A slipform device for slope casting

By setting up an auger assembly and a leveling mechanism on the slipform device, combined with an adjustable winch, the problems of uneven pouring and low efficiency in slipform construction are solved, realizing automatic vibration and leveling of concrete and efficient use of the winch.

CN117403648BActive Publication Date: 2026-05-26CHINESE PEOPLES ARMED POLICE FORCE JIANGXI HYDRO POWER NO 2 GENERAL GRP

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
CHINESE PEOPLES ARMED POLICE FORCE JIANGXI HYDRO POWER NO 2 GENERAL GRP
Filing Date
2023-11-24
Publication Date
2026-05-26

Smart Images

  • Figure CN117403648B_ABST
    Figure CN117403648B_ABST
Patent Text Reader

Abstract

This application relates to a slipform device for slope pouring, comprising a winch and a slipform. The winch is connected to the slipform via a steel wire rope and drives the slipform to move along the slope. The slipform includes a slipform body, on which two sets of auger assemblies are symmetrically arranged on one side facing upwards on the slope. The two sets of auger assemblies are used to transport concrete to both sides of the slipform body. At least one leveling mechanism is provided inside the slipform body. The leveling mechanism includes a first support arranged along the length of the slipform body. Both sides of the first support are connected to the slipform body via several sets of translational components. A movable seat that reciprocates along the length of the first support is provided in the middle of the first support. A second support perpendicular to the first support is connected to the bottom of the movable seat. A leveling device is provided in the middle of the second support, and the leveling device freely reciprocates along the length of the second support. A vibrating plate and a smoothing roller are provided on the bottom surface of the leveling device. This application improves the working efficiency and pouring quality of slope pouring.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This application relates to the field of construction equipment technology, and in particular to a slipform device for slope casting. Background Technology

[0002] Currently, slipform construction is used for pouring concrete for the dam face. However, this method also has its problems. The main issues are that the slipform is too heavy, resulting in significant friction between it and the side formwork during the upward pulling process. This requires a large amount of force from the winch at the dam crest, and the winch's installation and securing are also critical. If the winch is not securely installed, the heavy slipform can break the traction steel cable or even pull the winch down, seriously threatening the concrete pouring site, affecting the safety of construction workers, and hindering the pouring process. Furthermore, existing slipforms lack the functions of vibration and leveling, requiring manual leveling during construction, which is inefficient and yields poor results. Summary of the Invention

[0003] To address the problems of uneven pouring, the need for manual vibration and leveling, and low construction efficiency of existing slipform devices, this application provides a slope pouring slipform device.

[0004] This application provides a slope casting slipform device with the following technical solution: A slope casting slipform device includes a winch and a slipform. The winch is connected to the slipform via a steel wire rope and drives the slipform to move along the slope. The slipform includes a slipform body. Two sets of auger assemblies are symmetrically arranged on the side of the slipform body facing upwards from the slope. The two sets of auger assemblies are used to transport concrete to both sides of the slipform body. At least one leveling mechanism is provided inside the slipform body. The leveling mechanism includes a first support arranged along the length of the slipform body. Both sides of the first support are connected to the slipform body via several sets of translational components. The translational components are used to drive the first support to move in a direction perpendicular to the slope. A movable seat that reciprocates along the length of the first support is provided in the middle of the first support. A second support perpendicular to the first support is connected to the bottom of the movable seat. A leveling device is provided in the middle of the second support. The leveling device reciprocates freely along the length of the second support. A vibrating plate for vibrating the concrete is provided on the bottom surface of the leveling device. Smoothing rollers for smoothing the concrete surface are provided at both ends of the vibrating plate.

[0005] By adopting the above technical solution, the slipform is set on the template track, and the winch is set at the upper end of the slope. The winch is connected to the slipform through a steel wire rope. During pouring, the concrete is transported from the middle to the bottom of the slipform. The auger assembly transports the concrete to both sides to make the concrete evenly distributed. When the concrete enters the bottom of the slipform, the translation component inside the slipform body drives the first support to move towards the slope, so that the vibrating plate and smoothing roller at the bottom of the leveling device come into contact with the concrete surface. Then the leveling device moves back and forth along the second support. The vibrating plate continuously vibrates to vibrate the concrete and expel the air in it. The smoothing roller rolls back and forth on the concrete surface to smooth the surface. When the leveling device vibrates and smooths one surface, the movable seat moves along the length of the first support. The movable seat drives the second support to move, so that the leveling device moves to vibrate and smooth the other surface of the slope. The leveling mechanism runs back and forth to realize the slope pouring.

[0006] Optionally, the auger assembly includes transmission seats disposed at both ends on one side of the sliding mold body, a mounting seat disposed in the middle on one side of the sliding mold body, an auger rotatably disposed between the transmission seats and the mounting seat, and an auger drive motor for driving the auger to rotate disposed on one side of the transmission seats.

[0007] By adopting the above technical solution, the drive motor is connected to the auger through the transmission seat, and the two sets of augers rotate synchronously. When the concrete comes into contact with the augers, it is transported to both sides of the slipform body through the two sets of augers, so that the concrete is evenly laid.

[0008] Optionally, the translation component includes a first hydraulic cylinder disposed on the inner sidewall of the sliding mold body and a second hydraulic cylinder disposed on the first bracket, wherein the telescopic ends of the first hydraulic cylinder and the second hydraulic cylinder are connected by a hinge seat.

[0009] By adopting the above technical solution, the first hydraulic cylinder and the second hydraulic cylinder extend or retract synchronously. When the translation components on both sides of the first support are running synchronously, the first support moves in a direction perpendicular to the slope through the guidance of the first hydraulic cylinder and the second hydraulic cylinder. Thus, when not running, the first support can be retracted inward, allowing the leveling device to enter the interior of the sliding mold body.

[0010] Optionally, the movable seat is disposed in the middle of the first bracket, and guide grooves are provided on the two side walls of the middle of the first bracket. First rollers are provided on both sides of the movable seat, and the first rollers are rotatably disposed inside the guide grooves. A drive mechanism for driving the first rollers to rotate is provided in the middle of the movable seat.

[0011] By adopting the above technical solution, the movable seat moves back and forth along the guide groove through the first rollers on both sides, thereby driving the second support and the leveling device to move along the length of the slipform body, so that the leveling device can move to any position on the slope for vibration and smoothing operations.

[0012] Optionally, the leveling device includes a mounting plate, two side plates symmetrically arranged above the mounting plate, a second roller arranged on the outer side of the side plates, guide rails arranged along the length direction on both sides of the bottom surface of the second bracket, the second rollers being rotatably disposed inside the guide rails, and a drive mechanism for driving the second rollers to rotate is provided on the mounting plate.

[0013] By adopting the above technical solution, the leveling device reciprocates along the length of the second support via the second roller on the side of the side plate, allowing the leveling device to move to any position on the slope for vibration and smoothing operations.

[0014] Optionally, the vibrating plate is disposed below the mounting plate, and the vibrating plate and the mounting plate are connected by a plurality of shock absorbers, with a vibrator disposed in the middle of the upper part of the vibrating plate.

[0015] By adopting the above technical solution, during vibration, the vibrator runs continuously, driving the vibrating plate to vibrate. The vibrating plate comes into contact with the concrete surface, and the air in the concrete is expelled through the vibration. By setting up shock absorbers, the vibration is prevented from being transmitted to the mounting plate, thus protecting other structures.

[0016] Optionally, the smoothing roller is disposed at both ends of the vibrating plate along the length of the second bracket, the smoothing roller is rotatably connected to the mounting plate, and the lowest end of the smoothing roller is flush with the lower surface of the vibrating plate.

[0017] By adopting the above technical solution, when the leveling device reciprocates along the second support, the smoothing roller is attached to the concrete surface and rotates, thereby smoothing the concrete surface.

[0018] Optionally, four sets of leveling mechanisms are provided inside the sliding mold body along the length direction.

[0019] By adopting the above technical solution, the four leveling mechanisms can operate independently, which improves the pouring efficiency and allows the opening and closing of the leveling mechanisms to be controlled according to actual operation needs, thus expanding the scope of application.

[0020] Optionally, the winch includes a base, tracks on both sides of the base, a column on one side above the base, a cross arm rotatably connected to the upper end of the column, a supporting hydraulic cylinder connected to the end of the cross arm via a pivot, a support foot connected to the lower end of the supporting hydraulic cylinder, a take-up roller above the end of the cross arm away from the supporting hydraulic cylinder, a take-up roller drive motor for driving the take-up roller to rotate is provided on one side of the take-up roller, and a guide wheel for guiding the wire rope is provided on one side of the upper end of the supporting hydraulic cylinder.

[0021] By adopting the above technical solution, the winch can be moved by the tracks on both sides of the base, which facilitates the handling of the winch. The support hydraulic cylinder can adjust the height of the support and the angle of the cross arm, thereby adjusting the height and angle of the wire rope to meet the operation requirements of slopes with different angles, and has a wider range of applications.

[0022] Optionally, a first adjusting hydraulic cylinder is provided between the cross arm and the supporting hydraulic cylinder, with both ends of the first adjusting hydraulic cylinder being hinged to the cross arm and the supporting hydraulic cylinder, respectively. A second adjusting hydraulic cylinder is provided between the cross arm and the base, with both ends of the second adjusting hydraulic cylinder being hinged to the cross arm and the base, respectively.

[0023] By adopting the above technical solution, the first adjusting hydraulic cylinder is used to adjust the angle between the cross arm and the supporting hydraulic cylinder, and the second adjusting hydraulic cylinder is used to adjust the angle between the cross arm and the base, so that the winch can meet the operating requirements of slopes with different angles and has a wider range of applications.

[0024] In summary, this application includes at least one of the following beneficial technical effects:

[0025] 1. In this application, two sets of opposing auger components are set on the slipform. The auger components can transport concrete to both sides of the slipform, which effectively improves the uniformity of concrete laying and improves the quality of slope pouring.

[0026] 2. In this application, a leveling device is installed inside the slipform. The leveling device can move laterally and longitudinally inside the slipform, thereby automatically vibrating and smoothing the concrete during the pouring process, reducing the labor intensity of the workers, improving the work efficiency of slope pouring, and improving the pouring quality.

[0027] 3. In this application, the winch is equipped with a base and tracks at the bottom, and also with an adjustable-angle boom and supporting hydraulic cylinder. This facilitates the handling of the winch and allows the angle of the wire rope to be adjusted according to actual operating needs, thereby improving the traction efficiency of the winch and expanding its application range. Attached Figure Description

[0028] Figure 1 This is a schematic diagram of the overall structure of a slope casting slipform device according to an embodiment of this application.

[0029] Figure 2 This is a schematic diagram of the bottom structure of a slope casting slipform device according to an embodiment of this application.

[0030] Figure 3 This is a schematic diagram of the sliding formwork cross-section structure of a slope casting sliding formwork device in an embodiment of this application.

[0031] Figure 4This is a schematic diagram of the side structure of the leveling mechanism of a slope casting slipform device in an embodiment of this application.

[0032] Figure 5 This is a schematic diagram of the main structure of the leveling device of a slope casting slipform device in an embodiment of this application.

[0033] Figure 6 This is a schematic diagram of the internal structure of the leveling device of a slope casting slipform device in an embodiment of this application, viewed from the left.

[0034] Figure 7 This is a schematic diagram of the winch structure of a slope casting slipform device according to an embodiment of this application.

[0035] Explanation of reference numerals in the attached drawings: 1. Slipform; 2. Winch; 3. Guide channel; 4. Template track; 5. Screw assembly; 6. Slipform body; 7. Leveling mechanism; 8. First support; 9. Second support; 10. Leveling device; 11. Translation assembly; 12. Screw drive motor; 13. First hydraulic cylinder; 14. Second hydraulic cylinder; 15. Hinge seat; 16. Movable seat; 17. Guide groove; 18. First transmission box; 19. First drive motor; 20. First roller; 21. Second roller; 22. Side plate; 23. Smoothing roller; 24. Shock absorber; 25. Vibrator; 26. Vibrating plate; 27. Second transmission box; 28. Mounting plate; 29. ​​Second drive motor; 30. Base; 31. Track; 32. Column; 33. Horizontal arm; 34. Support hydraulic cylinder; 35. Take-up roller; 36. Take-up roller drive motor; 37. Shaft; 38. First adjusting hydraulic cylinder; 39. Second adjusting hydraulic cylinder; 40. Guide wheel; 41. Support leg; 42. Transmission seat; 43. Screwdriver; 44. Mounting seat; 45. Guide rail. Detailed Implementation

[0036] The following specific embodiments illustrate the implementation of this application. Those skilled in the art can easily understand other advantages and effects of the present invention from the content disclosed in this specification.

[0037] Please see Figure 1-7It should be understood that the structures, proportions, sizes, etc., illustrated in the accompanying drawings are merely for illustrative purposes to aid those skilled in the art and to facilitate understanding. They are not intended to limit the scope of the invention and therefore have no substantial technical significance. Any modifications to the structure, changes in proportions, or adjustments to size, without affecting the effectiveness and purpose of the invention, should still fall within the scope of the technical content disclosed herein. Furthermore, the terms such as "upper," "lower," "left," "right," "middle," and "one" used in this specification are merely for clarity and not intended to limit the scope of the invention. Changes or adjustments to their relative relationships, without substantially altering the technical content, should also be considered within the scope of the invention.

[0038] The following is in conjunction with the appendix Figure 1-7 This application will be described in further detail.

[0039] This embodiment discloses a slipform device for slope casting.

[0040] Reference Figure 1 A slope casting slipform device includes a winch 2 and a slipform 1. The winch 2 is connected to the slipform 1 by a wire rope and drives the slipform 1 to move along the slope. The slipform 1 includes a slipform body 6. Two sets of auger assemblies 5 are symmetrically arranged on the side of the slipform body 6 facing the upper part of the slope. The two sets of auger assemblies (5) have opposite conveying directions and are used to convey concrete to both sides of the slipform body 6.

[0041] Reference Figure 2 The auger assembly 5 includes transmission seats 42 disposed at both ends on one side of the sliding mold body 6, and mounting seat 44 disposed in the middle of one side of the sliding mold body 6. An auger 43 is rotatably disposed between the transmission seats 42 and the mounting seat 44. An auger drive motor 12 for driving the auger 43 to rotate is disposed on one side of the transmission seats 42. Four sets of leveling mechanisms 7 are disposed inside the sliding mold body 6 along the length direction. The leveling mechanism 7 includes a first bracket 8 disposed along the length direction of the sliding mold body 6. A second bracket 9 is disposed on the bottom surface of the first bracket 8 and reciprocates along the length direction. The second bracket 9 is disposed perpendicular to the first bracket 8. A leveling device 10 reciprocates along the length direction of the second bracket 9 is disposed at the bottom of the second bracket 9.

[0042] Reference Figure 3 The four corners of the first support 8 are connected to the sliding mold body 6 through translation components 11. The sliding mold body 6 has a triangular cross section. The translation component 11 includes a first hydraulic cylinder 13 disposed on the inner side wall of the sliding mold body 6 and a second hydraulic cylinder 14 disposed on the first support 8. The telescopic ends of the first hydraulic cylinder 13 and the second hydraulic cylinder 14 are connected through a hinge seat 15.

[0043] Reference Figure 4The movable seat 16 is located in the middle of the first support 8. Guide grooves 17 are provided on the side walls of the middle of the first support 8. Two first rollers 20 are respectively provided on both sides of the movable seat 16. The first rollers 20 are rotatably disposed inside the guide grooves 17. First transmission boxes 18 are provided on both sides inside the movable seat 16. The two first rollers 20 on the same side are connected to the first transmission boxes 18. A first drive motor 19 is located in the middle of the movable seat 16. The output shaft of the first drive motor 19 is connected to the two first transmission boxes 18. The conveying shaft of the first drive motor 19 drives the two first transmission boxes 18. The first transmission boxes 18 drive the two first rollers 20 on the same side to rotate synchronously. Thus, the rotation of the first rollers 20 drives the movable seat 16 to reciprocate along the length of the first support 8.

[0044] Reference Figure 5 and Figure 6 The leveling device 10 includes a mounting plate 28, with two side plates 22 symmetrically arranged above the mounting plate 28. Two second rollers 21 are respectively arranged on the outer side of the side plates 22. Guide rails 45 are arranged on both sides of the bottom surface of the second bracket 9 along the length direction. The second rollers 21 are rotatably arranged inside the guide rails 45. Second transmission boxes 27 are arranged on both sides between the two side plates 22. The second transmission boxes 27 are connected to the two second rollers 21 on the same side. A second drive motor 29 is arranged between the two side plates 22. The conveying shaft of the second drive motor 29 is connected to the two second transmission boxes 27. The conveying shaft of the second drive motor 29 drives the two second transmission boxes 27. The second transmission boxes 27 drive the two second rollers 21 on the same side to rotate synchronously. Thus, the rotation of the second rollers 21 drives the leveling device 10 to reciprocate along the guide rails 45.

[0045] The vibrating plate 26 is located below the mounting plate 28. The vibrating plate 26 and the mounting plate 28 are connected by a number of shock absorbers 24. A vibrator 25 is located in the middle of the upper part of the vibrating plate 26.

[0046] The smoothing roller 23 is set at both ends of the vibrating plate 26 along the length of the second bracket 9. The smoothing roller 23 is rotatably connected to the mounting plate 28, and the lowest end of the smoothing roller 23 is flush with the lower surface of the vibrating plate 26.

[0047] Reference Figure 7The winch 2 includes a base 30, with tracks 31 on both sides of the base 30. A column 32 is installed on one side above the base 30. A cross arm 33 is rotatably connected to the upper end of the column 32. A support hydraulic cylinder 34 is connected to the end of the cross arm 33 via a pivot. A support foot 41 is connected to the lower end of the support hydraulic cylinder 34. A first adjusting hydraulic cylinder 38 is installed between the cross arm 33 and the support hydraulic cylinder 34. The two ends of the first adjusting hydraulic cylinder 38 are hinged to the cross arm 33 and the support hydraulic cylinder 34, respectively. A second adjusting hydraulic cylinder 39 is installed between the cross arm 33 and the base 30. The two ends of the second adjusting hydraulic cylinder 39 are hinged to the cross arm 33 and the base 30, respectively. A take-up roller 35 is installed above the end of the cross arm 33 away from the support hydraulic cylinder 34. A take-up roller drive motor 36 is installed on one side of the take-up roller 35 to drive the rotation of the take-up roller 35. A guide wheel 40 for guiding the wire rope is installed on one side of the upper end of the support hydraulic cylinder 34.

[0048] The implementation principle of the slope casting slipform device in this embodiment is as follows: a template is set on the slope, template tracks 4 are set on both sides of the template, the slipform 1 is slidably erected on the template tracks 4, a winch 2 is set at the upper end of the slope, and the winch 2 pulls the slipform 1 through a steel wire rope. A guide channel 3 is set in the middle of the slope, extending to the middle of the slipform 1. During casting, concrete is conveyed downward through the guide channel 3 to the middle of the slipform 1. The two sets of auger assemblies 5 on the slipform 1 are started. The two sets of augers 43 rotate under the drive of the auger drive motor 12. The two sets of augers 43 convey concrete in opposite directions to both sides of the slipform 1. This ensures uniform concrete distribution. After the concrete is laid, the translation component 11 inside the slipform body 6 is activated. The first hydraulic cylinder 13 and the second hydraulic cylinder 14 in the translation component 11 extend synchronously. Through the action of the first hydraulic cylinder 13 and the second hydraulic cylinder 14, the leveling mechanism 7 moves towards the slope in a direction perpendicular to the slope until the vibrating plate 26 and the smoothing roller 23 in the leveling device 10 come into contact with the concrete surface. Then, the leveling device 10 is activated, and the vibrator 25 on the vibrating plate 26 drives the vibrating plate 26 to vibrate continuously. The vibration is transmitted to the concrete through the vibrating plate 26. The gas in the concrete is expelled. Simultaneously with the vibration of the vibrating plate 26, the leveling device 10 reciprocates along the length of the second support 9 via the second rollers 21 on both sides of the side plate 22. This causes the leveling device 10 to move along the slope direction to vibrate and smooth the concrete. After the leveling device 10 has vibrated and smoothed one position on the concrete surface, the movable seat 16 is activated. The first rollers 20 on both sides of the movable seat 16 drive the movable seat 16 to move along the length of the first support 8, causing the leveling device 10 to move to the other surface of the concrete for further vibration and smoothing. This is achieved through the first support 8... The cooperation of the second support 9 allows the leveling device 10 to move to any surface of the concrete for vibration and smoothing. At the same time, the slipform body 6 is equipped with four sets of leveling mechanisms 7, which operate independently. This improves the efficiency of vibration and smoothing. When there are protruding pipes in the concrete, the leveling mechanism 7 at the corresponding position can avoid the pipe position through the cooperation of the first support 8 and the second support 9. After a section of the slope is poured, the slipform 1 is pulled upward by the winch 2, so that the slipform 1 moves to the top of the poured position to repeat the above operation, thereby realizing the pouring operation of the slope.

[0049] In summary, this application incorporates two sets of opposing auger assemblies on the slipform, which transport concrete to both sides of the slipform, effectively improving the uniformity of concrete laying and the quality of slope pouring. Furthermore, a leveling device is installed inside the slipform, capable of lateral and longitudinal movement, allowing for automatic vibration and leveling of the concrete during pouring, reducing labor intensity for workers, increasing the efficiency of slope pouring, and enhancing pouring quality. Finally, the winch is equipped with a base and tracks at its bottom, along with an adjustable boom and supporting hydraulic cylinders, facilitating winch transport and allowing adjustment of the wire rope angle according to actual operational needs, thus improving traction efficiency and expanding the winch's applicability. Therefore, this application effectively overcomes the various shortcomings of existing technologies and possesses high industrial applicability.

[0050] The above embodiments are merely illustrative of the principles and effects of this application and are not intended to limit this application. Any person skilled in the art can modify or alter the above embodiments without departing from the spirit and scope of this application. Therefore, all equivalent modifications or alterations made by those skilled in the art without departing from the spirit and technical concept disclosed in this application should still be covered within the protection scope of this application.

Claims

1. A slope casting slipform device, comprising a winch (2) and a slipform (1), wherein the winch (2) is connected to the slipform (1) via a wire rope and drives the slipform (1) to move along the slope, characterized in that, The slipform (1) includes a slipform body (6). Two sets of auger assemblies (5) are symmetrically arranged on the slipform body (6) facing the upper side of the slope. The two sets of auger assemblies (5) are used to transport concrete to both sides of the slipform body (6). The auger assembly (5) includes a transmission seat (42) at both ends of one side of the slipform body (6). A mounting seat (44) is arranged in the middle of one side of the slipform body (6). An auger (43) is rotatably arranged between the transmission seat (42) and the mounting seat (44). An auger drive motor (12) for driving the auger (43) to rotate is arranged on one side of the transmission seat (42). The sliding mold body (6) is provided with at least one set of leveling mechanism (7). The leveling mechanism (7) includes a first bracket (8) arranged along the length direction of the sliding mold body (6). Both sides of the first bracket (8) are connected to the sliding mold body (6) through several sets of translation components (11). The translation components (11) are used to drive the first bracket (8) to move in a direction perpendicular to the slope. The translation components (11) include a first hydraulic cylinder (13) arranged on the inner side wall of the sliding mold body (6) and a second hydraulic cylinder (14) arranged on the first bracket (8). The telescopic ends of the first hydraulic cylinder (13) and the second hydraulic cylinder (14) are connected by a hinge seat (15). The first support (8) has a movable seat (16) that reciprocates along the length of the first support (8) in the middle. The movable seat (16) is located in the middle of the first support (8). Guide grooves (17) are provided on the two side walls of the middle of the first support (8). First rollers (20) are provided on both sides of the movable seat (16). The first rollers (20) are rotatably disposed inside the guide grooves (17). A driving mechanism for driving the first rollers (20) to rotate is provided in the middle of the movable seat (16). A second support (9) perpendicular to the first support (8) is connected to the bottom of the movable seat (16). A leveling device (10) is provided in the middle of the second support (9). The leveling device (10) reciprocates freely along the length of the second support (9). A vibrating plate (26) for vibrating concrete is provided on the bottom surface of the leveling device (10). Smoothing rollers (24) for smoothing the concrete surface are provided at both ends of the vibrating plate (26). 3) The leveling device (10) includes a mounting plate (28), two side plates (22) are symmetrically arranged above the mounting plate (28), a second roller (21) is arranged on the outer side of the side plate (22), guide rails (45) are arranged on both sides of the bottom surface of the second bracket (9) along the length direction, the second roller (21) is rotatably arranged inside the guide rail (45), a driving mechanism for driving the second roller (21) to rotate is provided on the mounting plate (28), and the vibrating plate (26) The vibrating plate (26) is located below the mounting plate (28). The vibrating plate (26) is connected to the mounting plate (28) by a number of shock absorbers (24). A vibrator (25) is located in the middle of the upper part of the vibrating plate (26). The smoothing roller (23) is located at both ends of the vibrating plate (26) along the length direction of the second bracket (9). The smoothing roller (23) is rotatably connected to the mounting plate (28). The lowest end of the smoothing roller (23) is flush with the lower surface of the vibrating plate (26).

2. The slope casting slipform device according to claim 1, characterized in that: The sliding mold body (6) has four sets of leveling mechanisms (7) arranged along its length inside.

3. The slope casting slipform device according to claim 1, characterized in that: The winch (2) includes a base (30), with tracks (31) on both sides of the base (30), and a column (32) on one side above the base (30). A cross arm (33) is rotatably connected to the upper end of the column (32), and a support hydraulic cylinder (34) is connected to the end of the cross arm (33) via a rotating shaft. A support foot (41) is connected to the lower end of the support hydraulic cylinder (34). A take-up roller (35) is provided above the end of the cross arm (33) away from the support hydraulic cylinder (34). A take-up roller drive motor (36) is provided on one side of the take-up roller (35) to drive the take-up roller (35) to rotate. A guide wheel (40) for guiding the wire rope is provided on one side of the upper end of the support hydraulic cylinder (34).

4. The slope casting slipform device according to claim 3, characterized in that: A first adjusting hydraulic cylinder (38) is provided between the cross arm (33) and the supporting hydraulic cylinder (34). The two ends of the first adjusting hydraulic cylinder (38) are respectively hinged to the cross arm (33) and the supporting hydraulic cylinder (34). A second adjusting hydraulic cylinder (39) is provided between the cross arm (33) and the base (30). The two ends of the second adjusting hydraulic cylinder (39) are respectively hinged to the cross arm (33) and the base (30).