Climbing machine with material anti-skid function
By installing a negative pressure plate and a fan on the conveyor belt of the ramper, combined with a limit plate and auxiliary mechanisms, the problem of material slippage is solved, and the stability and safety of material transmission at large angles are achieved.
Patent Information
- Application Number
- CN202511164755.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-20
- Publication Date
- 2025-11-14
AI Technical Summary
Existing inclined conveyors, when transporting materials, are prone to slipping due to their large inclination angle, which affects transmission efficiency and safety.
By installing negative pressure plates and exhaust fans on the conveyor belt, materials are adsorbed using negative pressure holes. Combined with limiting plates and auxiliary mechanisms, the conveying angle can be adjusted to adapt to material conveying requirements at different heights, thereby enhancing the stability of materials on the conveyor belt.
It effectively prevents materials from slipping, improves transmission efficiency and safety, and adapts to the material transmission needs at different heights.
Smart Images

Figure CN120942855A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of transportation equipment technology, and in particular to a ramp climber with material anti-slip function. Background Technology
[0002] Inclined conveyors are a type of conveying equipment with large inclination angles. They have the advantages of general belt conveyors, such as simple structure, reliable operation, and convenient maintenance. They are characterized by their ability to convey at large inclination angles, compact structure, and small footprint, and are widely used in industries such as coal, metallurgy, construction, grain, and logistics transportation.
[0003] Existing inclined conveyors, due to their large inclination angle, are prone to material slippage when placed on the conveyor belt, affecting material transport efficiency and safety. Summary of the Invention
[0004] In view of the shortcomings of the prior art, the purpose of this invention is to provide a ramp machine with material anti-slip function, which aims to solve the technical problem that in the prior art, when ramp machines are transporting materials, the materials are easily slipped due to the large inclination angle, which affects the efficiency of material transportation and is not safe enough.
[0005] To achieve the above objectives, the present invention is implemented through the following technical solution: A ramp machine with anti-slip function for materials includes a base and a transport platform. One end of the transport platform is rotatably connected to the base, and the other end of the transport platform is vertically movably connected to the base. The transport platform includes a conveyor belt and two opposing support plates. A first rotating shaft and a second rotating shaft are rotatably connected between the two support plates. The first rotating shaft is located at the end of the transport platform that is vertically movably connected to the base, and the second rotating shaft is located at the end of the transport platform that is rotatably connected to the base. The first rotating shaft and the second rotating shaft are respectively sleeved at opposite ends of the conveyor belt. One end of the first rotating shaft passes through a support plate and is connected to a rotating motor. The other end of the first rotating shaft passes through another support plate and is sleeved in the drive wheel. The conveyor belt and the two support plates enclose a conveying cavity. A negative pressure plate is installed inside the conveying cavity. The negative pressure plate is connected between two support plates. The side of the negative pressure plate facing away from the base abuts against the conveyor belt and is concave to form a negative pressure cavity. Several evenly spaced negative pressure holes are opened on the conveyor belt. The negative pressure holes communicate with the negative pressure cavity. An exhaust fan is installed on the base. The exhaust fan is connected to the negative pressure cavity through an exhaust pipe to generate negative pressure inside the negative pressure cavity.
[0006] Compared to related technologies, the advantages of this invention are as follows: the conveyor platform, through a rotatable connection at one end and a vertically movable connection at the other end with the base, can adjust the conveying angle of the conveyor platform to adapt to material conveying requirements at different heights; when the material is placed on the conveyor belt, the exhaust fan vents the negative pressure chamber to generate negative pressure, which then adsorbs the material onto the conveyor belt through negative pressure holes, improving the stability of the material during conveying, preventing the material from slipping due to the large inclination angle, effectively improving the conveying efficiency and enhancing the safety of material conveying.
[0007] Furthermore, the conveyor belt is provided with a plurality of limiting plates evenly distributed at intervals along the transport direction of the conveyor belt, and the limiting plates extend from one of the supporting plates to the other supporting plate.
[0008] Furthermore, the inclined machine with material anti-slip function also includes an auxiliary mechanism, which includes a connecting block, a connecting rod, and a conveyor belt. One of the support plates is connected to the connecting block on the side facing away from the other support plate and is rotatably connected to a first driven wheel. The first driven wheel meshes with the driving wheel. The connecting block is connected to the connecting rod on the side facing away from the base. The connecting rod is connected to an extension plate on the side facing away from the connecting block. The extension plate is parallel to the conveyor belt. The opposite ends of the extension plate are rotatably connected to a second driven wheel and a third driven wheel. The opposite ends of the conveyor belt are respectively sleeved with the second driven wheel and the third driven wheel. The first driven wheel is drivingly connected to the second driven wheel. The conveyor belt is provided with evenly spaced pressure bars.
[0009] Furthermore, the pressure bar includes a first rod body and a second rod body, one end of the first rod body is connected to the conveyor belt, the other end of the first rod body is connected to a telescopic rod, the end of the telescopic rod facing away from the first rod body is connected to the second rod body, and the second rod body extends from one of the support plates to the other support plate.
[0010] Furthermore, the telescopic rod includes a plug-in post and a movable post. The end of the first rod body facing away from the conveyor belt is connected to the plug-in post. One side of the plug-in post is recessed to form a plug-in groove. One end of the movable post is movably connected to the plug-in groove. The end of the movable post facing away from the plug-in post is connected to a connecting post. The second rod body is disposed on the connecting post. The diameter of the movable post is smaller than the diameter of the plug-in post and the connecting post. A return spring is sleeved on the movable post. The two opposite ends of the return spring are respectively connected to the plug-in post and the connecting post.
[0011] Furthermore, a cleaning shaft is rotatably connected between the two support plates. One end of the cleaning shaft passes through one of the support plates and is sleeved inside a fourth driven wheel. The fourth driven wheel is drive-connected to the driving wheel. A cleaning block is sleeved on the cleaning shaft, and the cleaning block abuts against the conveyor belt.
[0012] Furthermore, a water storage block is provided between the two support plates, one side of the water storage block is recessed to form a water storage tank, the cleaning block is partially placed in the water storage tank, and a drain pipe connected to the water storage tank is provided on the water storage block.
[0013] Furthermore, the first rotating shaft has one end of the drive wheel connected to a spatial cam, the spatial cam having a curved groove, a circulation rod inside the water storage tank, one end of the circulation rod passing through the water storage block and connected to a first extension rod, the end of the first extension rod facing away from the circulation rod being connected to a second extension rod, the end of the second extension rod facing away from the first extension rod being placed in the curved groove, and a plurality of evenly spaced scraping plates on the circulation rod abutting against the cleaning block.
[0014] Furthermore, a squeezing rod is provided inside the water storage tank, and the squeezing rod abuts against the cleaning block.
[0015] Furthermore, a plurality of evenly spaced support rods are provided inside the negative pressure chamber, and the support rods abut against the conveyor belt. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the slope climbing machine with material anti-slip function in an embodiment of the present invention from a first-view perspective; Figure 2 This is a schematic diagram of the slope climbing machine with material anti-slip function in an embodiment of the present invention from a second perspective. Figure 3 This is a partial structural diagram of the ramp-climbing machine with material anti-slip function in an embodiment of the present invention, viewed from a third-person perspective. Figure 4 This is a partial structural diagram of the ramp-climbing machine with material anti-slip function in an embodiment of the present invention, viewed from a fourth perspective. Figure 5 This is a schematic diagram of the disassembly structure between the cleaning shaft and the water storage block in the slope climbing machine with material anti-slip function in an embodiment of the present invention; Figure 6 This is a schematic diagram of the negative pressure plate in the slope climber with material anti-slip function in an embodiment of the present invention; Explanation of key component symbols: 10. Base; 20. Transport platform; 210. Support plate; 220. First rotating shaft; 221. Spatial cam; 222. Curved groove; 230. Drive wheel; 240. Conveying chamber; 250. Conveyor belt; 251. Negative pressure hole; 30. Negative pressure plate; 310. Negative pressure chamber; 40. Exhaust fan; 50. Limiting plate; 60. Auxiliary mechanism; 610. Connecting block; 620. Connecting rod; 630. Conveyor belt; 640. First driven wheel; 650. Extension plate; 660. Second... Driven wheel; 670, pressing rod; 671, first rod body; 672, telescopic rod; 6721, plug-in post; 6722, movable post; 6723, connecting post; 6724, return spring; 673, second rod body; 70, cleaning shaft; 710, fourth driven wheel; 720, cleaning block; 80, water storage block; 810, drain pipe; 820, circulation rod; 830, first extension rod; 840, second extension rod; 850, scraper; 860, pressing rod; 90, bearing rod.
[0017] The following detailed description, in conjunction with the accompanying drawings, will further illustrate the present invention. Detailed Implementation
[0018] To facilitate understanding of the present invention, a more complete description will be given below with reference to the accompanying drawings. Several embodiments of the invention are illustrated in the drawings. However, the invention can be implemented in many different forms and is not limited to the embodiments described herein. Rather, these embodiments are provided so that this disclosure will be thorough and complete.
[0019] It should be noted that when a component is said to be "fixed to" another component, it can be directly on the other component or there may be an intervening component. When a component is said to be "connected to" another component, it can be directly connected to the other component or there may be an intervening component. The terms "vertical," "horizontal," "left," "right," and similar expressions used in this document are for illustrative purposes only.
[0020] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention pertains. The terminology used herein in the description of the invention is for the purpose of describing particular embodiments only and is not intended to be limiting of the invention. The term "and / or" as used herein includes any and all combinations of one or more of the associated listed items.
[0021] Please see Figures 1 to 6The inclined ramp machine with material anti-slip function in this embodiment of the invention includes a base 10 and a conveyor platform 20. One end of the conveyor platform 20 is rotatably connected to the base 10, and the other end of the conveyor platform 20 is vertically movably connected to the base 10. The conveyor platform 20 includes a conveyor belt 250 and two opposing support plates 210. Specifically, a first connecting rod and a second connecting rod are provided between the two support plates 210. The first connecting rod and the second connecting rod are located at opposite ends of the support plates 210. A socket is provided at one end of the base 10, and the first connecting rod is sleeved onto... Within the socket, a rotatable connection is achieved between the transport platform 20 and the base 10. A first stop and a second stop are provided at the other end of the base 10, with the first and second stops facing each other. A third connecting rod is positioned between the first and second stops, and a first column is sleeved on the third connecting rod. The end of the first column facing away from the third connecting rod is recessed to form a lifting groove. A second column is movably connected within the lifting groove, and the end of the second column facing away from the first column is sleeved on the second connecting rod, thus achieving a vertical moving connection between the transport platform 20 and the base 10. Through the rotatable connection at one end and the vertical moving connection at the other end, the transport platform 20's transmission angle can be adjusted to accommodate material transport requirements at different heights.
[0022] A first rotating shaft 220 and a second rotating shaft are rotatably connected between two support plates 210. The first rotating shaft 220 is located at one end of the transport platform 20 and the base 10 that are vertically connected. The second rotating shaft is located at one end of the transport platform 20 and the base 10 that are rotatably connected. The two opposite ends of the conveyor belt 250 are respectively fitted with the first rotating shaft 220 and the second rotating shaft. One end of the first rotating shaft 220 passes through one of its support plates 210 and is connected to a rotating motor. The other end of the first rotating shaft 220 passes through the other support plate 210 and is fitted inside the drive wheel 230. The conveyor belt 250 and the two support plates 210 enclose a conveying cavity 240. Understandably, the rotating motor is used to drive the first rotating shaft 220 to rotate, thereby causing the conveyor belt 250 to start conveying and driving the second rotating shaft to rotate. Preferably, a third and a fourth rotating shaft are also provided between the first rotating shaft 220 and the second rotating shaft. The third and fourth rotating shafts are rotatably connected between the two support plates 210. The third and fourth rotating shafts are located at opposite ends of the support plates 210. The third rotating shaft is adjacent to the first rotating shaft 220 and the fourth rotating shaft is adjacent to the second rotating shaft. The height of the third rotating shaft is lower than the height of the first rotating shaft 220 and the height of the fourth rotating shaft is lower than the height of the second rotating shaft. Both the third and fourth rotating shafts abut against the conveyor belt 250 to expand the space of the conveyor cavity 240.
[0023] A negative pressure plate 30 is installed inside the conveying chamber 240, connecting two support plates 210. The side of the negative pressure plate 30 facing away from the base 10 abuts against the conveyor belt 250 and is recessed to form a negative pressure chamber 310. Several evenly spaced negative pressure holes 251 are opened on the conveyor belt 250, communicating with the negative pressure chamber 310. An exhaust fan 40 is installed on the base 10, connected to the negative pressure chamber 310 through an exhaust pipe, thereby generating negative pressure within the negative pressure chamber 310. When material is placed on the conveyor belt 250, the exhaust fan 40 vents the negative pressure chamber 310, creating negative pressure. This negative pressure is then drawn onto the conveyor belt 250 through the negative pressure holes 251, improving the stability of the material during transport, preventing slippage due to the large angle of inclination, effectively increasing transport efficiency, and enhancing the safety of material transport. Preferably, a number of evenly spaced support rods 90 are provided in the negative pressure chamber 310. The support rods 90 abut against the conveyor belt 250. By providing the support rods 90, the collapse of the conveyor belt 250 caused by negative pressure can be avoided, thereby improving the overall structural stability of the ramp machine with material anti-slip function.
[0024] Preferably, a plurality of limiting plates 50 are provided on the conveyor belt 250, which are evenly distributed along the transport direction of the conveyor belt 250. The limiting plates 50 extend from one support plate 210 to another support plate 210. When the material is placed on the conveyor belt 250, the displacement of the material can also be restricted by the limiting plates 50. Together with the negative pressure hole 251, the material is stabilized on the conveyor belt 250 to prevent the material from slipping.
[0025] The inclined ramp machine with material anti-slip function also includes an auxiliary mechanism 60. The auxiliary mechanism 60 includes a connecting block 610, a connecting rod 620, and a conveyor belt 630. One support plate 210 is connected to the connecting block 610 on the side facing away from the other support plate 210, and is rotatably connected to the first driven wheel 640. The first driven wheel 640 meshes with the driving wheel 230. The connecting rod 620 is connected to the connecting block 610 on the side facing away from the base 10. The extension plate 650 is connected to the extension plate 650 on the side facing away from the connecting block 610. The extension plate 650 is parallel to the conveyor belt 250, and the setting height of the extension plate 650 is higher than the setting height of the conveyor belt 250, that is, the extension plate 650 is located above the conveyor belt 250. The two opposite ends of the extension plate 650 are rotatably connected to the second driven wheel 660 and the third driven wheel 630. Driven wheels, the two opposite ends of the conveyor belt 630 are respectively fitted with second driven wheels 660 and third driven wheels, the first driven wheel 640 is driven to the second driven wheel 660. Specifically, the first driven wheel is fitted with a first driven belt, and the other end of the first driven belt is fitted with the second driven wheel 660. The conveyor belt 630 is provided with evenly distributed pressure bars 670. When the rotating motor drives the first rotating shaft 220 to rotate, the driving wheel 230 rotates synchronously. At this time, the first driven wheel 640 meshing with the driving wheel 230 rotates synchronously and drives the second driven wheel 660 to rotate, thereby making the conveyor belt 630 start to convey. At this time, the pressure bars 670 move with the conveyor belt 630 and abut against the top or side wall of the material, further improving the placement stability of the material on the conveyor belt 250. Preferably, a plurality of anti-collapse wheels are rotatably connected to the extension plate 650. The plurality of anti-collapse wheels are evenly distributed at intervals from the second driven wheel 660 to the third driven wheel. The anti-collapse wheels are fitted inside the conveyor belt 630 to prevent the conveyor belt 630 from collapsing.
[0026] Specifically, the pressure bar 670 includes a first rod body 671 and a second rod body 673. One end of the first rod body 671 is connected to the conveyor belt 630, and the other end of the first rod body 671 is connected to a telescopic rod 672. The end of the telescopic rod 672 facing away from the first rod body 671 is connected to the second rod body 673. The second rod body 673 extends from one support plate 210 to the other support plate 210. Understandably, when the second rod body 673 abuts against the top of the material for compression and limiting, the telescopic rod 672 can automatically adjust the length of the rod body to avoid excessive compression and damage to the material. Specifically, the telescopic rod 672 includes a plug-in post 6721 and a movable post 6722. The end of the first rod body 671 facing away from the conveyor belt 630 is connected to the plug-in post 6721, and one side of the plug-in post 6721 is concave to form a plug. The movable column 6722 is movably connected to the insertion slot at one end. The end of the movable column 6722 facing away from the insertion column 6721 is connected to the connecting column 6723. A second rod 673 is provided on the connecting column 6723. The diameter of the movable column 6722 is smaller than the diameters of the insertion column 6721 and the connecting column 6723. A return spring 6724 is sleeved on the movable column 6722. The two opposite ends of the return spring 6724 are respectively connected to the insertion column 6721 and the connecting column 6723. By providing the return spring 6724, the movable column 6722 can be prevented from disengaging from the insertion column 6721. When the second rod 673 abuts against the material and the telescopic rod 672 is compressed, the return spring 6724 is squeezed. After the second rod 673 is disengaged from the material, the return spring 6724 rebounds and the telescopic rod 672 returns to its original position.
[0027] A cleaning shaft 70 is rotatably connected between two support plates 210. One end of the cleaning shaft 70 passes through one of the support plates 210 and is sleeved inside a fourth driven wheel 710. The fourth driven wheel 710 is connected to a driving wheel 230 via a second transmission belt. A cleaning block 720 is sleeved on the cleaning shaft 70 and abuts against the conveyor belt 250. By providing the cleaning block 720, during the transmission process on the conveyor belt 250, the cleaning block 720 can wipe away oil or dust on the conveyor belt 250, preventing contaminants from remaining on the conveyor belt 250, reducing the friction between the material and the conveyor belt 250, and thus affecting the stability of the material on the conveyor belt 250. In this embodiment, the cleaning block 720 is a sponge block. Understandably, when the driving wheel 230 rotates, the fourth driven wheel 710 rotates synchronously, thereby driving the cleaning shaft 70 to rotate, preventing the cleaning block 720 from only partially contacting the conveyor belt 250, which would affect the utilization of the cleaning block 720. After prolonged cleaning, excessive oil or dust accumulation on the cleaning block 720 can affect its cleaning power on the conveyor belt 250. A water storage block 80 is installed between the two support plates 210. One side of the water storage block 80 is concave to form a water storage tank, which is used to store cleaning fluid. The cleaning block 720 is partially placed in the water storage tank. As the cleaning shaft 70 rotates, the cleaning block 720 can be immersed in the water storage tank after cleaning the conveyor belt 250. The cleaning fluid is used to clean the cleaning block 720, thereby improving the continuity of cleaning. A drain pipe 810 connected to the water storage tank is installed on the water storage block 80. By installing the drain pipe 810, the cleaning fluid in the water storage tank can be replaced periodically.
[0028] Simple soaking may not achieve sufficient cleanliness for the cleaning block 720. Therefore, the first rotating shaft 220 has a drive wheel 230 connected to a spatial cam 221 at one end. The spatial cam 221 has a curved groove 222. A circulation rod 820 is installed inside the water storage tank. One end of the circulation rod 820 passes through the water storage block 80 and is connected to a first extension rod 830. The end of the first extension rod 830 facing away from the circulation rod 820 is connected to a second extension rod 840. The end of the second extension rod 840 facing away from the first extension rod 830 is placed inside the curved groove 222. The circulation rod 820 is provided with several evenly spaced support plates 90. The support plates 90 abut against the cleaning block 720. Understandably, as the drive wheel 230 rotates, the spatial cam 221 rotates accordingly. At this time, the second extension rod 840 moves along the curved groove 222. Due to the way the curve is set, the second extension rod 840 reciprocates, thereby driving the circulation rod 820 to reciprocate axially, and driving the support plates 90 to scrape the cleaning block 720 back and forth, working with the cleaning fluid to clean the contaminants on the cleaning block 720.
[0029] A squeezing rod 860 is installed inside the water storage tank. The squeezing rod 860 abuts against the cleaning block 720. After the cleaning block 720 is soaked in the cleaning liquid, the squeezing rod 860 can filter out the cleaning liquid adsorbed on the cleaning block 720, thus preventing the cleaning liquid from contaminating the conveyor belt 250 and coming into contact with the material, which would affect the quality of the material.
[0030] In the description of this specification, references to terms such as "one embodiment," "some embodiments," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.
[0031] The embodiments described above are merely illustrative of several implementations of the present invention, and while the descriptions are specific and detailed, they should not be construed as limiting the scope of the present invention. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of the present invention, and these modifications and improvements all fall within the scope of protection of the present invention. Therefore, the scope of protection of this patent should be determined by the appended claims.
Claims
1. A ramp-climbing machine with material anti-slip function, characterized in that, The system includes a base and a transport platform. One end of the transport platform is rotatably connected to the base, and the other end of the transport platform is vertically movably connected to the base. The transport platform includes a conveyor belt and two opposing support plates. A first rotating shaft and a second rotating shaft are rotatably connected between the two support plates. The first rotating shaft is located at the end of the transport platform that is vertically movably connected to the base, and the second rotating shaft is located at the end of the transport platform that is rotatably connected to the base. The first rotating shaft and the second rotating shaft are respectively sleeved at opposite ends of the conveyor belt. One end of the first rotating shaft passes through a support plate and is connected to a rotating motor. The other end of the first rotating shaft passes through another support plate and is sleeved in the drive wheel. The conveyor belt and the two support plates enclose a conveying cavity. A negative pressure plate is installed inside the conveying cavity. The negative pressure plate is connected between two support plates. The side of the negative pressure plate facing away from the base abuts against the conveyor belt and is concave to form a negative pressure cavity. Several evenly spaced negative pressure holes are opened on the conveyor belt. The negative pressure holes communicate with the negative pressure cavity. An exhaust fan is installed on the base. The exhaust fan is connected to the negative pressure cavity through an exhaust pipe to generate negative pressure inside the negative pressure cavity.
2. The inclined ramp machine with material anti-slip function according to claim 1, characterized in that, The conveyor belt is provided with a plurality of limiting plates evenly distributed at intervals along the transport direction of the conveyor belt, and the limiting plates extend from one of the supporting plates to the other supporting plate.
3. The inclined ramp machine with material anti-slip function according to claim 1, characterized in that, The inclined machine with material anti-slip function also includes an auxiliary mechanism, which includes a connecting block, a connecting rod, and a conveyor belt. One of the support plates is connected to the connecting block on the side facing away from the other support plate and is rotatably connected to a first driven wheel. The first driven wheel meshes with the driving wheel. The connecting block is connected to the connecting rod on the side facing away from the base. The connecting rod is connected to an extension plate on the side facing away from the connecting block. The extension plate is parallel to the conveyor belt. The opposite ends of the extension plate are rotatably connected to a second driven wheel and a third driven wheel. The opposite ends of the conveyor belt are respectively sleeved with the second driven wheel and the third driven wheel. The first driven wheel is driven by the second driven wheel. The conveyor belt is provided with evenly spaced pressure bars.
4. The inclined ramp machine with material anti-slip function according to claim 3, characterized in that, The pressure bar includes a first rod body and a second rod body. One end of the first rod body is connected to the conveyor belt, and the other end of the first rod body is connected to a telescopic rod. The end of the telescopic rod facing away from the first rod body is connected to the second rod body. The second rod body extends from one of the support plates to the other support plate.
5. The inclined ramp machine with material anti-slip function according to claim 4, characterized in that, The telescopic rod includes a plug-in post and a movable post. The end of the first rod facing away from the conveyor belt is connected to the plug-in post. One side of the plug-in post is recessed to form a plug-in groove. One end of the movable post is movably connected to the plug-in groove. The end of the movable post facing away from the plug-in post is connected to a connecting post. The second rod is mounted on the connecting post. The diameter of the movable post is smaller than the diameters of the plug-in post and the connecting post. A return spring is sleeved on the movable post. The two opposite ends of the return spring are respectively connected to the plug-in post and the connecting post.
6. The inclined ramp machine with material anti-slip function according to claim 1, characterized in that, A cleaning shaft is rotatably connected between the two support plates. One end of the cleaning shaft passes through one of the support plates and is sleeved inside a fourth driven wheel. The fourth driven wheel is connected to the driving wheel. A cleaning block is sleeved on the cleaning shaft, and the cleaning block abuts against the conveyor belt.
7. The inclined ramp machine with material anti-slip function according to claim 6, characterized in that, A water storage block is provided between the two support plates. One side of the water storage block is recessed to form a water storage tank. The cleaning block is partially placed in the water storage tank. A drain pipe communicating with the water storage tank is provided on the water storage block.
8. The inclined ramp machine with material anti-slip function according to claim 7, characterized in that, The first rotating shaft has one end of the drive wheel connected to a spatial cam. The spatial cam has a curved groove. A circulation rod is installed in the water storage tank. One end of the circulation rod passes through the water storage block and is connected to a first extension rod. The end of the first extension rod facing away from the circulation rod is connected to a second extension rod. The end of the second extension rod facing away from the first extension rod is placed in the curved groove. Several evenly spaced scraping plates are installed on the circulation rod. The scraping plates abut against the cleaning block.
9. The inclined ramp machine with material anti-slip function according to claim 7, characterized in that, A squeezing rod is installed inside the water storage tank, and the squeezing rod abuts against the cleaning block.
10. The inclined ramp machine with material anti-slip function according to claim 1, characterized in that, The negative pressure chamber is provided with several evenly spaced support rods, which abut against the conveyor belt.