Multi-station forging processing platform
Through the design of a multi-station forging platform, the forging hydraulic press and hydraulic rod are used to drive the upper and lower forging blocks for double-station processing. The slider and isolation plate are combined to prevent debris from splashing, which solves the problems of low efficiency and debris impact of the existing platform and realizes efficient and stable metal processing.
Patent Information
- Application Number
- CN202422773968.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-14
- Publication Date
- 2025-10-03
- Estimated Expiration
- 2034-11-14
AI Technical Summary
Most existing forging processing platforms have only one forging station, which makes it difficult to efficiently process multiple metal materials, affecting processing efficiency, and the splashing of metal debris affects the forging effect.
It adopts a multi-station design, including a left-right symmetrically distributed forging structure, an isolation and anti-splash structure, and a gantry bearing structure. The upper and lower forging blocks are driven by a forging hydraulic press and a hydraulic rod to perform double-station processing on the metal raw materials, and sliders, through holes and guide rails are used to provide limiting assistance, and isolation plates separate the forging space.
It realizes double-station forging processing, improves processing efficiency, effectively prevents metal debris from splashing, and improves forging stability and effect.
Smart Images

Figure CN223405917U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the field of forging, and in particular relates to a multi-station forging processing platform. Background Art
[0002] Metal forging processing platform generally refers to the equipment and facilities used to carry out metal forging process, which is a manufacturing process that changes the shape and properties of metal by applying pressure.
[0003] The forging stations on the existing processing platform are often grouped together, and a group of forging stations has low efficiency in processing metal raw materials. The one-by-one forging processing method is also time-consuming and labor-intensive, which greatly affects the workers' efficiency in forging metal raw materials.
[0004] Therefore, in order to address the problem that most of the forging stations on the above-mentioned existing forging processing platforms have only one, making it difficult to forge multiple metal materials, thereby affecting the forging efficiency of metal materials, a multi-station forging processing platform is developed. By adding a left-right symmetrically distributed forging structure, an isolation and splash-proof structure, and a gantry bearing structure to the processing platform, the processing platform can perform double-station forging and hammering on metal raw materials, thereby greatly improving the efficient hammering processing of metal raw materials by the processing platform, and preventing metal debris from splashing around during forging processing, affecting the forging effect. Utility Model Content
[0005] In order to overcome the problem that most of the forging stations on the existing forging processing platforms are only one, it is difficult to forge multiple metal materials, thereby affecting the forging efficiency of the metal materials.
[0006] The technical solution of the utility model is as follows: a multi-station forging processing platform includes an upper forging block and a lower forging block, and also includes a forging oil hydraulic press, a bearing plate and a forging table. Three groups of output hydraulic rods are installed at the lower end of the forging oil hydraulic press. The lower ends of the output hydraulic rods are fixedly connected to the forging table. The lower end of the forging table is fixedly connected to a left-right symmetrical upper forging block. The upper end of the bearing plate is fixedly connected to a left-right symmetrical lower forging block. The upper forging block and the lower forging block correspond to each other one by one. The lower end of the forging oil hydraulic press is fixedly connected to a left-right symmetrical support frame. The lower end of the support frame is fixedly connected to a limiting frame. The left and right ends of the limiting frame are fixedly connected to a gantry frame. The lower end of the gantry frame is fixedly connected to a base.
[0007] Preferably, the forging hydraulic press cooperates with the output hydraulic rod to drive the two groups of upper forging blocks symmetrically distributed on the left and right of the forging table, and efficiently forges and hammers the two groups of metal raw materials on the two groups of lower forging blocks symmetrically distributed on the supporting plate to achieve the effect of double-station processing.
[0008] Preferably, sliders are fixed to the left and right ends of the forging table, and through holes are symmetrical in front and back at the upper and lower ends of the sliders. When in use, the sliders cooperate with the through holes to provide limiting assistance during the up and down hammering and forging process of the forging table, so as to improve the effect and stability of the forging processing of metal raw materials.
[0009] Preferably, a first groove body is provided through the upper and lower ends of the limit frame, a left-right symmetrical second groove body is provided at the lower end of the first groove body, and a guide rail is fixed to the lower end of the inner wall of the second groove body. When in use, the guide rail and the second groove body can assist in limiting the slider and the through hole thereon to improve the stability of the forging table during the forging process.
[0010] Preferably, an upper limit groove is provided at the lower end of the limit frame, and a lower limit groove is provided at the upper end of the load-bearing plate. When in use, the load-bearing plate can be quickly fixed through the upper limit groove and the lower limit groove, and it is beneficial to disperse the impact force feedback during forging and hammering to the gantry and the base.
[0011] Preferably, the upper end of the isolation plate is connected to the upper limit slot, and the lower end of the isolation plate is connected to the lower limit slot. When in use, the forging processing space in the gantry can be divided into two parts on the left and right through the isolation plate to prevent the two metal materials distributed on the left and right from splashing metal debris during forging, which affects the forging processing effect.
[0012] Preferably, the inner wall of the through hole fits with the outer wall of the guide rail, and the outer wall of the slider fits with the inner wall of the second trough body. When in use, the through hole, guide rail and slider can provide multiple limit assistance to the forging table during the forging process of the metal material to improve the effect of forging the metal material.
[0013] Preferably, the bearing plate is installed in the bearing groove, and the first groove body is adapted to the forging table. When in use, the first groove body can also provide additional limiting assistance to the forging table to further improve the stability of the forging table during operation.
[0014] Beneficial effects of the utility model:
[0015] 1. The forging hydraulic press cooperates with the output hydraulic rod to drive the two sets of upper forging blocks symmetrically distributed on the left and right of the forging table, and efficiently forges and hammers the two sets of metal raw materials on the two sets of lower forging blocks symmetrically distributed on the bearing plate, so as to achieve the effect of double-station processing. Compared with the existing single-station structure, the efficiency of the forging processing platform for processing metal raw materials can be effectively improved;
[0016] 2. The forging space in the gantry can be divided into two parts, left and right, by the isolation plate. Compared with the existing double-station structure, it can effectively prevent the metal debris splashed by the two metal materials on the left and right during forging from affecting the forging effect;
[0017] 3. Through the through holes, guide rails and sliders, the forging table can be assisted by multiple limiters during the forging process of metal materials. Compared with the existing forging structure, the effect of forging metal materials can be improved. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 Shown is a schematic diagram of the three-dimensional structure of the multi-station forging processing platform of the utility model;
[0019] Figure 2 Shown is a schematic diagram of the three-dimensional structure of the multi-station forging processing platform of the utility model;
[0020] Figure 3 Shown is a schematic diagram of the three-dimensional structure of the gantry, limit frame, base and isolation plate of the multi-station forging processing platform of the utility model;
[0021] Figure 4 Shown is a schematic diagram of the three-dimensional structure of the gantry, limit frame and base of the multi-station forging processing platform of the utility model;
[0022] Figure 5 Shown is a schematic diagram of the three-dimensional structure of the forging hydraulic press, forging table, upper forging block and output hydraulic rod of the multi-station forging processing platform of the utility model;
[0023] Figure 6 Shown is a schematic diagram of the three-dimensional structure of the supporting plate and the lower forging block of the multi-station forging processing platform of the present invention.
[0024] Explanation of the accompanying drawings: 1-gantry, 2-limiting frame, 3-forging hydraulic press, 4-bearing plate, 5-forging table, 6-base, 7-isolation plate, 8-first trough body, 9-bearing trough, 10-upper limiting groove, 11-second trough body, 12-guide rail, 13-support frame, 14-upper forging block, 15-slider, 16-through hole, 17-output hydraulic rod, 18-lower limiting groove, 19-lower forging block. DETAILED DESCRIPTION
[0025] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0026] See also Figures 1-6The utility model provides an embodiment: a multi-station forging processing platform, including an upper forging block 14 and a lower forging block 19, and also includes a forging hydraulic press 3, a bearing plate 4 and a forging table 5. The lower end of the forging hydraulic press 3 is installed with three groups of output hydraulic rods 17, and the lower ends of the output hydraulic rods 17 are fixedly connected to the forging table 5. The lower end of the forging table 5 is fixedly connected to the upper forging block 14 that is symmetrical on both sides. The upper end of the bearing plate 4 is fixedly connected to the lower forging block 19 that is symmetrical on both sides. The upper forging blocks 14 and the lower forging blocks 19 correspond to each other one by one. The lower end of the forging hydraulic press 3 is fixedly connected to a left-right symmetrical support frame 13, the lower end of the support frame 13 is fixedly connected to a limit frame 2, the left and right ends of the limit frame 2 are fixedly connected to a gantry 1, and the lower end of the gantry 1 is fixedly connected to a base 6. The forging hydraulic press 3 cooperates with the output hydraulic rod 17 to drive the two groups of upper forging blocks 14 symmetrically distributed on the forging table 5, and efficiently forges and hammers the two groups of metal raw materials on the two groups of lower forging blocks 19 symmetrically distributed on the supporting plate 4 to achieve the effect of double-station processing.
[0027] See also Figure 3-Figure 5 In this embodiment, the left and right ends of the forging table 5 are fixed with sliders 15, and the upper and lower ends of the sliders 15 are penetrated with front and rear symmetrical through holes 16. When in use, the sliders 15 cooperate with the through holes 16 to provide limiting assistance during the up and down hammering and forging process of the forging table 5, so as to improve the effect and stability of the forging processing of the metal raw material. The upper and lower ends of the limiting frame 2 are penetrated with a first groove 8, and the lower end of the first groove 8 is provided with a left and right symmetrical second groove 11. The second groove 11 is provided with a right and left symmetrical second groove 11. A guide rail 12 is fixed to the lower end of the inner wall. When in use, the guide rail 12 and the second groove body 11 can be used to assist in limiting the slider 15 and the through hole 16 thereon, so as to improve the stability of the forging table 5 during the forging process. An upper limit groove 10 is provided at the lower end of the limit frame 2, and a lower limit groove 18 is provided at the upper end of the support plate 4. When in use, the upper limit groove 10 and the lower limit groove 18 can be used to quickly fix the support plate 4, and it is beneficial to disperse the impact force feedback during forging hammering to the gantry 1 and the base 6.
[0028] See also Figure 3-Figure 6In this embodiment, the upper end of the isolation plate 7 is connected to the upper limit groove 10, and the lower end of the isolation plate 7 is connected to the lower limit groove 18. When in use, the isolation plate 7 can be used to divide the forging space in the gantry 1 into two parts, left and right, to prevent the two metal materials distributed on the left and right from splashing metal debris during forging and affecting the forging effect. The inner wall of the through hole 16 is in contact with the outer wall of the guide rail 12, and the outer wall of the slider 15 is in contact with the inner wall of the second groove body 11. When in use, the through hole 16, the guide rail 12 and the slider 15 can be used to perform multiple limit assistance on the forging table 5 during the forging process of the metal material to improve its forging effect on the metal material. The bearing plate 4 is installed in the bearing groove 9, and the first groove body 8 is adapted to the forging table 5. When in use, the first groove body 8 can also provide additional limit assistance to the forging table 5 to further improve the stability of the forging table 5 during operation.
[0029] When in use, first put two sets of metal raw materials into the left and right forging spaces divided by the isolation plate 7, and then put the two sets of metal raw materials on the two sets of left and right symmetrical lower forging blocks 19, and then fix the metal raw materials by manpower or machine;
[0030] Next, the forging hydraulic press 3 is started to drive the output hydraulic rod 17 to drive the slider 15 on the forging table 5 to perform reciprocating stamping and forging along the guide rail 12 and the inner wall of the second trough body 11, so as to drive the two groups of upper forging blocks 14 symmetrical on the left and right to efficiently hammer the two groups of metal raw materials on the lower forging block 19.
[0031] Through the above steps, the forging hydraulic press 3 cooperates with the output hydraulic rod 17 to drive the two groups of upper forging blocks 14 symmetrically distributed on the left and right sides of the forging table 5, and efficiently forges and hammers the two groups of metal raw materials on the two groups of lower forging blocks 19 symmetrically distributed on the left and right sides of the supporting plate 4 to achieve the effect of double-station processing, solving the problem that most of the forging stations on the existing forging processing platform are only one, making it difficult to forge multiple metal materials, thereby affecting the forging efficiency of metal materials.
[0032] The embodiments of the present invention are described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Various changes can be made within the scope of knowledge possessed by those skilled in the art without departing from the purpose of the present invention.
Claims
1. A multi-station forging platform comprising an upper forging block (14) and a lower forging block (19), characterized in that: The invention also includes a forging hydraulic press (3), a bearing plate (4) and a forging table (5). The lower end of the forging hydraulic press (3) is equipped with three groups of output hydraulic rods (17). The lower ends of the output hydraulic rods (17) are fixedly connected to the forging table (5). The lower end of the forging table (5) is fixedly connected to a left-right symmetrical upper forging block (14). The upper end of the bearing plate (4) is fixedly connected to a left-right symmetrical lower forging block (19). The upper forging block (14) and the lower forging block (19) correspond to each other one by one. The lower end of the forging hydraulic press (3) is fixedly connected to a left-right symmetrical support frame (13). The lower end of the support frame (13) is fixedly connected to a limit frame (2). The left and right ends of the limit frame (2) are fixedly connected to a gantry frame (1). The lower end of the gantry frame (1) is fixedly connected to a base (6).
2. The multi-station forging platform according to claim 1, characterized in that: Slide blocks (15) are fixedly connected to the left and right ends of the forging table (5), and through holes (16) symmetrical in front and back are formed through the upper and lower ends of the slide block (15).
3. The multi-station forging platform according to claim 2, characterized in that: A first slot body (8) is provided through the upper and lower ends of the limiting frame (2); a left-right symmetrical second slot body (11) is provided at the lower end of the first slot body (8); and a guide rail (12) is fixed to the lower end of the inner wall of the second slot body (11).
4. The multi-station forging platform according to claim 3, characterized in that: An upper limit groove (10) is provided at the lower end of the limit frame (2), and a lower limit groove (18) is provided at the upper end of the bearing plate (4).
5. The multi-station forging platform according to claim 4, characterized in that: The upper end of the isolation plate (7) is connected to the upper limit groove (10), and the lower end of the isolation plate (7) is connected to the lower limit groove (18).
6. The multi-station forging platform according to claim 5, characterized in that: The inner wall of the through hole (16) is in contact with the outer wall of the guide rail (12), and the outer wall of the slider (15) is in contact with the inner wall of the second trough body (11).
7. The multi-station forging platform according to claim 6, characterized in that: The bearing plate (4) is installed in the bearing groove (9), and the first groove body (8) is adapted to the forging table (5).