Carrying tool and carrying system

By designing a portable workpiece and roller assembly, the problem of large volume and small application range of traditional workpieces is solved, and stable transportation and narrow passage passages are achieved under complex road conditions, improving equipment safety and environmental adaptability.

CN223086891UActive Publication Date: 2025-07-11DONG GUAN GAO WEI GUANG XUE DIAN ZI YOU XIAN GONG SI
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Patent Information

Application Number
CN202422246174.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-12
Publication Date
2025-07-11
Estimated Expiration
2034-09-12

AI Technical Summary

Technical Problem

Traditional porters have large size, limited operating range, limited application range, poor environmental stability, and easy to damage production equipment.

Method used

A porter assembly including a base, a loading member, a locking member and a roller assembly is designed. The loading member can rotate about a vertical connecting surface, the roller assembly can roll parallel to the connecting surface, the overall center of gravity is low, suitable for complex road conditions, and can be detachably rotated to pass through narrow passages.

Benefits of technology

It improves handling stability and environmental adaptability, reduces the risk of shaking of production equipment, enhances the ability to pass in narrow environments, and ensures equipment safety and flexibility.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a carrying tool and a carrying system, and the carrying tool comprises a base which is provided with a first connecting surface and a second connecting surface which are oppositely arranged, and the first connecting surface is located above the second connecting surface; the material loading piece is arranged on the first connecting surface and can rotate around a straight line perpendicular to the first connecting surface; the locking piece extends along the thickness direction of the base so as to fix the material loading piece on the base; and the roller assembly is arranged on the second connecting surface, and the roller assembly can roll and advance around a straight line parallel to the first connecting surface. According to the technical scheme, the technical problems that a traditional carrying tool is large in size, the carrying stroke is limited, the application range is limited, the carrying environment stability is poor, and production equipment is prone to being damaged are effectively solved.
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Description

Technical Field

[0001] This application relates to the technical field of handling devices, and in particular, to a handling tooling and a handling system. Background Art

[0002] When the production equipment is transported from the factory to the designated installation location, it needs to go through a complex transfer road condition. At present, generally, a forklift is used to transfer the production equipment in this section of the road condition. However, the forklift has a large volume. When encountering a long and narrow passage or a narrow door, it may not be able to pass through, resulting in limited handling travel and limited application range. Moreover, the forklift is relatively tall. When encountering an uneven road section, it is prone to shaking, jumping and other situations, and the stability of the handling environment is poor, which is likely to damage the production equipment. Summary of the Utility Model

[0003] This application provides a handling tooling and a handling system to solve the technical problems that the traditional handling tooling has a large volume, limited handling travel, limited application range, poor stability of the handling environment, and is likely to damage the production equipment.

[0004] To this end, in a first aspect, an embodiment of this application provides a handling tooling, which includes: a base having a first connection surface and a second connection surface arranged oppositely, the first connection surface being located above the second connection surface; a loading member provided on the first connection surface, the loading member being rotatable about a straight line perpendicular to the first connection surface; a locking member extending along the thickness direction of the base to fix the loading member on the base; and a roller assembly provided on the second connection surface, the roller assembly being rollable and traveling about a straight line parallel to the first connection surface.

[0005] In a possible implementation manner, a first connection convex ring is provided on the loading member and faces the base. The handling tooling further includes a first rotating connector provided on the first connection surface, a first ring groove is provided on the first rotating connector, and the first connection convex ring is embedded in the first ring groove, and the loading member and the first rotating connector are rotatably connected.

[0006] In a possible implementation manner, a second connection convex ring is further provided on the loading member, the second connection convex ring is spaced inside the first connection convex ring. The handling tooling further includes a second rotating connector provided inside the first rotating connector, a second ring groove is provided on the second rotating connector, and the second connection convex ring is embedded in the second ring groove, and the loading member and the second rotating connector are rotatably connected.

[0007] In a possible implementation manner, an annular groove is provided on the first connection surface, and an annular protrusion is provided on the side of the loading member facing the base. The annular protrusion is embedded in the annular groove, and the loading member and the base are rotatably connected.

[0008] In a possible implementation, the base includes a frame, connecting beams, and reinforcing beams. The frame includes two first connecting columns arranged oppositely and two second connecting columns arranged oppositely. The first connecting columns and the second connecting columns are adjacent to each other. The two first connecting columns and the two second connecting columns enclose an avoidance hole. The two ends of the connecting beam are respectively connected to the two first connecting columns, and the two ends of the reinforcing beam are respectively connected to the two second connecting columns. The connecting beam and the reinforcing beam intersect within the avoidance hole.

[0009] In a possible implementation, there are multiple connecting beams, and the multiple connecting beams are spaced apart along the extending direction of the second connecting column between the two first connecting columns; there are multiple reinforcing beams, and the multiple reinforcing beams are spaced apart along the extending direction of the first connecting column between the two second connecting columns.

[0010] In a possible implementation, the roller assembly includes a plurality of rollers arranged in an array, and the rollers are provided at the intersection of the connecting beam and the reinforcing beam.

[0011] In a possible implementation, a first connecting portion is provided on the base, and the handling tooling further includes a push-pull handrail, and the push-pull handrail is detachably connected to the base through the first connecting portion.

[0012] In a possible implementation, a second connecting portion is provided on the load-carrying member, and the handling tooling further includes a rotary force-applying member, and the rotary force-applying member is detachably connected to the load-carrying member through the second connecting portion.

[0013] In a second aspect, the present application further provides a handling system, including the handling tooling as described above.

[0014] According to the handling tooling and handling system provided by the embodiments of the present application, the handling tooling includes: a base having a first connection surface and a second connection surface arranged opposite to each other, the first connection surface being located above the second connection surface; a loading member provided on the first connection surface, the loading member being rotatable about a straight line perpendicular to the first connection surface; a locking member extending in the thickness direction of the base to fix the loading member on the base; and a roller assembly provided on the second connection surface, the roller assembly being rollable and traveling about a straight line parallel to the first connection surface. The technical solution of the present application designs a handling tooling that can be used to handle large-scale production equipment and is suitable for short-distance transportation on complex road conditions. The overall center of gravity of the handling tooling is relatively low, which can effectively reduce the center of gravity of the production equipment during handling, making it closer to the ground and having higher transportation stability. When encountering an uneven road section, it can effectively overcome problems such as shaking and jumping of the production equipment caused by roadblocks such as bumps or pits on the road section, and the transportation safety of the production equipment is high; moreover, the overall volume of the handling tooling is small and it is flexible in deformation. In the case of encountering a narrow passage or a narrow door, the locking member can be disassembled and the loading member can be rotated, thereby driving the production equipment placed on the loading member to rotate, enabling the narrower side of the production equipment to pass through the passage or the door, overcoming the problems brought by narrow road conditions, and greatly improving the environmental adaptability and handling performance of the handling tooling. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] The drawings here are incorporated into the specification and form a part of this specification, showing embodiments consistent with the present application, and are used together with the specification to explain the principles of the present application. In order to more clearly illustrate the embodiments of the present application or the technical solutions in the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, for those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings. One or more embodiments are illustrated by the pictures in the corresponding drawings. These illustrative descriptions do not constitute a limitation on the embodiments. Elements with the same reference numerals in the drawings are represented as similar elements, unless otherwise stated, and the drawings in the figures do not constitute a proportional limitation.

[0016] Figure 1 It is a three-dimensional structural schematic diagram of the handling tooling provided by the embodiments of the present application;

[0017] Figure 2 It is an exploded view of the handling tooling provided by the embodiments of the present application in the first direction;

[0018] Figure 3 It is an exploded view of the handling tooling provided by the embodiments of the present application in the second direction;

[0019] Figure 4 It is a handling and using scenario diagram of the handling tooling provided by the embodiments of the present application;

[0020] Figure 5 This is a rotational usage scenario diagram of the handling tooling provided by the embodiments of the present application.

[0021] Explanation of the reference numerals in the drawings:

[0022] 100, base; 101, first connection surface; 102, second connection surface; 110, frame; 111, first connection column; 112, second connection column; 120, connection beam; 130, strengthening beam; 140, first connection part;

[0023] 200, load-carrying member; 210, first connection convex ring; 220, second connection convex ring; 230, second connection part;

[0024] 300, locking member; 400, roller assembly;

[0025] 500, first rotating connection member; 501, first annular groove; 600, second rotating connection member; 601, second annular groove;

[0026] 700, push-pull handrail; 800, rotating force-applying member;

[0027] Z, thickness direction. Detailed implementation manners

[0028] To make the objectives, technical solutions, and advantages of the embodiments of the present application clearer, the technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present application. Obviously, the described embodiments are some, but not all, of the embodiments of the present application. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present application without creative efforts shall fall within the protection scope of the present application.

[0029] The following disclosure provides many different embodiments or examples for implementing different structures of the present application. To simplify the disclosure of the present application, the components and settings of specific examples are described below. Of course, they are only examples and are not intended to limit the present application. In addition, the present application may repeat reference numerals and / or letters in different examples. This repetition is for the purpose of simplification and clarity, and does not itself indicate the relationship between the various embodiments and / or settings discussed. In addition, the present application provides examples of various specific processes and materials, but those of ordinary skill in the art may be aware of the applicability of other processes and / or the use of other materials.

[0030] For ease of description, spatial relative relationship terms may be used in the text to describe the relative position relationship or movement of one element or feature shown in the figure relative to another element or feature. These relative relationship terms are, for example, "inside", "outside", "inner side", "outer side", "below", "beneath", "above", "upper", "front", "rear", etc. Such spatial relative relationship terms are intended to include different orientations of the device during use or operation other than the orientations depicted in the figure. For example, if the device in the figure undergoes a position flip, attitude change, or motion state change, then these directional indications will also change accordingly. For example, an element described as "below other elements or features" or "beneath other elements or features" will then be oriented as "above other elements or features" or "upper other elements or features". Therefore, the example term "beneath" can include both upper and lower orientations. The device can be oriented otherwise (rotated 90 degrees or in other directions) and the spatial relative relationship descriptors used in the text are interpreted accordingly.

[0031] See Figures 1 to 5 As shown in Figures 1 to 5 , an embodiment of the present application provides a handling tooling, which includes: a base 100 having a first connection surface 101 and a second connection surface 102 arranged oppositely, the first connection surface 101 being located above the second connection surface 102; a loading member 200 provided on the first connection surface 101, the loading member 200 being rotatable about a line perpendicular to the first connection surface 101; a locking member 300 extending along the thickness direction Z of the base 100 to fix the loading member 200 on the base 100; and a roller assembly 400 provided on the second connection surface 102, the roller assembly 400 being rollable along a line parallel to the first connection surface 101.

[0032] In this embodiment, a handling tooling is designed that can be used to handle large-sized production equipment and is suitable for short-distance transportation on complex road conditions. The overall center of gravity of this handling tooling is relatively low, which can effectively reduce the center of gravity of the production equipment during handling, making it closer to the ground and having higher transportation stability. When encountering uneven road sections, it can effectively overcome problems such as shaking and jumping of the production equipment caused by roadblocks such as bumps or pits on the road section, and the transportation safety of the production equipment is high; moreover, the overall volume of the handling tooling is small and it is flexible in deformation. In the case of encountering a narrow passage or a narrow door, the locking member 300 can be disassembled and the loading member 200 can be rotated, thereby driving the production equipment placed on the loading member 200 to rotate, enabling the narrower side of the production equipment to pass through the passage or the door, overcoming the problems brought by narrow road conditions, and greatly improving the environmental adaptability and handling performance of the handling tooling.

[0033] Specifically, the handling tooling is configured as a combined component including at least a base 100, a load-carrying member 200, a locking member 300, and a roller assembly 400. The base 100 can be a nearly rectangular metal plate / metal block with a certain hardness and rigidity, and is used to integrate components such as the load-carrying member 200 and the roller assembly 400 to realize the transfer of large-sized and heavy production equipment. The load-carrying member 200 can be a nearly rectangular metal plate, with dimensions comparable to those of the base 100. It is rotatably arranged on the base 100 and can rotate along the plane where the first connection surface 101 is located, so as to realize the rotation of the production equipment placed thereon, enabling the handling tooling and the production equipment to pass through narrow channels / doors, and improving the flexibility and environmental adaptability of the handling tooling. The locking member 300 can be a structural member such as a long screw / bolt. It can sequentially pass through the connection holes provided at the corners of the load-carrying member 200 and the corners of the base 100 to realize the firm connection between the load-carrying member 200 and the base 100, prevent the load-carrying member 200 from spontaneously rotating around the base 100 during handling, improve the stability during the handling process, and enhance the protection of the production equipment. The roller assembly 400 can include multiple rollers. The multiple rollers can roll in the same direction to improve the moving stability; or, the multiple rollers can roll in different directions. For example, two groups of rollers can roll along the front and back sides, and the other two groups can roll along the left and right sides. When it is necessary to move the handling tooling in the front and back directions, the roller group that rolls along the left and right sides can be retracted upward, and when it is necessary to move the handling tooling in the left and right directions, the roller group that rolls along the front and back sides can be retracted upward, realizing the free movement of the handling tooling in multiple dimensions and improving the flexibility of the handling tooling. In addition, in the form of multiple rollers for the roller assembly 400, the total gravity of the base 100, the load-carrying member 200, and even the production equipment can be dispersed to multiple rollers, reducing the force on each roller. In this way, only a small thrust is required to push the rollers to move, improving the user experience; at the same time, the slight movement provided by each roller can further enhance the moving stability. The handling tooling provided in this example has a simple structure, a small volume, a low center of gravity, a stable handling process, stronger adaptability, and a good user experience.

[0034] As Figure 2 and Figure 3 shown, in a possible implementation manner, a first connection convex ring 210 is provided on the load-carrying member 200. The first connection convex ring 210 faces the base 100. The handling tooling further includes a first rotating connector 500 provided on the first connection surface 101. A first ring groove 501 is provided on the first rotating connector 500. The first connection convex ring 210 is embedded in the first ring groove 501, and the load-carrying member 200 and the first rotating connector 500 are rotatably connected.

[0035] In this embodiment, the specific configuration of the handling tooling is further optimized to optimize the connection mode between the material-carrying member 200 and the base 100. Specifically, the handling tooling is configured to include at least a combined member of a base 100, a material-carrying member 200, a locking member 300, a roller assembly 400, and a first rotating connector 500. The first rotating connector 500 can be an annular metal member with a first annular groove 501, and it can be connected to the first connection surface 101 of the base 100 by welding or other means to enhance the connection tightness between the first rotating connector 500 and the base 100. At this time, a first connection convex ring 210 corresponding to the first rotating connector 500 is provided on the material-carrying member 200. The first connection convex ring 210 protrudes towards the first connection surface 101, its width is slightly smaller than the width of the first annular groove 501 on the first rotating connector 500, and its depth is slightly larger than the depth of the first annular groove 501. In this way, the first connection convex ring 210 can be embedded in the first annular groove 501 of the first rotating connector 500, which can not only ensure the connection stability between the two, but also prevent the first connection convex ring 210 from being in a clamped state with the first rotating connector 500, facilitating subsequent rotation. In this example, the rotatable connection between the base 100 and the material-carrying member 200 can be achieved only by adding an annular member. The base 100 is small in weight, which is convenient for subsequent transfer; moreover, the overall occupied volume is small, which is beneficial to the miniaturized layout of the handling tooling.

[0036] As Figure 2 and Figure 3 shown, in a possible implementation manner, a second connection convex ring 220 is further provided on the material-carrying member 200. The second connection convex ring 220 is spaced inside the first connection convex ring 210. The handling tooling further includes a second rotating connector 600 provided inside the first rotating connector 500. A second annular groove 601 is provided on the second rotating connector 600. The second connection convex ring 220 is embedded in the second annular groove 601, and the material-carrying member 200 is rotatably connected to the second rotating connector 600.

[0037] In this embodiment, the specific configuration of the handling tooling is further optimized to optimize the connection method between the material-carrying member 200 and the base 100. Specifically, the handling tooling is configured to include at least a combined component of the base 100, the material-carrying member 200, the locking member 300, the roller assembly 400, the first rotating connector 500, and the second rotating connector 600. The second rotating connector 600 can be an annular metal member with a second annular groove 601, and it can be connected to the first connection surface 101 of the base 100 by welding or other means to enhance the connection tightness between the second rotating connector 600 and the base 100. Moreover, the size of the second rotating connector 600 is smaller than that of the first rotating connector 500, and it is spaced and arranged inside the first rotating connector 500 in a ring shape. At this time, a second connection convex ring 220 corresponding to the second rotating connector 600 is provided on the material-carrying member 200. The second connection convex ring 220 protrudes towards the second connection surface 102, its width is slightly smaller than the width of the second annular groove 601 on the second rotating connector 600, and its depth is slightly greater than the depth of the second annular groove 601. In this way, the second connection convex ring 220 can be embedded in the second annular groove 601 of the second rotating connector 600, which can not only ensure the connection stability between the two, but also prevent the second connection convex ring 220 and the second rotating connector 600 from forming a clamped state, facilitating subsequent rotation. In this example, the first rotating connector 500 and the second rotating connector 600 are added to realize the rotatable connection between the base 100 and the material-carrying member 200. The contact area of their rotatable connection is larger, which can effectively prevent the material-carrying member 200 from tipping over and disengaging from the first annular groove 501 and the second annular groove 601, and the stability during the rotation process is stronger.

[0038] In a possible implementation manner, an annular groove is provided on the first connection surface 101, and an annular protrusion is provided on the side of the material-carrying member 200 facing the base 100. The annular protrusion is embedded in the annular groove, and the material-carrying member 200 and the base 100 are rotatably connected. In this example, the annular groove is directly provided on the base 100, and at the same time, the annular protrusion is directly provided on the material-carrying member 200 to streamline the production process and reduce the production difficulty.

[0039] In an example, a plurality of annular grooves are provided, and the plurality of annular grooves are coaxially arranged; at this time, a plurality of annular protrusions are provided, and one annular protrusion is provided corresponding to one annular groove to at least increase the rotational connection stability between the material-carrying member 200 and the base 100 and prevent the annular protrusion from disengaging from the annular groove during the rotation process.

[0040] In a possible implementation, the base 100 includes a frame 110, a connecting beam 120, and a reinforcing beam 130. The frame 110 includes two first connecting columns 111 disposed opposite to each other and two second connecting columns 112 disposed opposite to each other. The first connecting column 111 and the second connecting column 112 are adjacent to each other. The two first connecting columns 111 and the two second connecting columns 112 enclose an avoidance hole. Two ends of the connecting beam 120 are respectively connected to the two first connecting columns 111, and two ends of the reinforcing beam 130 are respectively connected to the two second connecting columns 112, and the connecting beam 120 and the reinforcing beam 130 intersect within the avoidance hole.

[0041] In this embodiment, the specific configuration of the base 100 is optimized. Specifically, the base 100 is configured as a combined component at least including the frame 110, the connecting beam 120, and the reinforcing beam 130. The frame 110 can be a rectangular frame, which is formed by connecting four hollow metal columns end to end. The metal columns can be connected and fastened by welding to enhance the structural stability and reliability of the frame 110. The connecting beam 120 can be a hollow metal column, and its two ends can be connected to the two first connecting columns 111 of the frame 110 by welding to improve the connection tightness between the connecting beam 120 and the frame 110; the reinforcing beam 130 can be a hollow metal column, and its two ends can be connected to the two second connecting columns 112 of the frame 110 by welding to improve the connection tightness between the reinforcing beam 130 and the frame 110. In this way, the base 100 can be set into a cross-shaped structure, and the hollow part thereon can reduce its total weight, realizing a lightweight layout of the base 100; moreover, the cross-shaped structure is stable, which can not only meet the support for the loading member 200 and the production equipment, but also facilitate the subsequent transfer and handling by the operators.

[0042] As Figure 2 and Figure 3 shown, in a possible implementation, a plurality of connecting beams 120 are provided, and the plurality of connecting beams 120 are spaced apart between the two first connecting columns 111 along the extending direction of the second connecting column 112; a plurality of reinforcing beams 130 are provided, and the plurality of reinforcing beams 130 are spaced apart between the two second connecting columns 112 along the extending direction of the first connecting column 111. In this example, by providing a plurality of connecting beams 120 and reinforcing beams 130 to cooperate, the rigidity and structural strength of the base 100 are further increased, so that it can support production equipment with a greater weight and improve the applicable range of the handling tooling. Moreover, the plurality of connecting beams 120 and the plurality of reinforcing beams 130 are distributed in a matrix vertically and horizontally, which can increase the contact sites and connection areas with the first rotating connector 500, the second rotating connector 600, and the roller assembly 400, etc., and is beneficial to enhancing the connection tightness and integration reliability of the four.

[0043] As Figures 1 to 5As shown, in a possible implementation, the roller assembly 400 includes a plurality of rollers distributed in an array, and the rollers are arranged at the intersection of the connecting beam 120 and the reinforcing beam 130.

[0044] In this embodiment, the specific configuration of the roller assembly 400 is optimized. Specifically, the roller assembly 400 is configured as a combined component including at least a plurality of rollers. The plurality of rollers can roll in the same direction to improve the moving stability; or, the plurality of rollers can roll in different directions. For example, two sets of rollers can roll along the front and rear sides, and the other two sets can roll along the left and right sides. When it is necessary to move the handling tooling in the front and rear directions, the roller sets rolling along the left and right sides can be retracted upward, and when it is necessary to move the handling tooling in the left and right directions, the roller sets rolling along the front and rear sides can be retracted upward, realizing the free movement of the handling tooling in multiple dimensions and improving the flexibility of the handling tooling. In addition, the roller assembly 400 adopts the form of a plurality of rollers, and the total gravity of the base 100, the loading member 200 and even the production equipment can be dispersed to the plurality of rollers, reducing the force on each roller. In this way, only a small thrust is required to push the rollers to move, improving the user experience; at the same time, the slight movement provided by each roller can further enhance the moving stability.

[0045] In an example, the roller includes a fixed body, a bearing, a rotating body, a shock-absorbing spring, a buffer bracket, a rotating bracket, a main shaft, an extension shaft, a nut and a wheel body. The fixed body can be connected to the second connecting surface 102 of the base 100 through fasteners such as screws / bolts, and a rotating groove is provided at its bottom end; the bearing is sleeved on the outer wall of the top end of the rotating body, and it can be rotationally inserted into the rotating groove of the fixed body through the bearing. A receiving groove is provided at the bottom end of the rotating body; an installation groove is provided at the top end of the buffer bracket, and the bottom end of the rotating body is inserted into the installation groove; the shock-absorbing spring is arranged in the receiving groove and the installation groove, and its two ends respectively abut against the rotating body and the buffer bracket to form an elastic buffer force at this position; the rotating bracket includes two cantilevers arranged at intervals, and the cantilever can be connected below the buffer bracket through fasteners such as screws / bolts, and a rotating hole is provided at the bottom end of the cantilever; the wheel body is sleeved on the outside of the main shaft, and both ends of the main shaft are rotationally inserted into the extension shaft, and the extension shaft is rotationally inserted into the rotating hole, and the nut is fixed on the extension shaft outside the cantilever. In this way, the roller can rotate around the straight line where the axis of the main shaft is located, thereby driving the handling tooling to move in this direction.

[0046] As Figure 4 As shown, in a possible implementation, a first connecting portion 140 is provided on the base 100, and the handling tooling further includes a push-pull armrest 700, and the push-pull armrest 700 is detachably connected to the base 100 through the first connecting portion 140.

[0047] In this embodiment, the specific configuration of the handling tooling is further optimized. Specifically, the handling tooling is configured to include at least a combination of a base 100, a material-carrying member 200, a locking member 300, a roller assembly 400, and a push-pull armrest 700. At the same time, a first connecting portion 140 protruding outward is provided on the side edge of the base 100. The first connecting portion 140 can be a connecting ear, on which a connecting hole is designed, and the connecting hole penetrates through the connecting ear along the thickness direction Z of the base 100. The push-pull armrest 700 can be an inverted trapezoidal link structure. At this time, at least two first connecting portions 140 are provided on the same side of the base 100. The two suspended bottom ends of the push-pull armrest 700 can be respectively inserted into the connecting holes of the corresponding first connecting portions 140, and its top end is a horizontal rod, which is convenient for the operator to push and pull with both hands. Of course, in other embodiments, multiple groups of first connecting portions 140 are provided on the peripheral edge of the base 100, and each group of first connecting portions 140 is provided corresponding to a push-pull armrest 700. For example, eight first connecting portions 140 and four push-pull armrests 700 can be provided. Two first connecting portions 140 and one push-pull armrest 700 are provided on one side edge of the base 100. In this way, the push-pull force application of the handling tooling can be realized in at least four directions, so that the handling tooling can be moved in four directions, improving the handling flexibility. The connection between the push-pull armrest 700 and the base 100 provided in this example has stronger fastening and higher stability.

[0048] In another embodiment, the push-pull armrest 700 can also be a T-shaped link. At this time, only one first connecting portion 140 can be provided on the same side of the base 100. The suspended bottom end of the push-pull armrest 700 is inserted into the connecting hole of the first connecting portion 140, and its top end is a horizontal rod, which is convenient for the operator to push and pull with both hands. Of course, in other embodiments, multiple first connecting portions 140 are provided on the peripheral edge of the base 100, and each first connecting portion 140 is provided corresponding to a push-pull armrest 700. In this way, the push-pull force application of the handling tooling can be realized in multiple directions, so that the handling tooling can be moved in multiple directions, improving the handling flexibility. The structure of the push-pull armrest 700 provided in this example is simple and convenient for processing.

[0049] As Figure 5 shown, in a possible implementation manner, a second connecting portion 230 is provided on the material-carrying member 200, and the handling tooling further includes a rotating force-applying member 800, and the rotating force-applying member 800 is detachably connected to the material-carrying member 200 through the second connecting portion 230.

[0050] In this embodiment, the specific configuration of the handling tooling is further optimized. Specifically, the handling tooling is configured as a combined component including at least a base 100, a material loading member 200, a locking member 300, a roller assembly 400, and a rotating force applying member 800. Meanwhile, a second connecting portion 230 protruding towards the base 100 is provided on the bottom surface of the material loading member 200. The second connecting portion 230 can be a columnar structure similar to an L shape, and two connecting holes are provided thereon. The extending direction of the connecting holes is parallel to the plate surface direction of the material loading member 200, and the two connecting holes are arranged at 90°. The rotating force applying member 800 can be a connecting rod structure similar to an L shape. Its bottom end is a horizontally arranged rod inserted into the connecting holes of the second connecting portion 230, and its top end is a vertically arranged rod, which is convenient for the operator to hold with both hands and apply force along the circumferential direction of the base 100, so that the material loading member 200 rotates around the circumferential direction of the base 100, thereby changing the relative positional relationship between the material loading member 200 and the base 100, enabling the handling tooling to pass through a narrow passage / door. Of course, in other embodiments, second connecting portions 230 are provided at the four corners of the material loading member 200, and two rotating force applying members 800 are provided corresponding to each second connecting portion 230. For example, four first connecting portions 140 and eight push-pull handrails 700 can be provided. One second connecting portion 230 and two rotating force applying members 800 are provided at each corner of the material loading member 200. In this way, the rotation force can be applied to the material loading member 200 in its circumferential direction, reducing the rotation difficulty and improving the rotation efficiency.

[0051] In addition, the embodiment of the present application also provides a handling system including the handling tooling described in any one of the above. The specific structure of the handling tooling refers to the above embodiment. Since this handling system adopts all the technical solutions of all the above embodiments, it has at least all the beneficial effects brought by the technical solutions of the above embodiments, which will not be elaborated here one by one.

[0052] In this embodiment, multiple handling toolings can be provided, and multiple handling toolings can be assembled together in a column, a row, or a matrix. The handling tooling and its adjacent handling tooling can be connected and fastened through fasteners such as long screws / long bolts to achieve the short-distance handling of larger and heavier production equipment; after use, the long screws / long bolts are removed, and each handling tooling can be used independently.

[0053] It should be understood that the terms used herein are for the purpose of describing particular example embodiments only and are not intended to be limiting. Unless the context clearly dictates otherwise, the singular forms "a", "an", and "the" as used herein may also include the plural forms. The terms "comprising", "including", "containing", and "having" are inclusive and thus specify the presence of stated features, steps, operations, elements, and / or components, but do not preclude the presence or addition of one or more other features, steps, operations, elements, components, and / or combinations thereof. The method steps, processes, and operations described herein are not to be construed as necessarily requiring their performance in the particular order described or illustrated, unless the order of performance is explicitly stated. It should also be understood that additional or alternative steps may be used.

[0054] Although the terms first, second, third, etc. may be used herein to describe multiple elements, components, regions, layers, and / or sections, these elements, components, regions, layers, and / or sections should not be limited by these terms. These terms may be used only to distinguish one element, component, region, layer, or section from another. Unless the context clearly indicates otherwise, terms such as "first", "second", and other numerical terms when used herein do not imply an order or sequence. Thus, the first element, component, region, layer, or section discussed below may be referred to as a second element, component, region, layer, or section without departing from the teachings of the example embodiments.

[0055] The above are only specific embodiments of the present application, enabling those skilled in the art to understand or implement the present application. Various modifications to these embodiments will be obvious to those skilled in the art, and the general principles defined herein can be implemented in other embodiments without departing from the spirit or scope of the present application. Therefore, the present application will not be limited to the embodiments shown herein, but rather will conform to the broadest scope consistent with the principles and novel features claimed herein.

Claims

1. A handling tooling, characterized in that Comprising: A base (100) having a first connection surface (101) and a second connection surface (102) arranged oppositely, the first connection surface (101) being located above the second connection surface (102); A loading member (200) provided on the first connection surface (101), the loading member (200) being rotatable about a line perpendicular to the first connection surface (101); A locking member (300) extending along the thickness direction (Z) of the base (100) to fix the loading member (200) on the base (100); And A roller assembly (400) provided on the second connection surface (102), the roller assembly (400) being rollable and advancing about a line parallel to the first connection surface (101).

2. The handling tooling according to claim 1, wherein A first connection convex ring (210) is provided on the loading member (200), the first connection convex ring (210) facing the base (100). The handling tooling further includes a first rotating connector (500) provided on the first connection surface (101). A first ring groove (501) is provided on the first rotating connector (500), and the first connection convex ring (210) is embedded in the first ring groove (501). The loading member (200) and the first rotating connector (500) are rotatably connected.

3. The handling tool according to claim 2, characterized in that, A second connection convex ring (220) is further provided on the loading member (200), the second connection convex ring (220) being spaced inside the first connection convex ring (210). The handling tooling further includes a second rotating connector (600) provided inside the first rotating connector (500). A second ring groove (601) is provided on the second rotating connector (600), and the second connection convex ring (220) is embedded in the second ring groove (601). The loading member (200) and the second rotating connector (600) are rotatably connected.

4. The handling tool according to claim 1, wherein, An annular groove is provided on the first connection surface (101), and an annular protrusion is provided on a side of the loading member (200) facing the base (100). The annular protrusion is embedded in the annular groove, and the loading member (200) and the base (100) are rotatably connected.

5. The handling tool according to claim 1, characterized in that, The base (100) includes a frame (110), a connecting beam (120) and a reinforcing beam (130). The frame (110) includes two relatively arranged first connection columns (111) and two relatively arranged second connection columns (112). The first connection columns (111) and the second connection columns (112) are adjacently arranged. The two first connection columns (111) and the two second connection columns (112) enclose an avoidance hole. Two ends of the connecting beam (120) are respectively connected to the two first connection columns (111), and two ends of the reinforcing beam (130) are respectively connected to the two second connection columns (112), and the connecting beam (120) and the reinforcing beam (130) intersect in the avoidance hole.

6. The handling tool according to claim 5, characterized in that, A plurality of the connecting beams (120) are provided, and the plurality of connecting beams (120) are spaced apart along the extending direction of the second connecting column (112) between the two first connecting columns (111); A plurality of the strengthening beams (130) are provided, and the plurality of strengthening beams (130) are spaced apart along the extending direction of the first connecting column (111) between the two second connecting columns (112).

7. The handling tool according to claim 6, characterized in that, The roller assembly (400) includes a plurality of rollers distributed in an array, and the rollers are arranged at the intersection of the connecting beam (120) and the strengthening beam (130).

8. The handling tooling according to claim 1, wherein A first connecting portion (140) is provided on the base (100), and the handling tool further includes a push-pull handrail (700), and the push-pull handrail (700) is detachably connected to the base (100) through the first connecting portion (140).

9. The handling tool according to claim 1, characterized in that, A second connecting portion (230) is provided on the loading member (200), and the handling tool further includes a rotary force applying member (800), and the rotary force applying member (800) is detachably connected to the loading member (200) through the second connecting portion (230).

10. A handling system, characterized in that, It includes the handling tool according to any one of claims 1 to 9.