Nickel-based alloy casting forming device
By installing hydraulic cylinders and extrusion plates in the nickel-based alloy casting molding device, and combining the stress-retardation plates and installation rods, the problem of inconvenient product acquisition in the existing device is solved and processing efficiency is improved.
Patent Information
- Application Number
- CN202421866696.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-05
- Publication Date
- 2025-06-27
- Estimated Expiration
- 2034-08-05
AI Technical Summary
When processing products, the existing nickel-based alloy casting molding device is not convenient to easily obtain products that need to be processed and processed, which affects the work efficiency of staff.
A nickel-based alloy casting molding device is designed. By setting up a hydraulic cylinder to drive the extrusion plate to slide on the surface of the slide rod, and cooperate with the force-resisting plate and the installation rod to facilitate processing and easy removal of the product.
It realizes convenient removal of products after processing, and improves the efficiency of product processing by staff.
Smart Images

Figure CN223028223U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of nickel-based alloy casting and forming, in particular to a nickel-based alloy casting and forming device. Background Art
[0002] Nickel-based alloy casting and forming devices are mainly used to produce nickel-based alloy castings with specific shapes and dimensions. These alloys are widely used in aviation, aerospace, energy, and other high-end manufacturing industries due to their excellent high-temperature performance, corrosion resistance, and oxidation resistance. Nickel-based alloy casting and forming technologies cover a variety of processes, including vacuum induction melting, electroslag remelting, precision casting, etc., aiming to manufacture castings with complex structures and shapes to meet the usage requirements in high-temperature, high-pressure, and strongly corrosive environments.
[0003] Comparative Publication No. 202322452391.8 discloses a forming device, which includes a material compression bin with a cavity inside, and a feed inlet and a discharge outlet communicating with the cavity; a compression member disposed in the cavity for compressing the material from the feed inlet to the discharge outlet; a power component power-connected to the compression member to enable the compression member to move. Preferably, it further includes a blanking bin disposed on the material compression bin and communicating with the feed inlet. The blanking bin is integrally formed with the material compression bin or the blanking bin is detachably connected to the material compression bin. Preferably, there are two discharge outlets, the feed inlet is located at the middle top end of the material compression bin, and the two discharge outlets are respectively located at both ends of the material compression bin. Preferably, inclined surfaces are symmetrically provided at the left and right ends of the compression member. When the material passes through the connection between the feed inlet and the material compression bin, the inclined surfaces cause the material to gather towards the inside of the cavity. Preferably, baffles are provided at both ends of the material compression bin, and the baffles are inserted into the discharge outlets. Preferably, the power component is disposed outside the cavity, and the material compression bin is provided with an opening groove for connecting the compression member and the power component. The longer side of the compression member is arranged at the top. As a result, when the compression member moves to the junction of the feed inlet and the material compression bin, the longer side will first contact the material at the junction, and then push the material at the junction into the container in sequence, gathering the material at the junction and avoiding material congestion.
[0004] For this forming device, when the compression member moves to the junction of the feed inlet and the material compression bin, the longer side will first contact the material at the junction, and then push the material at the junction into the container in sequence, gathering the material at the junction and avoiding material congestion. However, when the device processes products as a whole, it is not convenient to conveniently pick up the products to be processed and the processed products, which affects the working efficiency of the staff during product processing. Content of the Utility Model
[0005] To solve the above technical problems, the utility model provides a nickel-based alloy casting and forming device.
[0006] The utility model is realized by the following technical solutions: A nickel-based alloy casting and forming device includes a supporting bottom plate. A first vertical frame is welded to the top end of the supporting bottom plate. A fixed block is fixedly connected to the left side of the first vertical frame, and a hydraulic cylinder is fixedly connected to one end of the fixed block;
[0007] A sliding rod is fixedly connected to the right end of the first vertical frame. An extrusion plate is slidably connected to the surface of the sliding rod. A second vertical frame is welded to the top end of the supporting bottom plate. A limiting frame is fixedly connected to the right side of the second vertical frame. A supporting plate is fixedly connected to the inside of the limiting frame. A spring is fixedly connected to the left end of the supporting plate. A rubber pad is fixedly connected to the left side of the spring. A rubber pad is fixedly connected to the right side of the rubber pad. An installation groove is formed in the top of the second vertical frame. A force-bearing abutting plate is inserted into the installation groove. A pulling handle is welded to the top of the force-bearing abutting plate. A positioning bolt is threadedly connected to the inside of the force-bearing abutting plate. An installation rod is welded to the bottom of the force-bearing abutting plate.
[0008] Through the above technical solutions, the number of rubber pads and springs is set to two, which can buffer when the force-bearing abutting plate suffers a large impact force.
[0009] As a further improvement of the above solution, the positioning bolts are symmetrically distributed with the second vertical frame as the center. The second vertical frame is threadedly connected with positioning bolts, and the pulling handle is arranged on the left side of the positioning bolts.
[0010] As a further improvement of the above solution, the force-bearing abutting plate is inserted into the supporting bottom plate, and a force-bearing rod is slidably connected to the inside of the supporting plate.
[0011] As a further improvement of the above solution, the springs are symmetrically distributed with the supporting plate as the center, the sliding rods are symmetrically distributed with the first vertical frame as the center, and the extrusion plate is slidably connected to the top of the supporting bottom plate.
[0012] Through the above technical solutions, the number of sliding rods is set to four, which can cooperate with the extrusion plate to slide back and forth on the surface of the sliding rods.
[0013] As a further improvement of the above solution, the limiting frames are symmetrically distributed with the supporting bottom plate as the center. The limiting frames are fixedly connected to the right side of the second vertical frame, and the supporting plate is arranged at the right end of the second vertical frame.
[0014] As a further improvement of the above solution, the fixed blocks are symmetrically distributed with the hydraulic cylinder as the center. The hydraulic cylinder is fixedly connected to the left end of the first vertical frame, and the force-bearing abutting plate is arranged on the right side of the extrusion plate.
[0015] As a further improvement of the above solution, the rubber pads are symmetrically distributed with the support plate as the center, and the stress rods are arranged at the right end of the second vertical frame.
[0016] Compared with the prior art, the beneficial effects of the present utility model are as follows:
[0017] When the hydraulic cylinder drives the extrusion plate to slide left and right on the surface of the sliding rod, the present utility model can process the product to be formed placed on the surface of the stress bearing plate in cooperation with the extrusion plate. The stress bearing plate and the mounting rod at the bottom are installed inside through the mounting groove opened at the top of the second vertical frame, and then the stress bearing plate is fixed on the top of the second vertical frame by positioning bolts, which is convenient for the staff to conveniently take out the processed product by pulling the handle to drive the stress bearing plate, bringing convenience to the staff for processing the product.
[0018] When the extrusion plate slides and extrudes on the surface of the sliding rod, the present utility model sets the support plate inside the limit frame to cooperate with the spring and the rubber pad to buffer the impact force to a small extent, avoiding damage to the stress bearing plate caused by the gap between the stress bearing plate and the second vertical frame when extruding the product, and affecting the convenience of the staff for processing the product. Description of the Drawings
[0019] Figure 1 It is a schematic diagram of the overall structure of the present utility model;
[0020] Figure 2 It is a schematic diagram of the anatomical structure of the present utility model;
[0021] Figure 3 It is a schematic diagram of the disassembly structure of the stress bearing plate of the present utility model;
[0022] Figure 4 It is a schematic diagram of the bottom view structure of the present utility model;
[0023] Figure 5 It is a schematic diagram of the right view structure of the present utility model.
[0024] Main Symbol Description:
[0025] 1. Support bottom plate; 2. Hydraulic cylinder; 3. Fixed block; 4. First vertical frame; 5. Sliding rod; 6. Extrusion plate; 7. Second vertical frame; 8. Limit frame; 9. Stress bearing plate; 10. Pull handle; 11. Positioning bolt; 12. Support plate; 13. Spring; 14. Rubber pad; 15. Stress rod; 16. Mounting groove; 17. Mounting rod. Specific Embodiments
[0026] Next, in combination with the accompanying drawings and specific embodiments, the present utility model will be further described. It should be noted that, on the premise of no conflict, any combination can be formed among the following-described embodiments or technical features to form a new embodiment. Embodiment
[0027] Please refer to Figures 1-5 A nickel-based alloy casting and forming device according to this embodiment includes a support base plate 1. A first vertical frame 4 is welded to the top end of the support base plate 1. A fixed block 3 is fixedly connected to the left side of the first vertical frame 4, and a hydraulic cylinder 2 is fixedly connected to one end of the fixed block 3;
[0028] A sliding rod 5 is fixedly connected to the right end of the first vertical frame 4. An extrusion plate 6 is slidably connected to the surface of the sliding rod 5. A second vertical frame 7 is welded to the top end of the support base plate 1. A limiting frame 8 is fixedly connected to the right side of the second vertical frame 7. A support plate 12 is fixedly connected to the inside of the limiting frame 8. A spring 13 is fixedly connected to the left end of the support plate 12. A rubber pad 14 is fixedly connected to the left side of the spring 13. A rubber pad 14 is fixedly connected to the right side of the rubber pad 14. An installation groove 16 is opened at the top of the second vertical frame 7. A force-bearing abutting plate 9 is inserted into the inside of the installation groove 16. A pulling handle 10 is welded to the top of the force-bearing abutting plate 9. A positioning bolt 11 is threadedly connected to the inside of the force-bearing abutting plate 9. An installation rod 17 is welded to the bottom of the force-bearing abutting plate 9. When the hydraulic cylinder 2 is set to drive the extrusion plate 6 to slide left and right on the surface of the sliding rod 5, the product to be formed placed on the surface of the force-bearing abutting plate 9 can be processed in cooperation with the extrusion plate 6. By setting the force-bearing abutting plate 9 and the installation rod 17 at the bottom to be installed into the inside through the installation groove 16 opened at the top of the second vertical frame 7, and then fixing the force-bearing abutting plate 9 to the top of the second vertical frame 7 by the positioning bolt 11, it is convenient for the staff to take out the processed product conveniently by driving the force-bearing abutting plate 9 through the pulling handle 10, which brings convenience to the staff for processing the product.
[0029] The number of the rubber pads 14 and the springs 13 is set to two, which can buffer when the force-bearing abutting plate 9 suffers a large impact force.
[0030] The positioning bolts 11 are symmetrically distributed with the second vertical frame 7 as the center. The positioning bolts 11 are threadedly connected to the inside of the second vertical frame 7. The pulling handle 10 is arranged on the left side of the positioning bolts 11.
[0031] The force-bearing abutting plate 9 is inserted into the inside of the support base plate 1, and a force-bearing rod 15 is slidably connected to the inside of the support plate 12.
[0032] The springs 13 are symmetrically distributed with the support plate 12 as the center. The sliding rod 5 is symmetrically distributed with the first vertical frame 4 as the center. The extrusion plate 6 is slidably connected to the top of the support base plate 1.
[0033] The number of sliding rods 5 is set to four, which can cooperate with the extrusion plate 6 to slide back and forth on the surface of the sliding rod 5.
[0034] The limiting frames 8 are symmetrically distributed with the support base plate 1 as the center. The limiting frames 8 are fixedly connected to the right side of the second vertical frame 7, and the support plate 12 is arranged at the right end of the second vertical frame 7.
[0035] The fixing blocks 3 are symmetrically distributed with the hydraulic cylinder 2 as the center. The hydraulic cylinder 2 is fixedly connected to the left end of the first vertical frame 4. A force-receiving abutment plate 9 is arranged on the right side of the extrusion plate 6. When the extrusion plate 6 slides and extrudes on the surface of the sliding rod 5 by means of the support plate 12 arranged inside the limiting frame 8, the spring 13 and the rubber pad 14 are used to buffer a small impact force, so as to avoid damage to the force-receiving abutment plate 9 caused by the gap between the force-receiving abutment plate 9 and the second vertical frame 7, which affects the convenience of product processing by the staff.
[0036] The rubber pads 14 are symmetrically distributed with the support plate 12 as the center. The force-receiving rods 15 are arranged at the right end of the second vertical frame 7.
[0037] In the embodiment of the present application, the implementation principle of a nickel-based alloy casting and forming device is as follows: Place the equipment in a suitable position. When the hydraulic cylinder 2 is set to drive the extrusion plate 6 to slide left and right on the surface of the sliding rod 5, the product to be formed placed on the surface of the force-receiving abutment plate 9 can be processed by the extrusion plate 6. The force-receiving abutment plate 9 and the mounting rod 17 at the bottom are installed inside the installation groove 16 opened at the top of the second vertical frame 7, and then the force-receiving abutment plate 9 is fixed to the top of the second vertical frame 7 by the positioning bolt 11, which is convenient for the staff to take out the processed product conveniently by pulling the handle 10 to drive the force-receiving abutment plate 9, bringing convenience to the product processing by the staff. When the extrusion plate 6 slides and extrudes on the surface of the sliding rod 5 by means of the support plate 12 arranged inside the limiting frame 8, the spring 13 and the rubber pad 14 are used to buffer a small impact force, so as to avoid damage to the force-receiving abutment plate 9 caused by the gap between the force-receiving abutment plate 9 and the second vertical frame 7, which affects the convenience of product processing by the staff.
[0038] The above implementation manners are only the preferred implementation manners of the present invention, and cannot be used to limit the protection scope of the present invention. Any non-substantial changes and substitutions made by those skilled in the art on the basis of the present invention belong to the protection scope required by the present invention.
Claims
1. A nickel-based alloy casting molding device, comprising a supporting base plate (1), a first stand (4) welded to the top of the supporting base plate (1), a fixed block (3) fixedly connected to the left side of the first stand (4), and a hydraulic cylinder (2) fixedly connected to one end of the fixed block (3); It is characterized in that The right end of the first stand (4) is fixedly connected to a slide bar (5), the surface of the slide bar (5) is slidably connected to an extrusion plate (6), the top of the support base plate (1) is welded to a second stand (7), the right side of the second stand (7) is fixedly connected to a limit frame (8), the inside of the limit frame (8) is fixedly connected to a support plate (12), the left end of the support plate (12) is fixedly connected to a spring (13), the left side of the spring (13) is fixedly connected to a rubber pad (14), the right side of the rubber pad (14) is fixedly connected to a rubber pad (14), the top of the second stand (7) is provided with a mounting groove (16), the inside of the mounting groove (16) is plugged with a force-bearing plate (9), the top of the force-bearing plate (9) is welded with a pull-out handle (10), the inside of the force-bearing plate (9) is threadedly connected to a positioning bolt (11), and the bottom of the force-bearing plate (9) is welded with a mounting rod (17).
2. A nickel-based alloy casting molding device as claimed in claim 1, characterized in that: The positioning bolts (11) are symmetrically distributed with the second stand (7) as the center; the internal threads of the second stand (7) are connected to the positioning bolts (11); and the pull-out handle (10) is arranged on the left side of the positioning bolts (11).
3. A nickel-based alloy casting molding device as claimed in claim 1, characterized in that: A force-bearing abutment plate (9) is inserted into the interior of the support bottom plate (1), and a force-bearing rod (15) is slidably connected to the interior of the support plate (12).
4. A nickel-based alloy casting molding device as claimed in claim 3, characterized in that: The springs (13) are symmetrically distributed with the support plate (12) as the center, the sliding rods (5) are symmetrically distributed with the first stand (4) as the center, and the top of the support bottom plate (1) is slidably connected to a pressing plate (6).
5. A nickel-based alloy casting molding device as claimed in claim 1, characterized in that: The limit frame (8) is symmetrically distributed with the supporting bottom plate (1) as the center, the limit frame (8) is fixedly connected to the right side of the second stand (7), and the support plate (12) is arranged at the right end of the second stand (7).
6. A nickel-based alloy casting molding device as claimed in claim 5, characterized in that: The fixed blocks (3) are symmetrically distributed with the hydraulic cylinder (2) as the center; the hydraulic cylinder (2) is fixedly connected to the left end of the first stand (4); and a force-bearing support plate (9) is provided on the right side of the extrusion plate (6).
7. A nickel-based alloy casting molding device as claimed in claim 3, characterized in that: The rubber pads (14) are symmetrically distributed around the support plate (12), and the force-bearing rod (15) is arranged at the right end of the second stand (7).
Citation Information
Patent Citations
Forming device
CN220883503U