable reel to rotate through two meshing spur gears. In this way, only by rotating one of the cable reels, the cables on the two cable reels can be transmitted into the corresponding cable ducts, thus improving the construction efficiency of modular cable laying.
[0009] In a preferred example of the present application, it can be further configured that: one set of the straightening mechanisms includes a straight pipe and a bellmouth pipe. The inner diameter of the bellmouth pipe gradually decreases from one end to the other end. The straight pipe is installed at the end with a smaller inner diameter of the bellmouth pipe, and the end with a larger inner diameter of the bellmouth pipe faces the cable reel.
[0010] With the above technical solution, originally the cables are wound on the cable reels in a curved state. After the curved cables are constrained by the inner wall of the straight pipe, the cables enter the cable ducts in a straight state. In this way, the friction between the cables and the cable ducts is reduced, and the possibility of damage to the cable outer skin is also reduced. In addition, before the cables enter the straight pipe, they need to enter the bellmouth pipe first, which reduces the friction between the cables and the end of the straight pipe, and further reduces the possibility of damage to the cable outer skin.
[0011] In a preferred example of the present application, it can be further configured that: a sliding sleeve is installed at the bottom of each straight pipe, an adjusting plate is slidably installed in each sliding sleeve, a driving component for driving the adjusting plate to move vertically is arranged on the base, and there are two sets of the driving components, and the two sets of driving components correspond to the two adjusting plates one by one.
[0012] With the above technical solution, after the operator places the device into the inspection well, if there is a vertical misalignment between the cable duct and the straight pipe, the operator can move the sliding sleeve to align the straight pipe and the cable duct vertically.
[0013] In a preferred example of the present application, it can be further configured that: one set of the driving components includes a lead screw and a guide rod installed on the top surface of the base. The adjusting plate is slidably installed on the guide rod, and the adjusting plate is threadedly connected to the lead screw.
[0014] With the above technical solution, after the operator places the device into the inspection well, if there is a horizontal misalignment between the cable duct and the straight pipe, the operator can rotate the lead screw, and the lead screw drives the adjusting plate to move vertically, so that the straight pipe and the cable duct are aligned horizontally. Thus, the alignment of the cable ducts in the horizontal and vertical directions can be completed.
[0015] In a preferred example, the present application can be further configured as follows: Synchronous wheels are installed at the bottom of each of the lead screws, a synchronous belt is sleeved on the two synchronous wheels together, and the two synchronous wheels are driven by the synchronous belt.
[0016] Through the above technical solution, since the two lead screws are driven by the synchronous wheels and the synchronous belt, therefore, only by rotating one of the lead screws, the lead screw drives the corresponding straight pipe to move vertically, and this lead screw drives the other lead screw to rotate through the synchronous wheels and the synchronous belt, so that the height of the other straight pipe can be adjusted, thereby enabling the heights of the two straight pipes to be adjusted simultaneously, and further improving the working efficiency of cable layout.
[0017] In a preferred example, the present application can be further configured as follows: A worm gear and a worm are rotatably installed in the mounting plate where the spur gear is located, the worm gear and the worm are meshed with each other, the worm gear is installed on one of the rotating shafts, a connecting rod is installed on the mounting plate where the spur gear is located, a driving box is installed at one end of the connecting rod away from the mounting plate, a driving cavity is formed in the driving box, a driving shaft is rotatably installed in the driving cavity, a first bevel gear is installed on the driving shaft, one end of the worm extends into the driving cavity, and a second bevel gear is installed at the end of the worm extending into the driving cavity, and the first bevel gear and the second bevel gear can be meshed with each other.
[0018] Through the above technical solution, when an operator needs to rotate the cable routing wheel, by rotating the driving shaft, the driving shaft drives the first bevel gear to rotate, the first bevel gear drives the second bevel gear to rotate, the second bevel gear drives the worm to rotate, the worm drives the worm gear to rotate, and the worm gear drives the cable routing wheel to rotate through the rotating shaft, so that the cable on the cable routing wheel can be released outward.
[0019] In a preferred example, the present application can be further configured as follows: The driving shaft slides vertically in the driving box, the top of the lead screw extends into the driving cavity, a connection hole for inserting the driving shaft is formed in the top surface of the lead screw, a plug is installed at the bottom of the driving shaft, and a slot for inserting the plug is formed in the inner wall of the bottom surface of the connection hole.
[0020] Through the above technical solution, when an operator adjusts the height of the straight pipe, by pushing the driving shaft downward, on the one hand, the first bevel gear and the second bevel gear are disengaged from the meshed state, and on the other hand, the plug is inserted into the slot. At this time, the driving shaft can be rotated, and the driving shaft drives the lead screw to rotate through the plug, so that the lead screw drives the straight pipe to move vertically through the adjusting plate, and the height adjustment is completed.
[0021] In a preferred example, the present application can be further configured as follows: a through hole is provided on the side wall of the drive box, the through hole is connected to the drive cavity, a limit pin is slidably installed in the through hole, a limit groove for the limit pin to be inserted is provided on the drive shaft, an inclined surface is provided at one end of the limit pin close to the drive shaft, a conical surface is provided on the drive shaft, the conical surface and the inclined surface cooperate with each other, a baffle is slidably installed in the drive cavity, the baffle is fixedly connected to the limit pin, a spring is sleeved on the limit pin, one end of the spring is fixedly connected to the baffle, and the other end is connected to the inner wall of the drive cavity.
[0022] Through the above technical solution, when the operator needs to drive the worm to rotate through the drive shaft, the drive shaft is pulled upward so that bevel gear one and bevel gear two are meshed, and the worm can be driven to rotate through the drive shaft. In the process of the operator pulling the drive shaft upward, after the inclined surface and the conical surface contact, the limit pin moves outward along the through hole under the thrust of the conical surface and makes the spring in a compressed state. When the limit pin is opposite to the limit groove, the limit pin moves inward along the through hole under the elastic force of the spring, so that the limit pin is inserted into the limit groove. In this way, when the operator rotates the drive shaft, there is no need to pull the drive shaft upward, thereby simplifying the operating steps.
[0023] In a preferred example, the present application can be further configured as follows: a tie and several arc-shaped clips are installed on the straight tube, each of the arc-shaped clips is provided with an arc-shaped hole, the arc-shaped hole runs through the arc-shaped clips, the tie passes through several of the arc-shaped holes in sequence, a buckle is installed on one end of the tie passing through the arc-shaped hole, and the other end of the tie passing through the arc-shaped hole is fixed by the buckle.
[0024] Through the above technical solution, the operator can clamp the cable conduit with the arc-shaped clamp, then insert the tie band into the arc-shaped holes in sequence, and fix the free end of the tie band on the buckle, thereby reducing the possibility of relative deviation between the cable conduit and the straight pipe.
[0025] In summary, this application includes the following beneficial technical effects:
[0026] 1. The operator rotates one of the wiring wheels, which drives the other wiring wheel to rotate through two mutually meshing flat gears. In this way, only one of the wiring wheels needs to be rotated to transfer the cables on the two wiring wheels into the cable duct, thereby improving the construction efficiency of modular cable laying;
[0027] 2. Operators can reduce the friction between the cable and the cable duct and between the cable and the end of the straight tube by setting up straight tubes and trumpet tubes that can be adjusted in height and horizontal position, thereby reducing the possibility of damage to the cable sheath;
[0028] 3. The operator can clamp the cable duct with the arc-shaped clip, then thread the strap through the arc-shaped holes in sequence and fix the free end of the strap to the buckle, thereby reducing the possibility of relative displacement between the cable duct and the straight pipe. BRIEF DESCRIPTION OF THE DRAWINGS
[0029] Figure 1 is a schematic diagram of the overall structure of an embodiment of the present application, mainly showing the structures of the base, the mounting plate, and the wire routing wheel.
[0030] Figure 2 is Figure 1 a schematic cross-sectional view taken along the A-A direction in, mainly showing the structures of the installation cavity, the spur gear, the worm gear, and the worm.
[0031] Figure 3 is Figure 2 a schematic diagram of the structure from another perspective, mainly showing the structure of the drive box.
[0032] Figure 4 is Figure 3 an enlarged schematic view of part B in, mainly showing the structures of the arc-shaped clip, the strap, and the buckle.
[0033] Figure 5 is a partial explosion schematic diagram of an embodiment of the present application, mainly showing the structures of the insertion block, the insertion slot, and the connection hole.
[0034] Figure 6 is Figure 3 an enlarged schematic view of part C in, mainly showing the structures of the limit pin and the conical surface.
[0035] Description of the Reference Numerals:
[0036] 1. Base; 2. Mounting plate; 21. Wire routing wheel; 22. Cable; 23. Rotating shaft; 24. Installation cavity; 25. Spur gear; 26. Worm gear; 27. Worm; 271. Second bevel gear; 28. Connecting rod; 3. Straightening mechanism; 31. Straight pipe; 311. Sliding sleeve; 312. Adjusting plate; 32. Bellows; 4. Driving assembly; 41. Lead screw; 411. Synchronous pulley; 412. Connection hole; 413. Insertion slot; 42. Guide rod; 43. Timing belt; 5. Drive box; 51. Drive cavity; 52. Through hole; 6. Drive shaft; 61. First bevel gear; 62. Handwheel; 63. Insertion block; 64. Limit groove; 65. Conical surface; 7. Limit pin; 71. Inclined surface; 72. Baffle; 73. Spring; 81. Arc-shaped clip; 811. Arc-shaped hole; 82. Strap; 83. Buckle. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0037] The following further describes the present application in detail with reference to the Figure 1 - Drawings Figure 6 for a further detailed description of the present application.
[0038] An embodiment of the present application discloses a modular integrated wiring device. Refer to Figure 1 and Figure 2 As shown, a modular integrated wiring device includes a horizontally arranged base 1. Two vertically arranged mounting plates 2 are fixedly connected to the top surface of the base 1. The two mounting plates 2 are arranged opposite to each other. Two mutually parallel wiring wheels 21 are rotatably mounted on the opposite inner sides of the two mounting plates 2. A cable 22 is wound on each wiring wheel 21. A rotating shaft 23 is fixedly connected to both ends of each wiring wheel 21. The wiring wheel 21 is rotatably mounted on the mounting plate 2 through the rotating shaft 23.
[0039] Refer to Figure 1 and Figure 2 As shown, an installation cavity 24 is formed in one of the mounting plates 2. Two mutually meshing spur gears 25 are rotatably mounted in the installation cavity 24. The two spur gears 25 are respectively mounted on two rotating shafts 23 extending into the installation cavity 24.
[0040] When an operator needs to lay cables 22 into the cable 22 pipes on both sides of the inspection well, first place this device into the inspection well, then respectively introduce the end portions of the cables 22 on the two wiring wheels 21 into the corresponding cable 22 pipes, and finally rotate one of the wiring wheels 21. This wiring wheel 21 drives the other wiring wheel 21 to rotate through two mutually meshing spur gears 25. In this way, by only rotating one of the wiring wheels 21, the cables 22 on the two wiring wheels 21 can be transmitted into the cable 22 pipes, thereby improving the construction efficiency of modular cable 22 laying.
[0041] Refer to Figure 2 and Figure 3 As shown, a cable straightening mechanism 3 capable of restoring the cable 22 to a straight state is provided on the base 1. There are two groups of cable straightening mechanisms 3, and the two groups of cable straightening mechanisms 3 are respectively arranged corresponding to the two wiring wheels 21. Since the structures of the two groups of cable straightening mechanisms 3 are the same, only one of the groups of cable straightening mechanisms 3 will be described in detail below.
[0042] One of the groups of cable straightening mechanisms 3 includes a straight pipe 31 and a trumpet pipe 32. The inner diameter of the trumpet pipe 32 gradually decreases from one end to the other end. The straight pipe 31 is installed at the end with a smaller inner diameter of the trumpet pipe 32, and the end with a larger inner diameter of the trumpet pipe 32 faces the wiring wheel 21. Originally, the cable 22 is wound on the wiring wheel 21 in a curved state. After the curved cable 22 is constrained by the inner wall of the straight pipe 31, the cable 22 enters the cable 22 pipe in a straight state from the straight pipe 31. In this way, the friction between the cable 22 and the cable 22 pipe is reduced. In addition, before the cable 22 enters the straight pipe 31, it needs to enter the trumpet pipe 32 first, reducing the friction between the cable 22 and the end of the straight pipe 31, thereby reducing the possibility of damage to the outer skin of the cable 22.
[0043] Refer to Figure 3 and Figure 4 As shown, a belt 82 and several arc-shaped clips 81 are installed on the straight pipe 31. The several arc-shaped clips 81 are all fixedly connected to the straight pipe 31, and the several arc-shaped clips 81 are evenly distributed along the circumferential direction of the straight pipe 31. An arc-shaped hole 811 is formed in each arc-shaped clip 81, and the arc-shaped hole 811 runs through the arc-shaped clip 81. The belt 82 passes through the several arc-shaped holes 811 in sequence. A buckle 83 is installed at one end of the belt 82 passing out of the arc-shaped hole 811, and the other end of the belt 82 passing out of the arc-shaped hole 811 is fixed by the buckle 83.
[0044] The operator can clamp the cable 22 pipeline by the arc-shaped clip 81, then thread the belt 82 into the arc-shaped holes 811 in sequence, and fix the free end of the belt 82 on the buckle 83, thereby reducing the possibility of relative displacement between the cable 22 pipeline and the straight pipe 31.
[0045] Refer to Figure 2 and Figure 3 As shown, a sliding sleeve 311 is installed at the bottom of each straight pipe 31, and an adjusting plate 312 is slidably installed in each sliding sleeve 311. A driving component 4 for driving the adjusting plate 312 to move vertically is arranged on the base 1. There are two groups of driving components 4, and the two groups of driving components 4 and the two adjusting plates 312 are arranged in one-to-one correspondence. Since the structures of the two groups of driving components 4 are the same, only one of the driving components 4 will be described in detail below.
[0046] One of the driving components 4 includes a vertically arranged lead screw 41 and a guide rod 42. The lead screw is rotatably installed on the base 1, the guide rod 42 is fixedly connected to the base 1, the adjusting plate 312 is slidably installed on the guide rod 42, and the adjusting plate 312 is threadedly connected to the lead screw 41. A synchronous pulley 411 is installed at the bottom of each lead screw 41, and a synchronous belt 43 is sleeved on the two synchronous pulleys 411, and the two synchronous pulleys 411 are driven by the synchronous belt 43.
[0047] After the operator puts the device into the inspection well, if there is a vertical misalignment between the cable 22 pipeline and the straight pipe 31, the operator can move the sliding sleeve 311 to align the straight pipe 31 and the cable 22 pipeline vertically. If there is a horizontal misalignment between the cable 22 pipeline and the straight pipe 31, the operator can rotate one of the lead screws 41 to adjust the height of the corresponding straight pipe 31. The lead screw 41 drives the other lead screw 41 to rotate through the synchronous pulley 411 and the synchronous belt 43, so as to adjust the height of the other straight pipe 31, thereby enabling the heights of the two straight pipes 31 to be adjusted simultaneously, making the straight pipe 31 and the cable 22 pipeline align horizontally. Thus, the alignment of the cable 22 pipeline in the horizontal and vertical directions can be completed.
[0048] Refer toFigure 2 and Figure 3 As shown in Figure 3 , a worm wheel 26 and a worm 27 are rotatably installed in the mounting plate 2 where the spur gear 25 is located. The worm wheel 26 and the worm 27 are meshed with each other. The worm wheel 26 is coaxially connected to one of the rotating shafts 23. A connecting rod 28 is fixedly connected to the mounting plate 2 where the spur gear 25 is located. One end of the connecting rod 28 away from the mounting plate 2 is fixedly connected to a driving box 5. A driving cavity 51 is formed in the driving box 5. A driving shaft 6 is rotatably installed in the driving cavity 51. A hand wheel 62 is fixedly connected to the top of the driving shaft 6. A first bevel gear 61 is coaxially connected to the driving shaft 6. One end of the worm 27 extends into the driving cavity 51. A second bevel gear 271 is coaxially connected to the end of the worm 27 extending into the driving cavity 51. The first bevel gear 61 is located below the second bevel gear 271. The first bevel gear 61 and the second bevel gear 271 can be meshed with each other.
[0049] Referring to Figure 3 and Figure 5 As shown in Figure 5 , the driving shaft 6 slides vertically in the driving box 5. The top of the lead screw 41 extends into the driving cavity 51. A connecting hole 412 for inserting the driving shaft 6 is formed on the top surface of the lead screw 41. A plug 63 is installed at the bottom of the driving shaft 6. The bottom of the plug 63 is pointed. A slot 413 for inserting the plug 63 is formed on the inner wall of the bottom surface of the connecting hole 412. The bottom of the plug 63 is pointed, which is convenient for guiding the plug 63 to insert into the slot 413.
[0050] When the operator adjusts the height of the straight pipe 31, by pushing the driving shaft 6 downward, on the one hand, the first bevel gear 61 and the second bevel gear 271 are disengaged from the meshing state; on the other hand, the plug 63 is inserted into the slot 413. At this time, the driving shaft 6 can be rotated. The driving shaft 6 drives the lead screw to rotate through the plug 63, so that the lead screw 41 drives the straight pipe 31 to move vertically through the adjusting plate 312, completing the height adjustment.
[0051] When the operator needs to drive the cable winding wheel 21 to rotate, by pulling the driving shaft 6 upward, on the one hand, the plug 63 is disengaged from the slot 413, releasing the driving effect of the plug 63 on the lead screw 41; on the other hand, the first bevel gear 61 and the second bevel gear 271 are meshed with each other, so that the cable winding wheel 21 can be driven to rotate through the worm wheel 26 and the worm 27, completing the release of the cable 22.
[0052] Referring to Figure 3 , Figure 5 and Figure 6As shown in the figure, a through hole 52 communicating with the driving cavity 51 is formed in the side wall of the driving box 5. A limit pin 7 is slidably mounted in the through hole 52 in the horizontal direction. A limit groove 64 for the limit pin 7 to be inserted is formed in the driving shaft 6. The axis of the limit groove 64 and the axis of the driving shaft 6 are collinear. An inclined surface 71 is arranged at one end of the limit pin 7 close to the driving shaft 6. A conical surface 65 is arranged on the driving shaft 6. The conical surface 65 and the inclined surface 71 cooperate with each other. A baffle 72 is slidably mounted in the driving cavity 51 in the horizontal direction. The baffle 72 is fixedly connected to the limit pin 7. A spring 73 is sleeved on the limit pin 7. One end of the spring 73 is fixedly connected to the baffle 72, and the other end is connected to the inner wall of the driving cavity 51.
[0053] During the process of the operator pulling the driving shaft 6 upward, when the inclined surface 71 and the conical surface 65 come into contact, under the thrust of the conical surface 65, the limit pin 7 moves outward along the through hole 52 and the spring 73 is in a compressed state. When the limit pin 7 is aligned with the limit groove 64, under the elastic force of the spring 73, the limit pin 7 moves inward along the through hole 52, so that the limit pin 7 is inserted into the limit groove 64. In this way, during the process of the operator rotating the driving shaft 6, there is no need to lift the driving shaft 6 upward, thus simplifying the operation steps.
[0054] The implementation principle of this embodiment is as follows: When the operator needs to lay the cable 22 into the cable 22 pipelines on both sides of the inspection well, first, the device is placed into the inspection well. Then, the position of the straight pipe 31 is adjusted so that the straight pipe 31 is aligned with the cable 22 pipeline. Then, the straight pipe 31 and the cable 22 pipeline are fixed by the arc-shaped clamping piece 81. Next, the ends of the cable 22 on the two wiring wheels 21 are sequentially passed through the horn pipe 32 and the straight pipe 31 and introduced into the corresponding cable 22 pipelines respectively. Finally, the hand wheel 62 is rotated to drive the two meshing spur gears 25 to rotate, and thus the two wiring wheels 21 can be driven to rotate. In this way, the cable 22 on the two wiring wheels 21 can be transmitted into the corresponding cable 22 pipelines, thereby improving the construction efficiency of modular cable 22 laying.
[0055] The embodiments of this specific implementation manner are all the preferred embodiments of the present application, and do not limit the protection scope of the present application in turn. Therefore, all equivalent changes made according to the structure, shape and principle of the present application should be covered within the protection scope of the present application.
Claims
1. A modular integrated wiring device, characterized in that: It includes a base (1), on which two oppositely arranged mounting plates (2) are installed. Two wire winding wheels (21) are rotatably installed on the opposite inner sides of the two mounting plates (2). A cable (22) is wound around the wire winding wheels (21). A rotating shaft (23) is installed at each end of each wire winding wheel (21). The wire winding wheel (21) is rotatably installed on the mounting plate (2) through the rotating shaft (23). An installation cavity (24) is formed in one of the mounting plates (2). Two spur gears (25) are rotatably installed in the installation cavity (24). The two spur gears (25) are respectively installed on the two rotating shafts (23) extending into the installation cavity (24), and the two spur gears (25) are meshed with each other. A straightening mechanism (3) capable of restoring the cable (22) to a straight state is arranged on the base (1). There are two groups of the straightening mechanisms (3), and the two groups of straightening mechanisms (3) are arranged in one-to-one correspondence with the two wire winding wheels (21). One group of the straightening mechanisms (3) includes a straight pipe (31) and a horn pipe (32). The inner diameter of the horn pipe (32) gradually decreases from one end to the other end. The straight pipe (31) is installed at the end with a smaller inner diameter of the horn pipe (32). The end with a larger inner diameter of the horn pipe (32) faces the wire winding wheel (21). A binding band (82) and a plurality of arc-shaped clips (81) are installed on the straight pipe (31). An arc-shaped hole (811) is formed in each arc-shaped clip (81), and the arc-shaped hole (811) penetrates through the arc-shaped clip (81). The binding band (82) sequentially passes through the plurality of arc-shaped holes (811). A buckle (83) is installed at one end of the binding band (82) passing out of the arc-shaped hole (811), and the other end of the binding band (82) passing out of the arc-shaped hole (811) is fixed by the buckle (83).
2. The modular integrated wiring device according to claim 1, characterized in that: A sliding sleeve (311) is installed at the bottom of each straight pipe (31). An adjusting plate (312) is slidably installed in each sliding sleeve (311). A driving component (4) for driving the adjusting plate (312) to move vertically is arranged on the base (1). There are two groups of the driving components (4), and the two groups of driving components (4) are arranged in one-to-one correspondence with the two adjusting plates (312).
3. The modular integrated wiring device according to claim 2, characterized in that: One group of the driving components (4) includes a lead screw (41) and a guide rod (42) installed on the top surface of the base (1). The adjusting plate (312) is slidably installed on the guide rod (42), and the adjusting plate (312) is threadedly connected to the lead screw (41).
4. The modular integrated wiring device according to claim 3, characterized in that: A synchronous pulley (411) is installed at the bottom of each lead screw (41). A synchronous belt (43) is sleeved on the two synchronous pulleys (411) together, and the two synchronous pulleys (411) are driven by the synchronous belt (43).
5. The modular integrated wiring device according to claim 4, wherein: A worm wheel (26) and a worm (27) are rotatably installed in a mounting plate (2) where the spur gear (25) is located. The worm wheel (26) and the worm (27) are meshed with each other. The worm wheel (26) is installed on one of the rotating shafts (23). A connecting rod (28) is installed on the mounting plate (2) where the spur gear (25) is located. One end of the connecting rod (28) away from the mounting plate (2) is installed with a drive box (5). A drive cavity (51) is formed in the drive box (5). A drive shaft (6) is rotatably installed in the drive cavity (51). A first bevel gear (61) is installed on the drive shaft (6). One end of the worm (27) extends into the drive cavity (51). A second bevel gear (271) is installed at the end of the worm (27) extending into the drive cavity (51). The first bevel gear (61) and the second bevel gear (271) can be meshed with each other.
6. The modular integrated wiring device according to claim 5, characterized in that: The drive shaft (6) slides vertically in the drive box (5). The top of the lead screw (41) extends into the drive cavity (51). A connection hole (412) for inserting the drive shaft (6) is formed in the top surface of the lead screw (41). A plug (63) is installed at the bottom of the drive shaft (6). A slot (413) for inserting the plug (63) is formed in the inner wall of the bottom surface of the connection hole (412).
7. The modular integrated wiring device according to claim 6, characterized in that: A through hole (52) is formed in the side wall of the drive box (5). The through hole (52) communicates with the drive cavity (51). A limit pin (7) is slidably installed in the through hole (52). A limit groove (64) for inserting the limit pin (7) is formed in the drive shaft (6). An inclined surface (71) is arranged at one end of the limit pin (7) close to the drive shaft (6). A conical surface (65) is arranged on the drive shaft (6). The conical surface (65) and the inclined surface (71) cooperate with each other. A baffle (72) is slidably installed in the drive cavity (51). The baffle (72) is fixedly connected to the limit pin (7). A spring (73) is sleeved on the limit pin. One end of the spring (73) is fixedly connected to the baffle (72), and the other end is connected to the inner wall of the drive cavity (51).
Citation Information
Patent Citations
Communication cable wiring construction equipment
CN215326076U
Manufacturing method of wire harness
JP2013008447A