Vibrating rack for steel pipes
By designing a vibrating rack for steel pipes, the problem of automatic dispersion of steel pipes on an inclined rack is solved, efficient automatic dispersion is achieved, manual operations are reduced, efficiency is improved, safety hazards are reduced, and structural interference and damage are avoided.
Patent Information
- Application Number
- CN202422764159.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-13
- Publication Date
- 2025-10-10
- Estimated Expiration
- 2034-11-13
AI Technical Summary
It is difficult to automatically disperse lightweight steel pipes on the inclined material rack, which requires manual intervention, is time-consuming and labor-intensive, and poses a safety hazard.
A vibrating material rack is designed, which uses a cylinder to drive the material rack to move up and down in the vertical direction. Combined with the horizontal telescopic adjustment of the extended material rack, it can achieve rapid dispersion of the entire bundle of steel pipes and reduce collision damage through the buffer structure.
It achieves rapid dispersion of steel pipes, reduces manual operations, improves efficiency, reduces safety risks, and avoids structural interference and damage.
Smart Images

Figure CN223421593U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of steel pipe processing, in particular to a vibrating material rack for steel pipes. Background Art
[0002] Steel with a hollow cross-section whose length is much greater than its diameter or circumference. According to cross-sectional shape, it can be divided into round, square, rectangular, and special-shaped steel pipes; according to material, it can be divided into carbon structural steel pipes, low-alloy structural steel pipes, alloy steel pipes, and composite steel pipes; according to application, it can be divided into steel pipes for pipelines, engineering structures, thermal equipment, petrochemical industry, machinery manufacturing, geological drilling, and high-pressure equipment; according to production process, it can be divided into seamless steel pipes and welded steel pipes, of which seamless steel pipes are further divided into hot-rolled and cold-rolled (drawn), and welded steel pipes are further divided into straight seam welded steel pipes and spiral seam welded steel pipes.
[0003] When a whole bundle of steel pipes is placed on an inclined material rack, theoretically the weight of the steel pipes can automatically roll down and disperse them. However, for lightweight steel pipes, manual intervention is sometimes required to disperse them, which is time-consuming and labor-intensive, and also poses a safety hazard.
[0004] Therefore, in view of this, the existing structure and defects are studied and improved, and a vibrating material rack for steel pipes is proposed. Utility Model Content
[0005] The purpose of the utility model is to provide a vibrating material rack for steel pipes to solve the problems raised in the above background technology.
[0006] To achieve the above-mentioned purpose, the utility model provides the following technical solutions: a vibrating material rack for steel pipes, comprising a vibrating frame and an extended material rack, the top of the vibrating frame is connected to a first material rack, and a second material rack is provided at an end of the first material rack away from the vibrating frame, the extended material rack is installed inside the first material rack and the second material rack, and an auxiliary rack is installed at an end of the second material rack away from the first material rack, the vibrating frame comprises a stabilizing seat, a cylinder and a connecting shaft frame, the top of the stabilizing seat is provided with a cylinder, and the upper and lower ends of the cylinder are both installed on the connecting shaft frame.
[0007] Furthermore, the bottom of the cylinder is connected to the stabilizing seat via a connecting shaft frame, and the top of the cylinder is connected to the bottom of a section of the first material rack via a connecting shaft frame.
[0008] Furthermore, the first material rack includes a material rack body, a buffer bar and an auxiliary slide rail. The buffer bar is installed on the outer top surface of the material rack body, and the auxiliary slide rail is installed symmetrically up and down inside the material rack body.
[0009] Furthermore, the auxiliary slide rails are fixedly connected to the upper and lower sides of the inner wall of the rack body in a left-right symmetrical manner, and the main structure of the second rack is the same as that of the first rack.
[0010] Furthermore, the extended material rack includes an inner material rack, a main rail, a support plate, a support angle plate, a buffer pile and a buffer block. The upper and lower outer surfaces of the inner material rack are symmetrically installed with the main rails, and the support plate is horizontally installed in the middle of the inner material rack. The bottom of the support plate is symmetrically connected to the support angle plate, and the top surface of the support angle plate is vertically installed with a buffer pile, and the top of the buffer pile is horizontally connected to the buffer block.
[0011] Furthermore, the main rail and the auxiliary rail are slidably connected, the support angle plates are equidistantly arranged on the bottom surface of the support plate and are welded to the inner wall of the inner material rack at the same time, the upper ends of the buffer piles pass through the top surface of the inner material rack, and the buffer piles and buffer blocks are equidistantly arranged.
[0012] Furthermore, the auxiliary frame includes a base, a telescopic pile, a bearing seat and an adjusting screw. The telescopic pile is vertically installed on the top of the base, and the bearing seat is installed on the top of the telescopic pile. The adjusting screw is symmetrically installed at the movable part of the telescopic pile.
[0013] Furthermore, the adjusting screw is used to adjust the telescopic distance of the telescopic pile in the vertical direction, and the bearing seat is connected to the bottom of the end of the second material rack away from the first material rack.
[0014] The utility model provides a vibrating material rack for steel pipes, which has the following beneficial effects:
[0015] The jackup jack is connected to the jackup jack by the spring, and the jackup jack is connected to the jackup jack by the spring, so that the jackup jack is able to move up and down at one end, thereby reducing the time and labor of the operators.
[0016] 2. The utility model is characterized in that an extended material rack is installed inside the first material rack and the second material rack, wherein the first material rack and the second material rack are combined and connected to each other through the sliding connection of the auxiliary sliding rail on the inner wall of the material rack body and the main rail on the outer surface of the inner material rack, so that the first material rack and the second material rack can be respectively translated left and right at the two ends of the extended material rack in the horizontal direction, thereby realizing structural telescopic adjustment, which is used to structurally expand the first material rack and the second material rack in length, and then provide sufficient dispersion processing stroke for the whole bundle of steel pipes, ensuring that the steel pipes can be spread out with each other. At the same time, the buffer strips and buffer blocks can reduce the structural collision between the steel pipes and the first material rack, the second material rack and the extended material rack surface, thereby reducing damage to the structure. In addition, the buffer block is installed on the top of the inner material rack using a buffer pile. When the extended material rack is retracted inside the first material rack and the second material rack, the structural telescopicity of the buffer pile can be used to drive the buffer block to move and store it inside the material rack body to avoid structural interference. The support plate and the support angle plate can provide structural support for the buffer pile while also ensuring the overall structural strength of the inner material rack for carrying a sufficient number of steel pipes. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 This is a schematic diagram of the main body axial side structure of a vibrating material rack for steel pipes of the utility model;
[0018] Figure 2 This is a schematic diagram of the side adjustment structure of a vibrating material rack for steel pipes according to the present invention;
[0019] Figure 3 This is a schematic diagram of the telescopic structure of the first material rack and the second material rack structure of a vibrating material rack for steel pipes of the utility model;
[0020] Figure 4 This is a schematic diagram of the internal structure of a first rack of a vibrating rack for steel pipes according to the present invention;
[0021] Figure 5 This is a schematic diagram of the internal structure of an extended material rack of a vibrating material rack for steel pipes in the utility model.
[0022] In the figure: 1. Vibration frame; 101. Stable seat; 102. Cylinder; 103. Connecting shaft frame; 2. First material rack; 201. Material rack body; 202. Buffer strip; 203. Auxiliary slide rail; 3. Second material rack; 4. Extended material rack; 401. Inner material rack; 402. Main guide rail; 403. Support plate; 404. Support angle plate; 405. Buffer pile; 406. Buffer block; 5. Auxiliary rack; 501. Base; 502. Telescopic pile; 503. Bearing seat; 504. Adjusting screw. 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 5 As shown, a vibrating material frame for steel pipes includes a vibrating frame 1 and an extended material frame 4. The top of the vibrating frame 1 is connected to the first material frame 2, and the end of the first material frame 2 away from the vibrating frame 1 is provided with a second material frame 3, the extended material frame 4 is installed inside the first material frame 2 and the second material frame 3, and the end of the second material frame 3 away from the first material frame 2 is installed with an auxiliary frame 5, the vibrating frame 1 includes a stable seat 101, a cylinder 102 and a connecting shaft frame 103, the top of the stable seat 101 is provided with a cylinder 102, and the upper and lower ends of the cylinder 102 are installed on the connecting shaft frame 103, the bottom of the cylinder 102 is connected to the stable seat 101 through the connecting shaft frame 103, and the top of the cylinder 102 is connected to the bottom of a section of the first material frame 2 through the connecting shaft frame 103, the auxiliary frame 5 includes a base 501, a telescopic pile 502, bearing seat 503 and adjusting screw 504, a telescopic pile 502 is vertically installed on the top of the base 501, and a bearing seat 503 is installed on the top of the telescopic pile 502, and an adjusting screw 504 is symmetrically installed at the movable part of the telescopic pile 502, and the adjusting screw 504 is used to adjust the telescopic distance of the telescopic pile 502 in the vertical direction, the bearing seat 503 is connected to the bottom of the end of the second material rack 3 away from the first material rack 2, and the cylinder 102 set on the top of the stabilizing seat 101 is used to expand and contract in the vertical direction, thereby driving the first material rack 2 and the second material rack 3 to move up and down at one end in the vertical direction, thereby forming a vibration effect, so that the whole bundle of steel pipes placed on the surface of the first material rack 2 and the second material rack 3 are quickly dispersed by the vibration, reducing manual operation and saving time and effort.
[0025] like Figures 1 to 5As shown, the first material rack 2 includes a material rack body 201, a buffer bar 202 and an auxiliary slide rail 203. The buffer bar 202 is installed on the outer top surface of the material rack body 201, and the auxiliary slide rail 203 is symmetrically installed on the upper and lower inner walls of the material rack body 201. The auxiliary slide rail 203 is symmetrically fixed to the upper and lower sides of the inner wall of the material rack body 201. The second material rack 3 has the same main structure as the first material rack 2. The extended material rack 4 includes an inner material rack 401, a main guide rail 402, a support plate 403, a support angle plate 404, a buffer pile 405 and a buffer block 406. The upper and lower outer surfaces of the inner material rack 401 are symmetrically installed with the main guide rail 402, and a support plate 403 is installed horizontally in the middle of the inner material rack 401. The bottom of the support plate 403 is symmetrically connected to the support angle plate 404, and the support angle plate A buffer pile 405 is vertically installed on the top surface of 404, and a buffer block 406 is horizontally connected to the top of the buffer pile 405. The main rail 402 and the auxiliary slide rail 203 are in sliding connection. The supporting angle plates 404 are equidistantly arranged on the bottom surface of the support plate 403 and are welded to the inner wall of the inner material rack 401. The upper end of the buffer pile 405 passes through the top surface of the inner material rack 401, and the buffer pile 405 and the buffer block 406 are equidistantly arranged. The first material rack 2 and the second material rack 3 are combined and connected to each other through the sliding connection between the auxiliary slide rail 203 on the inner wall of the material rack body 201 and the main rail 402 on the outer surface of the inner material rack 401. In this way, the first material rack 2 and the second material rack 3 can be respectively translated left and right at the two ends of the extended material rack 4 in the horizontal direction, thereby realizing structural telescopic adjustment.
[0026] In summary, if Figures 1 to 5 As shown, when using the vibrating rack for steel pipes, the entire device is first set up on one side of the conveying device as needed. According to the height of the side of the conveying device, the telescopic pile 502 on the top of the base 501 can be adjusted in height by rotating the adjusting screw 504 to facilitate the smooth transportation of the subsequent steel pipes.
[0027] Then, according to the number of steel pipes to be processed in a single batch, the auxiliary slide rail 203 on the inner wall of the rack body 201 is connected to the main guide rails 402 on the upper and lower surfaces of the inner rack 401, so that the first rack 2 and the second rack 3 are structurally stretched at both ends of the extended rack 4. As the first rack 2 and the second rack 3 move, the internal buffer block 406 is elastically connected to the buffer pile 405 inside the inner rack 401, and the buffer block 406 connected to the top is pushed vertically upward and docked with the buffer bar 202.
[0028] Afterwards, when the entire bundle of steel pipes is placed on the surface of the first material rack 2 and the second material rack 3, the cylinder 102 installed on the top of the stabilizing seat 101 is operated to drive one end of the first material rack 2 connected to it by the connecting shaft frame 103 to move up and down, so that the entire first material rack 2, the second material rack 3, and the extended material rack 4 operate in a fan-shaped area structure with the bearing seat 503 as the center, generating a vibration effect at one time, thereby spreading the entire bundle of steel pipes.
[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 vibrating rack for steel pipes, comprising a vibrating rack (1) and an expansion rack (4), characterized in that: The top of the vibration frame (1) is connected to a first material frame (2), and a second material frame (3) is provided at one end of the first material frame (2) away from the vibration frame (1); the extended material frame (4) is installed inside the first material frame (2) and the second material frame (3), and an auxiliary frame (5) is installed at one end of the second material frame (3) away from the first material frame (2); the vibration frame (1) comprises a stabilizing seat (101), a cylinder (102) and a connecting shaft frame (103); the top of the stabilizing seat (101) is provided with a cylinder (102), and the upper and lower ends of the cylinder (102) are both installed on the connecting shaft frame (103).
2. A vibrating rack for steel pipes according to claim 1, characterized in that: The bottom of the cylinder (102) is connected to the stabilizing seat (101) via a connecting shaft frame (103), and the top of the cylinder (102) is connected to the bottom of a section of the first material rack (2) via a connecting shaft frame (103).
3. The vibrating rack for steel pipes according to claim 1, characterized in that: The first material rack (2) comprises a material rack body (201), a buffer bar (202) and an auxiliary slide rail (203); the buffer bar (202) is installed on the outer top surface of the material rack body (201), and the auxiliary slide rail (203) is installed symmetrically in the upper and lower parts of the material rack body (201).
4. A vibrating rack for steel pipes according to claim 3, characterized in that: The auxiliary slide rails (203) are fixedly connected to the upper and lower inner walls of the rack body (201) in a bilaterally symmetrical manner. The second rack (3) and the first rack (2) have the same main structure.
5. The vibrating rack for steel pipes according to claim 1, characterized in that: The extended material rack (4) comprises an inner material rack (401), a main rail (402), a support plate (403), a support angle plate (404), a buffer pile (405) and a buffer block (406). The main rails (402) are symmetrically installed on the upper and lower outer surfaces of the inner material rack (401), and the support plate (403) is horizontally installed in the middle of the inner material rack (401). The bottom of the support plate (403) is symmetrically connected to the support angle plate (404), and the top surface of the support angle plate (404) is vertically installed with a buffer pile (405), and the top of the buffer pile (405) is horizontally connected to the buffer block (406).
6. A vibrating material rack for steel pipes according to claim 5, characterized in that: The main guide rail (402) and the auxiliary guide rail (203) are slidably connected to each other, the support angle plates (404) are equidistantly arranged on the bottom surface of the support plate (403) and are welded to the inner wall of the inner material rack (401), the upper end of the buffer pile (405) passes through the top surface of the inner material rack (401), and the buffer pile (405) and the buffer block (406) are equidistantly arranged.
7. A vibrating rack for steel pipes according to claim 1, characterized in that: The auxiliary frame (5) comprises a base (501), a telescopic pile (502), a bearing seat (503) and an adjusting screw (504); the telescopic pile (502) is vertically mounted on the top of the base (501), the bearing seat (503) is mounted on the top of the telescopic pile (502), and the adjusting screw (504) is symmetrically mounted on the movable part of the telescopic pile (502).
8. A vibrating rack for steel pipes according to claim 7, characterized in that: The adjusting screw (504) is used to adjust the telescopic distance of the telescopic pile (502) in the vertical direction, and the bearing seat (503) is connected to the bottom of the end of the second material rack (3) away from the first material rack (2).