An installation structure based on automatic tooling and configuration transportation integration

Through the innovative design of the storage frame and positioner connection plate, the tooling is accurately positioned and securely connected, solving the problem of inconvenient connection between the tooling and the transportation equipment, improving the efficiency and stability of transportation and installation, and reducing damage and maintenance costs.

CN224347716UActive Publication Date: 2026-06-12JIANG SU BEN YU AUTOMOBILE BODY PROD CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
JIANG SU BEN YU AUTOMOBILE BODY PROD CO LTD
Filing Date
2025-06-25
Publication Date
2026-06-12

AI Technical Summary

Technical Problem

The existing tooling is inconvenient and unstable in its connection with transportation and installation equipment, resulting in cumbersome and inefficient loading and unloading processes. The poor compatibility of different tooling makes it difficult to achieve universal transportation and installation of various tooling.

Method used

The structure adopts a design that includes a storage frame, tooling positioning and limiting blocks, tooling assembly plates, and positioner assembly plates. Through nesting, plugging, and bolt fixing methods, it achieves precise positioning and stable connection of tooling, adapts to tooling of different shapes and sizes, and improves the flexibility and stability of the connection.

Benefits of technology

To ensure the stability of tooling during transportation, reduce the risk of damage, improve transportation and installation efficiency, reduce maintenance costs, extend service life, and enhance the synergy and efficiency of the production process.

✦ Generated by Eureka AI based on patent content.

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    Figure CN224347716U_ABST
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Abstract

The utility model discloses a kind of installation structure based on automatic tooling configuration object transportation integration, and the structure core is installation structure main body, its inside is equipped with article placing frame, article placing frame left and right sides are connected to positioner connecting plate, article placing frame top is equipped with tooling positioning limit block, tooling accurate positioning and limit can be positioned, ensure transport stability, the tooling assembly plate of the inner side of positioner connecting plate has U type assembly hole, tooling is fixed, and compatibility is enhanced, positioner assembly plate and assembly hole of upper and lower sides are connected with positioner, realize process transfer, article placing frame and connecting plate are inserted and bolted by slot and plug-in board, connect firm, the transport frame of bottom is adapted with fork truck fork, convenient to carry, this installation structure effectively solve the problem, such as tooling transport not firm, inconvenient connection in prior art, improve the efficiency and stability of tooling transport and installation.
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Description

Technical Field

[0001] This utility model belongs to the technical field of mechanical installation structure, specifically relating to an installation structure based on automated tooling for integrated loading, unloading, and transportation of materials. Background Technology

[0002] The installation structure of tooling assembly refers to the structural form used to combine and fix various parts and components together according to design requirements and predetermined relative positions and connection methods when tooling is being assembled.

[0003] However, the connection between existing tooling, transportation equipment, and installation equipment is not convenient or stable enough, resulting in cumbersome and inefficient loading and unloading processes, poor compatibility between different tooling, and difficulty in achieving universal transportation and installation of various tooling. Utility Model Content

[0004] The purpose of this utility model is to provide an installation structure based on automated tooling for integrated loading, assembly, and transportation of materials, in order to solve the problems mentioned in the background art, such as the inconvenience and instability of the connection between existing tooling, transportation equipment, and installation equipment, which leads to cumbersome loading and unloading processes, low efficiency, poor adaptability of different tooling, and difficulty in achieving universal transportation and installation of various tooling.

[0005] To achieve the above objectives, this utility model provides the following technical solution: an installation structure based on automated tooling for integrated loading, assembly, and transportation of goods, comprising an installation structure body;

[0006] A storage frame is provided inside the main body of the installation structure, and positioner connection plates are provided on the left and right sides of the storage frame.

[0007] A tooling positioning limit block is provided at the top of the storage frame, a tooling assembly plate is provided on the inner side of the positioner connecting plate, and a positioner assembly plate is provided on the outer side of the positioner connecting plate.

[0008] Preferably, the tooling positioning and limiting block array is provided with four blocks, and the tooling positioning and limiting block placement frame has a corresponding groove at the top position of the tooling positioning and limiting block, and the tooling positioning and limiting block is nested and connected with the placement frame.

[0009] Preferably, the tooling assembly plate has a tooling assembly hole inside, and the tooling assembly hole has a U-shaped structure, through which the tooling to be transported is fixedly connected to the storage frame.

[0010] Preferably, the positioner connecting plate is provided with positioner assembly plates on the upper and lower sides respectively, and positioner assembly holes are arranged in an array inside the positioner assembly plate.

[0011] Preferably, a slot is provided inside the positioner connecting plate, and a plug-in plate is provided at the middle position on the left and right sides of the storage frame.

[0012] Preferably, the positioner connecting plate is connected to the storage frame via a slot and a plug-in plate.

[0013] Preferably, the plug-in plate has an array of fixing holes inside, and the positioner connecting plate has an array of connecting plate fixing holes inside. The positioner connecting plate plug-in plate is fixed by bolts through the fixing holes and connecting plate fixing holes.

[0014] Preferably, a transport frame is arranged in an array at the bottom of the storage frame, the transport frame corresponds to the forklift forks, and the transport frame is welded to the storage frame.

[0015] Compared with the prior art, this utility model provides an installation structure based on automated tooling for integrated loading and transportation of goods, which has the following advantages:

[0016] 1. The design incorporates a storage frame, tooling positioning and limiting blocks, a tooling assembly plate, a positioner assembly plate, slots, tooling assembly holes, and positioner assembly holes. Four tooling positioning and limiting blocks are arranged in an array, nested with corresponding slots on the top of the storage frame. This design ensures precise tooling positioning, guaranteeing accurate placement each time. The four arrayed positioning and limiting blocks limit the tooling from multiple directions, effectively preventing shaking or displacement within the storage frame. This ensures tooling stability during transport and reduces the risk of damage due to tooling movement. U-shaped tooling assembly holes inside the tooling assembly plate facilitate fixing the tooling to the storage frame. The U-shaped structure offers good inclusiveness and adaptability, accommodating various... The tooling to be transported, with its specific shape and size, can be securely fixed within the storage frame through the tooling assembly holes, enhancing the stability of the connection between the tooling and the storage frame. This prevents the tooling from easily loosening during transportation and subsequent operations. The positioner connection plate has positioner assembly plates on both the upper and lower sides, with an array of positioner assembly holes inside each assembly plate. This structural design greatly improves the flexibility and convenience of connecting with the positioner. The arrangement of the upper and lower sides allows for selection of appropriate connection positions based on the actual usage scenario and the structural characteristics of the positioner. The array of positioner assembly holes increases the connection options, enabling better adaptation to different models and specifications of positioners. This facilitates accurate transfer of tooling between different processes, improving the coordination and efficiency of the entire automated production process.

[0017] 2. Through the design of slots, plug-in plates, fixing holes, and connecting plate fixing holes, the plug-in plates located in the middle of the left and right sides of the storage frame mate with the slots inside the positioner connecting plate to achieve a plug-in connection. This design enables rapid positioning and installation. During tooling transportation and connection with the positioner, workers can quickly make a preliminary connection between the storage frame and the positioner connecting plate, greatly saving installation time and improving work efficiency. Moreover, the matching method of the slots and plug-in plates ensures good alignment in the initial connection stage, making subsequent fixing operations smoother. The fixing holes arrayed inside the plug-in plate and the fixing holes arrayed inside the positioner connecting plate are fixed with bolts. The bolt fixing method can... It provides strong fastening force to tightly connect the storage frame and the positioner connecting plate together. Even if the tooling is subjected to external forces such as vibration and impact during transportation, it can ensure that the connection between the two will not easily loosen. This ensures the stability of the entire structure during transportation and positioning operations, and reduces the risk of tooling damage or production accidents caused by loose connections. The method of connecting by bolts through fixing holes and fixing holes of the connecting plate makes it simple and convenient to disassemble and maintain the tooling or installation structure. Simply unscrew the bolts to easily separate the storage frame and the positioner connecting plate, which facilitates individual inspection, repair or replacement of each component, reduces maintenance costs and extends the service life of the entire installation structure. Attached Figure Description

[0018] Figure 1 This is a schematic diagram of the structure of this utility model.

[0019] Figure 2 This is a schematic diagram of the structure of the central frame of this utility model.

[0020] Figure 3 This is a schematic diagram of the structure of the positioner connecting plate in this utility model.

[0021] In the diagram: 1. Main installation structure; 2. Storage frame; 3. Tooling positioning and limiting block; 4. Positioner connecting plate; 5. Transport frame; 6. Slot; 7. Connecting plate; 8. Fixing hole; 9. Slot; 10. Tooling assembly plate; 11. Tooling assembly hole; 12. Positioner assembly hole; 13. Connecting plate fixing hole; 14. Positioner assembly plate. Detailed Implementation

[0022] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0023] This utility model provides, for example Figure 1-3 The installation structure shown is based on an integrated automated tooling assembly and transportation system, comprising the main body of the installation structure 1;

[0024] A storage frame 2 is provided inside the main body 1 of the installation structure, and a positioner connection plate 4 is provided on the left and right sides of the storage frame 2.

[0025] A tooling positioning limit block 3 is provided at the top of the storage frame 2, a tooling assembly plate 10 is provided on the inner side of the positioner connecting plate 4, and a positioner assembly plate 14 is provided on the outer side of the positioner connecting plate 4.

[0026] The tooling positioning limit block 3 array has four pieces. The tooling positioning limit block 3 has a corresponding groove 6 at the top of the storage frame 2. The tooling positioning limit block 3 and the storage frame 2 are nested and connected.

[0027] The tooling assembly plate 10 has a tooling assembly hole 11 inside. The tooling assembly hole 11 has a U-shaped structure. The tooling to be transported is fixedly connected to the storage frame 2 through the tooling assembly hole 11.

[0028] The positioner connecting plate 4 is provided with positioner assembly plates 14 on the upper and lower sides respectively, and positioner assembly holes 12 are arranged in an array inside the positioner assembly plate 14.

[0029] The positioner connection plate 4 has a slot 9 inside, and the storage frame 2 has a plug plate 7 in the middle of the left and right sides.

[0030] The positioner connection plate 4 is connected to the storage frame 2 via slot 9 and plug-in plate 7.

[0031] The plug-in plate 7 has an array of fixing holes 8 inside, and the positioner connection plate 4 has an array of connecting plate fixing holes 13 inside. The positioner connection plate 4 and the plug-in plate 7 are fixed by bolts through the fixing holes 8 and the connecting plate fixing holes 13.

[0032] A transport frame 5 is arranged in an array at the bottom of the storage frame 2. The transport frame 5 corresponds to the forklift fork and is welded to the storage frame 2.

[0033] In this embodiment, a specific implementation step of an installation structure based on automated tooling assembly and transportation integration is as follows: The tooling to be transported is placed in the storage frame 2. Initial positioning is achieved using four tooling positioning and limiting blocks 3 arrayed on the top of the storage frame 2. The tooling positioning and limiting blocks 3 are nested with corresponding slots 6 opened at the top of the storage frame 2 to ensure the tooling is in an accurate position and prevent it from swaying or shifting within the storage frame 2. The tooling is then fixedly connected to the storage frame 2 through tooling assembly holes 11 inside the tooling assembly plate 10. The tooling assembly holes 11 have a U-shaped structure, allowing selection of appropriate holes 11 for fixing based on the specific shape and connection requirements of the tooling, thus ensuring the tooling is securely installed within the storage frame 2. Positioner connection plate 4 has positioner assembly plates 14 on its upper and lower sides, with positioner assembly holes 12 arrayed inside each plate. When needed… When the tooling is transferred to the positioner for specific operations, the positioner connecting plate 4 is connected to the positioner through the positioner assembly hole 12 to ensure a stable connection and prepare for subsequent positioning operations. Before placing the tooling and completing the connection preparation with the positioner, the storage frame 2 needs to be connected to the positioner connecting plate 4. The storage frame 2 has a plug-in plate 7 at the middle position on both sides, and the positioner connecting plate 4 has a slot 9 inside. The plug-in plate 7 is inserted into the slot 9 to achieve a plug-in connection between the positioner connecting plate 4 and the storage frame 2. The plug-in plate 7 has an array of fixing holes 8 inside, and the positioner connecting plate 4 has an array of connecting plate fixing holes 13 inside. After the plug-in connection is completed, bolts are used to fix it through the fixing holes 8 and the connecting plate fixing holes 13 to further strengthen the connection stability between the storage frame 2 and the positioner connecting plate 4 and prevent loosening during transportation and positioning.

[0034] like Figure 1-3 As shown, a tooling positioning limit block 3 is provided at the top of the storage frame 2, a tooling assembly plate 10 is provided on the inner side of the positioner connecting plate 4, and a positioner assembly plate 14 is provided on the outer side of the positioner connecting plate 4. Four tooling positioning limit blocks 3 are arranged in an array. The tooling positioning limit blocks 3 have corresponding grooves 6 at the top of the storage frame 2. The tooling positioning limit blocks 3 are nested and connected to the storage frame 2. A tooling assembly hole 11 is provided inside the tooling assembly plate 10. The tooling assembly hole 11 has a U-shaped structure. The tooling to be transported is fixedly connected to the storage frame 2 through the tooling assembly hole 11. Positioner assembly plates 14 are provided on the upper and lower sides of the positioner connecting plate 4 respectively. Positioner assembly holes 12 are arranged in an array inside the positioner assembly plate 14.

[0035] Preferably, the tooling positioning and limiting blocks 3 are arranged in an array of four, and are nested and connected with the corresponding slots 6 opened on the top of the storage frame 2. This design can accurately position the tooling, ensuring that the tooling is placed in the correct position every time. The four arrayed tooling positioning and limiting blocks 3 limit the tooling from multiple directions, effectively preventing the tooling from shaking or shifting within the storage frame 2, ensuring the stability of the tooling during transportation, and reducing the risk of damage caused by tooling shaking. The U-shaped tooling assembly hole 11 provided inside the tooling assembly plate 10 facilitates the fixing of the tooling to the storage frame 2. The U-shaped structure has good inclusiveness and adaptability, and can adapt to tooling of different shapes and sizes to be transported. Through the tooling assembly hole 11, the tooling can be... Securely fixed within the storage frame 2, the tooling is firmly connected to the storage frame 2, ensuring that it will not easily loosen during transportation and subsequent operations. The positioner connecting plate 4 has positioner assembly plates 14 on its upper and lower sides, and the positioner assembly plates 14 have an array of positioner assembly holes 12 inside. This structural design greatly improves the flexibility and convenience of connecting with the positioner. The arrangement of the upper and lower sides can be selected according to the actual usage scenario and the structural characteristics of the positioner, and the array of positioner assembly holes 12 increases the connection options, enabling better adaptation to different models and specifications of positioners. This facilitates the accurate transfer of tooling between different processes and improves the coordination and efficiency of the entire automated production process.

[0036] like Figure 1 and Figure 3 As shown, a slot 9 is provided inside the positioner connecting plate 4, and a plug-in plate 7 is provided in the middle of the left and right sides of the storage frame 2. The positioner connecting plate 4 is connected to the storage frame 2 by plugging in through the slot 9 and the plug-in plate 7. Fixing holes 8 are arranged in an array inside the plug-in plate 7, and connecting plate fixing holes 13 are arranged in an array inside the positioner connecting plate 4. The plug-in plate 7 of the positioner connecting plate 4 is fixed by bolts through the fixing holes 8 and the connecting plate fixing holes 13.

[0037] Preferably, the plug-in plate 7 located at the middle of the left and right sides of the storage frame 2 mates with the slot 9 inside the positioner connecting plate 4 to achieve a plug-in connection. This design enables rapid positioning and installation. During tooling transportation and connection with the positioner, workers can quickly make a preliminary connection between the storage frame 2 and the positioner connecting plate 4, greatly saving installation time and improving work efficiency. Moreover, the matching method of the slot 9 and the plug-in plate 7 ensures good alignment at the initial stage of connection, making subsequent fixing operations smoother. The fixing holes 8 arranged in an array inside the plug-in plate 7 and the fixing holes 13 arranged in an array inside the positioner connecting plate 4 are fixed by bolts. The bolt fixing method provides strong tightness. The solid structure tightly connects the storage frame 2 and the positioner connecting plate 4 together. Even if the tooling is subjected to external forces such as vibration and impact during transportation, the connection between the two will not easily loosen. This ensures the stability of the entire structure during transportation and positioning operations, reducing the risk of tooling damage or production accidents caused by loose connections. The connection is made by bolts through fixing holes 8 and fixing holes 13 on the connecting plate. When it is necessary to disassemble and maintain the tooling or installation structure, the operation is simple and convenient. Just unscrew the bolts to easily separate the storage frame 2 and the positioner connecting plate 4. This facilitates individual inspection, repair or replacement of each component, reduces maintenance costs and extends the service life of the entire installation structure.

[0038] like Figure 1 and Figure 2 As shown, a transport frame 5 is arranged in an array at the bottom of the storage frame 2. The transport frame 5 corresponds to the forklift fork and is welded to the storage frame 2.

[0039] Optionally, the design of the transport frame 5 corresponding to the forklift forks makes the transfer work during tooling transportation efficient and convenient. The forklift can directly insert its forks into the transport frame 5 to quickly move the storage frame 2 containing the tooling, greatly improving the transfer speed of the tooling between different work areas, reducing transportation time, and improving overall production efficiency. The transport frame 5 and the storage frame 2 are connected by welding. This connection method ensures the structural stability between the transport frame 5 and the storage frame 2. The welding connection allows the two to form a whole, and even if subjected to force during forklift handling, the frame remains stable. Even under significant external impact or vibration, the transport frame 5 is unlikely to detach from the storage frame 2, ensuring the safety of the tooling during transportation and preventing damage to the tooling inside the storage frame 2 due to loosening of the transport frame 5. The array of multiple transport frames 5 increases compatibility with forklift forks of different types and sizes. Different forklift forks may have different lengths and spacings, and the multiple transport frames 5 allow forklifts to select the appropriate insertion position based on the characteristics of their forks, enhancing the versatility of the entire transport structure and enabling it to adapt to various forklift equipment, thus expanding the applicability of tooling transportation.

[0040] Finally, it should be noted that the above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Although the present utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.

Claims

1. An installation structure based on automated tooling for integrated loading and transport of goods, comprising the main body of the installation structure (1); A storage frame (2) is provided inside the main body (1) of the installation structure, and a positioner connecting plate (4) is provided on the left and right sides of the storage frame (2); Its features are: A tooling positioning limit block (3) is provided at the top of the storage frame (2), a tooling assembly plate (10) is provided on the inner side of the positioner connecting plate (4), and a positioner assembly plate (14) is provided on the outer side of the positioner connecting plate (4).

2. The installation structure based on automated tooling for integrated loading, assembly, and transportation of goods, as described in claim 1, is characterized in that: The tooling positioning limit block (3) array is provided with four, and the tooling positioning limit block (3) has a corresponding groove (6) at the top position of the storage frame (2). The tooling positioning limit block (3) and the storage frame (2) are nested and connected.

3. The installation structure based on automated tooling for integrated loading, assembly, and transportation of goods, as described in claim 2, is characterized in that: The tooling assembly plate (10) has a tooling assembly hole (11) inside. The tooling assembly hole (11) is a U-shaped structure. The tooling to be transported is fixedly connected to the storage frame (2) through the tooling assembly hole (11).

4. The installation structure based on automated tooling for integrated loading and transport of goods, as described in claim 3, is characterized in that: The positioner connecting plate (4) is provided with positioner assembly plates (14) on the upper and lower sides respectively, and positioner assembly holes (12) are arranged in an array inside the positioner assembly plate (14).

5. The installation structure based on automated tooling for integrated loading, assembly, and transportation of goods, as described in claim 1, is characterized in that: The positioner connecting plate (4) has a slot (9) inside, and the storage frame (2) has a plug plate (7) in the middle of the left and right sides.

6. The installation structure based on automated tooling for integrated loading, assembly, and transportation of goods, as described in claim 5, is characterized in that: The positioner connection plate (4) is connected to the storage frame (2) via a slot (9) and a plug-in plate (7).

7. The installation structure based on automated tooling for integrated loading, assembly, and transportation of goods, as described in claim 6, is characterized in that: The plug-in plate (7) has an array of fixing holes (8) inside, and the positioner connecting plate (4) has an array of connecting plate fixing holes (13) inside. The plug-in plate (7) of the positioner connecting plate (4) is fixed by bolts through the fixing holes (8) and the connecting plate fixing holes (13).

8. The installation structure based on automated tooling for integrated loading, assembly, and transportation of goods, as described in claim 1, is characterized in that: The storage frame (2) is provided with a transport frame (5) at the bottom position. The transport frame (5) corresponds to the forklift fork and is welded to the storage frame (2).