Composite geomembrane processing splitting machine
The cutting disc adjustment system driven by a motor and hydraulic cylinder solves the problem of needing to stop the machine to adjust the position of the cutting disc in the existing technology, and realizes efficient and convenient adjustment and replacement of the cutting disc position, thereby improving the efficiency of the slitting machine.
Patent Information
- Application Number
- CN202520651056.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-09
- Publication Date
- 2026-02-24
- Estimated Expiration
- 2035-04-09
AI Technical Summary
Existing composite geomembrane processing and slitting machines require stopping the machine to remove bolts and nuts when adjusting the position of the cutting disc, which is time-consuming and labor-intensive, reducing slitting and processing efficiency.
The system uses a first motor to drive the sleeve to rotate and a second motor to drive the threaded column to rotate. Combined with a hydraulic cylinder and a universal ball joint, it enables the cutting disc to be adjusted without stopping the machine. The cutting disc can be easily replaced through the hydraulic cylinder and ferrule structure.
It enables the adjustment of the cutting disc position without stopping the machine, saving time and manpower, improving the efficiency of slitting and processing, and facilitating the replacement of the cutting disc.
Smart Images

Figure CN223933779U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of composite geomembrane processing technology, specifically to a composite geomembrane processing and slitting machine. Background Technology
[0002] Composite geomembrane is a geosynthetic seepage-proof material made by combining a plastic film as the seepage-proof substrate with a non-woven fabric. Its seepage-proof performance mainly depends on the seepage-proof performance of the plastic film. The processing of composite geomembrane requires the use of a slitting machine to cut the geomembrane. Patent CN218319858U, entitled "A Slitting Machine for Geomembrane Production and Processing," includes a workbench, a cutting disc, and a first mounting plate. A second mounting plate is mounted on the upper surface of the workbench. An mounting rod is rotatably mounted between the second mounting plates, with an installation opening on the side end of the mounting rod. The cutting disc is fitted onto the outside of the mounting rod, and a rectangular sleeve is provided on the side end of the cutting disc, the size of which matches the size of the mounting rod. Two first mounting plates are symmetrically mounted on the upper surface of the workbench. A rotating shaft is rotatably mounted on the side end of the first mounting plate. An installation block is mounted at the end of the rotating shaft. A telescopic rod is threaded onto the side end of the mounting block. A limit plate is mounted at the end of the telescopic rod, and a winding cylinder is fitted onto the outside of the telescopic rod. The current geomembrane slitting machine can cut geomembranes into different widths and can also roll them up. However, in actual use, this slitting machine requires stopping the machine to adjust the position of the cutting disc. Adjustment requires disassembling bolts and nuts, and then reinstalling them, which is time-consuming and labor-intensive, reducing the efficiency of slitting. Therefore, a composite geomembrane processing slitting machine is proposed to facilitate the adjustment of the cutting disc and save time. Utility Model Content
[0003] To address the problems in the existing technology, this utility model provides a composite geomembrane processing and slitting machine.
[0004] The technical solution adopted by this utility model to solve its technical problem is a composite geomembrane processing and slitting machine, including a side plate, a support plate fixed to the bottom end of the side plate, an adjusting component at the bottom end of the support plate, a baffle fixed to the top end of the support plate, a support component on one side of the baffle plate, a first motor and a second motor fixed to the side of the side plate away from the baffle plate, a sleeve fixed to the output shaft of the first motor, a cutting disc fitted on the sleeve, two sliders integrally formed inside the cutting disc, two sliding grooves for the sliders to slide on the outer wall of the sleeve, a threaded column connected to the output shaft of the second motor through a coupling, a slide seat provided below the sleeve, a sliding groove for the slide seat to slide on the top end of the support plate, a threaded hole adapted to the threaded column on the slide seat, a first hydraulic cylinder fixed to the top end of the slide seat, a base fixed to the piston rod of the first hydraulic cylinder, two universal balls fixed to the two vertical inner walls of the base, two of the universal balls being located on one side of the cutting disc, and the other two universal balls being located on the other side of the cutting disc.
[0005] By adopting the above technical solution, the output shaft of the first motor drives the sleeve to rotate, and the cutting disc rotates accordingly to realize the cutting of the composite geomembrane. The output shaft of the second motor drives the threaded column to rotate, and the slide moves along the length of the threaded column. The first hydraulic cylinder, the base and the universal ball move accordingly, which makes it convenient to move the cutting disc and adjust the position of the cutting disc on the sleeve. There is no need to stop the machine and make manual adjustments, saving time and manpower.
[0006] Specifically, the adjusting component includes a base and a second hydraulic cylinder. The top of the base is fixed with the second hydraulic cylinder, and the piston rod of the second hydraulic cylinder is connected to the support plate.
[0007] By adopting the above technical solution, the piston rod of the second hydraulic cylinder drives the support plate to move vertically, which facilitates the adjustment of the height of the support plate and the cutting disc.
[0008] Specifically, square tubes are fixed at the four corners of the top of the base, and vertical rods are provided inside each of the four square tubes. The tops of the four vertical rods are connected to the support plate.
[0009] By adopting the above technical solution, the arrangement of square tubes and vertical rods can improve the stability of the support plate.
[0010] Specifically, the support includes a support, an inverted U-shaped locking block, and two guide rails. Both guide rails are fixed to the top of the support plate. The bottom of the support has two sliding grooves that fit the guide rails. The support has two through slots for the bottom of the locking block to pass through. The top of each guide rail has a locking groove that fits the bottom of the locking block. A first retaining sleeve and a second retaining sleeve are rotatably connected to the side of the support near the side plate. The first retaining sleeve is fitted on the end of the sleeve away from the first motor, and the second retaining sleeve is fitted on the end of the threaded post away from the second motor.
[0011] By adopting the above technical solution, the setting of the first ferrule can improve the stability of the sleeve, and the setting of the second ferrule can improve the stability of the threaded column. If the cutting disc needs to be removed and replaced, the clamping block is lifted and the support is pushed away from the side plate. The piston rod of the first hydraulic cylinder drives the base to move down, releasing the limit on the cutting disc. The cutting disc can be removed from the sleeve and replaced by sliding the cutting disc away from the first motor.
[0012] Specifically, two guide rollers are rotatably connected between the side plate and the baffle.
[0013] By adopting the above technical solution, the guide rollers can guide the composite geomembrane, which is beneficial for the cutting of the composite geomembrane.
[0014] The beneficial effects of this utility model are:
[0015] (1) The composite geomembrane processing and cutting machine of this utility model has an output shaft of the first motor driving the sleeve to rotate, and the cutting disc to rotate accordingly, thereby realizing the cutting of the composite geomembrane. The output shaft of the second motor drives the threaded column to rotate, and the slide moves along the length of the threaded column. The first hydraulic cylinder, the base and the universal ball move accordingly, which makes it convenient to move the cutting disc and adjust the position of the cutting disc on the sleeve. There is no need to stop the machine and make manual adjustments, which saves time and manpower.
[0016] (2) The composite geomembrane processing and cutting machine of this utility model has a first ferrule that can improve the stability of the sleeve and a second ferrule that can improve the stability of the threaded column. If the cutting disc needs to be removed and replaced, the ferrule is lifted and the support is pushed away from the side plate. The piston rod of the first hydraulic cylinder drives the base to move down, releasing the limit on the cutting disc. The cutting disc can be removed from the sleeve and replaced by sliding the cutting disc away from the first motor. Attached Figure Description
[0017] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0018] Figure 1 This is a schematic diagram of the structure of this utility model;
[0019] Figure 2 For the present utility model Figure 1 Enlarged view of the structure at point A in the middle;
[0020] Figure 3 For the present utility model Figure 1 Enlarged view of the structure at point B.
[0021] In the diagram: 1. Side plate; 2. Support plate; 3. Vertical rod; 4. Adjusting component; 5. Square tube; 6. Base; 7. First motor; 8. Second motor; 9. Sleeve; 10. Cutting disc; 101. Slider; 11. Guide roller; 12. Baffle; 13. Support; 14. First ferrule; 15. Support component; 16. Second hydraulic cylinder; 17. Slide block; 18. Threaded column; 19. First hydraulic cylinder; 20. Base; 21. Universal ball; 22. Second ferrule; 23. Guide rail; 24. Locking block. Detailed Implementation
[0022] To make the technical means, creative features, objectives and effects of this utility model easier to understand, the present utility model will be further described below in conjunction with specific embodiments.
[0023] To facilitate the adjustment of the cutting disc 10, as one embodiment of this utility model, such as Figure 1 , Figure 2 As shown, the composite geomembrane processing and cutting machine of this utility model includes a side plate 1. A support plate 2 is welded and fixed to the bottom end of the side plate 1. An adjusting member 4 is provided at the bottom end of the support plate 2. A baffle 12 is welded and fixed to the top end of the support plate 2. A support member 15 is provided on one side of the baffle 12. A first motor 7 and a second motor 8 are bolted to the side of the side plate 1 away from the baffle 12. A sleeve 9 is bolted to the output shaft of the first motor 7. A cutting disc 10 is fitted on the sleeve 9. Two sliders 101 are integrally formed inside the cutting disc 10. Two sliding blocks 101 are provided on the outer wall of the sleeve 9 for the sliders 101 to slide. The output shaft of the second motor 8 is connected to a threaded column 18 via a coupling. A slide block 17 is provided below the sleeve 9. The top of the support plate 2 is provided with a slide groove for the slide block 17 to slide. The slide block 17 is provided with a threaded hole that matches the threaded column 18. The top of the slide block 17 is fixed with a first hydraulic cylinder 19 by bolts. A base 20 is fixed with bolts on the piston rod of the first hydraulic cylinder 19. Two universal balls 21 are fixed on the two vertical inner walls of the base 20. The connecting seats of the universal balls 21 are welded to the base 20. Two of the universal balls 21 are located on one side of the cutting disc 10, and the other two universal balls 21 are located on the other side of the cutting disc 10.
[0024] In use, the output shaft of the first motor 7 drives the sleeve 9 to rotate, and the cutting disc 10 rotates accordingly to achieve the cutting of the composite geomembrane. The output shaft of the second motor 8 drives the threaded column 18 to rotate, and the slide 17 moves along the length of the threaded column 18. The first hydraulic cylinder 19, the base 20 and the universal ball 21 move accordingly, making it convenient to move the cutting disc 10 and adjust its position on the sleeve 9 without stopping the machine and making manual adjustments, saving time and manpower.
[0025] To facilitate adjustment of the height of the support plate 2, for example, as follows: Figure 1As shown, the adjusting component 4 includes a base 6 and a second hydraulic cylinder 16. The top of the base 6 is fixed with the second hydraulic cylinder 16 by bolts, and the piston rod of the second hydraulic cylinder 16 is connected to the support plate 2 by bolts.
[0026] During use, the piston rod of the second hydraulic cylinder 16 drives the support plate 2 to move vertically, which facilitates the adjustment of the height of the support plate 2 and the cutting disc 10.
[0027] To improve the stability of support plate 2, for example, such as Figure 1 As shown, square tubes 5 are welded and fixed at the four corners of the top of the base 6, and vertical rods 3 are provided inside each of the four square tubes 5. The tops of the four vertical rods 3 are welded and connected to the support plate 2.
[0028] To improve the stability of sleeve 9 and threaded post 18, and to facilitate the removal and replacement of cutting disc 10, for example, as follows: Figure 1 , Figure 3 As shown, the support member 15 includes a support 13, an inverted U-shaped locking block 24, and two guide rails 23. The two guide rails 23 are welded and fixed to the top of the support plate 2. The bottom end of the support 13 is provided with two sliding grooves that are adapted to the guide rails 23. The support 13 is provided with two through slots for the bottom end of the locking block 24 to pass through. The top end of the two guide rails 23 is provided with a locking groove that is adapted to the bottom end of the locking block 24. The support 13 is rotatably connected to a first locking sleeve 14 and a second locking sleeve 22 on the side of the support 13 near the side plate 1. The first locking sleeve 14 is fitted on the end of the sleeve 9 away from the first motor 7, and the second locking sleeve 22 is fitted on the end of the threaded post 18 away from the second motor 8.
[0029] When in use, the first ferrule 14 improves the stability of the sleeve 9, and the second ferrule 22 improves the stability of the threaded post 18. If the cutting disc 10 needs to be removed and replaced, lift the ferrule 24 and push the support 13 away from the side plate 1. The piston rod of the first hydraulic cylinder 19 drives the base 20 to move down, releasing the limit on the cutting disc 10. Slide the cutting disc 10 away from the first motor 7 to remove the cutting disc 10 from the sleeve 9 for replacement.
[0030] To facilitate the drainage of composite geomembranes, for example, such as Figure 1 As shown, two guide rollers 11 are rotatably connected between the side plate 1 and the baffle 12.
[0031] When this utility model is in use, the piston rod of the second hydraulic cylinder 16 drives the support plate 2 to move vertically, which facilitates the adjustment of the height of the support plate 2 and the cutting disc 10.
[0032] The output shaft of the first motor 7 drives the sleeve 9 to rotate, and the cutting disc 10 rotates accordingly to realize the cutting of the composite geomembrane. The output shaft of the second motor 8 drives the threaded column 18 to rotate, and the slide 17 moves along the length of the threaded column 18. The first hydraulic cylinder 19, the base 20 and the universal ball 21 move accordingly, which makes it convenient to move the cutting disc 10 and adjust the position of the cutting disc 10 on the sleeve 9 without stopping the machine and making manual adjustments, saving time and manpower.
[0033] The first ferrule 14 can improve the stability of the sleeve 9, and the second ferrule 22 can improve the stability of the threaded post 18.
[0034] To remove and replace the cutting disc 10, lift the locking block 24 and push the support 13 away from the side plate 1. The piston rod of the first hydraulic cylinder 19 will drive the base 20 to move down, releasing the limit on the cutting disc 10. Slide the cutting disc 10 away from the first motor 7 to remove and replace the cutting disc 10 from the sleeve 9.
[0035] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The descriptions of the above embodiments and specifications are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of protection claimed by this utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents. Contents not described in detail in this utility model are considered prior art known to those skilled in the art.
Claims
1. A composite geomembrane processing and slitting machine, characterized in that, The device includes a side plate (1), a support plate (2) fixed to the bottom end of the side plate (1), an adjusting member (4) provided at the bottom end of the support plate (2), a baffle (12) fixed to the top end of the support plate (2), a support member (15) provided on one side of the baffle (12), a first motor (7) and a second motor (8) fixed to the side of the side plate (1) away from the baffle (12), a sleeve (9) fixed to the output shaft of the first motor (7), a cutting disc (10) sleeved on the sleeve (9), two sliders (101) integrally formed inside the cutting disc (10), and two sliding joints for the sliders (101) to slide on the outer wall of the sleeve (9). The output shaft of the second motor (8) is connected to a threaded column (18) via a coupling. A slide block (17) is provided below the sleeve (9). The top of the support plate (2) is provided with a slide groove for the slide block (17) to slide. The slide block (17) is provided with a threaded hole that matches the threaded column (18). A first hydraulic cylinder (19) is fixed to the top of the slide block (17). A base (20) is fixed to the piston rod of the first hydraulic cylinder (19). Two universal balls (21) are fixed to the two vertical inner walls of the base (20). Two universal balls (21) are located on one side of the cutting disc (10), and the other two universal balls (21) are located on the other side of the cutting disc (10).
2. The composite geomembrane processing and slitting machine according to claim 1, characterized in that, The adjusting component (4) includes a base (6) and a second hydraulic cylinder (16). The top of the base (6) is fixed with the second hydraulic cylinder (16), and the piston rod of the second hydraulic cylinder (16) is connected to the support plate (2).
3. The composite geomembrane processing and slitting machine according to claim 2, characterized in that, Square tubes (5) are fixed at the four corners of the top of the base (6), and vertical rods (3) are provided inside the four square tubes (5). The tops of the four vertical rods (3) are connected to the support plate (2).
4. The composite geomembrane processing and slitting machine according to claim 1, characterized in that, The support member (15) includes a support (13), an inverted U-shaped locking block (24), and two guide rails (23). The two guide rails (23) are fixed to the top of the support plate (2). The bottom end of the support (13) is provided with two sliding grooves that are adapted to the guide rails (23). The support (13) is provided with two through slots for the bottom end of the locking block (24) to pass through. The top end of the two guide rails (23) is provided with a locking groove that is adapted to the bottom end of the locking block (24). The support (13) is rotatably connected to a first locking sleeve (14) and a second locking sleeve (22) on the side of the support (13) near the side plate (1). The first locking sleeve (14) is fitted on the end of the sleeve (9) away from the first motor (7), and the second locking sleeve (22) is fitted on the end of the threaded column (18) away from the second motor (8).
5. A composite geomembrane processing and slitting machine according to claim 1, characterized in that, Two guide rollers (11) are rotatably connected between the side plate (1) and the baffle (12).