Method for processing square columnar isostatic pressed graphite

By combining the flipping equipment and the support device, the problems of complex structure and high cost in the flipping process of isostatic graphite are solved, realizing simple and low-cost flipping and inspection, reducing equipment wear and improving inspection efficiency.

CN121292074BActive Publication Date: 2026-07-21JIANGSU HONGJI CARBON TECH CO LTD
View PDF 2 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
JIANGSU HONGJI CARBON TECH CO LTD
Filing Date
2025-10-30
Publication Date
2026-07-21

AI Technical Summary

Technical Problem

In the current isostatic graphite processing, the flipping inspection is difficult and costly, and the existing clamping and rotation method has a complex structure, making it difficult to efficiently inspect each side.

Method used

The method employs a flipping device, including a lifting device and a conveying device. The isostatic graphite is tilted and flipped by the belt slack and the lifting device, followed by a tensioning step. The design of the support plate, using the lifting device and the support device, achieves a simple structure for isostatic graphite. In the lifting step, the support device supports the belt to ensure that the isostatic graphite is not easily damaged during the flipping process.

Benefits of technology

This technology enables simple flipping of isostatically pressed graphite, reducing costs, minimizing equipment wear, and improving the accuracy and efficiency of inspection.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN121292074B_ABST
    Figure CN121292074B_ABST
Patent Text Reader

Abstract

The application relates to a square columnar isostatic pressing graphite processing method, and relates to the technical field of isostatic pressing graphite processing. The method adopts a turnover device. The turnover device comprises a jacking device and a conveying device. The jacking device comprises a jacking part and a lifting part one. The lifting part is used for driving the jacking part to lift. The jacking part is used for contacting the isostatic pressing graphite and making the isostatic pressing graphite tilt. The conveying device is a belt conveyor. The method further comprises the following steps. A belt loosening step: the belt of the belt conveyor is loosened, so that the belt forms a recess under the action of the isostatic pressing graphite. A jacking step: the lifting part one drives the jacking part to ascend and contact the isostatic pressing graphite, so that the isostatic pressing graphite tilts and turns over. A belt tensioning step: the belt of the belt conveyor is tensioned. A processing step: the surface of the isostatic pressing graphite is processed. The application has the advantages of simple structure and low cost.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This application relates to the technical field of isostatic pressing graphite processing, and in particular to a method for processing square columnar isostatic pressing graphite. Background Technology

[0002] During the processing of isostatic graphite, the surface needs to be inspected. However, the existing inspection process, such as using a clamping and rotating method (e.g., a multi-axis robot) to flip the isostatic graphite, is relatively complex, costly, and makes it difficult to inspect each surface of the isostatic graphite. Summary of the Invention

[0003] In view of the shortcomings of the existing technology, one of the objectives of this application is to provide a method for processing square columnar isostatic graphite, which has the advantages of being able to flip the isostatic graphite, having a relatively simple structure, low cost, and being convenient for processing each side of the isostatic graphite.

[0004] The above-mentioned objective of this application is achieved through the following technical solution: A method for processing square columnar isostatic graphite employs a flipping device, which includes a lifting device and a conveying device. The lifting device includes a lifting component and a first lifting component. The first lifting component drives the lifting component to rise and fall, and is used to contact the isostatic graphite and tilt it. The conveying device is a belt conveyor. The method further includes the following steps: a relaxation step: loosening the belt of the belt conveyor so that the belt forms a depression under the action of the isostatic graphite; a lifting step: the first lifting component drives the lifting component to rise and contact the isostatic graphite, causing the isostatic graphite to tilt and flip; a tensioning step: tensioning the belt of the belt conveyor; and a processing step: processing the surface of the isostatic graphite.

[0005] By adopting the above technical solution, when it is necessary to flip the isostatic graphite, the belt forms a depression under the action of the isostatic graphite. The lifting component tilts the isostatic graphite until it flips. Then the belt is tensioned, thereby realizing the flipping of the isostatic graphite. The structure is relatively simple and the isostatic graphite is always in a supported state, making it less prone to damage.

[0006] In a preferred embodiment, the present application may be further configured such that the overturning device further includes a support device, the support device including a support plate and a second lifting member, the second lifting member being used to drive the support plate to rise and fall, and the support plate being located below the belt conveyor for supporting the belt of the belt conveyor.

[0007] By adopting the above technical solution, the belt and the isostatic graphite on the belt are supported by the support plate, thereby reducing the wear of the isostatic graphite on the belt conveyor.

[0008] In a preferred embodiment, this application can be further configured such that, during the tensioning step, the lifting member two drives the support plate to rise, supporting the isostatic graphite on the belt conveyor.

[0009] By adopting the above technical solution, it is easier to tension the belt.

[0010] In a preferred embodiment, this application may be further configured to include a decontamination step, which is located after the relaxation step and before the lifting step. The decontamination step removes impurities from the isostatic graphite and the belt at the isostatic graphite.

[0011] By adopting the above technical solution, the impurity removal step enables the removal of impurities from the isostatic graphite and the belt.

[0012] In a preferred embodiment, this application can be further configured such that, during the tensioning step, the support plate rises under the action of the lifting member two, contacts the belt supporting the isostatic graphite and moves to a preset height, and then the belt is tensioned.

[0013] By adopting the above technical solution, which involves first supporting the isostatic graphite and then tensioning the belt, the service life of the belt conveyor can be extended to a certain extent.

[0014] In a preferred embodiment, this application can be further configured such that: during the processing step, the position of the isostatic graphite is confirmed, and if the position does not meet the standard, the conveying device drives the isostatic graphite to the target position.

[0015] By adopting the above technical solution, namely, by confirming the position of isostatic graphite and moving it to the target position through a conveying device, the inspection of isostatic graphite becomes more accurate.

[0016] In a preferred embodiment, this application can be further configured as follows: there are two sets of lifting devices, referred to as group A and group B. During the lifting process, the lifting member of group A causes the isostatic graphite to tilt and come into contact with the lifting device of group B. During this process, the lifting member of group A gradually rises, and the lifting member of group B gradually descends until it no longer comes into contact with the isostatic graphite.

[0017] By adopting the above technical solution, that is, by setting up two sets of lifting devices during use, the impact on the belt conveyor is reduced during the isostatic graphite tumbling process. Attached Figure Description

[0018] Figure 1 This is a side view of the flipping device of this application.

[0019] Reference numerals: 1. Conveying device; 2. Lifting component; 3. Support plate. Detailed Implementation

[0020] The present application will be further described in detail below with reference to the accompanying drawings.

[0021] Reference Figure 1 This application discloses a method for processing square columnar isostatic graphite, employing a tilting device. The tilting device includes a lifting device, a conveying device 1, and a supporting device. Two sets of lifting devices are provided on both sides of the conveying device 1. Each lifting device includes a lifting component 2 and a first lifting component. The first lifting component drives the lifting component 2 to move up and down. The lifting component 2 can be rod-shaped, and its end in contact with the isostatic graphite can be in point or line contact. The lifting component 2 is used to contact the isostatic graphite and tilt it. The conveying device 1 is a belt conveyor. The supporting device includes a support plate 3 and a second lifting component. The second lifting component drives the support plate 3 to move up and down. The support plate 3 is located below the belt conveyor and supports the belt of the belt conveyor. In this embodiment, the first and second lifting components can be cylinders, hydraulic cylinders, electric push rods, or other actuators capable of lifting. The isostatic graphite is located on the belt conveyor, with both ends extending out of the belt conveyor perpendicular to the conveying direction.

[0022] It also includes the following steps: relaxation step: loosen the belt of the belt conveyor, lower the support plate 3 until it no longer contacts the belt, so that the belt forms a depression under the action of isostatic graphite; Impurity removal step: Remove impurities from the isostatic graphite and the belt on the isostatic graphite. Lifting steps: Assume two sets of lifting devices, namely Group A and Group B. Lifting component 2 of Group B rises to the preset position first. Then, lifting component 2 of Group A rises to tilt the isostatic graphite, so that the isostatic graphite comes into contact with the lifting component 2 of Group B. During this process, lifting component 2 of Group A gradually rises, and lifting component 2 of Group B gradually descends until it no longer comes into contact with the isostatic graphite. Tensioning steps: When the weight of the isostatic graphite is greater than the preset value, and when the flipping angle of the isostatic graphite is not less than 45 degrees, the support plate 3 rises and contacts the belt to support the isostatic graphite. During this process, the support plate 3 gradually rises, and the lifting component 2 of group B gradually descends until it no longer contacts the isostatic graphite. When the support plate 3 moves to the preset position, the belt of the belt conveyor is tensioned. Processing steps: Confirm the position of the isostatic graphite. If the position does not meet the standard, the conveying device 1 will move the isostatic graphite to the target position, and then process the surface of the isostatic graphite.

[0023] The implementation principle of this embodiment is as follows: by cooperating with the belt slack and the lifting device, the isostatic graphite can be flipped. The structure is simple. At the same time, during the flipping process, the isostatic graphite is always in a supported state, which can reduce the probability of damage caused by flipping the isostatic graphite.

[0024] The embodiments described in this specific implementation are preferred embodiments of this application and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.

Claims

1. A method for processing square columnar isostatically pressed graphite, characterized in that: The method employs a flipping device, which includes a lifting device and a conveying device (1). The lifting device includes a lifting component (2) and a lifting component one. The lifting component one is used to drive the lifting component (2) to rise and fall. The lifting component (2) is used to contact the isostatic graphite and tilt the isostatic graphite. The conveying device (1) is a belt conveyor. The method also includes the following steps: a relaxation step: loosening the belt of the belt conveyor so that the belt forms a depression under the action of the isostatic graphite; a lifting step: the lifting component one drives the lifting component (2) to rise and contact the isostatic graphite, causing the isostatic graphite to tilt and flip; a tensioning step: tensioning the belt of the belt conveyor; and a processing step: processing the surface of the isostatic graphite. The flipping device also includes a support device, which includes a support plate (3) and a lifting component 2. The lifting component 2 is used to drive the support plate (3) to rise and fall. The support plate (3) is located below the belt conveyor and is used to support the belt of the belt conveyor. In the processing step, the position of the isostatic graphite is confirmed. If the position does not meet the standard, the conveying device (1) drives the isostatic graphite to the target position. There are two sets of lifting devices. Let the two sets of lifting devices be set as group A and group B. In the lifting step, the lifting component (2) of group A causes the isostatic graphite to tilt and come into contact with the lifting device of group B. During this process, the lifting component (2) of group A gradually rises and the lifting component (2) of group B gradually falls until it does not come into contact with the isostatic graphite.

2. The method for processing square columnar isostatic graphite according to claim 1, characterized in that: During the tensioning step, the lifting component drives the support plate (3) to rise and support the isostatic graphite on the belt conveyor.

3. The method for processing square columnar isostatic graphite according to claim 1, characterized in that: It also includes a decontamination step, which is located after the relaxation step and before the lifting step. The decontamination step removes impurities from the isostatic graphite and the belt at the isostatic graphite.

4. The method for processing square columnar isostatic graphite according to claim 3, characterized in that: During the tensioning step, the support plate (3) rises under the action of the lifting component 2, contacts the belt supporting the isostatic graphite and moves to the preset height, and then the belt is tensioned.