Slope protection construction equipment
By designing slope protection construction equipment and using lifting and hoisting components to automatically transport slope protection bricks, the problems of low efficiency and poor safety of manual transportation were solved, and an efficient and safe construction process was achieved.
Patent Information
- Application Number
- CN202422747783.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-12
- Publication Date
- 2025-09-09
- Estimated Expiration
- 2034-11-12
AI Technical Summary
The existing slope protection bricks rely on manual labor during transportation, which has low efficiency and poor safety, and is prone to safety accidents.
A slope protection construction equipment is designed, which includes a moving component, a lifting component, a lifting component, a telescopic component and a carrying component. The lifting component drives the carrying component to transport slope protection bricks along the telescopic component. Combined with the cooperation of the lifting component and the telescopic component, automated transportation is achieved.
It improves construction efficiency and enhances construction safety. When not in use, the equipment takes up little space and is easy to transport and load and unload.
Smart Images

Figure CN223316298U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of slope protection engineering, in particular to slope protection construction equipment. Background Art
[0002] Slope protection refers to the general term for various paving and planting on the slope surface to prevent the slope from being eroded. Laying slope protection bricks on the slope is one of the important means of slope protection engineering. In the process of laying slope protection bricks, the slope protection bricks need to be transported to the slope for laying. At present, the transportation of slope protection bricks mostly relies on manpower, and workers are required to carry them back and forth between the slope and the bank. While the construction efficiency is low, walking with loads on the slope also greatly affects the safety of construction, and it is easy for the slope protection bricks to slip, leading to safety accidents. Utility Model Content
[0003] In view of the above problems, the present invention provides a slope protection construction equipment to solve the above problems of the prior art.
[0004] The technical solution adopted by the utility model to solve its technical problems is:
[0005] A slope protection construction equipment is parked on the top of the slope, and includes a moving component, a lifting component, a lifting component, a telescopic component and a carrying component. The lifting component is installed on the upper part of the moving component, and the lifting component is installed on the side of the moving component close to the slope surface. The telescopic component is rotatably connected to the lifting component. After the telescopic component is unfolded, it is erected on the slope surface of the slope, and one end of the telescopic component abuts against the bottom of the slope. The carrying component is arranged on the outside of the telescopic component, and the carrying component and the telescopic component are connected by rollers. The lifting component is connected to the carrying component by a lifting rope. The telescopic component includes a rotating bracket and a telescopic bracket. The rotating bracket is telescopically connected by a gear structure and cooperates with the rack of the telescopic bracket.
[0006] Furthermore, the telescopic assembly also includes a telescopic hydraulic cylinder and an adjustment assembly. The end of the rotating bracket close to the top of the slope is hinged to the side of the lifting assembly close to the slope surface. A telescopic hydraulic cylinder is provided at the connection between the rotating bracket and the lifting assembly. The telescopic bracket is slidingly connected to the rotating bracket. The adjustment assembly is installed at the end of the rotating bracket close to the bottom of the slope. The rotating bracket and the telescopic bracket are erected on the slope surface of the slope.
[0007] Furthermore, the rotating bracket includes two symmetrically arranged rotating support rods, a plurality of first cross beams are arranged at intervals between the two rotating support rods, a first sliding groove is opened in the middle of the upper surface of the rotating support rod, and inverted L-shaped limiting bosses are symmetrically arranged on both sides of the upper end of the rotating support rod, and stop grooves are symmetrically opened on both sides of the first sliding groove.
[0008] Furthermore, the telescopic bracket includes two symmetrically arranged telescopic support rods, a plurality of second cross beams are arranged at intervals between the two telescopic support rods, a second slide groove is opened in the middle of the upper surface of the telescopic support rod, a rack is fixedly connected to the middle of the lower surface of the telescopic support rod, and both sides of the rack are slidably connected to the upper part of the first slide groove.
[0009] Furthermore, the end of the rack close to the top of the slope is connected to a guide block, the guide block is provided with an inclined surface, and outwardly extending stop rods are provided on both sides of the guide block. The stop rods are slidably connected to the stop grooves on the rotating support rod, and limiting grooves are provided on both sides of the telescopic support rod, which are slidably connected to the limiting bosses.
[0010] Furthermore, the adjustment assembly includes a motor, a first gear, a second gear and a rotating shaft, the first gear and the second gear are respectively arranged in the lower part of the first slide groove; the motor is arranged on the outside of one of the rotating support rods close to the bottom of the slope, one end of the rotating shaft passes through the rotating support rod and is fixedly connected to the output shaft of the motor, and the other end extends to the first slide groove of the other rotating support rod, and the first gear and the second gear are respectively fixedly arranged at both ends of the rotating shaft, and the first gear and the second gear are respectively engaged with the two racks of the telescopic bracket.
[0011] Furthermore, the carrying assembly includes a scooter, a flip hydraulic cylinder, a first connecting rod, a second connecting rod and a carrying box. Two rollers are respectively installed on both sides of the lower side of the scooter, and the rollers are rollingly connected to the first slide groove or the second slide groove. One side of the scooter is hinged to the carrying box; one end of the cylinder body of the flip hydraulic cylinder is rotatably connected to one side of the scooter, and second connecting rods are symmetrically arranged on both sides of the flip hydraulic cylinder, one end of the second connecting rod is rotatably connected to one side of the scooter, the other end of the second connecting rod is hinged to one end of the first connecting rod, and the other end of the first connecting rod is hinged to the lower surface of the carrying box, a connecting shaft is fixedly connected between the two first connecting rods, and the movable end of the flip hydraulic cylinder is rotatably connected to the middle part of the connecting shaft.
[0012] Furthermore, the movable assembly includes a base, a pillar, a support platform, a push handle and a baffle. The base is placed on the top of the slope, the pillar is arranged in the middle of the base and extends upward, the support platform is horizontally fixed above the pillar, and an inclined column is fixed above the support platform. The push handle is fixed on the side of the base away from the slope surface, and the baffle is fixed on the side of the base close to the slope surface.
[0013] Furthermore, the lifting assembly includes an electric hoist and a first pulley, the electric hoist is installed above the support platform, the first pulley is installed at the upper end of the inclined column on the support platform, one end of the lifting rope is connected to the electric hoist, and the other end of the lifting rope passes around the first pulley and is connected to the hanging ear provided on the scooter.
[0014] Furthermore, the lifting assembly includes a lifting hydraulic cylinder, a scissor arm, a lifting platform and a base. The base is installed on the base, and the base is arranged on the side of the base close to the slope. The lifting platform and the base are connected through several levels of scissor arms. The lifting hydraulic cylinder is a multi-stage hydraulic cylinder, and the cylinder body of the telescopic hydraulic cylinder is hinged to the bottom of the lifting platform.
[0015] Compared with the prior art, the beneficial effects of the present invention are:
[0016] 1. The utility model provides a slope protection construction equipment, which can set up a telescopic component on the slope, and use the lifting component to drive the carrying component to transport the slope protection bricks along the telescopic component, avoiding manual handling, improving construction efficiency and increasing construction safety.
[0017] 2. The utility model provides a slope protection construction equipment, in which the lifting component and the telescopic component cooperate, and the telescopic bracket can be telescoped and retracted. The equipment occupies a small space, making the transportation and loading and unloading of the equipment more convenient. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] The present invention will be further described below with reference to the accompanying drawings.
[0019] Figure 1 This is a schematic diagram of the working state of a slope protection construction equipment described in the present utility model;
[0020] Figure 2 This is a schematic diagram of the folded state of the slope protection construction equipment described in the present invention;
[0021] Figure 3 This is a schematic diagram of the lifting assembly described in the utility model;
[0022] Figure 4 This is a schematic diagram of the decomposition structure of the telescopic assembly described in the utility model;
[0023] Figure 5 This is a partially enlarged exploded view of the telescopic assembly structure of the present invention;
[0024] Figure 6 This is a schematic diagram of the retaining groove described in the utility model;
[0025] Figure 7 This is a cross-sectional view of the adjustment assembly described in the present utility model;
[0026] Figure 8 This is a schematic diagram of one side of the object-carrying component of the present invention
[0027] Figure 9 This is a schematic diagram of the other side of the object-carrying assembly described in the present invention.
[0028] Figure: 1. Slope; 2. Moving assembly; 21. Base; 22. Pillar; 23. Support platform; 24. Push handle; 25. Caster; 26. Counterweight; 27. Baffle; 3. Lifting assembly; 31. Electric hoist; 32. First pulley; 33. Lifting rope; 4. Lifting assembly; 41. Lifting hydraulic cylinder; 42. Scissor arm; 43. Lifting platform; 431. Second pulley; 44. Base; 5. Telescopic assembly; 51. Telescopic hydraulic cylinder; 52. Rotating bracket; 521. First chute; 522. Rotating support rod; 523 , limiting boss; 524, stopping groove; 53, telescopic bracket; 531, second slide groove; 532, rack; 533, guide block; 534, limiting groove; 535, stopping rod; 536, telescopic support rod; 54, adjustment assembly; 541, motor; 542, first gear; 543, second gear; 544, rotating shaft; 6, carrying assembly; 61, scooter; 611, roller; 612, hanging ear; 62, flip hydraulic cylinder; 63, first connecting rod; 631, connecting shaft; 64, second connecting rod; 65, carrying box. DETAILED DESCRIPTION
[0029] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0030] In the following description of the invention, it should be noted that the terms "upper," "lower," "left," "right," "inner," and "outer," etc., indicating orientations or positional relationships, are based on the orientations or positional relationships shown in the accompanying drawings and are intended solely to facilitate and simplify the description of the invention. They are not intended to indicate or imply that the devices or components referred to must have a specific orientation, be constructed, or operate in a specific orientation. The term "connected" simply indicates a connection between devices and does not have any special meaning.
[0031] For specific embodiments, see Figures 1-9 A slope protection construction equipment is parked on the top of the slope 1, and includes a moving component 2, a lifting component 3, a lifting component 4, a telescopic component 5 and a carrying component 6. The lifting component 3 is installed on the upper part of the moving component 2, and the lifting component 4 is installed on the side of the moving component 2 close to the slope surface of the slope 1. The telescopic component 5 is rotatably connected to the lifting component 4. After the telescopic component 5 is unfolded, it is erected on the slope surface of the slope 1, and one end of the telescopic component 5 is in contact with the bottom of the slope 1. The carrying component 6 is arranged on the outside of the telescopic component 5, and the carrying component 6 is connected to the telescopic component 5 in a rolling manner through rollers.
[0032] Furthermore, the mobile component 2 includes a base 21, a pillar 22, a support platform 23, a push handle 24, casters 25, a counterweight 26 and a baffle 27. The base 21 is placed on the top of the slope 1, and the casters 25 are installed under the base 21 to facilitate the movement of the mobile component 2. The pillar 22 is arranged in the middle of the base 21 and extends upward. A plurality of inclined beams are arranged around the pillar 22 to support the pillar 22. The support platform 23 is horizontally fixed above the pillar 22, and an inclined column is fixed above the support platform 23. The push handle 24 is fixed to the side of the base 21 away from the slope surface, which is convenient for construction workers to push the mobile component 2. The counterweight 26 is arranged on the upper surface of the base 21, and the counterweight 26 is arranged between the push handle 24 and the pillar 22. The counterweight 26 plays a role in preventing the equipment from tipping over. The baffle 27 is fixed to the base 21. The baffle 27 is fixed to the side of the base 21 close to the slope surface of the slope 1, which plays a limiting role on the retractable component 5 after it is folded.
[0033] Furthermore, the lifting assembly 3 includes an electric hoist 31, a first pulley 32 and a lifting rope 33. The electric hoist 31 is installed above the support platform 23, and the first pulley 32 is installed at the upper end of the inclined column on the support platform 23. One end of the lifting rope 33 is connected to the electric hoist 31, and the other end of the lifting rope 33 passes around the first pulley 32 and is connected to the loading assembly 6.
[0034] Furthermore, the lifting assembly 4 includes a lifting hydraulic cylinder 41, a scissor arm 42, a lifting platform 43 and a base 44. The base 44 is installed on the base 21, and the base 44 is arranged on the side of the base 21 close to the slope. The lifting platform 43 is connected to the base 44 through several levels of scissor arms 42. Each level of scissor arms 42 is hinged to the scissor arms 42 of the adjacent level. The two sides of one end of the upper part of the base 44 are respectively hinged to the two scissor arms 42 located at the lower part, and the two sides of the other end of the upper part of the base 44 are respectively hinged and slidably connected to the other two scissor arms 42 at the lower part. The two sides of one end of the lower part of the lifting platform 43 are respectively hinged to the two scissor arms 42 located at the upper part. 2 is hinged, and the two sides of the other end of the lower part of the lifting platform 43 are respectively hinged and slidably connected to the other two scissor arms 42 located on the upper part. Two lifting hydraulic cylinders 41 are arranged at intervals. The lifting hydraulic cylinder 41 is a multi-stage hydraulic cylinder. The cylinder body of the lifting hydraulic cylinder 41 is hinged to the scissor arms 42 slidingly connected to the base 44, and the movable end of the lifting hydraulic cylinder 41 is hinged to the scissor arms 42 of the adjacent level. The specific scissor lift structure is existing technology and will not be repeated here. The lifting platform 43 is rotatably connected to the telescopic component 5. A second pulley 431 is installed on the middle part of the outer side of the lifting platform 43. The lifting rope 33 passes around the second pulley 431 to change the direction of the traction force.
[0035] Furthermore, the telescopic assembly 5 includes a telescopic hydraulic cylinder 51, a rotating bracket 52, a telescopic bracket 53 and an adjustment assembly 54. Two telescopic hydraulic cylinders 51 are arranged at intervals. The cylinder body of the telescopic hydraulic cylinder 51 is hinged to the bottom of the lifting platform 43. The end of the rotating bracket 52 close to the top of the slope is hinged to the outer side of the lifting platform 43. The two sides of the rotating bracket 52 are respectively hinged to the movable ends of the two telescopic hydraulic cylinders 51. The telescopic bracket 53 is slidably connected to the rotating bracket 52. The adjustment assembly 54 is installed at the end of the rotating bracket 52 close to the bottom of the slope. The rotating bracket 52 and the telescopic bracket 53 are erected on the slope surface of the slope 1.
[0036] Furthermore, the rotating bracket 52 includes two symmetrically arranged rotating support rods 522, and a plurality of first cross beams are arranged at intervals between the two rotating support rods 522. The end of the rotating support rod 522 close to the top of the slope is hinged to the lifting platform 43, and the lower side of the rotating support rod 522 is hinged to the movable end of the telescopic hydraulic cylinder 51. A first sliding groove 521 is provided in the middle of the upper surface of the rotating support rod 522, and an inverted L-shaped limiting boss 523 is provided at the upper end of the rotating support rod 522. Stop grooves 524 are symmetrically provided on both sides of the first sliding groove 521.
[0037] Furthermore, the telescopic bracket 53 includes two symmetrically arranged telescopic support rods 536, a plurality of second cross beams are arranged between the two telescopic support rods 536, a second slide groove 531 is provided on the upper surface of the telescopic support rod 536, a rack 532 is fixedly connected to the middle part of the lower surface of the telescopic support rod 536, both sides of the rack 532 are slidably connected to the upper part of the first slide groove 521, and the end of the rack 532 close to the top of the slope is connected to a guide block 533, and the guide block 533 is provided with an inclined surface, which enables the second slide groove 531 to smoothly transition to the first slide groove 521. A slide groove 521, and outwardly extending stop rods 535 are provided on both sides of the guide block 533. The stop rod 535 is slidably connected to the stop groove 524 on the rotating support rod 522. The stop rod 535 prevents the telescopic bracket 53 from separating from the rotating bracket 52 after it is unfolded. Limiting grooves 534 are provided on both sides of the telescopic support rod 536. The limiting grooves 534 are slidably connected to the limiting boss 523 of the rotating support rod 522. The cooperation between the limiting grooves 534 and the limiting boss 523 prevents the rack 532 from detaching from the first slide groove 521.
[0038] Furthermore, the adjustment assembly 54 includes a motor 541, a first gear 542, a second gear 543 and a rotating shaft 544. The first gear 542 and the second gear 543 are respectively arranged at the lower part of the first slide groove 521; the motor 541 is arranged on the outer side of one of the rotating support rods 522 near the bottom of the slope, one end of the rotating shaft 544 passes through the rotating support rod 522 and is fixedly connected to the output shaft of the motor 541, and the other end extends to the first slide groove 521 of the other rotating support rod 522. The rotating shaft 544 passes through the rotating bracket 5 On the first crossbeam closest to the bottom of the slope, a first gear 542 and a second gear 543 are fixedly provided at both ends of the rotating shaft 544. The first gear 542 and the second gear 543 are respectively engaged with the two racks 532 of the telescopic bracket 53. When the device is in use, the motor 541 is turned on, and the output shaft of the motor 541 drives the rotating shaft 544 to rotate, thereby driving the first gear 542 and the second gear 543 to rotate synchronously. The two racks 532 are respectively engaged with the first gear 542 and the second gear 543, driving the telescopic bracket 53 to expand or retract along the rotating bracket 52.
[0039] Furthermore, the carrying assembly 6 includes a scooter 61, a tilting hydraulic cylinder 62, a first connecting rod 63, a second connecting rod 64 and a carrying box 65. Two rollers 611 are respectively installed on both sides of the lower side of the scooter 61. The rollers 611 are rollingly connected to the first slide 521 or the second slide 531. One side of the scooter 61 is hinged to the carrying box 65. A hanging ear 612 is provided on the same side of the scooter 61. The hanging ear 612 is connected to the lifting rope 33. When the electric hoist 31 is started, the scooter 61 moves along the telescopic assembly 5 under the traction force of the lifting rope 33; a rectangular groove is opened in the middle of the scooter 61, and one end of the cylinder body of the tilting hydraulic cylinder 62 extends into the rectangular groove. One end of the cylinder body of the pressure cylinder 62 is rotatably connected to one side of the scooter 61, and second connecting rods 64 are symmetrically arranged on both sides of the flip hydraulic cylinder 62. One end of the second connecting rod 64 is rotatably connected to one side of the scooter 61, and the other end of the second connecting rod 64 is hinged to one end of the first connecting rod 63, and the other end of the first connecting rod 63 is hinged to the lower surface of the cargo box 65. A connecting shaft 631 is fixedly connected between the two first connecting rods 63, and the movable end of the flip hydraulic cylinder 62 is rotatably connected to the middle part of the connecting shaft 631. When the flip hydraulic cylinder 62 is started, the cargo box 65 is driven by the hydraulic connecting rod mechanism to achieve an angle flip between it and the scooter 61. The specific hydraulic connecting rod structure is existing technology and will not be repeated here.
[0040] When this embodiment is in use, the equipment is moved to a position close to the slope 1, the lifting hydraulic cylinder 41 is started, the lifting platform 43 is lowered to a position close to the base 21, the telescopic hydraulic cylinder 51 is started, the telescopic assembly 5 is rotated to a suitable angle, the motor 541 is started, the telescopic bracket 53 slides down to abut against the bottom of the slope 1, the flipping hydraulic cylinder 62 is started, the loading box 65 is flipped to a horizontal position, a certain number of slope protection bricks are loaded into the loading box 65, the electric hoist 31 is started, and the lifting assembly 3 starts working to realize the lowering and transportation of the slope protection bricks.
[0041] After this embodiment is finished using, the motor 541 is started, the telescopic bracket 53 slides upward, the telescopic component 5 is shortened, the lifting hydraulic cylinder 41 is started, the lifting platform 43 is raised, the telescopic hydraulic cylinder 51 is started, the telescopic component 5 is rotated until the lower end of the telescopic component 5 abuts against the upper surface of the base 21, and the flip hydraulic cylinder 62 is started to flip the cargo box 65 to abut against the scooter 61. After the equipment is folded, the space occupied is greatly reduced, which facilitates the transportation and loading and unloading of the equipment.
[0042] By pushing the push handle 24, the equipment can move on the bank of the slope 1 to realize the transportation of slope protection bricks on the entire slope 1. The entire transportation process does not require workers to carry the bricks back and forth on the slope 1, thereby improving construction efficiency and construction safety.
[0043] Although the embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations may be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A slope protection construction equipment, which is parked on the top of a slope (1), and comprises a moving assembly (2), a lifting assembly (3), a lifting assembly (4), a telescopic assembly (5) and a carrying assembly (6), wherein the lifting assembly (3) is mounted on the upper part of the moving assembly (2), the lifting assembly (4) is mounted on a side of the moving assembly (2) close to the slope surface of the slope (1), the telescopic assembly (5) is rotatably connected to the lifting assembly (4), the telescopic assembly (5) is deployed and erected on the slope surface of the slope (1), one end of the telescopic assembly (5) is in contact with the bottom of the slope (1), the carrying assembly (6) is arranged on the outside of the telescopic assembly (5), the carrying assembly (6) and the telescopic assembly (5) are connected in a rolling manner via a roller, the lifting assembly (3) is connected to the carrying assembly (6) via a lifting rope (33), the telescopic assembly (5) comprises a rotating bracket (52) and a telescopic bracket (53), and the rotating bracket (52) is telescopically matched with a rack (532) of the telescopic bracket (53) via a gear structure.
2. The slope protection construction equipment according to claim 1, characterized in that: The telescopic assembly (5) further comprises a telescopic hydraulic cylinder (51) and an adjustment assembly (54); one end of the rotating bracket (52) close to the top of the slope is hinged to the side of the lifting assembly (4) close to the slope surface; a telescopic hydraulic cylinder (51) is provided at the connection between the rotating bracket (52) and the lifting assembly (4); the telescopic bracket (53) is slidably connected to the rotating bracket (52); the adjustment assembly (54) is installed at one end of the rotating bracket (52) close to the bottom of the slope; the rotating bracket (52) and the telescopic bracket (53) are erected on the slope surface of the slope (1).
3. The slope protection construction equipment according to claim 2, characterized in that: The rotating bracket (52) includes two symmetrically arranged rotating support rods (522), a plurality of first cross beams are arranged at intervals between the two rotating support rods (522), a first sliding groove (521) is provided in the middle of the upper surface of the rotating support rod (522), an inverted L-shaped limiting boss (523) is symmetrically provided on both sides of the upper end of the rotating support rod (522), and a stop groove (524) is symmetrically provided on both sides of the first sliding groove (521).
4. The slope protection construction equipment according to claim 3, characterized in that: The telescopic bracket (53) includes two symmetrically arranged telescopic support rods (536), a plurality of second cross beams are spaced apart between the two telescopic support rods (536), a second slide groove (531) is provided in the middle of the upper surface of the telescopic support rod (536), a rack (532) is fixedly connected to the middle of the lower surface of the telescopic support rod (536), and both sides of the rack (532) are slidably connected to the upper part of the first slide groove (521).
5. The slope protection construction equipment according to claim 4, characterized in that: One end of the rack (532) close to the top of the slope is connected to a guide block (533), the guide block (533) is provided with an inclined surface, and outwardly extending stop rods (535) are provided on both sides of the guide block (533), the stop rods (535) are slidably connected to the stop grooves (524) on the rotating support rod (522), and limiting grooves (534) are provided on both sides of the telescopic support rod (536), and the limiting grooves (534) are slidably connected to the limiting bosses (523).
6. The slope protection construction equipment according to claim 4, characterized in that: The adjusting assembly (54) comprises a motor (541), a first gear (542), a second gear (543) and a rotating shaft (544), wherein the first gear (542) and the second gear (543) are respectively arranged in the lower part of the first sliding groove (521); the motor (541) is arranged on the outer side of one of the rotating support rods (522) near the bottom of the slope, one end of the rotating shaft (544) passes through the rotating support rod (522) and is fixedly connected to the output shaft of the motor (541), and the other end extends to the first sliding groove (521) of the other rotating support rod (522), and the first gear (542) and the second gear (543) are respectively fixedly arranged at both ends of the rotating shaft (544), and the first gear (542) and the second gear (543) are respectively engaged with the two racks (532) of the telescopic bracket (53).
7. The slope protection construction equipment according to claim 1, characterized in that: The object carrying assembly (6) comprises a scooter (61), a tilting hydraulic cylinder (62), a first connecting rod (63), a second connecting rod (64) and an object carrying box (65). Two rollers (611) are respectively installed on both sides of the lower side of the scooter (61). The rollers (611) are connected to the first slide groove (521) or the second slide groove (531) in a rolling manner. One side of the scooter (61) is hinged to the object carrying box (65). One end of the cylinder body of the tilting hydraulic cylinder (62) is hinged to one side of the scooter (61). The tilting hydraulic cylinder (62) is symmetrically provided with a second connecting rod (64) on both sides, one end of the second connecting rod (64) is rotatably connected to one side of the scooter (61), the other end of the second connecting rod (64) is hinged to one end of the first connecting rod (63), the other end of the first connecting rod (63) is hinged to the lower surface of the object box (65), a connecting shaft (631) is fixedly connected between the two first connecting rods (63), and the movable end of the tilting hydraulic cylinder (62) is rotatably connected to the middle part of the connecting shaft (631).
8. The slope protection construction equipment according to claim 7, characterized in that: The mobile assembly (2) comprises a base (21), a pillar (22), a support platform (23), a push handle (24) and a baffle (27); the base (21) is placed on the top of the slope (1); the pillar (22) is arranged in the middle of the base (21) and extends upward; the support platform (23) is horizontally fixed above the pillar (22); an inclined column is fixed above the support platform (23); the push handle (24) is fixed to a side of the base (21) away from the slope surface; and the baffle (27) is fixed to a side of the base (21) close to the slope surface of the slope (1).
9. The slope protection construction equipment according to claim 8, characterized in that: The lifting assembly (3) includes an electric hoist (31) and a first pulley (32), wherein the electric hoist (31) is installed above the support platform (23), and the first pulley (32) is installed at the upper end of the inclined column on the support platform (23). One end of the lifting rope (33) is connected to the electric hoist (31), and the other end of the lifting rope (33) passes around the first pulley (32) and is connected to a hanging ear (612) provided on the scooter (61).
10. The slope protection construction equipment according to claim 9, characterized in that: The lifting assembly (4) comprises a lifting hydraulic cylinder (41), a scissor arm (42), a lifting platform (43) and a base (44). The base (44) is mounted on the base (21). The base (44) is arranged on a side of the base (21) close to the slope. The lifting platform (43) and the base (44) are connected via a plurality of scissor arms (42). The lifting hydraulic cylinder (41) is a multi-stage hydraulic cylinder. The cylinder body of the telescopic hydraulic cylinder (51) is hinged to the bottom of the lifting platform (43).
Citation Information
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