An automatic stainless steel pipe cutting and forming device

By designing a combination of slide rails, clamping, supporting, and pushing mechanisms, the problems of messy stacking and low transportation efficiency of stainless steel pipes after cutting are solved, realizing the neat placement and efficient transportation of stainless steel pipes, and adapting to the needs of stainless steel pipes of different sizes.

CN120885747BActive Publication Date: 2026-04-03ZHEJIANG TSINGSHAN STEEL PIPE CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-09-12
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

Existing automatic stainless steel pipe cutting devices result in messy accumulation of stainless steel pipes after cutting, low space utilization, and difficulty in efficiently and smoothly clamping and transporting stainless steel pipes of different sizes, leading to poor transportation efficiency and pipe damage.

Method used

An automatic stainless steel tube cutting and forming device was designed, comprising a slide rail mechanism, a clamping mechanism, a supporting mechanism, and a pushing mechanism. The device achieves uniform conveying of stainless steel tubes through a drive component and a pushing mechanism, and utilizes an adaptive adjustment component and a limiting component to adapt to stainless steel tubes of different sizes, ensuring smooth transport.

Benefits of technology

This technology enables the neat arrangement and efficient transportation of cut stainless steel pipes, improves space utilization, ensures smooth and efficient transportation of stainless steel pipes of different sizes, and reduces damage during transportation.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention belongs to the field of stainless steel pipe processing technology and discloses an automatic stainless steel pipe cutting and forming device, including a cutting device body and a slide rail mechanism. The above technical solution sets up a drive component and a pushing mechanism. When the entire support mechanism supports the cut stainless steel pipe upwards, the top of the drive component is released from pressure, and the drive component is reset by the pushing mechanism. The middle part of the pushing mechanism is retracted into the cutting device body. Then, when the support mechanism moves the stainless steel pipe downwards, it first pushes the top of the drive component to press the extended end of the drive component downwards, which allows the hydraulic oil in the inner cavity of the drive component to be introduced into the inner wall of the pushing mechanism. This allows the middle part of the pushing mechanism to push the stainless steel pipe supported by the top of the support mechanism to slide smoothly to the top side of the conveying mechanism until it is evenly conveyed and placed. This can greatly improve the neatness of the stainless steel pipe placement and make it easier for users to pick up later.
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Description

Technical Field

[0001] This invention belongs to the field of stainless steel pipe processing technology, specifically an automatic cutting and forming device for stainless steel pipes. Background Technology

[0002] The automatic stainless steel pipe cutting and forming device, also known as a stainless steel pipe cutting machine, is a metal processing equipment used for cold cutting and beveling of stainless steel pipes. It is mainly used in the pipe processing field of more than 20 industries such as beer, pharmaceuticals, and shipbuilding. The blades are manufactured with special technology, are compatible with multiple international models and support quick replacement. Routine maintenance requires regular replacement of the blades, gear oil and cleaning of the cooling system.

[0003] Chinese patent application No. 202510399606.5 discloses an intelligent pipe-length cutting device for automotive parts processing, comprising a support platform, heavy-duty drive rails, a sliding table, a cutting mechanism, a positioning fixture, a pipe take-up and untake-down mechanism, and a drive circuit. The support platform has two heavy-duty drive rails, each slidably connected to at least one sliding table. One sliding table is connected to the cutting mechanism, and the other is connected to the positioning fixture. Two pipe take-up and untake-down mechanisms are symmetrically distributed on the front and rear faces of the support platform and connected to its outer surface. The drive circuit is located inside the support platform. The cutting method includes four steps: equipment pretreatment, cutting adjustment, and cutting operation. This patent effectively meets the needs of pipe cutting operations of various materials, diameters, and structural types; furthermore, it offers high precision control during cutting, effectively improving the stability of pipe cutting and shaping quality, processing accuracy, and work efficiency.

[0004] Existing automatic stainless steel pipe cutting devices typically drop and slide the cut stainless steel pipes to one side for stacking. This chaotic dropping and sliding leads to an uneven and disorganized stack, reduces storage space utilization, and hinders subsequent retrieval. Therefore, improvements are needed. Furthermore, cutting stainless steel pipes of different sizes is difficult, making efficient and smooth clamping and transportation challenging. The inability to smoothly transport pipes of varying sizes after cutting results in pipe damage and poor transport efficiency. Summary of the Invention

[0005] To address the problems mentioned in the background section, the present invention provides an automatic stainless steel pipe cutting and forming device, which has the advantage of facilitating the uniform conveying and placement of the cut stainless steel pipes.

[0006] To achieve the above objectives, the present invention provides the following technical solution: an automatic stainless steel pipe cutting and forming device, comprising a cutting device body, and further comprising: a slide rail mechanism, wherein the slide rail mechanism is disposed at the middle of the top of the cutting device body; a clamping mechanism, wherein the clamping mechanism is movably installed on the top of the slide rail mechanism; a supporting mechanism, wherein the supporting mechanism is disposed at the bottom of one side of the clamping mechanism, and driving components are disposed at the bottom of both sides of one end of the supporting mechanism; and a pushing mechanism, wherein the pushing mechanism is disposed inside the cutting device body, and the pushing mechanism is located at one end of the supporting mechanism; wherein the pushing mechanism includes a pushing plate movably installed on the inner wall of the cutting device body and located at the middle of one side of the supporting mechanism, and a hydraulic component located at the outer end of one side of the pushing plate is fixedly installed inside the cutting device body, and a moving plate is disposed at the inner end of the hydraulic component, and the inner end of the moving plate is hinged to the outer side of the pushing plate through a linkage plate.

[0007] Preferably, a control panel is fixedly installed in the middle of the back of the top of the cutting device body, and a cutting mechanism located on one side of the control panel is fixedly installed on the top of the cutting device body.

[0008] Preferably, the clamping mechanism includes a first movable clamping component, a fixed clamping component, and a second movable clamping component;

[0009] The first movable clamping component is movably installed on one side of the top of the slide rail mechanism, the fixed clamping component is fixedly installed on the other side of the top of the slide rail mechanism, and the second movable clamping component is movably installed on the top of the slide rail mechanism and located on one side of the fixed clamping component.

[0010] Preferably, the support mechanism includes a support limiting frame, a first movable plate, an adaptive adjustment component, and a support block;

[0011] The support limiting frame is fixedly installed on the inner wall of the cutting device body and located below the second movable clamping component. The first movable plate is movably installed on one side inside the support limiting frame. The adaptive adjustment component is movably installed on one side of the first movable plate. The support block is set on the top of the first movable plate and the adaptive adjustment component. The outer end of one side of the support block is fixedly connected to one side of the clamping end of the fixed clamping component through a linkage frame.

[0012] Preferably, the adaptive adjustment component includes a second movable plate, a first limiter, a first sliding block, and a connecting spring;

[0013] The second movable plate is movably installed on one side of the first movable plate, the first limit is fixedly installed inside the second movable plate, the first sliding block is movably installed on the surface of the first limit, and the first sliding block is fixedly connected to one side of the second movable plate. The bottom end of the first sliding block is elastically connected to the inner wall of the second movable plate through a connecting spring.

[0014] Preferably, the cutting device body has a lifting mechanism movably installed inside, located on the outer side below the first movable plate. The lifting mechanism includes a limiting component, a drive motor, a disc, and a linkage shaft.

[0015] The limiting component is movably installed at the bottom of the first movable plate, the drive motor is fixedly installed inside the body of the cutting device, and the drive motor is located in the middle of one side of the first movable plate. The disc is fixedly sleeved on the output end of the drive motor, and the linkage shaft is fixedly sleeved on the outer end of the disc.

[0016] Preferably, the limiting component includes a support plate, a second limiting rod, and a second sliding block;

[0017] The support plate is movably installed at the bottom of the support limiting frame, the second limiting rod is fixedly installed on both sides inside the support plate, the second sliding block is fixedly installed at the bottom of the support plate, and the inner wall of the second sliding block is slidably connected to the surface of the second limiting rod.

[0018] Preferably, the drive assembly includes a first hydraulic cylinder, a first hydraulic piston rod, and an oil passage.

[0019] The first hydraulic cylinder is fixedly installed inside the body of the cutting device, and the first hydraulic cylinder is located below the middle of both sides of the support plate. The first hydraulic piston rod is movably installed inside the first hydraulic cylinder. The inner wall of the first hydraulic cylinder is fixedly connected to the outer end of the hydraulic component through an oil passage groove.

[0020] Preferably, the inside of the cutting device body is provided with a conveying mechanism located on one side of the second movable plate.

[0021] Preferably, the hydraulic assembly includes a second hydraulic cylinder, a second hydraulic piston rod, and a tension spring;

[0022] The second hydraulic cylinder is fixedly installed inside the body of the cutting device and located in the middle of the outer side of the moving plate. The second hydraulic piston rod is movably installed in the inner cavity of the second hydraulic cylinder, and the outer end of the second hydraulic piston rod is elastically connected to the inner wall of the second hydraulic cylinder through a tension spring.

[0023] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0024] (1) The above technical solution sets up a drive component and a pushing mechanism. When the support mechanism supports the cut stainless steel pipe upwards, the top of the drive component will be released from pressure. The drive component will be reset by the pushing mechanism, and the middle part of the pushing mechanism will be retracted into the body of the cutting device. Then, when the support mechanism drives the stainless steel pipe downwards, it will push the top of the drive component to press the extended end of the drive component downwards. This allows the hydraulic oil in the inner cavity of the drive component to be introduced into the inner wall of the pushing mechanism. This allows the middle part of the pushing mechanism to extend and push the stainless steel pipe supported by the top of the support mechanism to slide smoothly to the top side of the conveying mechanism until it is evenly conveyed and placed. This can greatly improve the neatness of the stainless steel pipe placement and make it easier for users to pick it up later.

[0025] (2) By setting a limiting component, a drive motor and a linkage shaft, the output end of the drive motor can drive the disk to rotate when the drive motor is running, so that the end of the linkage shaft on one side of the disk can slide on the inner wall of the limiting component, thereby driving the entire support mechanism to move up and down smoothly. Through the up and down movement of the support mechanism, the pressing and releasing of the output end of the drive component can be smoothly realized, so as to achieve the effect of driving the drive component to move.

[0026] (3) By setting a first sliding block and a connecting spring, the spring force will push the first sliding block, the second movable plate and the support block to move upward as a whole, so that they are completely flush with the support limit frame and the support block. Then, when it is necessary to support stainless steel pipes of different lengths, the second movable clamping component will move to the designated position, so that the distance between the fixed clamping component and the second movable clamping component is the same as that of the cut stainless steel pipe. When the support mechanism moves upward, part of the second movable plate and the support block will be squeezed downward by the bottom of the second movable clamping component. Finally, the support mechanism can support stainless steel pipes of different lengths after cutting, which greatly improves the overall application range of the support mechanism. When the support limit frame is reset downward and the stainless steel pipe is pushed to one side, the stainless steel pipe will press down on the second movable plate and the top support block, so that the stainless steel pipe falls evenly and smoothly on the top of the conveying mechanism. It not only supports stainless steel pipes of different sizes, but also automatically moves the stainless steel pipe smoothly to the conveying mechanism to achieve automatic and smooth transportation. Attached Figure Description

[0027] Figure 1 This is a schematic diagram of the structure of the present invention;

[0028] Figure 2 This is a partial structural schematic diagram of the present invention in cross-section;

[0029] Figure 3 This is a schematic diagram of the linkage frame of the present invention;

[0030] Figure 4 This is a cross-sectional view of the limiting component of the present invention;

[0031] Figure 5 for Figure 4 A magnified schematic diagram of the local structure at point A;

[0032] Figure 6 This is a cross-sectional view of the first movable plate of the present invention;

[0033] Figure 7 for Figure 6 A magnified view of the structure at point B in the middle;

[0034] Figure 8 This is a cross-sectional structural diagram of the cutting device body of the present invention;

[0035] Figure 9 for Figure 8 A magnified schematic diagram of the structure at point C.

[0036] In the diagram: 1. Cutting device body; 2. Slide rail mechanism; 3. Clamping mechanism; 301. First moving clamping assembly; 302. Fixed clamping assembly; 303. Second moving clamping assembly; 4. Control panel; 5. Cutting mechanism; 6. Supporting mechanism; 601. Support limit frame; 602. First movable plate; 603. Adaptive adjustment assembly; 6031. Second movable plate; 6032. First limit; 6033. First sliding block; 6034. Connecting spring; 604. Support block; 7. Lifting mechanism; 701. Limiting assembly; 7011, Support plate; 7012, Second limit rod; 7013, Second sliding block; 702, Drive motor; 703, Disc; 704, Linkage shaft; 8, Drive assembly; 801, First hydraulic cylinder; 802, First hydraulic piston rod; 803, Oil passage groove; 9, Pushing mechanism; 901, Pushing plate; 902, Hydraulic assembly; 9021, Second hydraulic cylinder; 9022, Second hydraulic piston rod; 9023, Tension spring; 903, Moving plate; 904, Linkage plate; 10, Conveying mechanism; 11, Linkage frame. Detailed Implementation

[0037] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0038] like Figures 1 to 9As shown, the present invention provides an automatic stainless steel pipe cutting and forming device, including a cutting device body 1, and further including: a slide rail mechanism 2, which is disposed in the middle of the top of the cutting device body 1; a clamping mechanism 3, which is movably installed on the top of the slide rail mechanism 2; a supporting mechanism 6, which is disposed at the bottom of one side of the clamping mechanism 3, and a driving component 8 is disposed at the bottom of both sides of one end of the supporting mechanism 6; and a pushing mechanism 9, which is disposed inside the cutting device body 1 and is located at one end of the supporting mechanism 6; wherein, the pushing mechanism 9 includes a pushing plate 901 movably installed on the inner wall of the cutting device body 1 and located in the middle of one side of the supporting mechanism 6, and a hydraulic component 902 located at the outer end of one side of the pushing plate 901 is fixedly installed inside the cutting device body 1, and a moving plate 903 is disposed at the inner end of the hydraulic component 902, and the inner end of the moving plate 903 is hinged to the outer side of the pushing plate 901 through a linkage plate 904.

[0039] When the stainless steel tube is supported by the support mechanism 6 and moves downward, the stainless steel tube will first be positioned on one side of the pusher plate 901. Then, the output end of the drive component 8 is pressed inward, which in turn causes the hydraulic oil in the inner cavity of the drive component 8 to be introduced into the inner wall of the hydraulic component 902, so as to push the output end of the hydraulic component 902 to extend. Finally, the moving plate 903 moves the drive linkage plate 904 to deflect, causing the pusher plate 901 to extend outward and push the stainless steel tube to move to one side.

[0040] like Figure 1 As shown, a control panel 4 is fixedly installed in the middle of the back of the top of the cutting device body 1, and a cutting mechanism 5 located on one side of the control panel 4 is fixedly installed on the top of the cutting device body 1.

[0041] The above solution is adopted: by setting up a control panel 4, the operator can control the cutting mechanism 5 to cut the stainless steel pipe, thereby achieving the purpose of driving the cutting mechanism 5 to cut in different postures.

[0042] like Figure 1 As shown, the clamping mechanism 3 includes a first movable clamping component 301, a fixed clamping component 302, and a second movable clamping component 303;

[0043] The first movable clamping assembly 301 is movably installed on one side of the top of the slide rail mechanism 2, the fixed clamping assembly 302 is fixedly installed on the other side of the top of the slide rail mechanism 2, and the second movable clamping assembly 303 is movably installed on the top of the slide rail mechanism 2 and located on one side of the fixed clamping assembly 302.

[0044] By adopting the above scheme, through the design of the first moving clamping component 301, the fixed clamping component 302 and the second moving clamping component 303, the effect of clamping stainless steel pipes of different diameters can be achieved.

[0045] like Figure 2 and Figure 3 As shown, the support mechanism 6 includes a support limit frame 601, a first movable plate 602, an adaptive adjustment component 603, and a support block 604;

[0046] The support and limiting frame 601 is fixedly installed on the inner wall of the cutting device body 1 and located below the second movable clamping assembly 303. The first movable plate 602 is movably installed on one side inside the support and limiting frame 601. The adaptive adjustment assembly 603 is movably installed on one side of the first movable plate 602. The support block 604 is set on the top of the first movable plate 602 and the adaptive adjustment assembly 603. The outer end of one side of the support block 604 is fixedly connected to one side of the clamping end of the fixed clamping assembly 302 through the linkage frame 11.

[0047] The above solution is adopted: by setting up a linkage frame 11, when the clamping end of the fixed clamping component 302 is driven to move towards or away from each other, the linkage frame 11 will drive the support block 604, the first movable plate 602 and the adaptive adjustment component 603 to move synchronously towards or away from each other. The linkage frame 11 plays the role of linking the support block 604, the first movable plate 602 and the adaptive adjustment component 603 to achieve the effect of supporting stainless steel pipes of different sizes.

[0048] like Figure 4 and Figure 5 As shown, the adaptive adjustment component 603 includes a second movable plate 6031, a first limit 6032, a first sliding block 6033, and a connecting spring 6034;

[0049] The second movable plate 6031 is movably installed on one side of the first movable plate 602. The first limiter 6032 is fixedly installed inside the second movable plate 6031. The first sliding block 6033 is movably installed on the surface of the first limiter 6032 and is fixedly connected to one side of the second movable plate 6031. The bottom end of the first sliding block 6033 is elastically connected to the inner wall of the second movable plate 6031 through a connecting spring 6034.

[0050] The above solution is adopted: through the elastic force of the connecting spring 6034, the first sliding block 6033 and the second movable plate 6031 can be pushed upward as a whole, so that the second movable plate 6031 and the supporting block 604 are aligned with the first movable plate 602 and the supporting block 604, which achieves the effect of supporting the first sliding block 6033 and the second movable plate 6031 as a whole. The inner side of the top of the supporting block 604 is provided with multiple roller structures, and there is a gap between the second movable plate 6031 and the inner wall of the cutting device body 1.

[0051] like Figure 2As shown, a lifting mechanism 7 located on the outer side below the first movable plate 602 is movably installed inside the body 1 of the cutting device. The lifting mechanism 7 includes a limiting component 701, a drive motor 702, a disc 703 and a linkage shaft 704.

[0052] The limiting component 701 is movably installed at the bottom of the first movable plate 602, the drive motor 702 is fixedly installed inside the body 1 of the cutting device, and the drive motor 702 is located in the middle of one side of the first movable plate 602. The disc 703 is fixedly sleeved on the output end of the drive motor 702, and the linkage shaft 704 is fixedly sleeved on the outer end of the disc 703.

[0053] The above solution is adopted: when the drive motor 702 is running, the output end of the drive motor 702 can drive the disk 703 to rotate, so that the end of the linkage shaft 704 can move in a circular motion on the inner wall of one end of the limiting component 701, thereby achieving the effect of driving the limiting component 701 and the supporting mechanism 6 to move up and down as a whole.

[0054] like Figure 4 and Figure 7 As shown, the limiting component 701 includes a support plate 7011, a second limiting rod 7012, and a second sliding block 7013;

[0055] The support plate 7011 is movably installed at the bottom of the support limiting frame 601, the second limiting rod 7012 is fixedly installed on both sides inside the support plate 7011, and the second sliding block 7013 is fixedly installed at the bottom of the support plate 7011. The inner wall of the second sliding block 7013 is slidably connected to the surface of the second limiting rod 7012.

[0056] The above scheme is adopted: when the support limiting frame 601 moves towards or away from the top of the support plate 7011, the second sliding block 7013 will move towards or away from the second limiting rod 7012 in the horizontal direction, so as to achieve the limiting effect on the movement of the support limiting frame 601 towards or away from the second limiting rod 7012.

[0057] like Figure 7 As shown, the drive assembly 8 includes a first hydraulic cylinder 801, a first hydraulic piston rod 802, and an oil passage 803;

[0058] The first hydraulic cylinder 801 is fixedly installed inside the body 1 of the cutting device, and the first hydraulic cylinder 801 is located below the middle of both sides of the support plate 7011. The first hydraulic piston rod 802 is movably installed inside the first hydraulic cylinder 801. The inner wall of the first hydraulic cylinder 801 is fixedly connected to the outer end of the hydraulic assembly 902 through the oil passage 803.

[0059] The above solution is adopted: when the support plate 7011 moves downward as a whole, it will press the top of the first hydraulic piston rod 802, thereby pushing the first hydraulic piston rod 802 to move downward as a whole, so that the hydraulic oil inside the first hydraulic cylinder 801 can be introduced into the hydraulic assembly 902 through the oil passage 803, which achieves the effect of driving the hydraulic oil flow.

[0060] like Figure 7 As shown, the inside of the cutting device body 1 is equipped with a conveying mechanism 10 located on one side of the second movable plate 6031;

[0061] Hydraulic assembly 902 includes a second hydraulic cylinder 9021, a second hydraulic piston rod 9022, and a tension spring 9023;

[0062] The second hydraulic cylinder 9021 is fixedly installed inside the body 1 of the cutting device and is located in the middle of the outer side of the moving plate 903. The second hydraulic piston rod 9022 is movably installed in the inner cavity of the second hydraulic cylinder 9021. The outer end of the second hydraulic piston rod 9022 is elastically connected to the inner wall of the second hydraulic cylinder 9021 through a tension spring 9023.

[0063] Using the above scheme: When the hydraulic oil in the inner cavity of the first hydraulic cylinder 801 is introduced into the second hydraulic cylinder 9021 through the oil passage 803, the gap in the inner cavity at the outer end of the second hydraulic cylinder 9021 will increase, pushing the two second hydraulic piston rods 9022 to move towards each other, thereby stretching the tension spring 9023. When the pressing effect on the top of the first hydraulic piston rod 802 is released, the tension of the tension spring 9023 will be released, thereby pulling the two second hydraulic piston rods 9022 to move in opposite directions. The design of the tension spring 9023 plays a role in assisting the second hydraulic piston rods 9022 to move and reset. When the piston rod 9022 moves in opposite directions, it will drive the moving plate 903 to move in opposite directions synchronously, so that the two linkage plates 904 pull the pusher plate 901 to extend, so as to push the stainless steel tube inside the support block 604 at the top of the support limit frame 601 to the support block 604 at the top of the second movable plate 6031. At this time, the stainless steel tube will press down the second movable plate 6031 by its own weight, so that the stainless steel tube falls evenly into the interior of the conveying mechanism 10. Note: When the second movable plate 6031 moves to the bottom, the bottom of the stainless steel tube at the top of the support block 604 will be aligned with the top of the conveying mechanism 10.

[0064] Working principle and usage process of this invention:

[0065] First, the operator can control the control panel 4 to drive the slide rail mechanism 2 to move the first moving clamping assembly 301 to transport the stainless steel pipe between the fixed clamping assembly 302 and the top of the second moving clamping assembly 303. Then, the operator can start the cutting mechanism 5 to cut the stainless steel pipe. Then, the operator can drive the second moving clamping assembly 303 to move to one side and start the drive motor 702. This will cause the output end of the drive motor 702 to drive the disc 703 to rotate, thereby causing the linkage shaft 704 to slide on the inner wall of one end of the support plate 7011, so as to drive the support plate 7011 and the support mechanism 6 to move upward as a whole.

[0066] When the fixed clamping component 302 clamps stainless steel pipes of different sizes, the clamping end of the fixed clamping component 302 moves through the linkage frame 11, causing the two supporting mechanisms 6 on both sides to move towards or away from each other, so as to support stainless steel pipes of different sizes. When supporting stainless steel pipes of different lengths, the second movable clamping component 303 will move a corresponding distance, which will hinder the support mechanism 6 from rising. However, due to the structural design of the supporting block 604 and the second movable plate 6031, the first movable plate 602 will rise smoothly, while the second movable clamping component 303 will only block the corresponding second movable plate 6031 from moving upward as a whole. This allows the support limit frame 601 and part of the second movable plate 6031 to smoothly rise and support stainless steel pipes of different sizes.

[0067] As the support plate 7011 moves upward, the first hydraulic piston rod 802 releases its downward supporting force, thereby releasing the tension of the tension spring 9023. This causes the second hydraulic piston rod 9022 to move in the opposite direction, allowing the hydraulic oil in the inner cavity of the second hydraulic cylinder 9021 to be guided back to the inner wall of the first hydraulic cylinder 801 through the oil passage 803, pushing the first hydraulic piston rod 802 upward and extending it. At this time, the upward movement of the support plate 7011 will drive the support limit frame 601, the second movable plate 6031, and the support block 604 to move upward as a whole, smoothly supporting the stainless steel pipe. Then, when the support... When plate 7011 moves downward, it pushes the end of the first hydraulic piston rod 802, causing the first hydraulic piston rod 802 to push the hydraulic oil in the inner cavity of the first hydraulic cylinder 801 downward through the oil passage 803 into the inner cavity of the second hydraulic cylinder 9021. This pushes the second hydraulic piston rod 9022 and the moving plate 903 to move towards each other. Finally, the linkage plate 904 deflects, pushing the pusher plate 901 to move and extend to one side, which in turn pushes the rollers on the inner side of the stainless steel tube to slide. However, since there are gaps between the bottom of the multiple second moving plates 6031 and the body 1 of the cutting device, such as... Figure 2As shown, this causes the stainless steel pipe to move to the inside of the top support block 604 of the second movable plate 6031, and the second movable plate 6031 is pushed downward by its own weight, so that multiple second movable plates 6031 form an inclined slope until the stainless steel pipe moves smoothly to the top of one side of the conveying mechanism 10. This not only supports stainless steel pipes of different sizes, but also automatically moves the stainless steel pipes smoothly to the conveying mechanism 10 for automatic and smooth transportation. Then the conveying mechanism 10 is started to transport the stainless steel pipes in sequence in a stable and uniform manner, so that the stainless steel pipes are stacked neatly.

[0068] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.

[0069] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. An automatic stainless steel pipe cutting and forming device, comprising a cutting device body (1), characterized in that: Also includes: The slide rail mechanism (2) is located at the middle of the top of the cutting device body (1); A clamping mechanism (3) is movably mounted on the top of the slide rail mechanism (2); Supporting mechanism (6), the supporting mechanism (6) is located at the bottom of one side of the clamping mechanism (3), and driving components (8) are provided at the bottom of both sides of one end of the supporting mechanism (6). The material pushing mechanism (9) is located inside the body (1) of the cutting device and is located at one end of the support mechanism (6); The pushing mechanism (9) includes a pushing plate (901) that is movably installed on the inner wall of the cutting device body (1) and located in the middle of one side of the supporting mechanism (6). The cutting device body (1) is fixedly installed with a hydraulic component (902) located at the outer end of one side of the pushing plate (901). The inner end of the hydraulic component (902) is provided with a moving plate (903). The inner end of the moving plate (903) is hinged to the outer side of the pushing plate (901) through a linkage plate (904). The clamping mechanism (3) includes a first movable clamping component (301), a fixed clamping component (302), and a second movable clamping component (303); The first movable clamping assembly (301) is movably installed on one side of the top of the slide rail mechanism (2), the fixed clamping assembly (302) is fixedly installed on the other side of the top of the slide rail mechanism (2), and the second movable clamping assembly (303) is movably installed on the top of the slide rail mechanism (2) and located on one side of the fixed clamping assembly (302). The supporting mechanism (6) includes a support limiting frame (601), a first movable plate (602), an adaptive adjustment component (603), and a supporting block (604). The support limiting frame (601) is fixedly installed on the inner wall of the cutting device body (1) and located below the second movable clamping assembly (303). The first movable plate (602) is movably installed on one side inside the support limiting frame (601). The adaptive adjustment assembly (603) is movably installed on one side of the first movable plate (602). The support block (604) is set on the top of the first movable plate (602) and the adaptive adjustment assembly (603). The outer end of one side of the support block (604) is fixedly connected to one side of the clamping end of the fixed clamping assembly (302) through the linkage frame (11). The adaptive adjustment component (603) includes a second movable plate (6031), a first limit (6032), a first sliding block (6033), and a connecting spring (6034). The second movable plate (6031) is movably installed on one side of the first movable plate (602), the first limit (6032) is fixedly installed inside the second movable plate (6031), the first sliding block (6033) is movably installed on the surface of the first limit (6032), and the first sliding block (6033) is fixedly connected to one side of the second movable plate (6031). The bottom end of the first sliding block (6033) is elastically connected to the inner wall of the second movable plate (6031) through a connecting spring (6034).

2. The automatic stainless steel pipe cutting and forming device according to claim 1, characterized in that: A control panel (4) is fixedly installed on the middle of the back of the top of the cutting device body (1), and a cutting mechanism (5) located on one side of the control panel (4) is fixedly installed on the top of the cutting device body (1).

3. The automatic stainless steel pipe cutting and forming device according to claim 1, characterized in that: The cutting device body (1) is internally equipped with a lifting mechanism (7) located on the outer side below the first movable plate (602). The lifting mechanism (7) includes a limiting component (701), a drive motor (702), a disc (703), and a linkage shaft (704). The limiting component (701) is movably installed at the bottom of the first movable plate (602), the drive motor (702) is fixedly installed inside the body (1) of the cutting device, and the drive motor (702) is located in the middle of one side of the first movable plate (602), the disc (703) is fixedly sleeved on the output end of the drive motor (702), and the linkage shaft (704) is fixedly sleeved on the outer end of the disc (703).

4. The automatic stainless steel pipe cutting and forming device according to claim 3, characterized in that: The limiting component (701) includes a support plate (7011), a second limiting rod (7012), and a second sliding block (7013). The support plate (7011) is movably installed at the bottom of the support limiting frame (601), the second limiting rod (7012) is fixedly installed on both sides inside the support plate (7011), the second sliding block (7013) is fixedly installed at the bottom of the support plate (7011), and the inner wall of the second sliding block (7013) is slidably connected to the surface of the second limiting rod (7012).

5. The automatic stainless steel pipe cutting and forming device according to claim 1, characterized in that: The drive assembly (8) includes a first hydraulic cylinder (801), a first hydraulic piston rod (802), and an oil passage (803). The first hydraulic cylinder (801) is fixedly installed inside the body (1) of the cutting device, and the first hydraulic cylinder (801) is located below the middle of both sides of the support plate (7011). The first hydraulic piston rod (802) is movably installed inside the first hydraulic cylinder (801). The inner wall of the first hydraulic cylinder (801) is fixedly connected to the outer end of the hydraulic assembly (902) through the oil passage groove (803).

6. The automatic stainless steel pipe cutting and forming device according to claim 1, characterized in that: The cutting device body (1) is equipped with a conveying mechanism (10) located on one side of the second movable plate (6031).

7. The automatic stainless steel pipe cutting and forming device according to claim 1, characterized in that: The hydraulic assembly (902) includes a second hydraulic cylinder (9021), a second hydraulic piston rod (9022), and a tension spring (9023). The second hydraulic cylinder (9021) is fixedly installed inside the body (1) of the cutting device and located in the middle of the outer side of the moving plate (903). The second hydraulic piston rod (9022) is movably installed in the inner cavity of the second hydraulic cylinder (9021). The outer end of the second hydraulic piston rod (9022) is elastically connected to the inner wall of the second hydraulic cylinder (9021) through a tension spring (9023).

Citation Information

Patent Citations

  • An intelligent pipe fixed-length cutting device and method for automobile parts processing

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