Transport vehicle

By setting up a hoisting plate and a guide plate in the loading silo of the transport vehicle, the automatic output and transmission of copper pipes is achieved, which solves the problem that the transport vehicle cannot achieve automatic transmission of copper pipes in the existing technology, improves transportation efficiency and reduces manpower waste.

CN222892043UActive Publication Date: 2025-05-23GREE ELECTRICHEFEI +1
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Patent Information

Application Number
CN202421935381.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-12
Publication Date
2025-05-23
Estimated Expiration
2034-08-12

AI Technical Summary

Technical Problem

Existing transport vehicles cannot achieve automatic internal transmission of copper pipes, resulting in inefficient transportation and require a large amount of manpower or additional robot transport components.

Method used

A transport vehicle is designed, which combines the hoisting plate and the guide plate in the silo. The first driving member drives the hoisting plate to lift and lower the hoisting plate, and uses the guide plate to hinge with the side wall of the silo to realize the automatic output and transmission of the copper tube.

Benefits of technology

It improves the transportation and transmission efficiency of copper pipes, reduces labor waste, and avoids the addition of additional transport components, realizing the automatic transmission of copper pipes.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a transport vehicle which comprises a discharging bin, a lifting plate, a conveying belt, a conveying belt and a conveying belt. The jacking plate is connected with a first driving piece, and the first driving piece can drive the jacking plate to ascend and descend in the discharging bin. The material guide plate is located outside the discharging bin, the material guide plate is hinged to the top of the side wall of the discharging bin, and when the first driving piece drives the jacking plate and the materials to ascend to be flush with the top of the side wall of the discharging bin, the materials in the jacking plate are output along the material guide plate. According to the transport vehicle, by means of the guide plate hinged to the side wall of the discharging bin and the liftable jacking plate, automatic transfer of copper pipes in the discharging bin is achieved, and the transport and transmission efficiency of the transport vehicle is improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of copper pipe transportation, in particular to a transportation vehicle. Background Art

[0002] In heat exchange components such as condensers or evaporators, copper tubes of various specifications are required to assemble cooling or heating channels. In the prior art, after the copper tubes are produced, they need to be transported to a storage bin or a silo for the next process by a transport vehicle.

[0003] After the existing transport vehicles transport the copper tubes to the destination, they need to be moved to the storage bin or the next process bin by transfer components or manual labor. In other words, the transport vehicles can only transport from one place to another, and cannot further transfer the copper tubes inside the transport vehicles. This requires a lot of manpower to transport the copper tubes, or the addition of additional robot transfer components, resulting in low efficiency in the transportation and transfer of the copper tubes. Utility Model Content

[0004] In order to overcome the problems existing in the related technology, the purpose of the utility model is to provide a transport vehicle, which realizes the automatic transfer of copper tubes in the discharge bin by means of the guide plate hinged on the side wall of the discharge bin and the liftable lifting plate, thereby improving the transportation and transmission efficiency of the transport vehicle.

[0005] A transport vehicle, comprising:

[0006] A discharge bin, wherein a lifting plate is provided in the discharge bin; the lifting plate is connected to a first driving member, and the first driving member can drive the lifting plate to move up and down in the discharge bin;

[0007] A material guide plate is located outside the discharge bin, and the material guide plate is hinged to the top of the side wall of the discharge bin. When the first driving member drives the lifting plate and the material to rise to the same level as the top of the side wall of the discharge bin, the material in the lifting plate is discharged along the material guide plate.

[0008] The guide plate in the present application is hinged to the top of the side wall of the discharge bin, which helps to adjust the position of the guide plate away from one side of the discharge bin. When the copper tubes in the transport vehicle need to be transferred to different storage bins or the next process bin, the guide plate can be rotated along the hinge between the guide plate and the side wall of the discharge bin according to the height of the storage bin or the next process bin, so that one end of the guide plate is hinged to the side wall of the discharge bin and the other end is placed on the edge of the storage bin or the next process bin. The copper tubes flush with the guide plate can be transferred to the storage bin or the next process bin along the guide plate under the action of gravity or external force, thereby realizing the transportation and transmission function of the transport vehicle for the copper tubes, improving the transportation and transfer efficiency of the copper tubes, reducing manpower waste, and avoiding the addition of additional transfer components.

[0009] In a preferred technical solution of the utility model, a guide plate is provided at the bottom of the discharge bin, the guide plate is arranged in parallel with the lifting plate, and the height of one end of the guide plate close to the lifting plate is smaller than the height of one end of the guide plate away from the lifting plate.

[0010] In the present application, the guide plate is an inclined plate, that is, the height of one end away from the top plate is greater than the height of the other end close to the top plate, and the guide plate and the top plate together form the bottom plate structure of the discharge bin. The side of the bottom plate structure is provided with a side wall, and the bottom plate structure and the side wall together form a storage space for placing copper tubes. When the copper tube needs to be placed in the discharge bin, it is placed from the side of the guide plate away from the top plate. Since the guide plate is a plate inclined toward the top plate, under the action of gravity, the copper tube can fall along the guide plate to the top plate for collection, and when the copper tube is subsequently exported, all the copper tubes will be collected in the top plate, thereby ensuring that the top plate drives the copper tube to rise and then be exported along the guide plate. The present application simultaneously sets the top plate and the guide plate at the bottom of the discharge bin, which can facilitate the copper tube to be collected in the top plate, thereby ensuring that the copper tube can be lifted in an orderly manner and exported along the guide plate, thereby improving the transportation efficiency of the copper tube.

[0011] In a preferred technical solution of the utility model, the discharge bin is a rectangular parallelepiped, and includes a first side wall and a second side wall that are relatively arranged and parallel to each other, the lifting plate and the guide plate are located between the first side wall and the third side wall, and the lifting plate abuts against the first side wall, and the guide plate abuts against the second side wall; the guide plate is hinged to the top of the first side wall.

[0012] In the present application, the input position of the copper tube is at the second side wall position, and the output position of the copper tube is at the first side wall position. This is because the height of the guide plate at the position where the second side wall is abutted is greater than the height of the guide plate at the position away from the second side wall, that is, the height of the guide plate on the side away from the top plate is greater than the height of the guide plate on the side close to the top plate. The copper tube is placed in the discharge bin from the second side wall position, and the copper tube falls into the top plate under the action of gravity along the inclined guide plate. When the first driving member drives the top plate to rise to the same level as the first side wall, the end of the guide plate away from the first side wall is placed on the top of the storage bin or the next process bin, and the height of the guide plate away from the first side wall is less than the height of the guide plate close to the first side wall. The copper tubes collected in the top plate are then output to the storage bin or the next process bin along the inclined guide plate under the action of gravity. The present application facilitates the placement and removal of the copper tubes by arranging the input and output ends of the copper tubes on opposite sides of the discharge bin, thereby improving the transportation efficiency of the copper tubes.

[0013] In a preferred technical solution of the utility model, the discharge bin includes a third side wall and a fourth side wall which are perpendicular to and opposite to the first side wall, and a partition is also provided in the discharge bin, the partition is located on the top of the guide plate, and the distance between the partition and the third side wall or the fourth side wall is equal to the length of the material to be placed.

[0014] In this embodiment, the partition is located on the top of the guide plate, and the bottom of the partition abuts against the guide plate. Since the guide plate is fixed inside the discharge bin and its position is fixed, it can be ensured that the bottom of the partition abuts against the guide plate. At the same time, the distance between the partition and the third side wall is set to be equal to the length of the material to be placed. Due to the existence of the partition, the discharge bin can be divided into placement spaces with the same length as the copper tubes, which can ensure that the copper tubes are placed in the discharge bin in an orderly manner without the need for additional manual sorting processes, thereby improving the efficiency of copper tube placement and transmission.

[0015] In a preferred technical solution of the utility model, a guide rod is further provided in the discharge bin, the guide rod is located between the first side wall and the third side wall, and the partition is slidably connected to the guide rod.

[0016] Both ends of the guide rod can be fixed in the third side wall and the fourth side wall, and the partition can slide along the guide rod. Specifically, a limit nut can be set in the guide rod, and the limit nut and the partition are arranged in parallel. When the position of the partition needs to be adjusted, the limit nut is loosened, and the limit nut and the partition are slid so that the partition moves to a position that matches the size of the copper tube. After the position of the partition is fixed, tighten the limit nut to ensure that the position of the partition is fixed so that copper tubes of corresponding sizes can be placed in the discharge bin in an orderly manner. The mutual cooperation of the guide rod and the partition in the present application can ensure that copper tubes of different sizes and models are placed in the discharge bin in an orderly manner, avoiding the defects of manual sorting of copper tubes in the prior art, and improving the orderliness and automation of copper tube transmission.

[0017] In a preferred technical solution of the utility model, the angle between the lifting plate and the horizontal plane is a, and the height of one end of the lifting plate close to the guide plate is greater than the height of the other end of the lifting plate away from the guide plate, 10°≤a≤80°.

[0018] The present application sets the jacking plate at an angle a with the horizontal plane, defines the end of the jacking plate close to the first side wall as the bottom of the jacking plate, and defines the side of the jacking plate opposite to the bottom as the top of the jacking plate. When the first driving member drives the jacking plate to rise until the bottom of the jacking plate is flush with the top of the first side wall, in the direction from the jacking plate to the guide plate, the jacking plate is a downwardly inclined plate-like structure, and the guide plate is a downwardly inclined plate-like structure, which can ensure that the copper tubes in the jacking plate, under the action of gravity, first fall along the jacking plate into the guide plate, and then fall along the guide plate into the storage bin or the next process bin. The transport vehicle of the present application only needs to drive the jacking plate to rise to the level with the bottom of the jacking plate and the top of the first side wall through the first driving member, so as to realize the automatic output of the copper tubes inside the discharge bin, thereby improving the efficiency of copper tube transportation.

[0019] In a preferred technical solution of the utility model, the lifting plate is a horizontal plate, a push rod is provided on the top of the discharge bin, the push rod is connected to a second driving member, and the second driving member can drive the material in the lifting plate to move toward a direction close to the guide plate.

[0020] The horizontal lifting plate helps to gather the copper tubes in the lifting plate. When the copper tubes are gathered in the lifting plate along the guide plate, the copper tubes can be gathered neatly and orderly in the horizontal lifting plate. When the first driving member drives the lifting plate to rise to a position flush with the top of the first side wall, the copper tubes need to be pushed by the push rod so that the copper tubes move to the top of the guide plate and descend along the guide plate to the storage bin or the next process bin. The other end of the push rod can be connected to the second driving assembly, or the push rod can be pushed manually to transfer the copper tubes to the guide plate. Although the structure of the push rod is added in this embodiment, it can ensure that the copper tubes are placed in an orderly and stable manner in the lifting plate, which can improve the stability of the copper tube transmission.

[0021] In a preferred technical solution of the present utility model, the material guide plate is connected to a third driving member, and the third driving member is used to drive the material guide plate to rotate around a hinge between the material guide plate and a side wall of a material discharge bin.

[0022] In the present application, the third driving member can be a cylinder or its driving structure, and the third driving member is connected to the side of the guide plate away from the discharge bin; when the copper tubes in the transport vehicle need to be transferred to storage bins at different heights or to the next process bin, the third driving member drives the guide plate to rotate around the hinge axis between it and the side wall of the discharge bin, so that the guide plate rotates to the corresponding storage bin or the side wall position of the next process bin, thereby realizing the input of copper tubes to different storage bins or the next process bin.

[0023] In a preferred technical solution of the utility model, it also includes a universal wheel arranged at the bottom of the discharge bin.

[0024] The universal wheels can be specifically arranged at the four corners of the unloading frame. The universal wheels can ensure the smooth movement of the transport vehicle between the starting point and the destination, thereby improving the transportation efficiency of the copper tubes.

[0025] In a preferred technical solution of the utility model, the first driving member includes a lifting cylinder, the lifting cylinder is located at the bottom of the discharge bin, and the lifting cylinder is connected to the air source through an air source connector, and the piston rod of the lifting cylinder is fixedly connected to the lifting plate.

[0026] The present application can be provided with a discharge frame, and a discharge bin can be provided in the discharge frame, and the lifting cylinder is located in the discharge frame at the bottom of the discharge bin. At the same time, the lifting cylinder is connected to the gas source through a gas source connector. The connection between the lifting cylinder and the gas source is achieved through the gas source connector, which facilitates the connection and disconnection between the transport vehicle and the gas source. When the transport vehicle drives the copper pipe to move, the gas source and the transport vehicle can be disconnected. When the transport vehicle moves to the destination, the gas source and the transport vehicle can be connected through the gas source connector. The structure of the lifting cylinder and the air pipe structure helps to streamline the transportation process of the transport vehicle and improve the transportation efficiency of the copper pipe.

[0027] The beneficial effects of the utility model are:

[0028] The utility model provides a transport vehicle, comprising a discharge bin and a material guide plate located outside the discharge bin, wherein a lifting plate is arranged in the discharge bin; the lifting plate is connected to a first driving member, and the first driving member can drive the lifting plate to be lifted and lowered in the discharge bin; the material guide plate is located outside the discharge bin, and the material guide plate is hinged to the top of the side wall of the discharge bin, and after the copper tube is placed in the discharge bin and moves to the destination with the discharge, the first driving member drives the lifting plate and the copper tube to rise to a position flush with the top of the side wall of the discharge bin, at this time, the height of the other end of the material guide plate is adjusted to make the material guide plate tilt, so that the copper tube after jacking can be automatically output along the material guide plate under the action of gravity. The guide plate in the present application is hinged to the top of the side wall of the discharge bin, which helps to adjust the position of the guide plate away from one side of the discharge bin. When the copper tubes in the transport vehicle need to be transferred to different storage bins or the next process bin, the guide plate can be rotated along the hinge between the guide plate and the side wall of the discharge bin according to the height of the storage bin or the next process bin, so that one end of the guide plate is hinged to the side wall of the discharge bin and the other end is placed on the edge of the storage bin or the next process bin. The copper tubes flush with the guide plate can be transferred to the storage bin or the next process bin along the guide plate under the action of gravity or external force, thereby realizing the transportation and transmission function of the transport vehicle for the copper tubes, improving the transportation and transfer efficiency of the copper tubes, reducing manpower waste, and avoiding the addition of additional transfer components. BRIEF DESCRIPTION OF THE DRAWINGS

[0029] Figure 1 This is a schematic diagram of the overall structure of the transport vehicle in this application;

[0030] Figure 2 is a perspective view of the transport vehicle in this application;

[0031] Figure 3 It is a side schematic diagram of the transport vehicle in this application;

[0032] Figure 4 It is a front view schematic diagram of the transport vehicle in this application;

[0033] Figure 5 This is a top view of the transport vehicle in this application.

[0034] Reference numerals:

[0035] 11. First side wall; 12. Second side wall; 13. Third side wall; 14. Fourth side wall; 15. Lifting plate; 16. Guide plate; 17. Guide rod; 18. Partition plate; 21. Material guide plate; 22. Lifting cylinder; 23. Air source connector; 24. Universal wheel; 25. Limit nut. DETAILED DESCRIPTION

[0036] The preferred embodiments of the present invention will be described in more detail below with reference to the accompanying drawings. Although the preferred embodiments of the present invention are shown in the accompanying drawings, it should be understood that the present invention can be implemented in various forms and should not be limited by the embodiments described herein. On the contrary, these embodiments are provided to make the present invention more thorough and complete, and to fully convey the scope of the present invention to those skilled in the art.

[0037] The terms used in the present invention are only for the purpose of describing specific embodiments and are not intended to limit the present invention. The singular forms "a", "the" and "the" used in the present invention and the appended claims are also intended to include plural forms, unless the context clearly indicates other meanings. It should also be understood that the term "and / or" used herein refers to and includes any or all possible combinations of one or more associated listed items.

[0038] It should be understood that although the terms "first", "second", "third", etc. may be used to describe various information in the present invention, this information should not be limited to these terms. These terms are only used to distinguish the same type of information from each other. For example, without departing from the scope of the present invention, the first information may also be referred to as the second information, and similarly, the second information may also be referred to as the first information. Thus, the features defined as "first" and "second" may explicitly or implicitly include one or more of the features. In the description of the present invention, the meaning of "multiple" is two or more, unless otherwise clearly and specifically defined.

[0039] Example 1

[0040] like Figure 1-Figure 5 As shown, a transport vehicle comprises:

[0041] A discharge bin, wherein a lifting plate 15 is provided in the discharge bin; the lifting plate 15 is connected to a first driving member, and the first driving member can drive the lifting plate 15 to move up and down in the discharge bin;

[0042] The material guide plate 21 is located outside the discharge bin and is hinged to the top of the side wall of the discharge bin. When the first driving member drives the lifting plate 15 and the material to rise to the same level as the top of the side wall of the discharge bin, the material in the lifting plate 15 is discharged along the guide plate 21.

[0043] The materials in this application are long strip materials such as copper tubes.

[0044] In the present application, after the copper tube is placed in the discharge bin and moves to the destination with the discharge, the first driving member drives the lifting plate 15 and the copper tube to rise to a position flush with the top of the side wall of the discharge bin. At this time, the height of the other end of the guide plate 21 is adjusted to tilt the guide plate 21, so that the copper tube after lifting can be automatically output along the guide plate 21 under the action of gravity. In the present application, the guide plate 21 is hinged to the top of the side wall of the discharge bin, which helps to adjust the position of the guide plate 21 away from one side of the discharge bin. When the copper tubes in the transport vehicle need to be transferred to different storage bins or the next process bin, the guide plate 21 can be rotated along the hinge between the guide plate 21 and the side wall of the discharge bin according to the height of the storage bin or the next process bin, so that one end of the guide plate 21 is hinged to the side wall of the discharge bin, and the other end is placed on the edge of the storage bin or the next process bin. The copper tubes flush with the guide plate 21 can be transferred to the storage bin or the next process bin along the guide plate 21 under the action of gravity or external force, thereby realizing the transportation and transmission function of the transport vehicle for the copper tubes, improving the transportation and transfer efficiency of the copper tubes, reducing manpower waste, and avoiding the addition of additional transfer components.

[0045] In the present application, when the guide plate 21 is outputting the copper tube, the guide plate 21 is usually set at a height lower than the height of the hinge between the guide plate 21 and the top of the side wall of the discharge bin when the guide plate 21 is erected in the storage bin or the next process bin, that is, the guide plate 21 is an inclined structure, which can ensure that the copper tube is output to the storage bin or the next process bin under the action of gravity along the inclined guide plate 21.

[0046] If the height of the guide plate 21 erected on the storage bin or the next process bin is greater than the height of the hinge between the guide plate 21 and the top of the discharge bin side wall, an external force is required to make the copper tubes overcome gravity and output to the storage bin or the next process bin along the inclined guide plate 21. The external force at this time can be a conveyor belt set on the guide plate 21, or a thrust mechanism located on the side of the transport vehicle, etc.

[0047] In the present application, the lifting plate 15 can be a horizontal plate structure or an inclined plate structure. If the lifting plate 15 is a horizontal plate structure, when the lifting plate 15 is driven by the first driving member to rise to a position flush with the top of the guide plate 21, it is necessary to use external thrust to move the copper tube in the lifting plate 15 to the guide plate 21, and then output along the guide plate 21 to the storage bin or the next process bin.

[0048] If the lifting plate 15 is an inclined plate-like structure, it is necessary to set the inclination direction of the lifting plate 15 to be inclined toward the material guide plate 21, that is, the height of the side of the lifting plate 15 away from the material guide plate 21 is greater than the height of the side of the lifting plate 15 close to the material guide plate 21. At the same time, the first driving member drives the lifting plate 15 to rise to the height of the side close to the material guide plate 21 and is flush with the hinge position of the material guide plate 21 and the side wall. At this time, the copper tube in the lifting plate 15 first moves along the lifting plate 15 to the material guide plate 21 under the action of gravity, and then is output along the material guide plate 21.

[0049] In the present application, the guide plate 21 and the lifting plate 15 can be a parallel structure or a gap is reserved between the two. The guide plate 21 and the lifting plate 15 are arranged in parallel, and the specific meaning is as follows: the side wall hinged to the guide plate 21 is defined as the first side wall 11, and one side of the lifting plate 15 is in contact with the lifting plate 15, so that when the lifting plate 15 is driven by the first driving member to rise to the top of the first side wall 11, the lifting plate 15 and the guide plate 21 are basically in contact, and the copper tube in the lifting plate 15 and the guide plate 21 can be seamlessly connected.

[0050] The gap reserved between the guide plate 21 and the lifting plate 15 means that when the lifting plate 15 is driven by the first driving member to rise to be flush with the top of the first side wall 11, there is a gap between the lifting plate 15 and the guide plate 21. At this time, the copper tubes in the lifting plate 15 can be pushed into the guide plate 21 through a conveyor belt or other transition components to ensure that the copper tubes in the lifting plate 15 are output along the guide plate 21 to the storage bin or the next process bin.

[0051] Example 2

[0052] like Figure 1-Figure 5 As shown, a transport vehicle comprises:

[0053] A discharge bin, wherein a lifting plate 15 is provided in the discharge bin; the lifting plate 15 is connected to a first driving member, and the first driving member can drive the lifting plate 15 to move up and down in the discharge bin;

[0054] The material guide plate 21 is located outside the discharge bin and is hinged to the top of the side wall of the discharge bin. When the first driving member drives the lifting plate 15 and the material to rise to the same level as the top of the side wall of the discharge bin, the material in the lifting plate 15 is discharged along the guide plate 21.

[0055] Specifically, a guide plate 16 is provided at the bottom of the discharge bin, and the guide plate 16 is arranged in parallel with the lifting plate 15 , and the height of one end of the guide plate 16 close to the lifting plate 15 is less than the height of one end of the guide plate 16 away from the lifting plate 15 .

[0056] In the present application, the guide plate 16 is an inclined plate, that is, the height of the end away from the top plate 15 is greater than the height of the end close to the top plate 15, and the guide plate 16 and the top plate 15 together form the bottom plate structure of the discharge bin. The side of the bottom plate structure is provided with a side wall, and the bottom plate structure and the side wall together form a storage space for placing the copper tube. When the copper tube needs to be placed in the discharge bin, it is placed from the side of the guide plate 16 away from the top plate 15. Since the guide plate 16 is a plate inclined toward the top plate 15, under the action of gravity, the copper tube can fall along the guide plate 16 to the top plate 15 for collection. When the copper tube is subsequently output, all the copper tubes will be collected in the top plate 15, thereby ensuring that the top plate 15 drives the copper tube to rise and then output along the guide plate 21. The present application simultaneously sets a lifting plate 15 and a guide plate 16 at the bottom of the discharge bin, which can facilitate the copper tubes to be collected in the lifting plate 15, thereby ensuring that the copper tubes can be lifted in an orderly manner and output along the guide plate 21, thereby improving the transportation efficiency of the copper tubes.

[0057] Furthermore, the discharge bin is a rectangular parallelepiped, and includes a first side wall 11 and a second side wall 12 that are relatively arranged and parallel to each other. The lifting plate 15 and the guide plate 16 are located between the first side wall and the third side wall 11, and the lifting plate 15 abuts against the first side wall 11, and the guide plate 16 abuts against the second side wall 12; the guide plate 21 is hinged to the top of the first side wall 11.

[0058] In the present application, the input position of the copper tube is the position of the second side wall 12, and the output position of the copper tube is the position of the first side wall 11. This is because the height of the guide plate 16 at the position where it abuts the second side wall 12 is greater than the height of the guide plate 16 at the position away from the second side wall 12, that is, the height of the guide plate 16 on the side away from the top plate 15 is greater than the height of the guide plate 16 on the side close to the top plate 15. The copper tube is placed in the discharge bin from the position of the second side wall 12, and the copper tube falls into the top plate 15 along the inclined guide plate 16 under the action of gravity. When the first driving member drives the top plate 15 to rise to the level with the first side wall 11, the end of the guide plate 21 away from the first side wall 11 is placed on the top of the storage bin or the next process bin, and the height of the guide plate 21 away from the first side wall 11 is less than the height of the guide plate 21 close to the first side wall 11. The copper tubes collected in the top plate 15 are then output to the storage bin or the next process bin along the inclined guide plate 21 under the action of gravity. The present application arranges the input end and the output end of the copper tube on opposite sides of the discharge bin, thereby facilitating the placement and removal of the copper tube, thereby improving the transportation efficiency of the copper tube.

[0059] Furthermore, in this embodiment, the discharge bin includes a third side wall 13 and a fourth side wall 14 which are perpendicular to and opposite to the first side wall 11, and a partition 18 is also provided in the discharge bin. The partition 18 is located on the top of the guide plate 16, and the distance between the partition 18 and the third side wall 13 or the fourth side wall 14 is equal to the length of the material to be placed.

[0060] The first side wall 11, the second side wall 12, the third side wall 13, the fourth side wall 14 and the bottom plate structure together form a storage space for placing copper tubes in the discharge bin. In actual operation, the length of the storage space needs to be greater than the length of the copper tube, so that copper tubes of different models can be placed. In the prior art, for the transportation of the same model of copper tubes, after the copper tubes are placed in the discharge bin, due to the large size of the storage space, the copper tubes need to be manually arranged to ensure that the copper tubes are neatly placed in the discharge bin for subsequent transportation.

[0061] In this embodiment, the partition 18 is located on the top of the guide plate 16, and the bottom of the partition 18 abuts against the guide plate 16. Since the guide plate 16 is fixed inside the discharge bin and its position is fixed, it can be ensured that the bottom of the partition 18 abuts against the guide plate 16. At the same time, the distance between the partition 18 and the third side wall 13 is set to be equal to the length of the material to be placed. Due to the existence of the partition 18, the discharge bin can be divided into placement spaces with the same length as the copper tubes, so that the copper tubes can be placed in the discharge bin in an orderly manner without the need for additional manual sorting processes, thereby improving the efficiency of copper tube placement and transmission.

[0062] It should be noted that in the present application, the partition 18 only needs to be set corresponding to the guide plate 16. Since the lifting plate 15 needs to be lifted, there is no need to set the partition 18 on its top. When the copper tubes are gathered on the lifting plate 15 along the guide plate 16 and the partition 18, an orderly collection of copper tubes will be formed. In the present application, the bottom of the partition 18 is in contact with the guide plate 16, and the top is flush with the top of the first side wall 11 or the second side wall 12, or higher than the top of the first side wall 11 or the second side wall 12, to ensure that it effectively limits the end of the copper tube.

[0063] Furthermore, in this embodiment, a guide rod 17 is further provided in the discharge bin. The guide rod 17 is located between the first side wall and the third side wall 11 , and the partition plate 18 is slidably connected to the guide rod 17 .

[0064] The two ends of the guide rod 17 can be fixed in the third side wall 13 and the fourth side wall 14, and the partition 18 can slide along the guide rod 17. Specifically, a limit nut 25 can be set in the guide rod 17, and the limit nut 25 is arranged in parallel with the partition 18. When the position of the partition 18 needs to be adjusted, the limit nut 25 is loosened, and the limit nut 25 and the partition 18 are slid so that the partition 18 moves to a position that matches the size of the copper tube. After the position of the partition 18 is fixed, the limit nut 25 is tightened to ensure that the position of the partition 18 is fixed, so that copper tubes of corresponding sizes can be placed in the discharge bin in an orderly manner. The mutual cooperation of the guide rod 17 and the partition 18 in the present application can ensure that copper tubes of different sizes and models are placed in the discharge bin in an orderly manner, avoiding the defects of manually arranging the copper tubes in the prior art, and improving the orderliness and automation of copper tube transmission.

[0065] Example 3

[0066] like Figure 1-Figure 5 As shown, a transport vehicle comprises:

[0067] A discharge bin, wherein a lifting plate 15 is provided in the discharge bin; the lifting plate 15 is connected to a first driving member, and the first driving member can drive the lifting plate 15 to move up and down in the discharge bin;

[0068] The material guide plate 21 is located outside the discharge bin and is hinged to the top of the side wall of the discharge bin. When the first driving member drives the lifting plate 15 and the material to rise to the same level as the top of the side wall of the discharge bin, the material in the lifting plate 15 is discharged along the guide plate 21.

[0069] In this embodiment, the discharge bin is a rectangular parallelepiped, and includes a first side wall 11 and a second side wall 12 that are oppositely arranged and parallel, a third side wall 13 and a fourth side wall 14 that are perpendicular to and opposite to the first side wall 11, and the lifting plate 15 and the guide plate 16 are located between the first side wall and the third side wall 11, and the lifting plate 15 abuts against the first side wall 11, and the guide plate 16 abuts against the second side wall 12; the guide plate 21 is hinged to the top of the first side wall 11.

[0070] In this embodiment, the angle between the lifting plate 15 and the horizontal plane is a, and the height of one end of the lifting plate 15 close to the guide plate 16 is greater than the height of the other end of the lifting plate 15 away from the guide plate 16. Specifically, 10°≤a≤80°.

[0071] The present application sets the lifting plate 15 at an angle a with the horizontal plane, defines the end of the lifting plate 15 close to the first side wall 11 as the bottom of the lifting plate 15, and defines the side of the lifting plate 15 opposite to the bottom as the top of the lifting plate 15. When the first driving member drives the lifting plate 15 to rise until the bottom of the lifting plate 15 is flush with the top of the first side wall 11, the lifting plate 15 is a plate-like structure tilted downward from the lifting plate 15 to the guide plate 21, and the guide plate 21 is a plate-like structure tilted downward, so that the copper tubes in the lifting plate 15 can be ensured to fall along the lifting plate 15 to the guide plate 21 under the action of gravity, and then fall along the guide plate 21 to the storage bin or the next process bin. The transport vehicle of the present application only needs to drive the lifting plate 15 to rise to the level with the bottom of the lifting plate 15 and the top of the first side wall 11 through the first driving member, so as to realize the automatic output of the copper tubes inside the discharge bin, thereby improving the efficiency of copper tube transportation.

[0072] In this embodiment, the first driving member includes a lifting cylinder 22, and the lifting cylinder 22 is located at the bottom of the discharge bin, and the lifting cylinder 22 is connected to the air source through an air source connector.

[0073] The present application can be provided with a discharge frame, and a discharge bin can be provided in the discharge frame, and the lifting cylinder 22 is located in the discharge frame at the bottom of the discharge bin. At the same time, the lifting cylinder 22 is connected to the gas source through the gas source connector 23. The connection between the lifting cylinder 22 and the gas source is achieved through the gas source connector 23, which facilitates the connection and disconnection between the transport vehicle and the gas source. When the transport vehicle drives the copper pipe to move, the gas source and the transport vehicle can be disconnected. When the transport vehicle moves to the destination, the gas source and the transport vehicle can be connected through the gas source connector 23. The structure of the lifting cylinder 22 in conjunction with the air pipe structure helps to streamline the transportation process of the transport vehicle and improve the transportation efficiency of the copper pipe.

[0074] Furthermore, in this embodiment, the transport vehicle further comprises universal wheels 24 arranged at the bottom of the discharge bin. The universal wheels 24 can be specifically arranged at the four corners of the discharge frame, and the universal wheels 24 can ensure the smooth movement of the transport vehicle between the starting point and the destination, thereby improving the transportation efficiency of the copper tube.

[0075] Furthermore, in this embodiment, the material guide plate 21 is connected to a third driving member, and the third driving member is used to drive the material guide plate 21 to rotate around the hinge between the material guide plate 21 and the side wall of the discharge bin.

[0076] In the present application, the third driving member can be a cylinder or its driving structure, and the third driving member is connected to the side of the guide plate 21 away from the discharge bin; when the copper pipes in the transport vehicle need to be transferred to storage bins at different heights or the next process bin, the third driving member drives the guide plate 21 to rotate around the hinge axis between it and the side wall of the discharge bin, so that the guide plate 21 rotates to the corresponding storage bin or the side wall position of the next process bin, thereby realizing the input of copper pipes to different storage bins or the next process bin.

[0077] The present application may also not set up the third driving member, but use manual rotation to realize the rotation of the guide plate 21. When the copper tubes in the transport vehicle do not need to be output, the side of the guide plate 21 away from the discharge bin can be naturally drooped. When the copper tubes in the transport vehicle need to be output along the guide plate 21, the guide plate 21 is manually lifted up so that the side away from the discharge bin is placed on the side wall of the storage bin or the next process bin, and it is ensured that the height of the side of the guide plate 21 away from the discharge bin is less than the height of the side of the guide plate 21 close to the discharge bin, so as to ensure that the copper tubes can fall into the storage bin or the next process bin along the inclined guide plate 21 under the action of gravity.

[0078] Example 4

[0079] like Figure 1-Figure 5 As shown, a transport vehicle comprises:

[0080] A discharge bin, wherein a lifting plate 15 is provided in the discharge bin; the lifting plate 15 is connected to a first driving member, and the first driving member can drive the lifting plate 15 to move up and down in the discharge bin;

[0081] The material guide plate 21 is located outside the discharge bin and is hinged to the top of the side wall of the discharge bin. When the first driving member drives the lifting plate 15 and the material to rise to the same level as the top of the side wall of the discharge bin, the material in the lifting plate 15 is discharged along the guide plate 21.

[0082] In this embodiment, the discharge bin is a rectangular parallelepiped, and includes a first side wall 11 and a second side wall 12 that are arranged oppositely and in parallel, a third side wall 13 and a fourth side wall 14 that are perpendicular to and opposite to the first side wall 11, and the lifting plate 15 and the guide plate 16 are located between the first side wall and the third side wall 11, and the lifting plate 15 abuts against the first side wall 11, and the guide plate 16 abuts against the second side wall 12; the guide plate 21 is hinged to the top of the first side wall 11. The bottom of the discharge bin is provided with a guide plate 16, and the guide plate 16 is arranged in parallel with the lifting plate 15, and the height of the end of the guide plate 16 close to the lifting plate 15 is less than the height of the end of the guide plate 16 away from the lifting plate 15.

[0083] The difference from Example 3 is that the lifting plate 15 is a horizontal plate, a push rod is provided on the top of the discharge bin, the push rod is connected to a second driving member, and the second driving member can drive the material in the lifting plate 15 to move toward the direction close to the guide plate 21.

[0084] The horizontal lifting plate 15 helps the copper tubes to gather in the lifting plate 15. When the copper tubes gather in the lifting plate 15 along the guide plate 16, the copper tubes can be gathered neatly and orderly in the horizontal lifting plate 15. When the first driving member drives the lifting plate 15 to rise to a position flush with the top of the first side wall 11, the copper tubes need to be pushed by the push rod so that the copper tubes move above the guide plate 21 and descend along the guide plate 21 to the storage bin or the next process bin. The other end of the push rod can be connected to the second driving assembly, or the push rod can be pushed manually to transfer the copper tubes to the guide plate 21. Although the push rod structure is added in this embodiment, it can ensure that the copper tubes are placed in an orderly and stable manner in the lifting plate 15, which can improve the stability of copper tube transmission.

[0085] It should be noted that the transport vehicle in the present application can be suitable for the transportation of any strip materials, including but not limited to copper tube structures.

[0086] Unless otherwise specifically stated, the relative arrangement, numerical expressions and numerical values ​​of the parts and steps set forth in these embodiments do not limit the scope of the present application. At the same time, it should be understood that, for ease of description, the sizes of the various parts shown in the accompanying drawings are not drawn according to the actual proportional relationship. The technology, method and equipment known to those of ordinary skill in the relevant field may not be discussed in detail, but in appropriate cases, the technology, method and equipment should be considered as a part of the authorization specification. In all examples shown and discussed here, any specific value should be interpreted as being merely exemplary, rather than as a limitation. Therefore, other examples of exemplary embodiments may have different values. It should be noted that similar reference numerals and letters represent similar items in the following drawings, so that once a certain item is defined in an accompanying drawing, it does not need to be further discussed in subsequent drawings. In the description of the present application, it should be understood that the directions or positional relationships indicated by directional words such as "front, back, up, down, left, right", "lateral, vertical, perpendicular, horizontal" and "top, bottom" are usually based on the directions or positional relationships shown in the drawings, and are only for the convenience of describing the present application and simplifying the description. Unless otherwise specified, these directional words do not indicate or imply that the device or element referred to must have a specific direction or be constructed and operated in a specific direction, and therefore cannot be understood as limiting the scope of protection of the present application; the directional words "inside and outside" refer to the inside and outside relative to the contours of each component itself.

[0087] For ease of description, spatially relative terms such as "above", "above", "on the upper surface of", "above", etc. may be used here to describe the spatial positional relationship between a device or feature and other devices or features as shown in the figure. It should be understood that spatially relative terms are intended to include different orientations of the device in use or operation in addition to the orientation described in the figure. For example, if the device in the accompanying drawings is inverted, the device described as "above other devices or structures" or "above other devices or structures" will be positioned as "below other devices or structures" or "below other devices or structures". Thus, the exemplary term "above" can include both "above" and "below". The device can also be positioned in other different ways (rotated 90 degrees or in other orientations), and the spatially relative descriptions used here are interpreted accordingly.

[0088] In addition, it should be noted that the use of terms such as "first" and "second" to limit components is only for the convenience of distinguishing the corresponding components. Unless otherwise stated, the above terms have no special meaning and therefore cannot be understood as limiting the scope of protection of this application.

[0089] The above description is only the preferred embodiment of the utility model, and is not intended to limit the utility model. For those skilled in the art, the utility model can have various modifications and changes. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the utility model shall be included in the protection scope of the utility model.

Claims

1. A transport vehicle, characterized in that: include: A discharge bin, wherein a lifting plate (15) is arranged in the discharge bin; the lifting plate (15) is connected to a first driving member, and the first driving member can drive the lifting plate (15) to rise and fall in the discharge bin; A material guide plate (21) is located outside the discharge bin, and the material guide plate (21) is hinged to the top of the side wall of the discharge bin. When the first driving member drives the lifting plate (15) and the material to rise to the same level as the top of the side wall of the discharge bin, the material in the lifting plate (15) is discharged along the material guide plate (21).

2. A transport vehicle according to claim 1, characterized in that: A guide plate (16) is provided at the bottom of the discharge bin, and the guide plate (16) is arranged in parallel with the lifting plate (15), and the height of one end of the guide plate (16) close to the lifting plate (15) is smaller than the height of one end of the guide plate (16) away from the lifting plate (15).

3. A transport vehicle according to claim 2, characterized in that: The discharge bin is a rectangular parallelepiped, and comprises a first side wall (11) and a second side wall (12) which are arranged opposite to each other and are parallel to each other; the lifting plate (15) and the guide plate (16) are located between the first side wall and the third side wall (11); the lifting plate (15) abuts against the first side wall (11), and the guide plate (16) abuts against the second side wall (12); and the guide plate (21) is hinged to the top of the first side wall (11).

4. A transport vehicle according to claim 3, characterized in that: The discharge bin further comprises a third side wall (13) and a fourth side wall (14), wherein the third side wall (13) and the fourth side wall (14) are arranged between the first side wall (11) and the second side wall (12); a partition plate (18) is also arranged in the discharge bin, wherein the partition plate (18) is located on the top of the guide plate (16), and the distance between the partition plate (18) and the third side wall (13) or the fourth side wall (14) is equal to the length of the material to be placed.

5. A transport vehicle according to claim 4, characterized in that: A guide rod (17) is also provided in the discharge bin. The guide rod (17) is located between the first side wall and the third side wall. The partition plate (18) is slidably connected to the guide rod (17).

6. A transport vehicle according to claim 1, characterized in that: The angle between the lifting plate (15) and the horizontal plane is a, and the height of one end of the lifting plate (15) close to the guide plate (16) is greater than the height of one end of the lifting plate (15) away from the guide plate (16), and 10°≤a≤80°.

7. A transport vehicle according to claim 1, characterized in that: The lifting plate (15) is a horizontal plate, and a push rod is arranged on the top of the discharge bin. The push rod is connected to a second driving member, and the second driving member can drive the material in the lifting plate (15) to move in a direction close to the guide plate (21).

8. A transport vehicle according to claim 1, characterized in that: The guide plate (21) is connected to a third driving member, and the third driving member is used to drive the guide plate (21) to rotate around a hinge between the guide plate (21) and a side wall of the discharge bin.

9. A transport vehicle according to claim 1, characterized in that: It also includes a universal wheel (24) arranged at the bottom of the discharge bin.

10. A transport vehicle according to claim 1, characterized in that: The first driving member comprises a lifting cylinder (22), the lifting cylinder (22) is located at the bottom of the discharge bin, and the lifting cylinder (22) is connected to the air source via an air source connector (23), and the piston rod of the lifting cylinder (22) is fixedly connected to the lifting plate (15).