Rapid and stable accelerated curing device

By installing limit components and adjustment frames on the crawler conveyor, the deviation problem caused by external factors during the accelerated curing process is solved, and the rapid and stable limit and flexible adjustment of the material is achieved, ensuring the stability and processing effect of the accelerated curing device.

CN223249788UActive Publication Date: 2025-08-22TIANJIN JINGHAI ASIA PACIFIC IND CO LTD
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Patent Information

Application Number
CN202422404499.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-30
Publication Date
2025-08-22
Estimated Expiration
2034-09-30

AI Technical Summary

Technical Problem

During the operation of existing accelerated curing devices, the materials are easily offset due to interference from external factors, affecting the processing stability and effect.

Method used

Install limit components on the left and right sides of the crawler conveyor, including a stabilizing frame, electric push rod, track frame, electric slider and limit plate. Combined with the lifting column and adjustment frame, the rapid stable limit of the material and flexible adjustment of the nozzle assembly, ensuring the stability and flexibility of the material during the accelerated curing process.

Benefits of technology

Through the combination of limiting components and adjustment frames, the rapid stability and flexibility of the material during accelerated curing process is achieved, preventing shaking, and ensuring processing effect and quality.

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Abstract

The utility model discloses a fast stable solidification acceleration device, relates to chemical engineering processing technical field, including crawler belt conveyor and spacing subassembly, crawler belt conveyor left and right both sides horizontal installation spacing subassembly, and spacing subassembly front and rear both ends top vertical installation lifting column, and the spacing subassembly left and right both sides horizontal installation lifting column, and the spacing subassembly right and left both sides vertical installation lifting column. An adjusting frame is horizontally erected on the upper portion of the lifting column, and a nozzle assembly is installed in the middle of the adjusting frame. According to the rapid and stable accelerated curing device, the limiting assemblies are symmetrically installed on the two sides of the crawler belt conveyor, so that materials have enough stability in the accelerated curing operation process, the situation that the material curing operation is affected due to structural deviation caused by shaking is prevented, and the adjusting frame is matched with the structural arrangement of the nozzle assembly, so that the material curing operation is more stable. And the output end can be adjusted within a certain adjusting range, so that curing operation at any position on the surface of a material can be realized, and the structural flexibility of the device is guaranteed.
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Description

Technical Field

[0001] The utility model relates to the technical field of chemical processing, in particular to a fast and stable accelerated solidification device. Background Art

[0002] An accelerated curing device is a device used to speed up the curing process. These devices significantly shorten the curing time by providing heat, light, or other forms of energy, allowing the material to reach the desired physical and chemical state more quickly. Accelerated curing devices are used in a variety of fields, including but not limited to industrial manufacturing, medical device manufacturing, and electronic component manufacturing. They are designed to improve production efficiency, reduce energy consumption, and optimize production processes.

[0003] Specifically, accelerated curing devices can include hot air drying equipment, UV lamp irradiation equipment, and electron beam curing equipment. These devices use different principles to accelerate the curing process. For example, hot air drying equipment uses high-temperature hot air to accelerate the volatilization of solvents and the curing of materials; UV lamp irradiation equipment uses ultraviolet light to trigger chemical reactions in photosensitive materials; and electron beam curing equipment uses electron beams to stimulate chemical reactions in materials.

[0004] For example, the utility model application No. 202222817941.7 discloses an electron beam curing device, wherein a concave frame is fixedly mounted on the wall of the supporting frame by bolts, and an electron beam emitter for emitting electron beams is fixedly mounted on the top of the concave frame by bolts, and a nozzle frame is mounted on the output port of the electron beam emitter, and the nozzle frame is located on the inner wall of the concave frame. The electron beam curing mechanism can be used to electron beam cure the paint surface after spraying. However, similar to the curing device described in the above document, during operation, the material on the crawler conveyor is easily disturbed by external factors, causing the material being processed to deviate, thereby affecting the stability of the material itself and thus affecting the processing effect.

[0005] Therefore, in view of this, the existing structure and defects are studied and improved, and a fast and stable accelerated curing device is proposed. Utility Model Content

[0006] The purpose of the present invention is to provide a fast and stable accelerated curing device to solve the problems raised in the above background technology.

[0007] To achieve the above-mentioned objectives, the utility model provides the following technical solutions: a fast and stable accelerated curing device, comprising a crawler conveyor and a limit assembly, wherein the limit assemblies are horizontally installed on the left and right sides of the crawler conveyor, and lifting columns are vertically installed on the tops of the front and rear ends of the limit assembly, and an adjustment frame is horizontally installed on the upper part of the lifting column, and a nozzle assembly is installed in the middle of the adjustment frame, the limit assembly comprises a stabilizing frame, an electric push rod, a track frame, an electric slider and a limit plate, an electric push rod is horizontally installed on the upper end of the stabilizing frame, and the output end of the electric push rod is connected to the track frame, and an electric slider is installed on the surface of the track frame away from the electric push rod, and the side of the electric slider away from the track frame is connected to the limit plate.

[0008] Furthermore, the electric push rod horizontally passes through the upper end of the stabilizing frame, and the electric push rod is symmetrically installed at the front and rear ends of the track frame.

[0009] Furthermore, the electric slider is slidably connected to the track frame, and the limiting plate is fixedly connected to the electric slider, and the electric slider and the limiting plate are connected in an "L"-shaped structure.

[0010] Furthermore, the adjustment frame includes a sliding rod, a driving slider, a guide rail and a fixed frame, the driving sliders are installed at both ends of the sliding rod, the bottom of the driving slider is connected to the guide rail, and the fixed frame is installed at the bottom of the guide rail.

[0011] Furthermore, the sliding rod and the guide rail are connected to each other in an "H" shape, the driving slider and the guide rail are slidably connected, and the guide rail and the fixing frame are fixedly connected.

[0012] Furthermore, the nozzle assembly includes a swing frame, a movable frame and a nozzle frame. The movable frames are installed on both sides of one end of the swing frame, and the nozzle frame is installed on the end of the swing frame away from the movable frame.

[0013] Furthermore, the nozzle assembly further comprises a quick connector and an electron beam nozzle. The quick connector is installed at the upper end of the nozzle frame, and the electron beam nozzle is installed at the lower end inside the nozzle frame.

[0014] Furthermore, the sliding rod horizontally passes through the upper end of the swing frame, and the swing frame and the sliding rod are slidably connected. The electron beam nozzle is vertically installed at the lower end of the nozzle frame and is connected to the quick connector.

[0015] The utility model provides a fast and stable accelerated curing device, which has the following beneficial effects:

[0016] 1. The utility model installs limiting components symmetrically on the left and right sides of the crawler conveyor. When the material to be processed moves to the surface of the crawler conveyor under the transmission of the upstream conveying equipment, the crawler conveyor will move the material to the middle of the entire device. At this time, the electric push rod on the stabilizing frame will push the track frame connected to it horizontally toward the side of the material. At the same time, the electric slider will drive the limiting plate to move along the surface of the track frame, so as to quickly stabilize the material and limit it. By using the above structure, the material can be quickly limited and maintain sufficient stability, so that the subsequent nozzle assembly can quickly solidify the surface of the material, ensuring the overall processing effect and preventing the material from shaking during the processing due to external factors, thereby affecting the processing effect and quality.

[0017] 2. The utility model uses a lifting column to horizontally install the adjustment frame above the limit assembly, and uses the structural connection between the mobile frame and the sliding rod, so that the entire nozzle assembly can be translated left and right along the surface of the sliding rod. At the same time, the sliding rod uses the driving sliders at both ends to drive the nozzle assembly to translate back and forth along the surface of the guide rail. The swing frame itself is used in conjunction with the structure of the mobile frame, so it can be swung up and down within a certain range. The combined use of the above structures provides sufficient structural flexibility for the electron beam nozzle, thereby realizing sufficient accelerated solidification processing of the material on the surface of the crawler conveyor to ensure sufficient processing effect. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 This is a schematic diagram of the main body axial side structure of a fast and stable accelerated curing device of the utility model;

[0019] Figure 2 This is a schematic diagram of the structure of a limiting component of a fast and stable accelerated curing device of the utility model;

[0020] Figure 3 This is a schematic diagram of the three-dimensional structure of an adjustment frame of a fast and stable accelerated curing device of the utility model;

[0021] Figure 4 This is a schematic diagram of the three-dimensional structure of a nozzle assembly of a fast and stable accelerated curing device of the present invention.

[0022] In the figure: 1. Crawler conveyor; 2. Limiting assembly; 201. Stabilizing frame; 202. Electric push rod; 203. Track frame; 204. Electric slider; 205. Limiting plate; 3. Lifting column; 4. Adjusting frame; 401. Sliding rod; 402. Driving slider; 403. Guide rail; 404. Fixed frame; 5. Nozzle assembly; 501. Swinging frame; 502. Moving frame; 503. Nozzle frame; 504. Quick connector; 505. Electron beam nozzle. DETAILED DESCRIPTION

[0023] The following embodiments of the present invention are described in further detail with reference to the accompanying drawings and examples. The following examples are used to illustrate the present invention, but are not intended to limit the scope of the present invention.

[0024] like Figures 1 to 4 As shown, a fast and stable accelerated curing device includes a crawler conveyor 1 and a limiting component 2. The limiting components 2 are horizontally installed on the left and right sides of the crawler conveyor 1, and lifting columns 3 are vertically installed on the top of the front and rear ends of the limiting component 2. The upper part of the lifting column 3 is horizontally provided with an adjusting frame 4, and the middle part of the adjusting frame 4 is provided with a nozzle assembly 5. The limiting component 2 includes a stabilizing frame 201, an electric push rod 202, a track frame 203, an electric slider 204 and a limiting plate 205. The upper end of the stabilizing frame 201 is horizontally provided with an electric push rod 202, and the output end of the electric push rod 202 is connected to the track frame 203, and the surface of the track frame 203 away from the electric push rod 202 is provided with an electric slider 204, and the side of the electric slider 204 away from the track frame 203 is connected to the limiting plate 205. The dynamic push rod 202 horizontally passes through the upper end of the stabilizing frame 201, and the electric push rod 202 is symmetrically installed at the front and rear ends of the track frame 203. The electric slider 204 is slidably connected to the track frame 203, and the limit plate 205 is fixedly connected to the electric slider 204. The electric slider 204 and the limit plate 205 are connected in an "L"-shaped structure. When the material to be processed moves to the surface of the crawler conveyor 1 under the transmission of the upstream conveying equipment, the crawler conveyor 1 will move the material to the middle of the entire device. At this time, the electric push rod 202 on the stabilizing frame 201 will push the track frame 203 connected thereto horizontally toward the side of the material. At the same time, the electric slider 204 will drive the limit plate 205 to move along the surface of the track frame 203, so as to quickly stabilize the material and limit it.

[0025] like Figures 1 to 4As shown, the adjustment frame 4 includes a sliding rod 401, a driving slider 402, a guide rail 403 and a fixed frame 404, the driving slider 402 is installed at both ends of the sliding rod 401, and the bottom of the driving slider 402 is connected to the guide rail 403, and the bottom of the guide rail 403 is installed with a fixed frame 404, the sliding rod 401 and the guide rail 403 are connected to each other in an "H" shape, and the driving slider 402 and the guide rail 403 are slidably connected, and the guide rail 403 and the fixed frame 404 are fixedly connected, the nozzle assembly 5 includes a swing frame 501, a movable frame 502 and a nozzle frame 503, the movable frame 502 is installed on the left and right ends of the swing frame 501, and the nozzle frame 503 is installed on the end of the swing frame 501 away from the movable frame 502, the nozzle assembly 5 also includes a quick connector 504 and an electron beam Nozzle 505, a quick connector 504 is installed at the upper end of the nozzle frame 503, and an electron beam nozzle 505 is installed at the lower end of the nozzle frame 503. The sliding rod 401 horizontally passes through the upper end of the swing frame 501, and the swing frame 501 and the sliding rod 401 are slidingly connected. The electron beam nozzle 505 is vertically installed at the lower end of the inner part of the nozzle frame 503 and is interconnected with the quick connector 504. The structural connection between the movable frame 502 and the sliding rod 401 is utilized to make the entire nozzle assembly 5 translate left and right along the surface of the sliding rod 401. At the same time, the sliding rod 401 utilizes the driving sliders 402 at both ends to drive the nozzle assembly 5 to translate back and forth along the surface of the guide rail 403. The swing frame 501 itself is used in conjunction with the structure of the movable frame 502, so that it can be swung up and down within a certain range.

[0026] In summary, if Figures 1 to 4 As shown, when using the fast and stable accelerated curing device, first use the quick connector 504 on the upper end of the nozzle frame 503 to connect the electron beam nozzle 505 and the electron beam generator to each other. Then, under the transportation of the upstream equipment, the material that needs to be quickly cured will be transported to the surface of the crawler conveyor 1. Then, under the operation of the crawler conveyor 1, the material will be moved to the middle of the device;

[0027] At this time, the limiting components 2 on both sides of the crawler conveyor 1 will operate synchronously, and the electric push rod 202 on the upper end of the stabilizing frame 201 and the track frame 203 connected thereto will be pushed to the side of the material. At the same time, under the operation of the electric slider 204, the limiting plate 205 connected thereto will move along the surface of the track frame 203 and approach the side of the material, thereby stably limiting the material on the surface of the crawler conveyor 1;

[0028] Afterwards, under the operation of the electron beam generating device, the electron beam will be ejected from the electron beam nozzle 505 to the surface of the material to accelerate the curing operation. At the same time, the adjustment frame 4 at the upper end of the lifting column 3 will operate synchronously. Under the operation of the driving slider 402, the sliding rod 401 connected thereto will move along the surface of the top guide rail 403 of the fixed frame 404, and the swing frame 501 cooperates with the moving frame 502 to make the entire nozzle assembly 5 move horizontally along the surface of the sliding rod 401 while swinging up and down to adjust, so that the electron beam is fully irradiated on the surface of the material, thereby quickly curing the material.

[0029] The embodiments of the present invention are provided for purposes of illustration and description and are not intended to be exhaustive or to limit the present invention to the disclosed forms. Many modifications and variations will be apparent to those skilled in the art. The embodiments are selected and described to better illustrate the principles and practical applications of the present invention and to enable those skilled in the art to understand the present invention and design various embodiments with various modifications suitable for specific applications.

Claims

1. A fast and stable accelerated curing device, comprising a crawler conveyor (1) and a limit assembly (2), characterized in that: The limit assembly (2) is horizontally mounted on both left and right sides of the crawler conveyor (1), and lifting columns (3) are vertically mounted on the tops of the front and rear ends of the limit assembly (2), and an adjustment frame (4) is horizontally mounted on the upper part of the lifting column (3), and a nozzle assembly (5) is mounted in the middle of the adjustment frame (4). The limit assembly (2) comprises a stabilizing frame (201), an electric push rod (202), a track frame (203), an electric slider (204) and a limit plate (205), wherein the upper end of the stabilizing frame (201) is horizontally mounted with the electric push rod (202), and the output end of the electric push rod (202) is connected to the track frame (203), and the electric slider (204) is mounted on the surface of the track frame (203) away from the electric push rod (202), and the side of the electric slider (204) away from the track frame (203) is connected to the limit plate (205).

2. A fast and stable accelerated curing device according to claim 1, characterized in that: The electric push rod (202) horizontally passes through the upper end of the stabilizing frame (201), and the electric push rod (202) is symmetrically mounted on the front and rear ends of the track frame (203).

3. A fast and stable accelerated curing device according to claim 1, characterized in that: The electric slider (204) and the track frame (203) are slidably connected, and the limiting plate (205) and the electric slider (204) are fixedly connected, and the electric slider (204) and the limiting plate (205) are connected in an "L"-shaped structure.

4. A fast and stable accelerated curing device according to claim 1, characterized in that: The adjustment frame (4) comprises a sliding rod (401), a driving slider (402), a guide rail (403) and a fixed frame (404). The driving sliders (402) are installed at both ends of the sliding rod (401), the bottom of the driving slider (402) is connected to the guide rail (403), and the bottom of the guide rail (403) is installed with the fixed frame (404).

5. A fast and stable accelerated curing device according to claim 4, characterized in that: The sliding rod (401) and the guide rail (403) are connected to each other in an "H" shape, the driving slider (402) and the guide rail (403) are connected in a sliding manner, and the guide rail (403) and the fixing frame (404) are fixedly connected.

6. A fast and stable accelerated curing device according to claim 4, characterized in that: The nozzle assembly (5) comprises an oscillating frame (501), a movable frame (502) and a nozzle frame (503), wherein the movable frames (502) are mounted on both sides of one end of the oscillating frame (501), and the nozzle frame (503) is mounted on the end of the oscillating frame (501) away from the movable frame (502).

7. A fast and stable accelerated curing device according to claim 6, characterized in that: The nozzle assembly (5) further comprises a quick connector (504) and an electron beam nozzle (505); the quick connector (504) is mounted on the upper end of the nozzle frame (503), and the electron beam nozzle (505) is mounted on the lower end inside the nozzle frame (503).

8. A fast and stable accelerated curing device according to claim 7, characterized in that: The sliding rod (401) horizontally penetrates the upper end of the swing frame (501), and the swing frame (501) and the sliding rod (401) are slidably connected. The electron beam nozzle (505) is vertically installed at the inner lower end of the nozzle frame (503) and is connected to the quick connector (504).

Citation Information

Patent Citations

  • Electron beam curing device

    CN218554671U