Feeding mechanism for detecting ultra-slender stainless steel pipes

By designing a feeding mechanism, the problems of slow manual feeding and scratches in the inspection of ultra-thin and long stainless steel pipes were solved, realizing automated feeding and accurate inspection.

CN224014790UActive Publication Date: 2026-03-20SHANGHAI XIN LIANG STAINLESS STEEL TUBE LTD CO
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-20
Publication Date
2026-03-20

AI Technical Summary

Technical Problem

In the current process of inspecting ultra-thin and long stainless steel pipes, manual feeding is slow and easily causes scratches on the pipe surface, making it impossible to achieve continuous and uninterrupted feeding and horizontal feeding.

Method used

A feeding mechanism was designed, including a feeding box, a pushing mechanism, and a guiding component. The pushing mechanism pushes the feeding plate toward the diameter detection component, and the guiding component guides the stainless steel pipe to ensure that it enters the detection component accurately and avoids scratches.

Benefits of technology

It has enabled automated feeding of stainless steel pipes, improved testing efficiency, avoided scratches on the pipe surface, and ensured the continuity and accuracy of testing.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of stainless steel pipe detection, and discloses a feeding mechanism for ultra-slender stainless steel pipe detection, which comprises a rack and a feeding plate positioned at the upper part of the rack, a feeding box is arranged at the top end of the rack, and a pushing mechanism is arranged on one side, far away from the feeding box, of the top end of the rack; a feeding plate is movably mounted at the top end of the rack through a pushing mechanism, a diameter detection assembly is arranged on the side of the top end of the rack, and a stainless steel pipe body is placed in the feeding box. The feeding mechanism for detecting the ultra-slender stainless steel pipe is provided with the feeding box, the pushing mechanism and the guide assembly, the pushing mechanism pushes the feeding plate to move towards the diameter detection assembly, and in the moving process of the feeding plate, the guide assembly can guide a stainless steel pipe body in the feeding plate; it is ensured that the stainless steel pipe body can accurately enter the diameter detection assembly, manual feeding detection is not needed any more, and the detection efficiency can be improved.
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Description

Technical Field

[0001] This utility model relates to the field of stainless steel pipe testing technology, specifically a feeding mechanism for testing ultra-slender stainless steel pipes. Background Technology

[0002] Ultra-slender stainless steel pipes are a high-performance pipe material with excellent corrosion resistance. Its main components, such as chromium and nickel, form a dense oxide film on the surface, which can resist the erosion of various corrosive media. During the material inspection of ultra-slender stainless steel pipes, continuous feeding and testing are required to ensure that the produced ultra-slender stainless steel pipes are qualified.

[0003] However, in the process of testing whether ultra-thin stainless steel pipes are qualified, most of the existing ultra-thin stainless steel pipes are fed manually. Manual feeding is slow and cannot improve the quality inspection speed. At the same time, manual feeding cannot achieve horizontal feeding of ultra-thin stainless steel pipes, and often the ultra-thin stainless steel pipes collide with the diameter detection components, resulting in scratches on the surface of the ultra-thin stainless steel pipes. Utility Model Content

[0004] (a) Technical problems to be solved

[0005] To address the shortcomings of existing technologies, this utility model provides a feeding mechanism for testing ultra-slender stainless steel pipes, thereby solving the problems mentioned in the background.

[0006] (II) Technical Solution

[0007] To achieve the above objectives, this utility model provides the following technical solution: a feeding mechanism for testing ultra-slender stainless steel pipes, comprising a frame and a feeding plate located on the upper part of the frame, a feeding box being provided at the top of the frame, a pushing mechanism being provided on the side of the top of the frame away from the feeding box, the feeding plate being movably mounted on the top of the frame via the pushing mechanism, a diameter detection component being provided on the side of the top of the frame, a stainless steel pipe body being placed inside the feeding box, and a guide component being provided on the side of the top of the frame located on the pushing mechanism.

[0008] Preferably, the feed plate has a "V" shaped cross-section, the end of the feed plate near the diameter detection component is open, and the feed plate is located on the side of the loading box.

[0009] Through the technical scheme, in the process of using the feeding mechanism of the automatic arrangement machine for fine and super-long stainless steel pipes, the staff puts the stainless steel pipe body into the inside of the feeding box, the feeding mechanism at the bottom end of the feeding box pushes the stainless steel pipe body into the inside of the feeding plate, the pushing mechanism pushes the feeding plate to move towards the diameter detection assembly, and in the process of movement of the feeding plate, the guide assembly can guide the stainless steel pipe body in the inside of the feeding plate, so that the stainless steel pipe body can accurately enter the inside of the diameter detection assembly.

[0010] Preferably, the pushing mechanism comprises a bottom plate, a guide rail, a sleeve plate, a support frame, a cylinder one, a movable rod and a connecting plate one, the top end of the bottom plate is fixedly provided with the guide rail, the top end of the guide rail is sleeved and installed with the sleeve plate, the top end of the sleeve plate is fixedly provided with the support frame, the support frame is fixedly connected with the feeding plate, and the top end of the bottom plate is also fixedly provided with the cylinder one.

[0011] Preferably, the sleeve plate and the guide rail are in sliding connection, the support frame is provided with a plurality of same support frames, and the plurality of support frames are distributed at equal intervals on the upper side of the sleeve plate.

[0012] Through the technical scheme, in the process of using the feeding mechanism of the automatic arrangement machine for fine and super-long stainless steel pipes, the staff puts the stainless steel pipe body into the inside of the feeding box, the feeding mechanism at the bottom end of the feeding box pushes the stainless steel pipe body into the inside of the feeding plate, the pushing mechanism pushes the feeding plate to move towards the diameter detection assembly, and in the process of movement of the feeding plate, the guide assembly can guide the stainless steel pipe body in the inside of the feeding plate, so that the stainless steel pipe body can accurately enter the inside of the diameter detection assembly.

[0013] Preferably, the guide assembly, the connecting frame, the connecting plate two, the cylinder two, the connecting block, the rotating shaft and the guide wheel are fixedly connected with the rack, the outer side of the connecting frame is fixedly provided with the connecting plate two, the top end of the connecting plate two is fixedly provided with the cylinder two, the movable end of the cylinder two is fixedly provided with the connecting block, the inner side of the connecting block is rotatably provided with the rotating shaft, and the outer side of the rotating shaft is fixedly provided with the guide wheel.

[0014] Preferably, the rotating shaft and the guide wheel are both provided with two same rotating shafts and guide wheels, and the two rotating shafts and guide wheels are symmetrically distributed at the lower part of the cylinder two, and the vertical center line of the guide wheel and the feeding plate is located on the same vertical line.

[0015] Through the technical scheme, in the process of pushing the stainless steel pipe body into the inside of the diameter detection assembly, the movable end of the air cylinder two pushes the guide wheel downward through the connecting block and the rotating shaft, the guide wheel can compress the stainless steel pipe body, in the process of movement of the stainless steel pipe body, the guide wheel rotates, so that the stainless steel pipe body can accurately enter the inside of the diameter detection assembly, and the diameter detection assembly can detect the diameter of the stainless steel pipe body.

[0016] Compared with the prior art, the feeding mechanism for detecting the superfine long stainless steel pipe has the following beneficial effects: the feeding mechanism for detecting the superfine long stainless steel pipe is provided with the feeding box, the pushing mechanism and the guide assembly, the pushing mechanism pushes the feeding plate to move towards the diameter detection assembly, in the process of movement of the feeding plate, the guide assembly can guide the stainless steel pipe body in the feeding plate, so that the stainless steel pipe body can accurately enter the inside of the diameter detection assembly, the superfine long stainless steel pipe surface can be effectively prevented from being scratched, manual feeding detection is no longer needed, and the detection efficiency can be improved. BRIEF DESCRIPTION OF DRAWINGS

[0017] Figure 1 It is a three-dimensional structure schematic diagram of the utility model Figure 1 ;

[0018] Figure 2 It is a three-dimensional structure schematic diagram of the utility model Figure 2 ;

[0019] Figure 3 It is a pushing mechanism installation structure schematic diagram of the utility model;

[0020] Figure 4 It is a pushing mechanism and guide assembly installation structure schematic diagram of the utility model.

[0021] Wherein: 1, rack; 2, feeding box; 3, pushing mechanism; 301, bottom plate; 302, guide rail; 303, cover plate; 304, support frame; 305, air cylinder one; 306, movable rod; 307, connecting plate one; 4, guide assembly; 401, connecting frame; 402, connecting plate two; 403, air cylinder two; 404, connecting block; 405, rotating shaft; 406, guide wheel; 5, feeding plate; 6, diameter detection assembly; 7, stainless steel pipe body. DETAILED DESCRIPTION

[0022] The technical scheme in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the utility model.

[0023] Embodiment one:

[0024] As Figures 1-4 shown, the utility model provides a kind of feeding mechanism for superfine long stainless steel pipe detection, including rack 1 and the feeding plate 5 in the upper portion of rack 1, the top of rack 1 is provided with feeding box 2, the side of the top of rack 1 away from feeding box 2 is provided with pusher mechanism 3, the top of rack 1 is movably installed with feeding plate 5 by pusher mechanism 3, the side of the top of rack 1 is provided with diameter detection assembly 6, the inside of feeding box 2 is placed with stainless steel pipe body 7, the side of the top of rack 1 at pusher mechanism 3 is also provided with guide assembly 4.

[0025] Specifically, the cross section of feeding plate 5 is "V" type structure, the end of feeding plate 5 close to diameter detection assembly 6 adopts open design, feeding plate 5 is located in the side of feeding box 2, the advantage is, in the process of using superfine long stainless steel pipe automatic arrangement machine with feeding mechanism, staff places stainless steel pipe body 7 in the inside of feeding box 2, and the feeding mechanism of feeding box 2 bottom end pushes stainless steel pipe body 7 into the inside of feeding plate 5, and pusher mechanism 3 promotes feeding plate 5 to move towards the direction of diameter detection assembly 6, in the process of feeding plate 5 movement, guide assembly 4 can guide stainless steel pipe body 7 in the inside of feeding plate 5, ensure that stainless steel pipe body 7 can accurately enter the inside of diameter detection assembly 6.

[0026] Embodiment two:

[0027] As Figures 2-4 shown, as improvement to the last embodiment.

[0028] Specifically, the pushing mechanism 3 comprises a bottom plate 301, a guide rail 302, a sleeve plate 303, a support frame 304, a cylinder 305, a movable rod 306 and a connecting plate 307, the top end of the bottom plate 301 is fixedly provided with the guide rail 302, the top end of the guide rail 302 is sleevedly provided with the sleeve plate 303, the top end of the sleeve plate 303 is fixedly provided with the support frame 304, the support frame 304 is fixedly connected with the feeding plate 5, the top end of the bottom plate 301 is also fixedly provided with the cylinder 305, the movable end of the cylinder 305 is fixedly provided with the movable rod 306, the outer side of the movable rod 306 is fixedly provided with the connecting plate 307, the connecting plate 307 is fixedly connected with the sleeve plate 303, the sleeve plate 303 is slidably connected with the guide rail 302, the support frame 304 is provided with a plurality of identical support frames 304, the plurality of support frames 304 are equally spaced and arranged on the upper side of the sleeve plate 303, the vertical center lines of the guide rail 302, the sleeve plate 303 and the feeding plate 5 are located on the same vertical line, and the advantage is that, in the using process, the movable end of the cylinder 305 drives the sleeve plate 303 to move towards the diameter detection assembly 6 through the movable rod 306 and the connecting plate 307, the sleeve plate 303 drives the stainless steel pipe body 7 to move towards the diameter detection assembly 6 through the upper support frame 304 and the feeding plate 5, and the stainless steel pipe body 7 can be pushed into the inside of the diameter detection assembly 6.

[0029] Embodiment two:

[0030] As shown in Figures 2-4 , as an improvement on the last embodiment.

[0031] Specifically, the guide assembly 4, the connecting frame 401, the connecting plate 402, the cylinder 403, the connecting block 404, the rotating shaft 405 and the guide wheel 406, the connecting frame 401 is fixedly connected with the rack 1, the outer side of the connecting frame 401 is fixedly provided with the connecting plate 402, the top end of the connecting plate 402 is fixedly provided with the cylinder 403, the movable end of the cylinder 403 is fixedly provided with the connecting block 404, the inner side of the connecting block 404 is rotatably provided with the rotating shaft 405, the outer side of the rotating shaft 405 is fixedly provided with the guide wheel 406, the rotating shaft 405 and the guide wheel 406 are both provided with two identical rotating shafts 405 and guide wheels 406, and the two rotating shafts 405 and guide wheels 406 are symmetrically arranged on the lower part of the cylinder 403, the vertical center line of the guide wheel 406 and the feeding plate 5 is located on the same vertical line, and the advantage is that, in the process of pushing the stainless steel pipe body 7 into the inside of the diameter detection assembly 6, the movable end of the cylinder 403 drives the guide wheel 406 to move downwards through the connecting block 404 and the rotating shaft 405, the guide wheel 406 can press the stainless steel pipe body 7, in the process of movement of the stainless steel pipe body 7, the guide wheel 406 will rotate, which ensures that it can accurately enter the inside of the diameter detection assembly 6, and the diameter detection assembly 6 can detect the diameter of the stainless steel pipe body 7.

[0032] Working principle: in use, the staff will stainless steel pipe body 7 into the upper loading box 2 inside, the upper loading mechanism of loading box 2 bottom end will stainless steel pipe body 7 into the inside of feeding plate 5, the movable end of cylinder one 305 through the movable rod 306 and connecting plate one 307 push sleeve plate 303 to the direction of diameter detection assembly 6 movement, sleeve plate 303 through the upper support frame 304 and feeding plate 5 drive stainless steel pipe body 7 to the direction of diameter detection assembly 6 movement, can be pushed into the inside of diameter detection assembly 6, in the process of feeding plate 5 movement, the movable end of cylinder two 403 through connecting block 404 and shaft 405 push guiding wheel 406 downward movement, guiding wheel 406 can be pressed to the stainless steel pipe body 7, in the process of stainless steel pipe body 7 movement, guiding wheel 406 will rotate, ensure that it can accurately enter the inside of diameter detection assembly 6, diameter detection assembly 6 can detect the diameter of stainless steel pipe body 7.

[0033] Although the embodiments of the present application have been shown and described, it is to be understood that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present application, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A feeding mechanism for testing ultra-slender stainless steel pipes, comprising a frame (1) and a feeding plate (5) located on the upper part of the frame (1), characterized in that: The top of the frame (1) is provided with a feeding box (2), and a pushing mechanism (3) is provided on the side of the top of the frame (1) away from the feeding box (2). A feeding plate (5) is movably installed on the top of the frame (1) through the pushing mechanism (3). A diameter detection component (6) is provided on the side of the top of the frame (1). A stainless steel pipe body (7) is placed inside the feeding box (2). A guide component (4) is also provided on the side of the top of the frame (1) located on the pushing mechanism (3).

2. The feeding mechanism for testing ultra-slender stainless steel pipes according to claim 1, characterized in that: The feed plate (5) has a "V" shaped cross section. The end of the feed plate (5) near the diameter detection component (6) is designed with an opening. The feed plate (5) is located on the side of the loading box (2).

3. The feeding mechanism for testing ultra-slender stainless steel pipes according to claim 1, characterized in that: The feeding mechanism (3) includes a base plate (301), a guide rail (302), a sleeve plate (303), a support frame (304), a cylinder (305), a movable rod (306), and a connecting plate (307). The top of the base plate (301) is fixedly installed with the guide rail (302). The top of the guide rail (302) is sleeved with the sleeve plate (303). The top of the sleeve plate (303) is fixedly installed with the support frame (304). The support frame (304) is fixedly connected to the feeding plate (5). The top of the base plate (301) is also fixedly installed with the cylinder (305). The movable end of the cylinder (305) is fixedly installed with the movable rod (306). The outer side of the movable rod (306) is fixedly installed with the connecting plate (307). The connecting plate (307) is fixedly connected to the sleeve plate (303).

4. The feeding mechanism for testing ultra-slender stainless steel pipes according to claim 3, characterized in that: The sleeve plate (303) and the guide rail (302) are slidably connected. Multiple identical support frames (304) are provided. The multiple support frames (304) are distributed at equal intervals on the upper side of the sleeve plate (303). The vertical center lines of the guide rail (302), the sleeve plate (303) and the feeding plate (5) are located on the same vertical line.

5. The feeding mechanism for testing ultra-slender stainless steel pipes according to claim 1, characterized in that: The guide assembly (4), connecting frame (401), connecting plate two (402), cylinder two (403), connecting block (404), rotating shaft (405) and guide wheel (406) are described. The connecting frame (401) is fixedly connected to the frame (1). The connecting plate two (402) is fixedly installed on the outer side of the connecting frame (401). The cylinder two (403) is fixedly installed on the top of the connecting plate two (402). The connecting block (404) is fixedly installed on the movable end of the cylinder two (403). The rotating shaft (405) is rotatably installed on the inner side of the connecting block (404). The guide wheel (406) is fixedly installed on the outer side of the rotating shaft (405).

6. The feeding mechanism for testing ultra-slender stainless steel pipes according to claim 5, characterized in that: The rotating shaft (405) and guide wheel (406) are provided in two identical units, and the two rotating shafts (405) and guide wheels (406) are symmetrically distributed in the lower part of cylinder two (403). The guide wheel (406) and the vertical center line of the feeding plate (5) are located on the same vertical line.