A follow-up cutting machine
The sliding mechanism of the follow-up cutting machine realizes the wall panels while conveying and cutting, which solves the problem of frequent shutdowns in the prior art and improves production efficiency and cutting quality.
Patent Information
- Application Number
- CN202211293674.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-10-21
- Publication Date
- 2025-08-12
- Estimated Expiration
- 2042-10-21
AI Technical Summary
In the prior art, cutting equipment requires frequent stopping of conveying roller sets, resulting in low wall panel production efficiency.
The follow-up cutting machine is adopted, and the conveying mechanism and the cutting mechanism slide simultaneously through the sliding mechanism, realizing the cutting of the wall panel while conveying and reducing downtime.
Improves wall panel production efficiency, reduces damage to the conveying mechanism, and ensures cutting quality and accuracy.
Smart Images

Figure CN115674315B_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of wall panel processing, and in particular to a follow-up cutting machine. Background Art
[0002] Currently, GLC siliceous lightweight panels are a new type of green, energy-saving building material. They utilize crystal transformation enhancement technology, a rational production process that reprograms the molecular structure of cement-based materials, enhancing cement strength by up to 113%. GLC wall panels are produced using a wet-molding process, using cement, fly ash, and gypsum as primary raw materials. They are also blended with chopped fiber, lightweight aggregate, waterproofing agents, and foaming agents. Steel grid reinforcement is added where necessary. These panels are then cast into lightweight strips and are primarily used for non-load-bearing walls of various structures. The GLC lightweight interior wall panels used in non-load-bearing walls are assembled in a modular format, with corresponding mortise and tenon joints, as well as locating holes and columns, installed on the sides of the panels. The flat mold production process for GLC lightweight wall panels includes batching, blending, injection molding, foaming, demolding, natural curing, cutting, and rolling off the assembly line. Cutting equipment is required for the cutting process.
[0003] In the prior art, the cutting equipment includes a conveyor roller group and a cutting machine. The conveyor roller group conveys the wall panels after production and processing to the cutting machine. According to the customer's requirements for the length of the wall panels, the conveyor roller group stops conveying the panels, and then the cutting machine is used to cut the panels. The panels are then driven forward by the conveyor roller group for the next cutting.
[0004] In the process of implementing this application, the inventors found that there are at least the following problems in this technology: the conveyor roller group needs to be stopped every time a board is cut, which greatly increases the time required to cut a board, and thus leads to relatively low production efficiency of wall panels. Summary of the Invention
[0005] In order to improve the production efficiency of wall panels, the present application provides a follow-up cutting machine.
[0006] The present application provides a follow-up cutting machine, which adopts the following technical solution:
[0007] A follow-up cutting machine includes a frame, a conveying mechanism, a cutting mechanism and a sliding mechanism. The conveying mechanism is arranged on the frame. The sliding mechanism includes a transverse slide rail, a sliding frame and a driving assembly. Two transverse slide rails are provided on the frame, and the two transverse slide rails are respectively located on both sides of the conveying mechanism; one sliding frame is connected to the two transverse slide rails for sliding movement, and the sliding frame is located above the conveying mechanism, and the cutting mechanism is arranged on the sliding frame; the driving assembly is arranged on the frame, and the driving assembly is connected to the sliding frame and drives the sliding frame to slide.
[0008] By adopting the above technical solution, when the wall panels are cut, the wall panels are first driven by the conveying mechanism to slide to the bottom of the cutting mechanism. According to production needs, the driving assembly is used to drive the sliding frame to slide along the length direction of the slide rail, and the cutting mechanism and the wall panels slide synchronously. Then, the cutting mechanism is started to cut the wall panels to form wall panels of appropriate length. Through the provided sliding mechanism, the conveying mechanism can convey the wall panels non-stop, and cutting and conveying are carried out simultaneously, so that the production efficiency of the wall panels is further improved, and at the same time, the damage to the conveying mechanism caused by constantly starting and stopping the conveying mechanism can be reduced.
[0009] Optionally, the driving assembly includes an electric push cylinder, which is arranged on the frame, and the piston rod of the electric push cylinder is connected to the sliding frame; the sliding mechanism also includes a signal acquisition component, which is arranged on the conveying mechanism, and the signal acquisition component is used to collect the position of the end of the wall panel. The signal acquisition component controls the electric push cylinder to reset and controls the cutting mechanism to cut the plate.
[0010] By adopting the above technical solution, when the wall panel is cut, the wall panel is first driven by the conveying mechanism to slide to the bottom of the cutting mechanism. According to production needs, the electric push cylinder is started, and the piston rod of the electric push cylinder drives the sliding frame to slide along the length direction of the slide rail. The cutting mechanism and the wall panel slide synchronously, and then the cutting mechanism is started to cut the wall panel to form a wall panel of appropriate length. The set electric push cylinder has a simple structure and the movement of the electric push cylinder is stable, which can reduce the damage to the cutting mechanism and wall panel caused by the jamming of the sliding frame.
[0011] Optionally, the conveying mechanism is provided with an adjustment component, and the signal collecting component slides along the length direction of the conveying mechanism through the adjustment component.
[0012] By adopting the above technical solution, when the lengths of the wall panels to be cut are different, the adjustment component can be used to adjust the position of the signal collection component, changing the time from the wall panel cutting position to the signal collection component, thereby achieving the purpose of cutting wall panels of different lengths.
[0013] Optionally, the cutting mechanism includes a longitudinal slide rail, a longitudinal sliding frame, a longitudinal movement assembly and a cutting assembly, the longitudinal slide rail is arranged on the sliding frame and is perpendicular to the length direction of the conveying mechanism; the longitudinal sliding frame is slidingly arranged on the longitudinal slide rail, and the cutting assembly is arranged on the longitudinal sliding frame; the longitudinal movement assembly is arranged on the longitudinal slide rail, and the longitudinal movement assembly is connected to the longitudinal sliding frame and drives the longitudinal sliding frame to slide.
[0014] By adopting the above technical solution, when cutting the wall panel, the longitudinal movement component is first used to drive the longitudinal sliding frame to slide, the longitudinal sliding frame drives the cutting component to slide, and the cutting component cuts the wall panel; the set cutting mechanism has a simple structure and is easy to operate.
[0015] Optionally, the cutting mechanism also includes a speed change assembly, which includes a first speed change monitoring component, a second speed change monitoring component and a feedback plate, the feedback plate is arranged on the longitudinal sliding frame, the first speed change monitoring component is arranged on the sliding frame, and the second speed change monitoring component is arranged on the sliding frame, the first speed change monitoring component and the second speed change monitoring component are both facing the feedback plate, and the first speed change monitoring component and the second speed change monitoring component are used to control the travel speed of the longitudinal movement assembly.
[0016] By adopting the above technical solution, when cutting the wall panel, the cutting component separates from the wall panel after cutting the wall panel. In the process of the cutting component approaching the wall panel, the cutting component always maintains the same running speed to approach and cut the wall panel. When the cutting component moves too fast, the wall panel will not be cut through, which will cause the cutting component to be overloaded, causing damage to the wall panel and the cutting component. When the speed of approaching the wall panel is the same as the speed during cutting, time will be wasted. Therefore, the speed change component set up can effectively monitor the status of the cutting component, realize fast movement when there is no load, and slow movement when there is a load, thereby improving cutting efficiency and reducing damage to the wall panel or cutting component.
[0017] Optionally, a correction mechanism is provided on the sliding frame, and the correction mechanism includes a fixed frame, a correction block and a power assembly. Two groups of the fixed frames are provided on the sliding frame, and the number of the fixed frames in each group is at least one; the two groups of the fixed frames are respectively located on both sides of the wall panel, and a plurality of the correction blocks are slidably provided on the fixed frames; the power assembly is provided on each of the fixed frames, and the power assembly is connected to the correction block and drives the correction block to slide.
[0018] By adopting the above technical solution, when cutting the wall panel, the power component is first used to drive the correction block to slide, and the correction blocks on both sides of the wall panel are in contact with the wall panel to fix the wall panel, and then the wall panel is cut with the cutting component; through the provided correction mechanism, on the one hand, the wall panel can be slightly corrected so that the cutting line is perpendicular to the length direction of the wall panel, and on the other hand, the wall panel can be clamped to reduce the wall panel jumping or position change during the cutting process, which causes the produced wall panels to not meet the specifications, so that the production quality of the wall panels can be maintained.
[0019] Optionally, the power assembly includes a cylinder, and a plurality of the cylinders are provided on the fixing frame. The piston rods of the cylinders are connected to the correction block and drive the correction block to slide.
[0020] By adopting the above technical solution, when cutting the wall panel, the correction block is first driven to slide by the cylinder, and the correction blocks on both sides of the wall panel are in contact with the wall panel to fix the wall panel, and then the wall panel is cut with the cutting assembly; the power part is set as a cylinder, the cylinder has high stability, and a constant air pressure can be applied to the cylinder to increase the stability of the correction block.
[0021] Optionally, the correction mechanism also includes an abutment plate, a guide rod and a telescopic spring. The abutment plate is slidably arranged on the side of the correction block away from the power assembly through the guide rod. The telescopic spring is arranged on the guide rod. The telescopic spring is connected to the abutment plate and drives the abutment plate away from the correction block.
[0022] By adopting the above technical solution, when the correction block clamps the wall panel, the abutment plate first abuts against the wall panel, and then as the correction block slides, the abutment plate approaches the correction block, and the guide rod drives the telescopic spring to contract and accumulate elastic potential energy; through the provision of the abutment plate, the direct contact between excessive rigid force and the wall panel is reduced, thereby reducing damage to the wall panel.
[0023] Optionally, the correction mechanism also includes an upper pressure assembly, which includes a support seat, a rotating rod and an upper pressure block, wherein the support seat is arranged on the correction block; the rotating rod is rotatably arranged on the support seat, the rotating rod is connected to the guide rod, and the guide rod drives the rotating rod to rotate; the upper pressure block is arranged on the rotating rod, and the upper pressure block is pressed against the wall panel as the rotating rod rotates.
[0024] By adopting the above technical solution, when the abutment plate approaches the correction block, the abutment plate drives the guide rod to slide, the guide rod drives the rotating rod to rotate, and the rotating rod drives the upper pressure block to abut against the side wall of the wall panel away from the conveying mechanism. The upper pressure component is set, and the vertical movement of the wall panel during the cutting process is reduced. At the same time, the upper pressure component and the correction block are synchronously approached to the wall panel, so that the wall panel is pressed against the conveying mechanism, thereby improving the cutting accuracy of the wall panel.
[0025] In summary, this application has the following beneficial technical effects:
[0026] 1. The sliding mechanism allows the conveying mechanism to continuously convey the wall panels, and cutting and conveying are carried out simultaneously, which further improves the production efficiency of the wall panels and reduces the damage to the conveying mechanism caused by constant starting and stopping.
[0027] 2. When cutting a wall panel, the cutting assembly separates from the wall panel after cutting the wall panel. As the cutting assembly approaches the wall panel, it maintains the same operating speed to approach and cut the wall panel. If the cutting assembly moves too fast, the wall panel may not be cut through, which will cause overload of the cutting assembly and damage to the wall panel and the cutting assembly. If the speed of approaching the wall panel is the same as the speed of cutting, time will be wasted. Therefore, the speed change assembly can effectively monitor the status of the cutting assembly, achieving fast movement when there is no load and slow movement when there is a load, thereby improving cutting efficiency and reducing damage to the wall panel or cutting assembly.
[0028] 3. When cutting the wall panel, first use the power part to drive the correction block to slide, and the correction blocks on both sides of the wall panel are in contact with the wall panel to fix the wall panel, and then use the cutting assembly to cut the wall panel; through the set correction assembly, on the one hand, the wall panel can be slightly corrected so that the cutting line is perpendicular to the length direction of the wall panel. On the other hand, the wall panel can be clamped to reduce the wall panel jumping or position changes during the cutting process, which may cause the produced wall panels to not meet the specifications, so that the production quality of the wall panels can be maintained. BRIEF DESCRIPTION OF THE DRAWINGS
[0029] Figure 1 This is a schematic diagram of the overall structure of the follow-up cutting machine in Example 1 of the present application;
[0030] Figure 2 This is a schematic structural diagram of the drive assembly in Example 1 of the present application;
[0031] Figure 3 This is a top view of the cutting mechanism in Example 1 of the present application;
[0032] Figure 4 This is a schematic structural diagram of the longitudinal movement assembly in Example 1 of the present application;
[0033] Figure 5 This is a schematic structural diagram of the speed change assembly in Example 1 of the present application;
[0034] Figure 6 This is a schematic structural diagram of the tensioning mechanism in Example 1 of the present application;
[0035] Figure 7 This is a schematic diagram of the structure of the correction mechanism in Example 1 of the present application;
[0036] Figure 8 This is a schematic structural diagram of the adjustment component in Example 1 of the present application;
[0037] Figure 9 This is a schematic diagram of the installation position of the upper pressure assembly in Example 2 of the present application;
[0038] Figure 10This is a structural diagram of the upper pressure assembly in Example 2 of the present application.
[0039] 1. The cutting mechanism includes the following components: 1. a first gear reducer; 2. a second gear reducer; 3. a second gear reducer; 4. a second gear reducer; 5. a second gear reducer; 6. a second gear reducer; 7. a second gear reducer; 8. a second gear reducer; 9. a second gear reducer; 10. a first gear reducer; 11. a first gear reducer; 12. a first gear reducer; 13. a second gear reducer; 14. a first gear reducer; 15. a first gear reducer; 16. a first gear reducer; 17. a first gear reducer; 18. a first gear reducer; 19. a first gear reducer; 20. a first gear reducer; 21. a first gear reducer; 22. a first gear reducer; 23. a first gear reducer; 24. a first gear reducer; 25. a first gear reducer; 26. a first gear reducer; 27. a first gear reducer; 28. a first gear reducer; 29. a first gear reducer; 30. a first gear reducer; 310. a first gear reducer; 320. a first gear reducer; 330. a first gear reducer; 3310. a first gear reducer; 3320. a first gear reducer; 3330. a first gear reducer; 3340. a first gear reducer; 3350. a first gear reducer; 3360. a first gear reducer; 3370. a first gear reducer; 3400. a first gear reducer; 34100 , adjusting bolt; 390, connecting assembly; 391, fixing block; 392, limiting plate; 393, limiting groove; 400, sliding mechanism; 410, horizontal slide rail; 420, sliding frame; 430, driving assembly; 431, electric push cylinder; 432, connecting seat; 440, signal acquisition component; 450, adjusting assembly; 451, adjusting rail; 452, sliding block; 500, correction mechanism; 510, fixing Frame; 520, correction block; 530, power assembly; 531, sliding rod; 532, cylinder; 540, abutment plate; 550, guide rod; 560, telescopic spring; 570, upper pressure assembly; 571, support seat; 572, rotating rod; 573, upper pressure block; 574, driving rod; 575, sliding groove; 600, tensioning mechanism; 610, sliding seat; 620, support block; 630, adjusting bolt. DETAILED DESCRIPTION
[0040] The following is combined with Figure 1-10 This application is described in further detail.
[0041] The embodiment of the present application discloses a follow-up cutting machine.
[0042] Example 1:
[0043] refer to Figure 1The follow-up cutting machine includes a frame 100, a conveying mechanism 200 arranged on the frame 100 for conveying wall panels, a cutting mechanism 300 arranged on the frame 100 for cutting wall panels, and a sliding mechanism 400 arranged on the frame 100 for driving the cutting mechanism 300 and the conveying mechanism 200 to slide synchronously; the conveying mechanism 200 drives the produced long wall panels to slide along the length direction of the frame 100. When the length of the long wall panels reaches the cutting requirement after passing through the cutting mechanism 300, the cutting mechanism 300 starts and cuts the long wall panels. At the same time, the sliding mechanism 400 drives the cutting mechanism 300 to slide synchronously along the length direction of the frame 100, so that the wall panels can be conveyed and cut at the same time, thereby improving work efficiency.
[0044] refer to Figure 1 The conveying mechanism 200 includes a conveyor belt 210 located at one end of the frame 100. The axis of the conveyor belt 210 coincides with the axis of the frame 100. An unpowered roller group 220 is fixed to the frame 100 by bolts. The axis of the unpowered roller group 220 coincides with the axis of the conveyor belt 210, and the conveying surface of the unpowered roller group 220 and the conveying surface of the conveyor belt 210 are on the same horizontal plane.
[0045] refer to Figure 1 and Figure 2 The sliding mechanism 400 includes two transverse slide rails 410 fixedly connected to the frame 100. The two transverse slide rails 410 are parallel to each other and are located on both sides of the unpowered roller group 220. A sliding frame 420 is slidably connected to the two transverse slide rails 410. The sliding frame 420 is located above the unpowered roller group 220. A driving assembly 430 is provided on the side walls of the frame 100 to which the two transverse slide rails 410 are fixed. The driving assembly 430 includes two electric push cylinders 430 fixedly connected to the frame 100. 1. The two electric push cylinders 431 are both located between the two transverse slide rails 410, and the two electric push cylinders 431 are respectively located on both sides of the unpowered roller group 220, and the axes of the electric push cylinders 431 are parallel to the axes of the transverse slide rails 410; the piston rods of the two electric push cylinders 431 are fixedly connected to the connecting seats 432, and the connecting seats 432 are fixedly connected to the sliding frame 420 by bolts; when the electric push cylinders 431 are started, the piston rods of the electric push cylinders 431 drive the sliding frame 420 to slide along the length direction of the transverse slide rail 410.
[0046] refer to Figure 3 and Figure 4The cutting mechanism 300 includes two longitudinal slide rails 310 fixedly connected to the sliding frame 420. The axes of the two longitudinal slide rails 310 are perpendicular to the axis of the unpowered roller group 220. The longitudinal slide rails 310 are located on the side of the sliding frame 420 away from the unpowered roller group 220. A longitudinal slide frame 320 is slidably connected to the two longitudinal slide rails 310; one end of the two longitudinal slide rails 310 is fixedly connected to a mounting seat 360. Four waist-shaped grooves are opened on the mounting seat 360. The axis of the waist-shaped groove The line is parallel to the longitudinal slide rail 310, and a longitudinal movement assembly 330 is provided on the mounting seat 360. The longitudinal movement assembly 330 includes a first reduction motor 331 placed on the mounting seat 360. The first reduction motor 331 is slidably connected in the waist-shaped groove by bolts. An adjustment block 370 is provided on one side of the mounting seat 360. Two adjustment bolts 380 are threadedly connected to the adjustment block 370. The adjustment bolts 380 abut against the first reduction motor 331 and are used to adjust the position of the first reduction motor 331; the longitudinal slide rail 310 A transmission shaft 335 is provided at each end of the transmission shaft 335, and the two ends of the transmission shaft 335 pass through the two longitudinal slide rails 310 respectively and are rotatably connected to the longitudinal slide rails 310 through bearings; one end of one of the transmission shafts 335 passes through the longitudinal slide rail 310 and is key-connected to a driven pulley 333, and a driving pulley 332 is key-connected to the output shaft of the first reduction motor 331, and a transmission belt 334 is jointly sleeved on the driving pulley 332 and the driven pulley 333; each rotating shaft is key-connected to a synchronous pulley 336, The synchronous pulley 336 is located between the two longitudinal slide rails 310, and a synchronous belt 337 is commonly provided on the two synchronous pulleys 336; the first reduction motor 331 is started, and the first reduction motor 331 drives the active pulley 332 to rotate, and the active pulley 332 drives the driven pulley 333 to rotate through the transmission belt 334, and the driven pulley 333 drives the transmission shaft 335 connected thereto to rotate, and the transmission shaft 335 drives the synchronous belt 337 and the synchronous pulley 336 to rotate, so that the two transmission shafts 335 rotate together.
[0047] refer to Figure 5 and Figure 6 The longitudinal sliding frame 320 is provided with a connecting assembly 390, which includes two fixed blocks 391 fixedly connected to the longitudinal sliding frame 320. A limiting groove 393 is provided on the fixed block 391, and the synchronous belt 337 is located in the limiting groove 393. A limiting plate 392 is fixedly connected to the side wall of the fixed block 391 away from the longitudinal sliding frame 320 by bolts. The limiting plate 392 presses the synchronous belt 337 tightly into the limiting groove 393. At the same time, a plurality of meshing teeth that engage with the synchronous belt 337 are integrally provided on the side wall where the limiting plate 392 and the synchronous belt 337 abut; the synchronous belt 337 rotates to drive the longitudinal sliding frame 320 connected to the fixed block 391 to slide along the length direction of the longitudinal slide rail 310.
[0048] refer to Figure 5and Figure 6 The cutting assembly 340 is fixedly connected to the side wall of the sliding frame 420 near the unpowered roller group 220. The cutting assembly 340 includes a cutting saw disk 345 rotatably connected to the longitudinal sliding frame 320, and the rotation axis of the cutting saw disk 345 is parallel to the axis of the unpowered roller group 220; a driving motor 341 is provided at one end of the longitudinal sliding frame 320, and a first pulley 342 is keyed to the output shaft of the driving motor 341, and a second pulley 343 is rotatably connected to one side of the longitudinal sliding frame 320, and a transmission belt 344 is jointly sleeved on the second pulley 343 and the first pulley 342; start the driving motor 341, the driving motor 341 drives the first pulley 342 to rotate, the first pulley 342 drives the transmission belt 344 to rotate, the transmission belt 344 drives the second pulley 343 to rotate, and the second pulley 343 drives the cutting saw disk 345 to rotate.
[0049] refer to Figure 5 and Figure 6 The longitudinal sliding frame 320 is provided with a tensioning mechanism 600 for fixing the drive motor 341. The tensioning mechanism 600 includes a guide rail integrally arranged on the longitudinal sliding frame 320, the axis of the guide rail is parallel to the axis of the longitudinal slide rail 310, and a sliding seat 610 is slidably connected to the guide rail. The cross-section of the sliding seat 610 is "["-shaped and is clamped at one end of the longitudinal sliding frame 320; a sliding groove is opened on the sliding seat 610, and a fastening bolt is passed through the sliding groove and threadedly connected to the longitudinal sliding frame 320; the nut of the fastening bolt presses against the sliding seat; a support block 620 is fixedly connected to the longitudinal sliding frame 320, and an adjusting bolt 630 is threaded on the support block 620; the adjusting bolt 630 passes through the adjusting block 370 and abuts against the sliding seat. Rotating the adjusting bolt 630 clockwise can drive the drive motor 341 on the sliding seat away from the second pulley 343.
[0050] refer to Figure 7 , an adjustment component 450 is provided on the unpowered roller group 220, and the adjustment component 450 includes an adjustment rail 451, and a sliding block 452 is slidably connected to the adjustment rail 451, and a signal acquisition component 440 is provided on the sliding block 452. The signal acquisition component 440 is a position sensor, and the position sensor is used to detect the position of the cutting seam. When the position of the cutting seam is detected, the first reduction motor 331 is controlled to drive the cutting saw disk 345 to approach the wall panel; first, the position of the sliding block 452 is adjusted according to the length of the wall panel to be produced, so that the distance between the signal acquisition component 440 and the initial position of the cutting saw disk 345 meets the cutting requirements. When the cutting seam or end of the wall panel passes the position sensor, the position sensor controls the first reduction motor 331 to drive the longitudinal sliding frame 320 to approach the wall panel, and starts the drive motor 341. The drive motor 341 drives the cutting saw disk 345 to cut the wall panel.
[0051] refer to Figure 2 and Figure 8 , a correction mechanism 500 is provided on the sliding frame 420, and the correction mechanism 500 includes two groups of fixed frames 510, each group of fixed frames 510 can be provided with multiple, and in this embodiment, two are preferably provided, and the two groups of fixed frames 510 are respectively located on both sides of the unpowered roller group 220, and the two fixed frames 510 of each group of fixed frames 510 are respectively located on both sides of the traveling direction of the cutting saw disk 345, and the two groups of fixed frames 510 correspond one to one; each fixed frame 510 is fixedly connected to a plurality of cylinders 532 on the side wall away from the longitudinal sliding frame 320, and the piston rod of the cylinder 532 is fixedly connected to the correction block 520, and the correction block 520 is away from the longitudinal sliding frame 32 0's side wall is located at an end surface higher than the conveying end surface of the unpowered roller group 220; a power assembly 530 connected to the fixed frame 510 is provided on the correction block 520, and the power assembly 530 includes a sliding rod 531, and each correction block 520 is fixedly connected to two sliding rods 531, and the two sliding rods 531 are both slidably connected to the cylinder body of the cylinder 532; when the wall panel is cut, the cylinder 532 is first started and drives the correction block 520 toward the wall panel, and the correction blocks 520 on both sides clamp and correct the wall panel. The lightweight wall panel is lighter, and clamping and correcting it is conducive to neat cutting and reduces the wall panel's jumping during the cutting process.
[0052] refer to Figure 5The cam 352 is a plurality of first and second adjustment holes 354 formed on the longitudinal slide 310, and the plurality of first and second adjustment holes 354 are provided on the plurality of first and second adjustment holes 354. The plurality of first and second adjustment holes 354 are a plurality of first and second adjustment holes 354 are provided on the plurality of first and second adjustment holes 354. The plurality of first and second adjustment holes 354 are a plurality of first and second adjustment holes 354 are provided on the plurality of first and second adjustment holes 354. Switch, the second speed monitoring component 352 faces the feedback plate 353, and the end of the second mounting plate 355 away from the second speed monitoring component 352 is fixedly connected with the first speed monitoring component 351, the first speed monitoring component 351 is also a metal proximity switch, and the first speed monitoring component faces the feedback plate 353; when cutting the wall panel, first adjust the position of the first mounting plate 354 and the second mounting plate 355 according to the width of the wall panel. When the cutting saw disk 345 approaches the wall panel, the feedback plate 353 slides synchronously. When the second speed monitoring component 352 detects the signal of the feedback plate 353, the travel speed of the cutting saw disk 345 is controlled so that it is in a lower speed state during the cutting process to reduce damage to the wall panel caused by excessive speed. When the second speed monitoring component 352 on the other side detects the feedback plate 353, the travel speed of the cutting saw disk 345 is controlled to increase until the first speed monitoring component 351 can no longer detect the signal of the feedback plate 353, and the cutting saw disk 345 stops moving.
[0053] The implementation principle of Example 1 of the present application is as follows: when processing the wall panel, first, according to the length requirement of the processed wall panel, the sliding block 452 is adjusted to change the position of the signal acquisition component 440, and then the conveyor belt 210 is started. The conveyor belt 210 drives the wall panel to slide along the length direction of the conveyor belt 210. At the same time, the wall panel moves to the unpowered roller group 220, and the end of the wall panel passes through the signal acquisition component 440. The signal acquisition component 440 monitors the length of the wall panel. When the length of the wall panel is appropriate, the signal acquisition component 440 controls the electric push cylinder 431 to start, and the electric push cylinder 431 drives the sliding frame 420 to slide along the slide rail. At the same time, the cylinder 532 is started and drives the correction block 520 to correct and clamp the wall panel; the first reduction motor 331 is started and drives the active pulley 332 to rotate, and the active pulley 332 drives the transmission belt 33 4 rotates, the transmission belt 334 drives the driven pulley 333 to rotate, the driven pulley 333 drives the transmission shaft 335 to rotate, the transmission shaft 335 drives the synchronous belt 337 to move forward, and the synchronous belt 337 drives the longitudinal sliding frame 320 to move toward the wall panel. When the second speed change monitoring component 352 detects no signal from the feedback plate 353, it controls the first reduction motor 331 to slow down, and slows down the moving speed of the longitudinal sliding frame 320. At the same time, the driving motor 341 is started, and the driving motor 341 drives the cutting saw disk 345 to rotate through the belt 344, and the cutting saw disk 345 cuts the stone. After completing one cut, the cutting saw disk 345 stays on the opposite side of the initial position and cuts the wall panel when performing the next cut. This cutting method is reciprocating cutting, which reduces the time and resources wasted in single-stroke cutting.
[0054] Example 2:
[0055] refer to Figure 9 and Figure 10The difference between this embodiment and embodiment 1 is that the correction block 520 is slidably connected to the side of the sliding rod 531 with an abutment plate 540, which is a chamfered epoxy plate. The end of the abutment plate 540 close to the correction block 520 is fixedly connected to two guide rods 550. The correction block 520 is provided with two sliding grooves adapted to the guide rods 550. The two guide rods 550 are slidably connected in the two sliding grooves; an upper pressing assembly 570 is provided on the guide rod 550, and the upper pressing assembly 570 includes a driving rod 574. The two guide rods 550 on each correction block 520 are far away from each other. A driving rod 574 is fixedly connected to one end of the abutment plate 540. A support base 571 is fixedly connected to the side wall of the correction block 520 away from the unpowered roller assembly 220. A rotating rod 572 is rotatably connected to the support base 571. An upper pressure block 573 is connected to the end of the rotating rod 572 near the wall panel. The upper pressure block 573 can abut against the side wall of the wall panel away from the unpowered roller assembly 220. A sliding groove 575 is defined at the end of the rotating rod 572 away from the upper pressure block 573. The sliding groove 575 extends along the length of the rotating rod 572, and the driving rod 574 is slidably connected to the sliding groove 575. When the driving rod 574 slides, it drives the rotating rod 572 to rotate, and the rotating rod 572 drives the upper pressure block 573 toward or away from the wall panel.
[0056] The implementation principle of Example 2 of the present application is: when the cylinder 532 drives the correction block 520 to approach the wall panel, the correction block 520 drives the abutment plate 540 to first abut against the wall panel, and as the piston rod of the cylinder 532 extends, the abutment plate 540 is driven to approach the correction block 520 until the elastic potential energy of the telescopic spring 560 and the cutting kinetic energy caused by the cutting saw disk 345 on the wall panel, and the extension of the cylinder 532 is stopped; while the guide rod 550 slides, the driving rod 574 follows the guide rod 550 to slide and drives the rotating rod 572 to rotate, and the rotating rod 572 drives the upper pressure block 573 to press against the wall panel; then the wall panel is cut with the cutting saw disk 345.
[0057] The above are all preferred embodiments of the present application, and are not intended to limit the scope of protection of the present application. Therefore, any equivalent changes made based on the structure, shape, and principle of the present application should be included in the scope of protection of the present application.
Claims
1. A follow-up cutting machine, characterized in that: The invention comprises a frame (100), a conveying mechanism (200), a cutting mechanism (300) and a sliding mechanism (400), wherein the conveying mechanism (200) is arranged on the frame (100), the sliding mechanism (400) comprises a transverse slide rail (410), a sliding frame (420) and a driving assembly (430), two transverse slide rails (410) are arranged on the frame (100), and the two transverse slide rails (410) are respectively located on both sides of the conveying mechanism (200); a sliding frame (420) is connected to the two transverse slide rails (410) for sliding movement, and the sliding frame (420) is located above the conveying mechanism (200), and the cutting mechanism (300) is arranged on the sliding frame (420); the driving assembly (430) is arranged on the frame (100), and the driving assembly (430) is connected to the sliding frame (420) and drives the sliding frame (420) to slide; The sliding frame (420) is provided with a correction mechanism (500), the correction mechanism (500) comprising a fixed frame (510), a correction block (520) and a power assembly (530), the sliding frame (420) being provided with two groups of the fixed frames (510), and each group of the fixed frames (510) having at least one fixed frame; the two groups of the fixed frames (510) are respectively located on both sides of the wall panel, and a plurality of the correction blocks (520) are slidably provided on the fixed frames (510); the power assembly (530) is provided on each of the fixed frames (510), and the power assembly (530) is connected to the correction block (520) and drives the correction block (520) to slide; The correction mechanism (500) further comprises an abutment plate (540), a guide rod (550) and a telescopic spring (560); the abutment plate (540) is slidably arranged on a side of the correction block (520) away from the power assembly (530) via the guide rod (550); the telescopic spring (560) is arranged on the guide rod (550); the telescopic spring (560) is connected to the abutment plate (540) and drives the abutment plate (540) away from the correction block (520); The correction mechanism (500) further includes an upper pressing assembly (570), the upper pressing assembly (570) including a support seat (571), a rotating rod (572) and an upper pressing block (573), wherein the support seat (571) is arranged on the correction block (520); the rotating rod (572) is rotatably arranged on the support seat (571), the rotating rod (572) is connected to the guide rod (550), and the guide rod (550) drives the rotating rod (572) to rotate; the upper pressing block (573) is arranged on the rotating rod (572), and the upper pressing block (573) is pressed against the wall panel as the rotating rod (572) rotates.
2. The follow-up cutting machine according to claim 1, characterized in that: The driving assembly (430) includes an electric push cylinder (431), which is arranged on the frame (100), and the piston rod of the electric push cylinder (431) is connected to the sliding frame (420); the sliding mechanism (400) also includes a signal acquisition component (440), which is arranged on the conveying mechanism (200) and is used to acquire the position of the end of the wall panel. The signal acquisition component (440) controls the electric push cylinder (431) to reset and controls the cutting mechanism (300) to cut the plate.
3. The follow-up cutting machine according to claim 2, characterized in that: An adjustment component (450) is provided on the conveying mechanism (200), and the signal collecting component (440) slides along the length direction of the conveying mechanism (200) via the adjustment component (450).
4. The follow-up cutting machine according to claim 1, characterized in that: The cutting mechanism (300) includes a longitudinal slide rail (310), a longitudinal sliding frame (320), a longitudinal movement assembly (330) and a cutting assembly (340), wherein the longitudinal slide rail (310) is arranged on the sliding frame (420) and is perpendicular to the length direction of the conveying mechanism (200); the longitudinal sliding frame (320) is slidingly arranged on the longitudinal slide rail (310), and the cutting assembly (340) is arranged on the longitudinal sliding frame (320); the longitudinal movement assembly (330) is arranged on the longitudinal slide rail (310), and the longitudinal movement assembly (330) is connected to the longitudinal sliding frame (320) and drives the longitudinal sliding frame (320) to slide.
5. The follow-up cutting machine according to claim 4, characterized in that: The cutting mechanism (300) further includes a speed change assembly (350), the speed change assembly (350) including a first speed change monitoring component (351), a second speed change monitoring component (352) and a feedback plate (353), the feedback plate (353) being arranged on the longitudinal sliding frame (320), the first speed change monitoring component (351) being arranged on the sliding frame (420), the second speed change monitoring component (352) being arranged on the sliding frame (420), the first speed change monitoring component (351) and the second speed change monitoring component (352) both facing the feedback plate (353), and the first speed change monitoring component (351) and the second speed change monitoring component (352) being used to control the travel speed of the longitudinal moving assembly (330).
6. The follow-up cutting machine according to claim 1, characterized in that: The power assembly (530) includes a cylinder (532), and a plurality of the cylinders (532) are provided on the fixing frame (510). The piston rods of the cylinders (532) are connected to the correction block (520) and drive the correction block (520) to slide.
Citation Information
Patent Citations
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