Catenary punching bracket device

By designing a contact net drilling bracket device including a suspension bracket, a C-port cross frame, a sprocket type single-sided multi-point positioning module and a scraper plate, the problems of scrap accumulation and position deviation during the drilling of the suspension channel steel are solved, and efficient and accurate drilling operations and automatic scrap recycling are achieved.

CN120134023AActive Publication Date: 2025-06-13CHINA RAILWAY NO 10 BUREAU GRP ELECTRIC ENG CO LTD
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Patent Information

Application Number
CN202510616979.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-14
Publication Date
2025-06-13
Estimated Expiration
2045-05-14

AI Technical Summary

Technical Problem

In the existing overhead rigid contact network suspended channel steel drilling technology, waste chips accumulate quickly and require manual cleaning, which may cause the equipment lifting device to stagnate, affecting the drilling efficiency and quality. At the same time, the position offset of the suspension channel steel will reduce the drilling accuracy.

Method used

A contact mesh punching bracket device is designed, using components such as suspension bracket, C-port cross frame, sprocket type single-sided multi-point positioning module, scraper plate and connecting rod push structure. The position of scraper plate and the length of the electric telescopic rod are adjusted by detecting the distance sensor to achieve accurate positioning of suspension channel steel and automatic scraping of scraps.

Benefits of technology

The efficiency and accuracy of overhead rigid contact network suspension channel steel drilling operation is significantly improved, the need for manual cleaning is reduced, the equipment stuck problem caused by waste accumulation is avoided, and the stable position of the suspension channel steel during processing is ensured.

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Abstract

The invention relates to the technical field of catenary accessory machining instruments, in particular to a catenary punching bracket device which comprises a suspension bracket, C-opening transverse frames are arranged on the two sides of the top end of the suspension bracket, and a plurality of distance sensors are arranged on the opposite end faces of the C-opening transverse frames. A plurality of chain wheel type single-side multi-point positioning modules are arranged in the two C-opening transverse frames, a double-rack pushing module is installed on the outer wall of one side of the suspension bracket, longitudinal beams are arranged at the top ends of the two C-opening transverse frames, sliding plates are slidably installed at the two ends of the surfaces of the two longitudinal beams, and scraping plates are installed on the outer walls of one sides of the sliding plates. The scraping plate can automatically descend and make contact with the surface of the suspension bracket through control of the Z-axis lifting driving module, sweeps can be automatically scraped through cooperation of the scraping plate and the connecting rod pushing structure, and due to the fact that cleaning of the sweeps is conducted synchronously in the workpiece machining process, it is guaranteed that the surface of the suspension bracket is always kept clean.
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Description

Technical Field

[0001] The invention relates to the technical field of contact network accessories processing equipment, in particular to a contact network punching bracket device. Background Art

[0002] The overhead rigid contact network is an important component of the subway electric traction system. Its main function is to provide a stable power supply for subway trains. Its working principle is based on the power transmission between the pantograph and the contact network. The pantograph contacts the contact network wire through the slide plate, and transmits power to the traction motor of the train to drive the train forward. The overhead rigid contact network has many advantages, such as compact structure, convenient construction, low maintenance cost, and long service life. The suspension channel steel of the overhead rigid contact network requires drilling equipment during the processing process. The drilling equipment is used to open holes in the suspension channel steel so that the suspension channel steel can be bolted and fixed to the installation plane, thereby supporting the suspension system of the contact network and maintaining the height and tension of the contact network.

[0003] For example, Chinese invention patent CN111468758A discloses an auxiliary device for positioning hole punching of channel steel. According to the number of holes to be punched in the channel steel and the distance between the two holes, the positioning slider is inserted into the transverse scale and fixed with the set screw, and then the distance between the mounting plate and the positioning plate is adjusted according to the width of the channel steel. The bracket is difficult to operate and has poor supporting stability.

[0004] For example, Chinese invention patent CN109332759A belongs to the field of building construction technology, and specifically relates to a lever-type top plate drilling electric drill bracket and its construction method. The electric drill bracket includes a support vertical rod, a joystick, and a jacking vertical rod; the bottom of the support vertical rod is supported on the foundation surface, and is provided with a horizontal cross bar 1 and a horizontal cross bar 2; the drilling bracket has low drilling accuracy and is difficult to drill.

[0005] The existing drilling technology and device operation method of the suspended channel steel of the overhead rigid contact network are basically the same, that is, the lifting and movement of the drilling rig is controlled by a lifting device. However, after the suspension channel steel of the overhead rigid contact network is drilled using a bracket, a tooling and a drilling equipment, the waste generated during the drilling process will be retained on the bracket and the tooling, requiring staff to clean and maintain them from time to time. However, since the waste accumulates quickly and the cleaning work requires manual participation, it is easy to cause untimely or inadequate cleaning, resulting in waste accumulation, which not only increases the workload of the operator, but may also cause the waste to fall due to excessive accumulation, causing the lifting device of the equipment to become stuck, affecting the efficiency and quality of drilling.

[0006] Furthermore, if the position of the suspension channel steel is offset before drilling holes in the contact network suspension channel steel, it will not only increase the difficulty of clamping, but also reduce the subsequent drilling accuracy, thereby affecting the subsequent use quality of the suspension channel steel.

[0007] Meanwhile, when drilling holes in the side wall of the suspension channel steel, a thrust will be exerted on the inner wall of the suspension channel steel, which will cause the position of the suspension channel steel to shift, and ultimately affect the subsequent drilling quality.

[0008] When the width of the suspension channel steel changes, the position of the waste chips generated after drilling changes accordingly. If the waste chips are still scraped and cleaned according to the initial position, the complete and effective recovery of the waste chips cannot be achieved, and it will affect the subsequent drilling of the suspension channel steel. Summary of the Invention

[0009] The purpose of the present invention is to provide a catenary drilling bracket device to solve the problems raised in the above-mentioned background technology.

[0010] To achieve the above purpose, the present invention provides the following technical solutions: a catenary drilling bracket device, including a suspension bracket, both sides of the top of the suspension bracket are provided with C-port cross frames, a plurality of distance sensors are arranged on the facing end faces of the C-port cross frames, a plurality of sprocket-type single-sided multi-point positioning modules are arranged inside both of the C-port cross frames, a double-rack pushing module is installed on the outer wall of one side of the suspension bracket, longitudinal beams are arranged at the tops of both of the C-port cross frames, sliding plates are slidably installed at both ends of the surfaces of the two longitudinal beams, a scraping plate is installed on the outer wall of one side of the sliding plate, a Z-axis lifting drive module is installed on the outer wall of one side of one of the sliding plates, convex plates are arranged at one sides of the tops of both of the C-port cross frames, and a connecting rod pushing structure is installed on the outer wall of the convex plate close to the longitudinal beam; The connecting rod pushing structure includes a central shaft rotatably installed inside the convex plate, a connecting plate fixed to one end of the central shaft, an electric telescopic rod on one side of the connecting plate, and a fish-eye connecting rod hingedly installed on the outer wall of one side of the sliding plate. An bevel gear transmission structure for maintaining power transmission is installed between the connecting rod pushing structure and the sprocket-type single-sided multi-point positioning module.

[0011] Adjust the position of the scraping plate according to the distance value detected by the distance sensor, so as to correspondingly calibrate the position of the suspension channel steel, improve the positioning accuracy and clamping stability; at the same time, apply a reverse thrust to the inner wall at the other end of the suspension channel steel with the scraping plate during the process of drilling the inner wall of the suspension channel steel, effectively improving the drilling support of the suspension channel steel; after the drilling is completed, adjust the length of the electric telescopic rod according to the distance value detected by the distance sensor, and then adjust the reciprocating scraping range of the scraping plate, so as to ensure that all the waste chips can be completely and effectively scraped and recovered, and ensure the recovery quality.

[0012] Preferably, a completely penetrating waste discharge port is provided at the top of the suspension bracket on one side of the C-port cross frame. The waste discharge port is used for discharging waste chips generated during drilling. A discharge channel is installed at the bottom end of the suspension bracket below the waste discharge port. An opening is provided at the bottom end of the discharge channel. The connecting rod pushing structure, the sliding plate, and the scraping plate are used to discharge the waste chips remaining on the surface of the suspension bracket into the waste discharge port and the discharge channel.

[0013] Preferably, the sprocket-type single-sided multi-point positioning module includes a plurality of equally spaced rotating shafts rotatably installed inside the C-port cross frame, a blocking block fixed at one end of the surface of the rotating shaft, and a sprocket transmission structure installed at the top end of the rotating shaft. The sprocket transmission structure is used to connect the other rotating shafts in the X-axis direction and rotate synchronously.

[0014] Preferably, the workpiece clamping area is located between the two sprocket-type single-sided multi-point positioning modules. An elastic friction block is provided on the outer wall of one side of the blocking block close to the vertical central reference plane of the suspension bracket. The elastic friction block gradually inclines towards the vertical central reference plane of the suspension bracket from bottom to top, and the elastic friction block has elasticity.

[0015] Preferably, the double-rack pushing module includes a cylinder frame fixed on the outer wall of one side of the suspension bracket, a first cylinder installed inside the cylinder frame, and a connecting beam fixed at the top end of the piston rod of the first cylinder. Two mirror-symmetrical rack monomers are installed on the outer wall of one side of the connecting beam close to the C-port cross frame. A driven gear is provided at one end of the surface of one of the rotating shafts, and the driven gear and the rack monomer are meshed with each other.

[0016] Preferably, the rotating shaft drives the connecting rod pushing structure to work through a bevel gear transmission structure. A notch is provided on the outer wall of one side of the blocking block close to the rack monomer. The notch allows the rack monomer to horizontally slide in the X-axis direction. Concave openings are provided on the outer walls of both sides of the two C-port cross frames close to the connecting beam.

[0017] Preferably, a limiting groove is provided at the bottom of the sliding plate, and a limiting block is provided at the top of the longitudinal beam. The limiting block is in limiting sliding connection with the limiting groove. The end of the fish-eye connecting rod away from the sliding plate is hinged to the output end of the electric telescopic rod. The other end of the central shaft is in power connection with the rotating shaft through a bevel gear transmission structure.

[0018] Preferably, the Z-axis lifting drive module includes a U-shaped seat fixed at the bottom end of one of the sliding plates, a second cylinder installed at the bottom end of the U-shaped seat, and a sliding table slidably installed on the outer wall of one side of the sliding plate. A convex arm connected to the top end of the piston rod of the second cylinder is provided at one end of the sliding table.

[0019] Preferably, the other end of the sliding table is fixedly connected to the outer wall of one side of the scraping plate. A guide post is provided inside one of the sliding tables, and one end of the guide post penetrates to the outside of the other sliding table.

[0020] Preferably, the distance sensor is used to detect the distance value at the transverse frame end of the C port. A controller is provided on one side of the suspension bracket. The extension direction of the longitudinal beam is perpendicular to the extension direction of the C port transverse frame. The height value of the scraping plate is greater than the height value of the C port transverse frame.

[0021] Compared with the prior art, the beneficial effects of the present invention are as follows: 1. In the present invention, the drilling operation efficiency of the overhead rigid catenary suspension channel steel can be significantly improved, and high-precision multi-point positioning can be achieved at two symmetrical positions, ensuring that the suspension channel steel always maintains a stable position during the processing, and avoiding the occurrence of adverse phenomena such as displacement and vibration.

[0022] 2. In the present invention, the suspension channel steel can be quickly and stably clamped during the processing, reducing the instability and time-consuming caused by manual operation. The scraping plate automatically descends and contacts the surface of the suspension bracket, so that the waste chips can be automatically scraped off, ensuring that the surface of the suspension bracket always remains clean and avoiding the accumulation of waste chips affecting the processing accuracy or causing jams.

[0023] 3. In the present invention, with the change of the production requirements of different types of suspension channel steel workpieces, the dimensions or quantities of components such as the double-rack pushing module, the sprocket-type single-sided multi-point positioning module, and the scraping plate can be adjusted to flexibly adapt to the processing requirements of workpieces with different dimensions and shapes.

[0024] 4. In the present invention, the position of the scraping plate is adjusted according to the distance value detected by the distance sensor, so as to adjust the thrust of the scraping plate on the inner wall of the suspension channel steel, ensure the clamping and fixing of the suspension channel steel by multiple abutting blocks and the scraping plate, and improve the stability and accuracy of subsequent drilling.

[0025] 5. In the present invention, during the drilling process of the inner wall of the suspension channel steel, the thrust of the scraping plate in the other direction is correspondingly adjusted, so as to improve the stability and support of the drilling of the suspension channel steel; and after the drilling is completed, the scraping range of the scraping plate is adjusted according to the distance value detected by the distance sensor, so as to ensure that the scraping plate thoroughly and effectively scrapes and cleans the waste chips, and avoid affecting the subsequent drilling process of the suspension channel steel. BRIEF DESCRIPTION OF THE DRAWINGS

[0026] Figure 1 is a schematic three-dimensional structure of the present invention Figure 1 ; Figure 2 is a schematic front view structure of the present invention; Figure 3 is a schematic three-dimensional sectional structure of the present invention; Figure 4 is a schematic three-dimensional structure of the present invention Figure 2 ; Figure 5 is a schematic three-dimensional structure diagram of Embodiment 2 of the present invention; Figure 6 Schematic three-dimensional structure of the sprocket-type single-sided multi-point positioning module according to the second embodiment of the present invention Figure 1 ; Figure 7 Schematic three-dimensional structure of the sprocket-type single-sided multi-point positioning module according to the second embodiment of the present invention Figure 2 ; Figure 8 Schematic three-dimensional structure diagram of the connecting rod pushing structure according to the third embodiment of the present invention.

[0027] Figure 9 Schematic three-dimensional structure diagram of the connection state of the sliding table and the scraping plate according to the third embodiment of the present invention.

[0028] In the figure: 1, suspension bracket; 101, discharge channel; 2, waste discharge port; 3, double-rack pushing module; 301, cylinder frame; 302, first cylinder; 303, connecting beam; 304, rack unit; 4, C-port cross frame; 401, notch; 5, sprocket-type single-sided multi-point positioning module; 501, rotating shaft; 502, abutting block; 5021, notch; 5022, elastic friction block; 503, driven gear; 504, sprocket drive structure; 6, convex plate; 7, longitudinal beam; 8, sliding plate; 9, connecting rod pushing structure; 901, central shaft; 902, bevel gear drive structure; 903, connecting plate; 904, spherical eye connecting rod; 905, electric telescopic rod; 10, scraping plate; 11, Z-axis lifting drive module; 1101, U-shaped seat; 1102, second cylinder; 1103, sliding table; 1104, guide post; 1105, convex arm; 12, distance sensor. Detailed implementation manners

[0029] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.

[0030] Provided by Figures 1 to 9 The present invention includes a suspension bracket 1. On both sides of the top of the suspension bracket 1, C-port cross frames 4 are provided. The two C-port cross frames 4 are symmetrically arranged and the openings are in both side directions. Inside both of the two C-port cross frames 4, sprocket-type single-sided multi-point positioning modules 5 for fixing the catenary suspension channel steel workpiece to be drilled are provided. Between the two sprocket-type single-sided multi-point positioning modules 5 is a workpiece clamping area. Then, the sprocket-type single-sided multi-point positioning modules 5 clamp and fix both sides of the suspension channel steel. On the top of the suspension bracket 1 on one side of the C-port cross frame 4, a completely penetrating waste discharge port 2 is provided. The waste discharge port 2 is for discharging the waste chips generated during drilling. Since the suspension channel steel has a large size and weight, and the suspension bracket 1 has sufficient load-bearing capacity and stability to prevent the workpiece from sinking or tilting.

[0031] On one side outer wall of the suspension bracket 1, a double-rack pushing module 3 is installed, which is used to drive two sprocket-type single-sided multi-point positioning modules 5 to work synchronously and clamp the catenary suspension channel steel workpiece. The double-rack pushing module 3 continuously moves above the suspension bracket 1 and drives the sprocket-type single-sided multi-point positioning modules 5 to work and clamp and fix the suspension channel steel.

[0032] At the top ends of both C-shaped cross frames 4, longitudinal beams 7 are provided. The extending direction of the longitudinal beams 7 is perpendicular to the extending direction of the C-shaped cross frames 4. At both ends of the surfaces of the two longitudinal beams 7, sliding plates 8 are slidably installed. A limiting groove is provided at the bottom of the sliding plate 8, and a limiting block is provided at the top of the longitudinal beam 7. The limiting block is in limiting sliding connection with the limiting groove, so that the sliding plate 8 can stably move horizontally on the top of the longitudinal beam 7. On one side outer wall of the sliding plate 8 close to the sprocket-type single-sided multi-point positioning module 5, a scraping plate 10 is installed. The scraping plate 10 can not only position and support the suspension channel steel during punching, but also scrape and clean the waste chips on the top of the suspension bracket 1, ensuring the stability of subsequent punching of the suspension channel steel. On one side outer wall of one of the sliding plates 8, a Z-axis lifting drive module 11 for controlling the height of the scraping plate 10 is installed. The Z-axis lifting drive module 11 drives the scraping plate 10 to move up and down and adjusts the supporting and scraping heights.

[0033] On one side of the top ends of both C-shaped cross frames 4, convex plates 6 are provided. On one side outer wall of the convex plate 6 close to the longitudinal beam 7, a connecting rod pushing structure 9 for driving the sliding plate 8 and the scraping plate 10 to slide in the Y-axis direction is installed. An bevel gear transmission structure 902 for maintaining power transmission is installed between the connecting rod pushing structure 9 and the sprocket-type single-sided multi-point positioning module 5. The sprocket-type single-sided multi-point positioning module 5 works and drives the connecting rod pushing structure 9 to work through the bevel gear transmission structure 902.

[0034] At the bottom end of the suspension bracket 1 below the waste discharge port 2, a discharge channel 101 is installed. An opening is provided at the bottom end of the discharge channel 101. The connecting rod pushing structure 9, the sliding plate 8, and the scraping plate 10 are used to discharge the waste chips remaining on the surface of the suspension bracket 1 into the waste discharge port 2 and the discharge channel 101.

[0035] The sprocket-type single-sided multi-point positioning module 5 includes a plurality of equally spaced rotating shafts 501 rotatably installed inside the C-shaped cross frame 4, a resisting block 502 fixed to one end of the surface of the rotating shaft 501, and a sprocket transmission structure 504 installed at the top end of the rotating shaft 501. A driven gear 503 is provided at one end of the surface of one of the rotating shafts 501. The sprocket transmission structure 504 is used to connect the other rotating shafts 501 in the X-axis direction and rotate together. The use of the sprocket transmission structure 504 makes the rotating shafts 501 not slip during rotation, ensuring the stable transmission of rotational power.

[0036] After the catenary suspension channel steel to be processed is placed on the suspension bracket 1, the controller activates the double-rack pushing module 3. The double-rack pushing module 3 drives the driven gears 503 in the two sprocket-type single-sided multi-point positioning modules 5 to rotate synchronously. Then, the driven gears 503 drive the rotating shafts 501 to rotate. During this process, the other rotating shafts 501 in the same X-axis direction rotate synchronously driven by the sprocket transmission structure 504. The rotating shafts 501 will drive the abutting blocks 502 to swing towards the vertical central reference plane of the suspension bracket 1, that is, the abutting blocks 502 exert a force on one outer wall of the catenary suspension channel steel, so that the catenary suspension channel steel can be clamped and fixed by the abutting blocks 502.

[0037] An elastic friction block 5022 is provided on the outer wall of the abutting block 502 close to the vertical central reference plane of the suspension bracket 1. The elastic friction block 5022 has elasticity. The elastic friction block 5022 gradually inclines towards the vertical central reference plane of the suspension bracket 1 from bottom to top. The setting of the elastic friction block 5022 can enable the outer wall surface and the bottom edge of the suspension channel steel to be stressed simultaneously, that is, both the horizontal direction and the Z-axis direction of the suspension channel steel are stressed, helping the suspension channel steel to be better fixed and limited.

[0038] Through the support of multiple positioning points, the weight of the workpiece can be more evenly distributed, avoiding offset or instability caused by single-point positioning. Especially when processing workpieces such as suspension channel steel with large weight and irregular shape, this multi-point support system can greatly improve the processing accuracy. At the same time, multi-point positioning can provide balanced supporting force to ensure that the workpiece does not deform during processing.

[0039] The double-rack pushing module 3 includes a cylinder frame 301 fixed on the outer wall of one side of the suspension bracket 1, a first cylinder 302 installed inside the cylinder frame 301, and a connecting beam 303 fixed to the top of the piston rod of the first cylinder 302. Two mirror-symmetrical rack monomers 304 are installed on the outer wall of the connecting beam 303 close to the C-port cross frame 4. The driven gears 503 and the rack monomers 304 mesh with each other. The rotating shaft 501 drives the connecting rod pushing structure 9 to work through the bevel gear transmission structure 902. The first cylinder 302 drives the connecting beam 303 and the two rack monomers 304 to slide in the X-axis direction. Since the two rack monomers 304 are mirror-symmetrical, each rack monomer 304 drives a driven gear 503 to rotate, forcing the sprocket-type single-sided multi-point positioning module 5 to act. Compared with motor-driven equipment, etc., the structure of the double-rack pushing module 3 can better balance the mechanical load during the transmission process and avoid dragging or jumping phenomena caused by uneven transmission, thus ensuring the stable clamping of the catenary suspension channel steel workpiece.

[0040] On one side outer wall of the abutting block 502 close to the rack unit 304, a notch 5021 is provided. The notch 5021 allows the rack unit 304 to horizontally slide in the X-axis direction. On one side outer walls of the two C-port cross beams 4 close to the connecting beam 303, notches 401 are provided. The provision of the notch 5021 allows the rack unit 304 to slide, avoiding movement jamming caused by the X-axis sliding of the rack unit 304 and the yaw of the abutting block 502. The provision of the notch 401 allows the connecting beam 303 to slide in the X-axis, promoting the stable cooperation of the double-rack pushing module 3 and the sprocket-type single-sided multi-point positioning module 5.

[0041] The Z-axis lifting drive module 11 includes a U-shaped seat 1101 fixed to the bottom end of one of the sliding plates 8, a second cylinder 1102 installed at the bottom end of the U-shaped seat 1101, and a sliding table 1103 slidably installed on one side outer wall of the sliding plate 8. One end of the sliding table 1103 is provided with a convex arm 1105 connected to the top end of the piston rod of the second cylinder 1102. The other end of the sliding table 1103 is fixedly connected to one side outer wall of the scraping plate 10. Inside one of the sliding tables 1103, a guide post 1104 is provided, and one end of the guide post 1104 penetrates to the outside of the other sliding table 1103.

[0042] When the catenary suspension channel steel workpiece is processed and removed from between the two symmetrical sprocket-type single-sided multi-point positioning modules 5, the controller controls the Z-axis lifting drive module 11 to work. Then, the second cylinder 1102 drives the convex arm 1105, one of the sliding tables 1103, and the scraping plate 10 to move downward. Since the sliding table 1103 is slidably connected to the other sliding table 1103 through the guide post 1104, the two sliding tables 1103 and the two scraping plates 10 in the Y-axis direction can move downward under the drive of the second cylinder 1102 until the bottom edge of the scraping plate 10 contacts the upper surface of the suspension bracket 1, thus facilitating the subsequent forward movement of the connecting rod pushing structure 9 of the scraping plate 10, the sliding of the sliding plate 8, and the removal of waste chips.

[0043] The connecting rod pushing structure 9 includes a central shaft 901 rotatably installed inside the convex plate 6, a connecting plate 903 fixed to one end of the central shaft 901, an electric telescopic rod 905 on one side of the connecting plate 903, and a fish-eye connecting rod 904 hingedly installed on one side outer wall of the sliding plate 8. One end of the fish-eye connecting rod 904 away from the sliding plate 8 is hingedly connected to the output end of the electric telescopic rod 905. The other end of the central shaft 901 is in power connection with the rotating shaft 501 through a bevel gear transmission structure 902.

[0044] After the Z-axis lifting drive module 11 controls the scraping plate 10 to contact the suspension bracket 1, the controller activates the double-rack pushing module 3. When the double-rack pushing module 3 drives one of the rotating shafts 501, the rotating shaft 501 drives the central shaft 901 in the convex plate 6 to rotate through the bevel gear transmission structure 902. Then, the rotational motion of the connecting plate 903 and the electric telescopic rod 905 is converted into the Y-axis sliding motion of the sliding plate 8, the sliding table 1103, and the scraping plate 10 through the spherical eye connecting rod 904. Subsequently, the scraping plate 10 pushes the waste chips remaining on the surface of the suspension bracket 1 towards the waste discharge port 2, enabling the waste chips to enter the discharge channel 101. This makes the waste chip cleaning process without manual intervention, reducing the time and labor intensity of manual cleaning.

[0045] After the cleaning is completed, the Z-axis lifting drive module 11 controls the scraping plate 10 to move away from the suspension bracket 1 again to prevent the scraping plate 10 from obstructing the subsequent clamping action of the sprocket-type single-sided multi-point positioning module 5.

[0046] Before the operation of this application embodiment starts, initially, multiple abutting blocks 502 and the scraping plate 10 are both in their initial positions, that is, the output end of the second cylinder 1102 is at its maximum value. The second cylinder 1102 drives the convex arm 1105 to move upward. The convex arm 1105 drives the scraping plate 10 to move upward through the sliding table 1103 and the guide post 1104 and reaches the maximum value. The height value of the scraping plate 10 is greater than the height value of the C-port cross frame 4, thereby avoiding the influence of the scraping plate 10 on the blanking of the suspended channel steel. The output end of the electric telescopic rod 905 is at its minimum value. The electric telescopic rod 905 drives the scraping plate 10 to be in its initial position through the spherical eye connecting rod 904 and the sliding plate 8. The distance between the two scraping plates 10 is greater than the width value of the suspended channel steel. Then, the staff places the catenary suspended channel steel to be processed on the suspension bracket 1, and the opening of the suspended channel steel faces upward. The suspension bracket 1 is the basic equipment for supporting the suspended channel steel workpiece, providing a stable platform to ensure that the workpiece will not move due to gravity or external forces during the processing.

[0047] Next, the staff activates the double-rack pushing module 3. The double-rack pushing module 3 can drive the two sprocket-type single-sided multi-point positioning modules 5 to perform actions synchronously. During this process, the two sprocket-type single-sided multi-point positioning modules 5 clamp the suspended channel steel at multiple symmetric positioning points. Each sprocket-type single-sided multi-point positioning module 5 is equipped with multiple positioning points, and these positioning points are evenly distributed, which can effectively prevent the workpiece from shifting or deforming during the processing, avoiding the deficiencies of the traditional single clamping point.

[0048] During this process, since the position of the suspension channel steel on the suspension bracket 1 is different, the distance values detected by the distance sensors 12 are different. If the distance value detected by the distance sensor 12 on one side is greater than the set distance preset value, and the distance value detected by the distance sensor 12 on the other side is less than the set distance preset value, it indicates that the suspension channel steel has shifted and is close to the side where the distance value detected by the distance sensor 12 is smaller. At this time, in order to quickly and effectively correct the position of the suspension channel steel, the controller first controls the output ends of the two electric telescopic rods 905 to extend, and the extension distance of the output end of the electric telescopic rod 905 on the side where the distance value detected by the distance sensor 12 is larger is greater than the extension distance of the output end of the electric telescopic rod 905 on the side where the distance value detected by the distance sensor 12 is smaller. The electric telescopic rod 905 drives the scraping plate 10 to move synchronously through the fisheye connecting rod 904 and the sliding plate 8. At the same time, the second cylinder 1102 is started synchronously and its output end shortens. The second cylinder 1102 drives the convex arm 1105 to move downward. The convex arm 1105 drives the scraping plate 10 to move downward through the sliding table 1103 and the guide post 1104. The scraping plate 10 moves downward and squeezes and contacts the inner bottom of the opening of the suspension channel steel, thereby improving the subsequent positioning and clamping effect.

[0049] After that, the controller controls the first cylinder 302 to start and its output end extends. The first cylinder 302 drives the two rack monomers 304 to move synchronously through the connecting beam 303. The rack monomers 304 mesh with the driven gear 503 and drive the rotating shaft 501 at the end to rotate. The rotating shaft 501 at the end drives the other multiple rotating shafts 501 to rotate synchronously through a plurality of sprocket transmission structures 504. The rotating shaft 501 drives the abutting block 502 to move towards the side wall end of the suspension channel steel, and thus realizes the extrusion support for the side wall of the suspension channel steel through the elastic friction block 5022 at the end of the abutting block 502. At the same time, when the rotating shaft 501 rotates, it drives the central shaft 901 to rotate through the bevel gear transmission structure 902. The central shaft 901 drives the connecting plate 903 to rotate. The connecting plate 903 drives the sliding plate 8 to move horizontally through the electric telescopic rod 905 and the fisheye connecting rod 904. The sliding plate 8 drives the scraping plate 10 to move to both sides inside the suspension channel steel. And because the extension distance of the electric telescopic rod 905 on the side where the distance value detected by the distance sensor 12 is larger increases, when the connecting plate 903 rotates, it drives the sliding plate 8 to move a larger distance through the electric telescopic rod 905 and the fisheye connecting rod 904. The sliding plate 8 drives the scraping plate 10 to move a larger distance. After the scraping plate 10 squeezes and contacts the inner wall of the suspension channel steel, it drives the suspension channel steel to continuously move towards the end where the distance value detected by the distance sensor 12 is larger on the top of the suspension bracket 1, thereby realizing the continuous and precise positioning of the suspension channel steel on the top of the suspension bracket 1, and further ensuring the clamping stability and drilling accuracy of the suspension channel steel subsequently.

[0050] As the suspension channel steel continuously moves on the top of the suspension bracket 1, the distance value detected by the distance sensor 12 continuously changes. The distance between the suspension channel steel and the side with a larger distance value detected by the distance sensor 12 continuously decreases, and the distance value detected by the distance sensor 12 on this side continuously decreases. Then the controller controls the output end of the electric telescopic rod 905 on this side to continuously decrease, thereby ensuring the pushing and positioning stability of the scraping plate 10 against the inner wall of the suspension channel steel. When the distance values detected by the distance sensors 12 on both sides are equal and equal to the set distance preset value, it indicates that the suspension channel steel is at the accurate drilling position at this time. The controller controls the first cylinder 302 to stop working, and the multiple abutting blocks 502 and the scraping plate 10 cooperate to jointly clamp and position the suspension channel steel.

[0051] Once the suspension channel steel is stably fixed on the suspension bracket 1 and is precisely clamped through the positioning module, the staff can start to execute the processing task and complete the drilling operation on the suspension channel steel by using the drilling equipment. During this process, the sprocket-type single-sided multi-point positioning module 5 can keep the workpiece stationary, help the workpiece be in the correct position, and avoid processing errors caused by workpiece displacement.

[0052] And before processing and drilling the side wall of the suspension channel steel, the controller controls the second cylinder 1102 to start and its output end extends. The second cylinder 1102 drives the convex arm 1105 to move upward. The convex arm 1105 drives the scraping plate 10 to move upward through the sliding table 1103 and the guiding column 1104. The scraping plate 10 disengages from the extrusion contact with the inner bottom of the suspension channel steel, thereby avoiding the subsequent drilling position on the inner wall of the suspension channel steel and improving the subsequent drilling accuracy and efficiency. After the scraping plate 10 rises to a suitable position, the drilling equipment works horizontally in the inner cavity of the suspension channel steel and drills the inner wall of the suspension channel steel. At this time, the height of the drilling equipment is positioned by means of the scraping plate 10, further ensuring the accuracy and uniformity of the drilling position.

[0053] During the drilling process of the drilling equipment, the drilling equipment applies an extrusion distance to one side inner wall of the suspension channel steel. Then the waste chips formed after drilling the suspension channel steel can directly fall on the top of the suspension bracket 1 and are convenient for subsequent scraping and recycling of the waste chips. And the suspension channel steel moves synchronously under the action of this extrusion distance. The outer side wall of the suspension channel steel squeezes the elastic friction block 5022 to move synchronously. The distance value detected by the distance sensor 12 on this side decreases, and the distance value detected by the distance sensor 12 on the other side increases. During this process, it is necessary to improve the reverse supporting force for the suspension channel steel to avoid the drilling equipment driving the suspension channel steel to shift during the drilling process and affecting the drilling accuracy.

[0054] Then the output end of the first cylinder 302 of the controller continues to start and extend. The first cylinder 302 meshes with the driven gear 503 and drives the rotating shaft 501 to rotate. The rotating shaft 501 drives a plurality of abutting blocks 502 to move through the sprocket transmission structure 504. The abutting blocks 502 drive the elastic friction block 5022 to move and increase the extrusion distance against the outer wall of the suspended channel steel. And when the rotating shaft 501 rotates, it drives the central shaft 901 to rotate through the bevel gear transmission structure 902. The central shaft 901 drives the connecting plate 903 to rotate. At this time, the output end of the electric telescopic rod 905 on the side where the distance value detected by the distance sensor 12 increases extends. Then the connecting plate 903 on this side drives the slide plate 8 to move a greater distance through the electric telescopic rod 905 and the fish-eye connecting rod 904. The slide plate 8 drives the scraping plate 10 to move a greater distance. The thrust exerted by the scraping plate 10 on the inner wall of the suspended channel steel on the side where the distance value detected by the distance sensor 12 increases increases. Thereby, the reverse support force during the drilling of the suspended channel steel is improved, ensuring the stability and positioning of the suspended channel steel during the drilling operation of the drilling equipment, and avoiding the deviation of the suspended channel steel and affecting the drilling quality after a long-time drilling operation.

[0055] When the drilling of the inner wall of the suspended channel steel is completed, the controller controls the first cylinder 302 to move in the reverse direction. At the same time, the electric telescopic rod 905 on the side where the distance value detected by the distance sensor 12 increases starts and its output end shortens. Then, through a plurality of abutting blocks 502 and the scraping plate 10, the suspended channel steel is driven to return to the clamped state, and the above process is repeated to continuously perform subsequent multiple drilling processes.

[0056] After the processing of the suspended channel steel is completed, the controller starts the double-rack pushing module 3 and the Z-axis lifting drive module 11. The double-rack pushing module 3 resets the sprocket-type single-sided multi-point positioning module 5 to release the suspended channel steel. And during this process, the Z-axis lifting drive module 11 drives the scraping plate 10 to move downward until the bottom edge of the scraping plate 10 contacts the upper surface of the suspension bracket 1. During the operation of the sprocket-type single-sided multi-point positioning module 5, the connecting rod pushing structure 9 also synchronously receives the driving power from the double-rack pushing module 3 and the sprocket-type single-sided multi-point positioning module 5. Then the scraping plate 10 moves in the Y-axis direction under the drive of the connecting rod pushing structure 9. The two connecting rod pushing structures 9 ensure that the two scraping plates 10 move together under synchronous control and can accurately scrape the waste chips on the surface of the suspension bracket 1, so that the waste chips are poured into the waste discharge port 2, thereby quickly removing the waste chips and avoiding the retention or accumulation of waste chips on the surface of the workpiece.

[0057] And when actually scraping and cleaning the waste chips above the suspension bracket 1, if the distance value detected by the distance sensor 12 is smaller initially, it means that the width value of the suspended channel steel at the top of the suspension bracket 1 is larger, and the range for subsequent scraping and cleaning of the waste chips is larger.

[0058] Therefore, when the distance value detected by the distance sensor 12 decreases, after the cutting of the suspended channel steel is completed, the controller first controls the second cylinder 1102 to start and the output end is shortened to the minimum value, then the scraping plate 10 moves downward synchronously to the minimum value, the bottom of the scraping plate 10 is in mutual extrusion contact with the top of the suspension bracket 1, the elongation distance of the output end of the electric telescopic rod 905 increases, then the connecting plate 903 rotates and drives the sliding plate 8 to move horizontally above the longitudinal beam 7 through the electric telescopic rod 905 and the fish-eye connecting rod 904, and the horizontal movement range of the sliding plate 8 driving the scraping plate 10 on the top of the suspension bracket 1 increases. With the continuous reciprocating horizontal scraping of the scraping plate 10, the waste chips can enter the discharge channel 101 inside the discharge port 2 completely and effectively for recycling, further ensuring the effective scraping effect on the waste chips on the top of the suspension bracket 1, with higher scraping quality and better cleaning effect, effectively avoiding affecting the subsequent punching of the suspended scrap steel.

[0059] After the waste chip cleaning is completed, the sprocket-type single-sided multi-point positioning module 5 and the scraping plate 10 return to the initial position under the control of the double-rack pushing module 3. After all components return to the initial state, the staff can easily place the next batch of workpieces to be processed on the suspension bracket 1 and continue the processing. During this process, the waste chips have been cleaned, the suspension bracket 1 remains clean, and the staff does not need additional cleaning work.

[0060] It should be noted that in this article, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the term "comprising", "including" or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements not only includes those elements, but also includes other elements not expressly listed, or also includes elements inherent to such process, method, article or device.

[0061] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principle and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A contact network punching bracket device, characterized in that: It comprises a suspension bracket (1), C-shaped cross frames (4) are arranged on both sides of the top of the suspension bracket (1), and the facing end surfaces of the C-shaped cross frames (4) are arranged with a plurality of distance sensors (12), and the interiors of the two C-shaped cross frames (4) are arranged with a plurality of sprocket-type single-sided multi-point positioning modules (5), a double-rack push module (3) is installed on the outer wall of one side of the suspension bracket (1), and the tops of the two C-shaped cross frames (4) are arranged with longitudinal beams (7), and the two ends of the surfaces of the two longitudinal beams (7) are slidably mounted with slide plates (8), and a scraper plate (10) is installed on the outer wall of one side of the slide plates (8), and a Z-axis lifting drive module (11) is installed on the outer wall of one side of one of the slide plates (8), and a convex plate (6) is arranged on one side of the top of the two C-shaped cross frames (4), and a connecting rod push structure (9) is installed on the outer wall of the convex plate (6) close to the longitudinal beam (7); The connecting rod pushing structure (9) comprises a central shaft (901) rotatably mounted inside the convex plate (6), a connecting plate (903) fixed at one end of the central shaft (901), an electric telescopic rod (905) on one side of the connecting plate (903), and a fisheye connecting rod (904) hingedly mounted on the outer wall of one side of the slide plate (8), and a bevel gear transmission structure (902) for maintaining power transmission is installed between the connecting rod pushing structure (9) and the sprocket-type single-sided multi-point positioning module (5).

2. A contact network punching bracket device according to claim 1, characterized in that: A completely penetrating waste discharge port (2) is provided at the top end of the suspension bracket (1) on one side of the C-mouth cross frame (4), and the waste discharge port (2) is used to discharge waste chips generated during drilling. A discharge channel (101) is installed at the bottom end of the suspension bracket (1) below the waste discharge port (2), and an opening is provided at the bottom end of the discharge channel (101). The connecting rod pushing structure (9), the slide plate (8), and the scraper plate (10) are used to discharge waste chips retained on the surface of the suspension bracket (1) into the waste discharge port (2) and the discharge channel (101).

3. A contact network punching bracket device according to claim 1, characterized in that: The sprocket-type single-sided multi-point positioning module (5) comprises a plurality of equally spaced rotating shafts (501) rotatably mounted inside the C-mouth cross frame (4), a stopper (502) fixed at one end of the surface of the rotating shaft (501), and a sprocket transmission structure (504) mounted at the top of the rotating shaft (501), wherein the sprocket transmission structure (504) is used to connect the remaining rotating shafts (501) in the X-axis direction and rotate simultaneously.

4. A contact network punching bracket device according to claim 3, characterized in that: A workpiece clamping area is provided between the two sprocket-type single-sided multi-point positioning modules (5); an elastic friction block (5022) is provided on an outer wall of the stop block (502) close to the vertical center reference plane of the suspension bracket (1); the elastic friction block (5022) is gradually inclined from bottom to top toward the vertical center reference plane of the suspension bracket (1); and the elastic friction block (5022) is elastic.

5. A contact network punching bracket device according to claim 3, characterized in that: The double-rack pushing module (3) comprises a cylinder frame (301) fixed on an outer wall of one side of a suspension bracket (1), a first cylinder (302) installed inside the cylinder frame (301), and a connecting beam (303) fixed to the top end of the piston rod of the first cylinder (302), and two mirror-symmetrical rack monomers (304) are installed on the outer wall of one side of the connecting beam (303) close to the C-port cross frame (4), and a driven gear (503) is provided at one end of the surface of one of the rotating shafts (501), and the driven gear (503) and the rack monomer (304) are meshed with each other.

6. A contact network punching bracket device according to claim 5, characterized in that: The rotating shaft (501) drives the connecting rod pushing structure (9) to work via the bevel gear transmission structure (902); a notch (5021) is provided on the outer wall of the stop block (502) close to the rack monomer (304); the notch (5021) allows the rack monomer (304) to slide horizontally in the X-axis direction; and a notch (401) is provided on the outer wall of the two C-shaped cross frames (4) close to the connecting beam (303).

7. A contact network punching bracket device according to claim 1, characterized in that: A limiting groove is provided at the bottom of the slide plate (8), a limiting block is provided at the top of the longitudinal beam (7), the limiting block is slidably connected to the limiting groove, one end of the fisheye connecting rod (904) away from the slide plate (8) is hinged to the output end of the electric telescopic rod (905), and the other end of the central shaft (901) maintains power connection with the rotating shaft (501) through a bevel gear transmission structure (902).

8. The contact network punching bracket device according to claim 1, characterized in that: The Z-axis lifting drive module (11) comprises a U-shaped seat (1101) fixed to the bottom end of one of the slides (8), a second cylinder (1102) installed at the bottom end of the U-shaped seat (1101), and a slide table (1103) slidably mounted on an outer wall of one side of the slide table (8), and one end of the slide table (1103) is provided with a protruding arm (1105) connected to the top end of the piston rod of the second cylinder (1102).

9. A contact network punching bracket device according to claim 8, characterized in that: The other end of the slide (1103) is fixedly connected to an outer wall of one side of the scraper plate (10), wherein a guide column (1104) is arranged inside one of the slides (1103), and one end of the guide column (1104) passes through the outside of the other slide (1103).

10. A contact network punching bracket device according to claim 1, characterized in that: The distance sensor (12) is used to detect the distance value of the end of the C-mouth cross frame (4), a controller is provided on one side of the suspension bracket (1), the extension direction of the longitudinal beam (7) is perpendicular to the extension direction of the C-mouth cross frame (4), and the height value of the scraper plate (10) is greater than the height value of the C-mouth cross frame (4).

Citation Information

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