New energy mobile backflip structure

By designing a new energy mobile overturning structure, and utilizing components such as a support frame, a fixed frame, a corrugated plate, a filter screen, and a guide roller, the problem of difficulty in diverting bulk grain and simultaneously transferring impurities in unloading equipment was solved. This achieved the even distribution of bulk grain and separation of impurities, reducing energy consumption and risk.

CN122144504APending Publication Date: 2026-06-05ANHUI JIESHOUSHI YUNLONG FOOD MACHINE ENG
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
ANHUI JIESHOUSHI YUNLONG FOOD MACHINE ENG
Filing Date
2026-04-14
Publication Date
2026-06-05

AI Technical Summary

Technical Problem

Existing grain unloading equipment is difficult to effectively divert bulk grain, which can easily lead to grain piling up and impurities being transferred simultaneously, increasing energy consumption.

Method used

A new energy mobile overturning structure was designed, including a support frame, a fixed frame, a corrugated plate, a filter screen, a guide roller, and a diversion box. By controlling the opening and closing of the discharge port and the guide angle, the bulk grain can be diverted and unloaded and impurities can be separated. The guide roller is controlled to rotate in reverse by a dual-axis motor to accelerate the separation of impurities.

Benefits of technology

This method enables the even distribution of bulk grain during transport, reduces transport energy consumption, minimizes the risk of grain spillage, improves impurity separation efficiency, and ensures the stability and energy-saving effect of the unloading process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application relates to the technical field of back-turning structures, in particular to a new energy mobile back-turning structure. The new energy mobile back-turning structure comprises a supporting frame, the upper surface of the supporting frame is fixedly provided with a fixed frame, the inner surface of the fixed frame is fixedly provided with a transversely arranged wave-shaped plate, the inner recesses of the wave-shaped plate are all provided with fixed ports, the wave-shaped plate is fixedly provided with filter screens through the inner surfaces of the fixed ports, one side of the fixed frame is fixedly provided with a double-shaft motor, the two output ends of the double-shaft motor are both fixedly provided with transmission gears, the upper portions of the rear ends of the inner surfaces of the fixed frame are all uniformly rotatably provided with a plurality of first flow guide rollers, the upper portions of the front ends of the inner surfaces of the fixed frame are all uniformly rotatably provided with a plurality of second flow guide rollers, and the middle portions of the ends, which are away from each other, of the first flow guide rollers and the second flow guide rollers are both fixedly provided with driven gears. The new energy mobile back-turning structure is favorable for improving the transfer rate of bulk grain and reducing the transfer energy consumption, and simultaneously reducing the scattering risk in the bulk grain unloading and transfer process.
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Description

Technical Field

[0001] This invention relates to the field of rear-tipping structure technology, and more specifically, to a new energy mobile rear-tipping structure. Background Technology

[0002] In the process of agricultural food production, with the development of the times, grain harvesting has shifted from manual to mechanized collective harvesting, thereby improving the efficiency of grain production. Among them, the bulk grain harvested by mechanization needs to be transported to warehouses or designated locations by means of transport vehicles, and unloading is completed with the help of unloading equipment.

[0003] Existing grain unloading equipment often uses conveyor belts or unloading hoppers to receive bulk grain transported by vehicles. However, these equipment struggle to effectively divert the unloaded grain, leading to grain slumping and the risk of grain spillage during transport. Furthermore, mechanized collection can result in impurities being mixed into the grain, which are difficult to separate during unloading. This results in impurities being transported along with the grain, increasing the energy consumption of the unloading equipment.

[0004] Based on this, a new energy mobile overturning structure is proposed. Summary of the Invention

[0005] The main objective of this invention is to provide a new energy mobile overturning structure to overcome the problems mentioned in the background art.

[0006] To achieve the above objectives, the present invention provides a new energy mobile rear-tilting structure, including a support frame, a fixing frame fixedly installed on the upper surface of the support frame, a horizontally arranged corrugated plate fixedly installed on the inner surface of the fixing frame, fixing openings provided in the concave parts of the corrugated plate, a filter screen fixedly installed on the inner surface of the corrugated plate through the fixing openings, a dual-axis motor fixedly installed on one side of the fixing frame, and transmission gears fixedly installed on both output ends of the dual-axis motor. A plurality of first guide rollers are uniformly rotatably inserted and installed on the upper part of the rear end of the inner surface of the fixed frame, and a plurality of second guide rollers are uniformly rotatably inserted and installed on the upper part of the front end of the inner surface of the fixed frame. A driven gear is fixedly installed at the middle of the ends of the first guide rollers and the second guide rollers that are far apart from each other. A transmission belt is installed on the outer surface of the driven gear and the transmission gear together. A flow divider box is movably installed above the fixed frame, and a guide cylinder is movably hinged above the flow divider box. A discharge port is provided on the lower surface of the side of the guide cylinder that is hinged to the flow divider box, and a feed port is provided on the upper surface of the side of the flow divider box that is hinged to the guide cylinder. The discharge port of the guide cylinder and the feed port of the flow divider box are connected by a telescopic tube.

[0007] As a further improvement of the present invention, first traveling legs are fixedly installed at the four corners of the outer surface of the support frame, wherein positioning pins are spirally inserted and installed between the two first traveling legs on the side near the dual-axis motor, at the middle part away from the outer surface.

[0008] As a further improvement of the present invention, a sliding bracket is slidably mounted on the middle of the outer surfaces of the first traveling legs. The outer surfaces of the sliding brackets near the first traveling legs are provided with a plurality of positioning holes. The output end of the positioning screw is screwed into the positioning hole. Support rollers are rotatably mounted on both sides of the outer surfaces of the sliding brackets. A conveyor belt is mounted on the sliding brackets through the outer surfaces of the support rollers. A second traveling leg is fixedly mounted on each of the two corners of one side of the sliding bracket. A motor is fixedly mounted on the upper part of the outer surface of one of the second traveling legs away from the conveyor belt. The output end of the motor passes through the second traveling leg and is fixedly connected to the support roller.

[0009] As a further improvement of the present invention, a docking hole is provided at the middle of one end of the first guide roller near the second guide roller, and a docking shaft is fixedly provided at the middle of one end of the second guide roller near the first guide roller. The docking shaft is rotatably inserted into the docking hole. Several blades are evenly distributed on the outer surfaces of the first guide roller and the second guide roller. Both the first guide roller and the second guide roller are located above the filter screen.

[0010] As a further improvement of the present invention, a support shaft seat is movably hinged and inserted on one side of the outer surface of the diversion box. The lower surface of the support shaft seat is fixedly connected to the upper surface of the support frame. A plurality of drain ports are evenly opened through the inner bottom surface of the diversion box. A plurality of partitions are evenly inserted through the inner top surface of the diversion box. The lower surface of the partitions contacts the side of the drain port near the support shaft seat. A first hydraulic push rod is movably hinged to both the front end and the rear end of the other side of the outer surface of the diversion box. The other end of the first hydraulic push rod is movably hinged to the upper surface of the support frame.

[0011] As a further improvement of the present invention, the front and rear ends of the diversion box and the guide cylinder near the first hydraulic push rod are movably hinged and inserted with a hinged shaft seat. A bracket is fixedly installed on the lower surface of the guide cylinder near the telescopic tube. The front and rear ends of the lower surface of the bracket are movably hinged and installed with a second hydraulic push rod. The other end of the second hydraulic push rod is movably hinged to the front and rear ends of the outer surface of the diversion box near the telescopic tube.

[0012] The beneficial effects of this invention are: This invention utilizes a diversion box structure with multiple discharge ports and a baffle structure to divert and unload bulk grain. The opening and closing of the corresponding number of discharge ports can be controlled according to the required unloading flow rate, achieving effective diversion and avoiding grain accumulation during unloading. By diverting the unloading, the bulk grain is evenly transferred, further distributing the weight borne by the grain-bearing parts of the unloading equipment, thereby indirectly increasing the transfer rate and reducing transfer energy consumption. It also helps reduce the risk of grain scattering during unloading and transfer, thus ensuring the stability of bulk grain unloading and transfer. This invention, by setting a corrugated plate structure, can guide the diverted bulk grain to the filter screen structure for impurity separation. In the reverse distribution state of the first guide roller and the second guide roller, the separation efficiency of the filter screen structure for bulk grain impurities is improved, thereby reducing the residue of impurities in the bulk grain, reducing the energy consumption of the equipment for synchronous transfer of impurities and grain, and achieving the effect of energy saving. Attached Figure Description

[0013] The accompanying drawings, which form part of this invention, are used to provide a further understanding of the invention. The illustrative embodiments of the invention and their descriptions are used to explain the invention and do not constitute an undue limitation of the invention. In the drawings: Figure 1 This is a schematic diagram of the front three-dimensional structure of the present invention; Figure 2 This is a schematic diagram of the operation of the present invention; Figure 3 This is a schematic diagram of the support frame structure of the present invention. Figure 4 This is a schematic diagram of the fixed frame structure of the present invention. Figure 5 This is a schematic diagram of the waveform board structure of the present invention. Figure 6 This is a schematic diagram of the split-section structure of the flow divider of the present invention; Figure 7 This is a schematic diagram of the conveyor belt structure in operation according to the present invention.

[0014] In the diagram: 1. Support frame; 101. First traveling leg; 102. Positioning pin; 2. Sliding bracket; 201. Positioning hole; 202. Conveyor belt; 203. Second traveling leg; 204. Motor; 3. Fixed frame; 301. Corrugated plate; 302. Filter screen; 303. Dual-axis motor; 304. Transmission gear; 4. First guide roller; 401. Docking hole; 5. Second guide roller; 501. Docking shaft; 6. Driven gear; 601. Transmission belt; 7. Diverter box; 701. Support shaft seat; 702. Drain port; 703. Partition plate; 704. First hydraulic push rod; 705. Hinge shaft seat; 8. Guide cylinder; 801. Bracket; 802. Second hydraulic push rod; 9. Telescopic tube. Detailed Implementation

[0015] It should be noted that, unless otherwise specified, the embodiments and features described in the present invention can be combined with each other. The present invention will now be described in detail with reference to the accompanying drawings and embodiments.

[0016] To enable those skilled in the art to better understand the present invention, the technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort should fall within the scope of protection of the present invention.

[0017] It should be noted that the terms "first," "second," etc., in the specification, claims, and accompanying drawings of this invention are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate for the embodiments of the invention described herein. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion; for example, a process, method, system, product, or apparatus that comprises a series of steps or units is not necessarily limited to those steps or units explicitly listed, but may include other steps or units not explicitly listed or inherent to such processes, methods, products, or apparatus.

[0018] To make the objectives and advantages of the present invention clearer, the present invention will be further described below with reference to embodiments; it should be understood that the specific embodiments described herein are merely for explaining the present invention and are not intended to limit the present invention.

[0019] Example 1

[0020] Please see Figures 1-6As shown, a new energy mobile tilting structure includes a support frame 1. First walking legs 101 are fixedly installed at the four corners of the outer surface of the support frame 1. Positioning pins 102 are spirally inserted into the middle of the two first walking legs 101 near the dual-axis motor 303, away from the outer surface. Sliding brackets 2 are slidably installed between the first walking legs 101 near the middle of the outer surface. Several positioning holes 201 are opened on the outer surface of the sliding brackets 2 near the first walking legs 101. The output ends of the positioning pins 102 are spirally inserted into the positioning holes 201. Support rollers are rotatably installed on both sides of the sliding brackets 2 near the outer surface. A conveyor belt 202 is sleeved on the sliding brackets 2 through the outer surface of the support rollers. Second walking legs 203 are fixedly installed at two corners on one side of the sliding brackets 2. A motor 204 is fixedly installed on the upper part of the outer surface of one of the second walking legs 203 away from the conveyor belt 202. The output end of the motor 204 passes through the second walking leg 203 and is fixedly connected to the support roller. It should be noted that the support frame 1 can be moved and adjusted by the first traveling leg 101, thereby adjusting the position of the support frame 1 connected to the bulk grain transport vehicle. When the sliding bracket 2 and the first traveling leg 101 are in a sliding engagement connection state, the distance between the conveyor belt 202 and the first traveling leg 101 can be adjusted by pulling the sliding bracket 2 while the first traveling leg 101 is stable and stationary, thereby changing the conveying distance of the entire rear tilting structure. When adjusting the distance between the conveyor belt 202 and the first traveling leg 101, the positioning pin 102 needs to be screwed out of the first traveling leg 101. At this time, the sliding bracket 2 can be pulled out and slidably adjusted with the first traveling leg 101 as the support point. When the sliding bracket 2 is adjusted to the appropriate position, the positioning hole 201 on its outer surface needs to be aligned with the screw hole on the first traveling leg 101 for inserting the positioning pin 102. At this time, the positioning pin 102 can be screwed through the screw hole on the first traveling leg 101 and inserted into the positioning hole 201. Thus, the positioning pin 102 is used to achieve a fixed connection between the sliding bracket 2 and the first traveling leg 101, ensuring the connection stability between the sliding bracket 2 and the first traveling leg 101. Once the conveying position of the conveyor belt 202 is adjusted, the motor 204 can be started to control the support roller to rotate, thereby using the rotating support roller to control the conveyor belt 202 to transport the bulk grain unloaded onto the surface of the conveyor belt 202.

[0021] A fixed frame 3 is fixedly installed on the upper surface of the support frame 1. A horizontally arranged corrugated plate 301 is fixedly installed on the inner surface of the fixed frame 3. A fixing port is opened in the concave part of the corrugated plate 301. A filter screen 302 is fixedly installed on the inner surface of the corrugated plate 301 through the fixing port. A dual-axis motor 303 is fixedly installed on one side of the fixed frame 3. A transmission gear 304 is fixedly installed on both output ends of the dual-axis motor 303. It should be noted that, through the corrugated plate 301 set in the fixed frame 3, when the unloaded bulk grain falls to the protruding part of the corrugated plate 301, the corrugated plate 301 can guide the bulk grain to the filter screen 302 located in the concave part. At this time, the impurities in the bulk grain can be screened and separated through the filter screen 302, thereby achieving the effect of centralized separation of impurities from the bulk grain and effectively reducing the impurity content in the machine-harvested bulk grain. By setting a dual-axis motor 303 to control the rotation of the first guide roller 4 and the second guide roller 5, since the two output ends of the dual-axis motor 303 rotate in opposite directions, the effect of controlling the first guide roller 4 and the second guide roller 5 to rotate in opposite directions can be achieved.

[0022] A number of first guide rollers 4 are uniformly rotatably inserted and installed on the upper part of the rear end of the inner surface of the fixed frame 3, and a number of second guide rollers 5 are uniformly rotatably inserted and installed on the upper part of the front end of the inner surface of the fixed frame 3. A docking hole 401 is opened in the middle of the end of the first guide roller 4 near the second guide roller 5. A docking shaft 501 is fixedly protruding in the middle of the end of the second guide roller 5 near the first guide roller 4. The docking shaft 501 is rotatably inserted into the docking hole 401. A number of blades are evenly distributed on the outer surfaces of the first guide roller 4 and the second guide roller 5. The first guide roller 4 and the second guide roller 5 are both located above the filter screen 302. A driven gear 6 is fixedly installed in the middle of the ends of the first guide roller 4 and the second guide roller 5 that are far apart from each other. A transmission belt 601 is installed on the outer surface of the driven gear 6 and the transmission gear 304 together. It should be noted that by controlling the transmission gear 304 set at its output end to rotate by the dual-axis motor 303, the driven gear 6 set together with the transmission belt 601 can be driven to rotate. In this way, the driven gear 6 controls the first guide roller 4 and the second guide roller 5 to rotate. The first guide roller 4 and the second guide roller 5 in the rotating state can use the blades set on their surfaces to move and spread the loose grain on the filter screen 302, thereby improving the efficiency of the loose grain passing through the filter screen 302 and speeding up the separation of impurities. When the two output ends of the dual-axis motor 303 rotate in opposite directions, the rotation directions of the two sets of transmission gears 304 are synchronously opposite. In this case, the driven gears 6 on the first guide roller 4 and the second guide roller 5 will synchronously exhibit opposite rotation states. This allows the first guide roller 4 and the second guide roller 5 to rotate in opposite directions with the docking hole 401 and the docking shaft 501 as the movable fulcrum. By using the first guide roller 4 and the second guide roller 5 rotating in opposite directions, the loose grain on both sides of the filter screen 302 is synchronously guided. This helps to avoid the problem of the first guide roller 4 and the second guide roller 5 being limited to guiding the loose grain on one side of the filter screen 302 when they are rotating in the same direction. This helps to improve the efficiency of the filter screen 302 in guiding and filtering the loose grain and further accelerates the speed of impurity separation.

[0023] A diversion box 7 is movably installed above the fixed frame 3. A support shaft seat 701 is movably hinged and inserted on one side of the outer surface of the diversion box 7. The lower surface of the support shaft seat 701 is fixedly connected to the upper surface of the support frame 1. Several discharge ports 702 are evenly opened through the inner bottom surface of the diversion box 7. Several partitions 703 are evenly inserted through the inner top surface of the diversion box 7. The lower surface of the partition 703 contacts the side of the discharge port 702 near the support shaft seat 701. The front and rear ends of the other side of the outer surface of the diversion box 7 are movably hinged and installed with a first hydraulic push rod 704. The other end of the first hydraulic push rod 704 is movably hinged to the upper surface of the support frame 1. It should be noted that the unloaded bulk grain is diverted through the diversion box 7. During the diversion process, the opening and closing of the corresponding discharge port 702 can be controlled by controlling the opening and closing of the partition 703. The unloading speed of the bulk grain can be controlled by controlling the number of discharge ports 702 that are opened and closed. The unloading of the bulk grain is achieved by diverting the bulk grain during the unloading process. Using the support shaft seat 701 as the movable fulcrum, the diversion angle of the diversion box 7 can be controlled by controlling the extension and retraction of the first hydraulic push rod 704. The diversion angle of the diversion box 7 can be adjusted to further control the unloading speed of the bulk grain. If the diversion tilt angle of the diversion box 7 is large, the flow speed of the bulk grain in the diversion box 7 is fast. If the diversion tilt angle of the diversion box 7 is small, the flow speed of the bulk grain in the diversion box 7 is slow.

[0024] A guide cylinder 8 is movably hinged to the top of the diversion box 7. A hinged bearing 705 is movably hinged to the front and rear ends of the outer surface of the diversion box 7 and the guide cylinder 8 near the first hydraulic push rod 704. A bracket 801 is fixedly installed on the lower surface of the guide cylinder 8 near the telescopic tube 9. A second hydraulic push rod 802 is movably hinged to the front and rear ends of the lower surface of the bracket 801. The other end of the second hydraulic push rod 802 is movably hinged to the front and rear ends of the outer surface of the diversion box 7 near the telescopic tube 9. A discharge port is opened on the lower surface of the guide cylinder 8 on the side hinged to the diversion box 7. A feed port is opened on the upper surface of the diversion box 7 on the side hinged to the guide cylinder 8. The discharge port of the guide cylinder 8 and the feed port of the diversion box 7 are connected by the telescopic tube 9. It should be noted that the guide cylinder 8 is connected to the bulk grain transport vehicle, thereby guiding the flow of bulk grain. The guide cylinder 8 uses the hinged shaft seat 705 as the movable fulcrum. By controlling the extension and retraction of the second hydraulic push rod 802, the guiding angle of the guide cylinder 8 can be controlled. In turn, by controlling the guiding angle of the guide cylinder 8, the unloading speed of the bulk grain can be controlled. Since the discharge port of the guide cylinder 8 and the inlet of the diversion box 7 are connected by the telescopic pipe 9, the telescopic and foldable effect of the telescopic pipe 9 ensures the connection between the guide cylinder 8 and the diversion box 7 when the guiding angle is adjusted, thus ensuring the stable flow of bulk grain.

[0025] When using this invention for short-distance transport of bulk grain, the first step is to use the support shaft seat 701 as a movable fulcrum and activate the first hydraulic push rod 704 to extend and retract to control and adjust the flow angle of the diversion box 7, and control the flow tilt angle of the diversion box 7 to be in a relatively steep state. Once the flow angle of the diversion box 7 is adjusted to a suitable position, the second hydraulic push rod 802 can be activated to extend and retract to control and adjust the flow angle of the guide cylinder 8, and control the flow tilt angle of the guide cylinder 8 to be in a relatively steep state. Once the flow angle of the guide cylinder 8 is adjusted to a suitable position, the first traveling support leg 101 can be used to push the support frame 1 to move and adjust until the feed port of the guide cylinder 8 is connected to the bulk grain transport vehicle. At this time, the bulk grain can flow into the guide cylinder 8 and then into the diversion box 7 through the telescopic pipe 9. At this time, the corresponding number of partitions 703 can be opened according to the required unloading speed, thereby opening the corresponding number of discharge ports 702. At this time, the bulk grain entering the diversion box 7 can be diverted and discharged through the opened discharge ports 702 and fall onto the corrugated plate 301. Secondly, when the unloaded bulk grain falls onto the protruding part of the corrugated plate 301, the corrugated plate 301 can guide the bulk grain to the filter screen 302 located in the concave part. At this time, the impurities in the bulk grain can be screened and separated through the filter screen 302. During the screening and separation process, the dual-shaft motor 303 is started. Since the two output ends of the dual-shaft motor 303 rotate in opposite directions, the rotation directions of the two sets of transmission gears 304 are synchronously opposite. Under this condition, the driven gears 6 set on the first guide roller 4 and the second guide roller 5 will synchronously present opposite rotation states under the transmission connection of the transmission belt 601, so that the first guide roller 4 and the second guide roller 5 rotate in opposite directions with the docking hole 401 and the docking shaft 501 as the movable fulcrum. At this time, the first guide roller 4 and the second guide roller 5, which are in a rotating state, can use the blades on their surfaces to move and distribute the loose grain on the filter screen 302, and guide the loose grain on both sides of the filter screen 302 synchronously in a state of rotating in opposite directions, thereby speeding up the efficiency of the loose grain passing through the filter screen 302. Finally, since there are multiple sets of filter screens 302, the bulk grain passing through the filter screens 302 can be dispersed and fall onto the conveyor belt 202, and the conveyor belt 202 can be used to complete the short-distance rapid distribution and transfer of the bulk grain.

[0026] Example 2

[0027] Please see Figure 7 As shown, a new energy mobile tilting structure includes a support frame 1. First walking legs 101 are fixedly installed at the four corners of the outer surface of the support frame 1. Positioning pins 102 are spirally inserted into the middle of the two first walking legs 101 near the dual-axis motor 303, away from the outer surface. Sliding brackets 2 are slidably installed between the first walking legs 101 near the middle of the outer surface. Several positioning holes 201 are opened on the outer surface of the sliding brackets 2 near the first walking legs 101. The output ends of the positioning pins 102 are spirally inserted into the positioning holes 201. Support rollers are rotatably installed on both sides of the sliding brackets 2 near the outer surface. A conveyor belt 202 is sleeved on the sliding brackets 2 through the outer surface of the support rollers. Second walking legs 203 are fixedly installed at two corners on one side of the sliding brackets 2. A motor 204 is fixedly installed on the upper part of the outer surface of one of the second walking legs 203 away from the conveyor belt 202. The output end of the motor 204 passes through the second walking leg 203 and is fixedly connected to the support roller. A fixed frame 3 is fixedly installed on the upper surface of the support frame 1. A diversion box 7 is movably installed above the fixed frame 3. A support shaft seat 701 is movably hinged and inserted on one side of the outer surface of the diversion box 7. The lower surface of the support shaft seat 701 is fixedly connected to the upper surface of the support frame 1. Several discharge ports 702 are evenly opened through the inner bottom surface of the diversion box 7. Several partitions 703 are evenly inserted through the inner top surface of the diversion box 7. The lower surface of the partition 703 contacts the side of the discharge port 702 near the support shaft seat 701. The front and rear ends of the other side of the outer surface of the diversion box 7 are movably hinged and installed with a first hydraulic push rod 704. The other end of the first hydraulic push rod 704 is movably hinged to the upper surface of the support frame 1. A guide cylinder 8 is movably hinged to the top of the diversion box 7. A hinged bearing 705 is movably hinged to the front and rear ends of the outer surface of the diversion box 7 and the guide cylinder 8 near the first hydraulic push rod 704. A bracket 801 is fixedly installed on the lower surface of the guide cylinder 8 near the telescopic tube 9. A second hydraulic push rod 802 is movably hinged to the front and rear ends of the lower surface of the bracket 801. The other end of the second hydraulic push rod 802 is movably hinged to the front and rear ends of the outer surface of the diversion box 7 near the telescopic tube 9. A discharge port is opened on the lower surface of the guide cylinder 8 on the side hinged to the diversion box 7. A feed port is opened on the upper surface of the diversion box 7 on the side hinged to the guide cylinder 8. The discharge port of the guide cylinder 8 and the feed port of the diversion box 7 are connected by the telescopic tube 9.

[0028] In use, when transporting bulk grain over long distances, the positioning pin 102 is first unscrewed from the first traveling leg 101. At this point, the sliding bracket 2 can be moved and adjusted using the first traveling leg 101 as a support point. Once the sliding bracket 2 is adjusted to the appropriate position, the positioning hole 201 on its outer surface should be aligned with the screw hole on the first traveling leg 101 for inserting the positioning pin 102. Then, the positioning pin 102 can be screwed through the screw hole on the first traveling leg 101 and inserted into the positioning hole 201, thereby adjusting the distance between the conveyor belt 202 and the first traveling leg 101. At this point, the support shaft seat 701 can be used as a movable fulcrum. The first hydraulic push rod 704 can be activated to extend and retract to control and adjust the flow angle of the diversion box 7, and control the flow tilt angle of the diversion box 7 to be in a relatively gentle slope. When the flow angle of the diversion box 7 is adjusted to a suitable position, the second hydraulic push rod 802 can be activated to extend and retract to control and adjust the flow angle of the guide cylinder 8, and control the flow tilt angle of the guide cylinder 8 to be in a relatively gentle slope. When the flow angle of the guide cylinder 8 is adjusted to a suitable position, the first traveling support leg 101 can be used to push the support frame 1 to move and adjust until the feed port of the guide cylinder 8 is connected to the bulk grain transport vehicle. At this point, the bulk grain can flow into the guide cylinder 8 and then into the diversion box 7 through the telescopic pipe 9. At this time, it is necessary to control that all partitions 703 are closed. Under this state, only the discharge port 702 near the telescopic pipe 9 is open. At this time, the loose grain entering the diversion box 7 can be slowly discharged through the discharge port 702 and fall onto the corrugated plate 301. Secondly, when the unloaded bulk grain falls onto the protruding part of the corrugated plate 301, the corrugated plate 301 can guide the bulk grain to the filter screen 302 located in the concave part. At this time, the impurities in the bulk grain can be screened and separated by the filter screen 302. The bulk grain that passes through the filter screen 302 can then fall onto the conveyor belt 202. At this time, the motor 204 can be started to control the support roller to rotate, thereby using the rotating support roller to control the conveyor belt 202 to transport the bulk grain unloaded onto the surface of the conveyor belt 202 over a long distance.

[0029] The above are merely embodiments of the present invention and are not intended to limit the invention. Various modifications and variations can be made to the present invention by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principle of the present invention should be included within the scope of the claims of the present invention.

Claims

1. A new energy mobile tilting structure, comprising a support frame (1), wherein a fixing frame (3) is fixedly installed on the upper surface of the support frame (1), characterized in that, A horizontally arranged corrugated plate (301) is fixedly installed on the inner surface of the fixed frame (3). A fixing port is provided in the concave part of the corrugated plate (301). A filter screen (302) is fixedly installed on the inner surface of the corrugated plate (301) through the fixing port. A dual-axis motor (303) is fixedly installed on one side of the fixed frame (3). A transmission gear (304) is fixedly installed on both output ends of the dual-axis motor (303). A plurality of first guide rollers (4) are uniformly rotatably inserted and installed on the upper part of the rear end of the inner surface of the fixed frame (3), and a plurality of second guide rollers (5) are uniformly rotatably inserted and installed on the upper part of the front end of the inner surface of the fixed frame (3). A driven gear (6) is fixedly installed at the middle of the ends of the first guide rollers (4) and the second guide rollers (5) that are far apart from each other. A transmission belt (601) is sleeved and installed on the outer surface of the driven gear (6) and the transmission gear (304). A diversion box (7) is movably installed above the fixed frame (3). A guide cylinder (8) is movably hinged above the diversion box (7). A discharge port is opened on the lower surface of the guide cylinder (8) on the side that is hinged to the diversion box (7). A feed port is opened on the upper surface of the diversion box (7) on the side that is hinged to the guide cylinder (8). The discharge port of the guide cylinder (8) and the port of the diversion box (7) are connected by a telescopic tube (9).

2. The new energy mobile tilting structure according to claim 1, characterized in that, The four corners of the outer surface of the support frame (1) are fixedly installed with first walking legs (101), and positioning pins (102) are spirally inserted between the two first walking legs (101) on the side near the dual-axis motor (303) at the middle of the outer surface.

3. The new energy mobile tilting structure according to claim 2, characterized in that, A sliding bracket (2) is slidably mounted on the middle of the outer surface of the first walking legs (101). Several positioning holes (201) are opened on the outer surface of the sliding bracket (2) near the first walking legs (101). The output end of the positioning screw (102) is screwed into the positioning hole (201). Support rollers are rotatably mounted on both sides of the outer surface of the sliding bracket (2). A conveyor belt (202) is mounted on the sliding bracket (2) through the outer surface of the support roller. A second walking leg (203) is fixedly mounted on both corners of one side of the sliding bracket (2). A motor (204) is fixedly mounted on the upper part of the outer surface of one of the second walking legs (203) away from the conveyor belt (202). The output end of the motor (204) passes through the second walking leg (203) and is fixedly connected to the support roller.

4. The new energy mobile tilting structure according to claim 1, characterized in that, The first guide roller (4) has a docking hole (401) in the middle of one end near the second guide roller (5). The second guide roller (5) has a docking shaft (501) protruding and fixed in the middle of one end near the first guide roller (4). The docking shaft (501) is rotatably inserted into the docking hole (401). Several blades are evenly distributed on the outer surfaces of the first guide roller (4) and the second guide roller (5). The first guide roller (4) and the second guide roller (5) are both located above the filter screen (302).

5. A new energy mobile tilting structure according to claim 1, characterized in that, A support shaft seat (701) is movably hinged and installed on one side of the outer surface of the diversion box (7). The lower surface of the support shaft seat (701) is fixedly connected to the upper surface of the support frame (1). A plurality of drain ports (702) are evenly opened through the inner bottom surface of the diversion box (7). A plurality of partitions (703) are evenly inserted through the inner top surface of the diversion box (7). The lower surface of the partition (703) contacts the side of the drain port (702) near the support shaft seat (701). A first hydraulic push rod (704) is movably hinged to the front and rear ends of the other side of the outer surface of the diversion box (7). The other end of the first hydraulic push rod (704) is movably hinged to the upper surface of the support frame (1).

6. A new energy mobile tilting structure according to claim 5, characterized in that, The front and rear ends of the diversion box (7) and the guide cylinder (8) near the first hydraulic push rod (704) are hinged together and installed with a hinged shaft seat (705). A bracket (801) is fixedly installed on the lower surface of the guide cylinder (8) near the telescopic tube (9). The front and rear ends of the lower surface of the bracket (801) are hinged together with a second hydraulic push rod (802). The other end of the second hydraulic push rod (802) is hinged together with the front and rear ends of the outer surface of the diversion box (7) near the telescopic tube (9).