Large workpiece integrated tool structure integrating weighing and transporting

By designing a integrated workpiece structure integrating weighing and transportation, the problem of insufficient applicability of traditional workpieces is solved, and efficient, automated transportation and weighing of large workpieces is achieved, and transportation efficiency and adaptability are improved.

CN223072541UActive Publication Date: 2025-07-08天津博迈科海洋工程有限公司
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Patent Information

Application Number
CN202422373652.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-28
Publication Date
2025-07-08
Estimated Expiration
2034-09-28

AI Technical Summary

Technical Problem

Traditional transportation tooling structures are not very suitable and cannot provide workpiece quality reference data. In addition, the transportation of large structural parts requires assistance from forklifts, resulting in large human resources consumption and inefficiency.

Method used

Design a large-scale workpiece integrated integrated workpiece structure integrating weighing and transportation, including tooling abutment, hydraulic cylinder, weight sensor and display, which can adjust the height, adapt to a variety of workpieces, provide weighing functions, and support and display quality through the hydraulic system.

Benefits of technology

It improves the adaptability and efficiency of workpiece transportation, reduces human resource consumption, and simplifies the loading and transportation process of large workpieces.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a large-scale workpiece integrated tooling structure integrating weighing and transportation, which comprises a tooling base station, a U-shaped through groove arranged in the tooling base station, a plurality of hydraulic oil cylinders arranged in the U-shaped through groove, a sensor support plate arranged on the U-shaped through groove, two weight sensors arranged on the support plate, and a bearing plate arranged in a top surface groove, a weight displayer is arranged on the left side of a base of the tool base table, and the weight sensor and the weight displayer are driven by a plurality of hydraulic oil cylinder push rods through data lines to weigh and transport large workpieces. According to the structure, the adjustable supporting legs are adopted, the overall height of the tool can be adjusted, axis vehicle transportation is facilitated, the quality of transported large workpieces can be displayed, the tool is suitable for most workpieces, and the overall structure is simple and reliable.
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Description

Technical Field

[0001] The utility model relates to an integrated tooling structure, in particular to an integrated tooling structure for large workpieces integrating weighing and transportation. Background Art

[0002] Transportation tooling is a common device in ocean engineering. Appropriate tooling plays an important role in the quality and production efficiency of products. Traditional transportation-type tooling structures are often specifically designed for certain specific workpieces, with poor applicability, and cannot give certain reference data for the transported workpieces. Moreover, for large structural parts during the tooling transportation process, due to their large mass, tools such as forklifts are often required for auxiliary transportation, which leads to high consumption of human resources and low efficiency. Summary of the Invention

[0003] The utility model provides an integrated tooling structure for large workpieces integrating weighing and transportation, and provides an integrated tooling structure for large workpieces that can assist in loading and has a weighing function, which can adapt to most workpiece operations, thereby improving the working efficiency of workers.

[0004] To achieve the above object, the technical solution adopted by the utility model is:

[0005] An integrated tooling structure for large workpieces integrating weighing and transportation of the utility model includes a tooling base platform. The tooling base platform includes a tooling base platform base. The top surface of the tooling base platform base is surrounded by a square-shaped protrusion. A U-shaped through groove is opened in the middle of the top surface groove surrounded by the square-shaped protrusion. A plurality of hydraulic cylinders are installed in the U-shaped through groove. A sensor support plate is arranged at the U-shaped through groove. Two weight sensors are installed on the top wall of the sensor support plate. A load-bearing plate is placed in the top surface groove. Driven by the push rods of the plurality of vertically arranged hydraulic cylinders, the front and rear ends of the sensor support plate can respectively support on the front and rear side walls of the U-shaped through groove or be located above the front and rear side walls of the U-shaped through groove. The two weight sensors and the load-bearing plate can be in contact or separated. The load-bearing plate can support on the top surface groove or be located above the top surface groove. There is a weight display on the left side of the tooling base platform base. The weight sensors are connected to the weight display through data lines.

[0006] The structure of the utility model adopts adjustable support legs, which can adjust the overall height of the tooling, facilitate the transportation by an axle truck, can display the mass of the transported large workpiece, is applicable to most workpieces, and the overall structure is simple and reliable. Brief Description of the Drawings

[0007] Figure 1 is a three-dimensional view of the use state of an integrated tooling for large workpieces integrating weighing and transportation of the utility model;

[0008] Figure 2 A perspective view of an integrated tooling for large workpieces integrating weighing and transportation according to the present utility model;

[0009] Figure 3 is Figure 2 An exploded view of the tooling base in the structure shown. Specific embodiments

[0010] The present utility model will be described in detail below in conjunction with the accompanying drawings and specific embodiments.

[0011] As shown in the accompanying drawings, an integrated tooling structure for large workpieces integrating weighing and transportation includes a tooling base 3-1. The tooling base 3-1 includes a tooling base bottom 3-1-4. The periphery of the top surface of the tooling base bottom 3-1-4 is a square-shaped protrusion. A U-shaped through groove is opened in the middle of the top surface groove surrounded by the square-shaped protrusion. A plurality of hydraulic cylinders 3-1-6 are installed in the U-shaped through groove. Preferably, the plurality of hydraulic cylinders are six and are evenly distributed in the U-shaped through groove.

[0012] A sensor support plate 3-1-3 is arranged at the U-shaped through groove. Two weight sensors 3-1-2 are installed on the top wall of the sensor support plate 3-1-3. A load-bearing plate 3-1-1 is placed in the top surface groove. Driven by the push rods of the plurality of vertically arranged hydraulic cylinders 3-1-6, the front and rear ends of the sensor support plate 3-1-3 can respectively support on the front and rear side walls of the U-shaped through groove or be located above the front and rear side walls of the U-shaped through groove. The two weight sensors 3-1-2 can contact or separate from the load-bearing plate 3-1-1. The load-bearing plate 3-1-1 can support on the top surface groove or be located above the top surface groove. That is: the push rods of the plurality of vertically arranged hydraulic cylinders 3-1-6 can move upward to push the sensor support plate 3-1-3 upward, so that the two weight sensors 3-1-2 contact the load-bearing plate 3-1-1 and the load-bearing plate 3-1-1 is located above the top surface groove, or the push rods of the plurality of hydraulic cylinders can move downward, so that the front and rear ends of the sensor support plate 3-1-3 respectively support on the front and rear side walls of the U-shaped through groove and the weight sensors 3-1-2 are separated from contacting the load-bearing plate 3-1-1, so that the load-bearing plate 3-1-1 supports on the top surface groove.

[0013] During transportation, the top of the tooling base 3-1 contacts the bottom of the load-bearing plate 3-1-1, and the load-bearing plate does not contact the top of the weight sensor 3-1-2.

[0014] On the left side of the base of the tooling base 3-1-4, there is a weight display 3-1-5. The weight sensor 3-1-2 is connected to the weight display 3-1-5 through a data cable, and the data collected by the weight sensor can be displayed on the weight display 3-1-5.

[0015] Preferably, when the load-bearing plate 3-1-1 is supported on the top wall of the top surface groove, the top wall of the load-bearing plate is flush with the top surface of the square-shaped protrusion.

[0016] Preferably, support legs 3-2 are welded to the left and right sides of the bottom of the tooling base 3 respectively. The upper parts of the two support feet 3-4 are respectively inserted into the cavities of the support legs 3-2 and can slide up and down along the cavities of the support legs 3-2. A plurality of pin holes are spaced up and down on the support feet 3-4 and the support legs 3-2 respectively. The support legs 3-2 and the support feet 3-4 are fixed by pins 3-3 passing through the pin holes. The overall height of the device can be adjusted by adjusting the connection position of the pin holes between the support legs 3-2 and the support feet 3-4. During transportation, the support legs 3-2 are located on both sides of the axle vehicle and do not contact the axle vehicle.

[0017] The working principle of this device is as follows:

[0018] When the integrated tooling structure for large workpieces is in use, workers can adjust the connection between the support legs 3-2 and the support feet 3-4 according to the height of the axle vehicle 2, so as to adjust the tooling to a suitable height. After placing several toolings, use a crane or other device to place the large structural member 1 on the integrated tooling 3, which is convenient for the axle vehicle 2 to transport. After loading the large structural member 1, the worker needs to weigh the entire large structural member 1 being transported. When in the weighing state, the six hydraulic cylinders 3-1-6 synchronously lift the sensor support plate 3-1-3 so that the two weight sensors 3-1-2 contact the load-bearing plate 3-1-1. The top of the load-bearing plate 3-1-1 exceeds the square-shaped protrusion on the top of the tooling base 3-1. At this time, the worker can read the weight information on the weight display 3-1-5. After completing the weighing operation, the hydraulic cylinders 3-1-6 retract, so that the top of the tooling base 3-1 contacts the bottom of the load-bearing plate 3-1-1 and does not contact the top of the weight sensor 3-1-2. The sensor support plate 3-1-3 falls back onto the front and rear side walls of the U-shaped through groove. After the operation is completed, both the weight sensor 3-1-2 and the hydraulic cylinder 3-1-6 stop working. At this time, the axle vehicle 2 drives into the bottom of the integrated tooling and uses the built-in hydraulic structure of the axle vehicle 2 to lift the entire integrated tooling, so that the support feet 3-4 leave the ground, and then the transportation can start.

Claims

1. An integrated tooling structure for large workpieces that combines weighing and transportation, including a tooling base (3-1), characterized in that: The described tooling base includes a tooling base pedestal (3-1-4). The periphery of the top surface of the tooling base pedestal is a rectangular raised portion. A U-shaped through groove is formed in the middle of the top surface groove surrounded by the rectangular raised portion. A plurality of hydraulic cylinders (3-1-6) are installed in the U-shaped through groove. A sensor support plate (3-1-3) is disposed at the U-shaped through groove. Two weight sensors (3-1-2) are installed on the top wall of the sensor support plate. A load-bearing plate (3-1-1) is placed in the top surface groove. Driven by the push rods of the plurality of vertically arranged hydraulic cylinders, the front and rear ends of the sensor support plate (3-1-3) can respectively support on the front and rear side walls of the U-shaped through groove or be located above the front and rear side walls of the U-shaped through groove. The two weight sensors (3-1-2) and the load-bearing plate (3-1-1) can contact or separate, and the load-bearing plate can support on the top surface groove or be located above the top surface groove. A weight display (3-1-5) is provided on the left side of the tooling base pedestal (3-1-4). The weight sensors (3-1-2) are connected to the weight display (3-1-5) through data lines.

2. The integrated tooling structure for large workpieces integrating weighing and transportation according to claim 1, characterized in that: When the load-bearing plate (3-1-1) supports on the top wall of the top surface groove, the top wall of the load-bearing plate is flush with the top surface of the rectangular raised portion.

3. The integrated tooling structure for large workpieces integrating weighing and transportation according to claim 1 or 2, characterized in that: Support legs (3-2) are respectively welded to the left and right sides of the bottom of the tooling base (3). The upper parts of two support feet (3-4) are respectively inserted into the cavities of the support legs and can slide up and down along the cavities of the support legs. A plurality of pin holes are respectively spaced up and down on the support feet and the support legs. The support legs and the support feet are fixed by pins (3-3) passing through the pin holes.

4. The integrated tooling structure for large workpieces integrating weighing and transportation according to claim 1, wherein: The plurality of hydraulic cylinders are six and are evenly distributed in the U-shaped through groove.