Non-ferrous metal calendering die
By designing a non-ferrous metal rolling die and utilizing a slider and moving rod structure to achieve the tilting and downward movement of the pressure table and the clamping fixation, the stability and inclined surface processing problems during non-ferrous metal rolling were solved, achieving uniform rolling thickness and simplified operation.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- 天津科捷新材料有限公司
- Filing Date
- 2025-04-29
- Publication Date
- 2026-05-26
AI Technical Summary
The stability of non-ferrous metals cannot be guaranteed during rolling, resulting in uneven rolling thickness and complicated operation when processing inclined surfaces.
A non-ferrous metal rolling die was designed, including a rolled part, a base, a fixed platform, a frame, and a pressure platform. The pressure platform is tilted and moved downward through a slider and moving rod structure, and the non-ferrous metal is fixed by a clamping structure to ensure stability. The die is also adjusted by bevel machining and length direction.
It ensures the stability of non-ferrous metals during the rolling process, guarantees the uniformity of the rolled thickness, and simplifies the operation process of bevel processing.
Smart Images

Figure CN224273130U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of non-ferrous metal processing technology, and in particular to a non-ferrous metal rolling die. Background Technology
[0002] Non-ferrous metals are metals that are different from iron. Their main characteristics are good electrical and thermal conductivity, corrosion resistance, and excellent mechanical properties. Non-ferrous metals can be shaped during rolling.
[0003] When non-ferrous metals are rolled, they are placed on a processing table and pressed by two rolling rollers. However, the lack of clamps on the processing table compromises the stability of the non-ferrous metals, resulting in uneven thickness after rolling. Since non-ferrous metals have a wide range of applications, their specifications are numerous. When a bevel needs to be formed, the operator must manually place the metal horizontally and extend one side into the rolling rollers, making adjustments along the length of the metal quite cumbersome. Utility Model Content
[0004] The purpose of this invention is to solve the problem that the stability of non-ferrous metals cannot be guaranteed during the rolling process in the prior art, and to propose a non-ferrous metal rolling die.
[0005] To achieve the above objectives, the present invention adopts the following technical solution:
[0006] A non-ferrous metal rolling die includes a rolling part for rolling non-ferrous metal, and the rolling part consists of a base, a fixed platform, a frame, and a pressure platform. A bracket is fixedly installed on the frame, and a slider one and a slider two are slidably sleeved on the bracket. A support plate one is fixedly installed on the slider one, and a moving rod one is slidably sleeved on the support plate one. A support plate two is fixedly installed on the slider two, and a moving rod two is slidably sleeved on the support plate two. The pressure platform is disposed on the moving rod one and the moving rod two, and the pressure platform is provided with an inclined surface corresponding to the non-ferrous metal. A traction structure for traction to tilt and move the pressure platform downward is installed on the bracket. A clamping structure is provided on the base, extending to the fixed platform and clamping the non-ferrous metal.
[0007] Preferably, the bracket has an L-shaped structure, with slider one horizontally mounted on the bracket, slider two vertically mounted on the bracket, moving rod one vertically positioned, and moving rod two horizontally positioned.
[0008] Preferably, a movable plate is fixedly installed on the movable rod one, and a spring one that cooperates with the movable rod one is welded between the movable plate one and the support plate one. A movable plate two is fixedly installed on the movable rod two, and a spring two that cooperates with the movable rod two is welded between the movable plate two and the support plate two.
[0009] Preferably, the first movable plate and the first movable rod extend to the upper end position outside the first support plate, and the spring is sleeved on the first movable rod. The second movable plate and the second movable rod extend to one side position outside the second support plate, and the second spring is sleeved on the second movable rod.
[0010] Preferably, the traction structure includes a telescopic rod 1 fixedly installed on the bracket and connected to a slider 1; a telescopic rod 2 fixedly installed on the bracket and connected to a slider 2; a telescopic rod 3 fixedly installed on the support plate 1 and connected to a pressure table; a telescopic rod 4 fixedly installed on the support plate 2 and connected to a pressure table; and a controller electrically connected to the telescopic rods 1, 2, 3, and 4 is provided on the base.
[0011] Preferably, the clamp structure includes two mounting rods placed on the base, and an intercepting rod for intercepting non-ferrous metal is connected between the two mounting rods. The intercepting rod is slidably fitted with symmetrically arranged moving blocks, and the moving blocks are fixedly installed with clamping plates that move and abut against both ends of the non-ferrous metal. The mounting rod is threaded with a fixing bolt connected to the base, and the moving block is threaded with a locking bolt connected to the intercepting rod. The intercepting rod has a U-shaped structure, and the clamping plates are vertically arranged on both sides of the non-ferrous metal.
[0012] Compared with the prior art, the present invention has the following advantages:
[0013] 1. This utility model installs the interception rod on the base, so that one side of the interception rod moves against the non-ferrous metal, and clamps the non-ferrous metal from both sides with clamping plates, so as to ensure the stability of the non-ferrous metal after installation.
[0014] 2. This utility model sets a traction structure on the bracket. Under the traction of the traction structure, the pressure table slides to the right and moves downward. During the downward tilting process, the pressure table can process the non-ferrous metal into a slope and adjust the length of the non-ferrous metal. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the structure of a non-ferrous metal rolling die proposed in this utility model;
[0016] Figure 2 This is a cross-sectional view of a support for a non-ferrous metal rolling die proposed in this utility model.
[0017] Figure 3 This is a side sectional view of the base of a non-ferrous metal rolling die proposed in this utility model.
[0018] In the diagram: 1. Base; 2. Frame; 3. Pressure platform; 4. Fixing platform; 5. Bracket; 6. Slider 1; 7. Slider 2; 8. Support plate 1; 9. Support plate 2; 10. Telescopic rod 1; 11. Telescopic rod 2; 12. Moving rod 1; 13. Moving rod 2; 14. Moving plate 1; 15. Spring 1; 16. Telescopic rod 3; 17. Moving plate 2; 18. Spring 2; 19. Telescopic rod 4; 20. Mounting rod; 21. Intercepting rod; 22. Moving block; 23. Clamping plate; 24. Controller. Detailed Implementation
[0019] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments.
[0020] Reference Figures 1-3 A non-ferrous metal rolling die includes a rolling part for rolling non-ferrous metals, and the rolling part is composed of a base 1, a fixed platform 4, a frame 2, and a pressure platform 3.
[0021] A bracket 5 is fixedly installed on the frame 2, and a slider 6 and a slider 7 are slidably sleeved on the bracket 5. A support plate 8 is fixedly installed on the slider 6, and a moving rod 12 is slidably sleeved on the support plate 8. A support plate 9 is fixedly installed on the slider 7, and a moving rod 13 is slidably sleeved on the support plate 9. The bracket 5 guides the slider 6 and the slider 7, so that the slider 6 and the slider 7 can smoothly pull the support plate 8 and the support plate 9 when they move.
[0022] The bracket 5 has an L-shaped structure. Slider 1 6 is horizontally mounted on the bracket 5, slider 2 7 is vertically mounted on the bracket 5, moving rod 1 12 is vertically mounted, moving rod 2 13 is horizontally mounted, and pressure table 3 is mounted on moving rod 1 12 and moving rod 2 13. The pressure table 3 is provided with an inclined surface corresponding to the non-ferrous metal.
[0023] A movable plate 14 is fixedly installed on the movable rod 12, and a spring 15 that cooperates with the movable rod 12 is welded between the movable plate 14 and the support plate 8. A movable plate 27 is fixedly installed on the movable rod 13, and a spring 28 that cooperates with the movable rod 23 is welded between the movable plate 27 and the support plate 29. The support plate 8 guides the movable rod 12, so that the movable rod 12 can further limit the movement direction of the movable plate 14 and the pressure table 3 when it moves. The support plate 29 guides the movable rod 23, so that the movable rod 23 can further limit the movement direction of the movable plate 27 and the pressure table 3 when it moves.
[0024] The first movable plate 14 and the first movable rod 12 extend to the upper end of the first support plate 8. The first spring 15 is sleeved on the first movable rod 12. The second movable plate 17 and the second movable rod 13 extend to one side of the second support plate 9. The second spring 18 is sleeved on the second movable rod 13. By setting the first spring 15 between the first support plate 8 and the first movable plate 14, the first spring 15 can buffer the moving speed of the first movable rod 12. By setting the second spring 18 between the second movable rod 13 and the second movable plate 17, the second spring 18 can buffer the moving speed of the second movable rod 13, thus preventing the first movable rod 12 and the second movable rod 13 from moving too fast and impacting the first support plate 8 and the second support plate 9.
[0025] The bracket 5 is equipped with a traction structure that tilts and moves downwards on the traction pressure platform 3.
[0026] The traction structure includes a telescopic rod 10 fixedly installed on the bracket 5 and connected to the slider 6; a telescopic rod 21 fixedly installed on the bracket 5 and connected to the slider 7; a telescopic rod 3 16 fixedly installed on the support plate 8 and connected to the pressure platform 3; and a telescopic rod 4 19 fixedly installed on the support plate 9 and connected to the pressure platform 3. A controller 24 electrically connected to the telescopic rods 10, 21, 316, and 419 is provided on the base 1. The specific models and specifications of the controller 24, telescopic rods 10, 21, 316, and 419 need to be selected and determined according to the actual specifications of the device. The specific selection and calculation methods use existing technology in this field and will not be elaborated here.
[0027] To further explain, the pressure table 3 can be pulled horizontally by slider 6 and vertically by slider 7. During the downward movement, the pressure table 3 can slide to the right, so that the inclined surface on the pressure table 3 can process the inclined surface of the non-ferrous metal. The continuous extrusion of the pressure table 3 can extend the non-ferrous metal horizontally, thereby realizing the rolling operation.
[0028] The base 1 is provided with a clamping structure that extends to the fixed platform 4 and clamps the non-ferrous metal.
[0029] The clamp structure includes two mounting rods 20 placed on the base 1, and an intercepting rod 21 for intercepting non-ferrous metals is connected between the two mounting rods 20. The intercepting rod 21 is slidably fitted with symmetrically arranged moving blocks 22, and the moving blocks 22 are fixedly installed with clamping plates 23 that move against the two ends of the non-ferrous metals.
[0030] The mounting rod 20 is threaded with a fixing bolt that connects to the base 1, and the moving block 22 is threaded with a locking bolt that connects to the intercepting rod 21. The intercepting rod 21 has a U-shaped structure, and the clamping plates 23 are vertically set on both sides of the non-ferrous metal. The intercepting rod 21 can intercept the non-ferrous metal from one side, and the two clamping plates 23 can clamp the non-ferrous metal from both sides, so that the non-ferrous metal can maintain its own stability during processing. Furthermore, by adjusting the distance between the two moving blocks 22, the clamping plates 23 can clamp non-ferrous metals of different specifications.
[0031] The functional principle of this utility model can be explained through the following operation methods:
[0032] Place the non-ferrous metal on the fixed platform 4, press the intercepting rod 21, so that the intercepting rod 21 drives the mounting rod 20 to extend to both sides of the fixed platform 4, and use the fixing bolt to connect the mounting rod 20 to the base 1, so that the intercepting rod 21 and the side wall of the non-ferrous metal fit together.
[0033] Press the two clamping plates 23 to make the clamping plates 23 drive the moving block 22 to slide inside the intercepting rod 21. The clamping plates 23 can clamp the non-ferrous metal from both sides. Use locking bolts to connect the moving block 22 and the intercepting rod 21.
[0034] The controller 24 sends signals to the telescopic rod 21 and the telescopic rod 316. The output end of the telescopic rod 316 extends and retracts, causing the slider 27 to slide on the bracket 5. After the pressure table 3 moves down, it causes the moving rod 12 to slide on the support plate 18, and the spring 15 is stressed.
[0035] Simultaneously, the controller 24 sends signals to the telescopic rod 10 and the telescopic rod 4 19. The output end of the telescopic rod 10 extends and retracts, causing the slider 6 to slide on the bracket 5. The output end of the telescopic rod 4 19 retracts, causing the pressure table 3 to move. The pressure table 3 causes the moving rod 2 13 to slide on the support plate 2 9. The spring 2 18 is stressed, causing the pressure table 3 to slide downwards and to the right. After the inclined surface of the pressure table 3 corresponds with the non-ferrous metal, it can process the inclined surface on the non-ferrous metal while extending the length of the non-ferrous metal.
[0036] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.
Claims
1. A non-ferrous calendering die comprising a calendering member for calendering a non-ferrous metal, and the calendering member is composed of a base (1), a fixed stage (4), a frame (2), a pressure applying stage (3), characterized in that, A bracket (5) is fixedly installed on the frame (2), and a slider one (6) and a slider two (7) are slidably sleeved on the bracket (5). A support plate one (8) is fixedly installed on the slider one (6), and a moving rod one (12) is slidably sleeved on the support plate one (8). A support plate two (9) is fixedly installed on the slider two (7), and a moving rod two (13) is slidably sleeved on the support plate two (9). The pressure table (3) is located on the moving rod one (12) and the moving rod two (13), and the pressure table (3) has an inclined surface corresponding to the non-ferrous metal. A traction structure for traction pressure table (3) to tilt downward is installed on the bracket (5). A clamping structure extending to the fixed platform (4) and clamping the non-ferrous metal is provided on the base (1).
2. A non-ferrous calendering die according to claim 1, wherein The bracket (5) has an L-shaped structure. The first slider (6) is horizontally mounted on the bracket (5), the second slider (7) is vertically mounted on the bracket (5), the first moving rod (12) is vertically mounted, and the second moving rod (13) is horizontally mounted.
3. The non-ferrous metal rolling die according to claim 1, characterized in that, A movable plate (14) is fixedly installed on the movable rod (12), and a spring (15) that cooperates with the movable rod (12) is welded between the movable plate (14) and the support plate (8). A movable plate (17) is fixedly installed on the movable rod (13), and a spring (18) that cooperates with the movable rod (13) is welded between the movable plate (17) and the support plate (9).
4. A non-ferrous metal rolling die according to claim 3, characterized in that, The first movable plate (14) and the first movable rod (12) extend to the upper end of the first support plate (8), the first spring (15) is sleeved on the first movable rod (12), the second movable plate (17) and the second movable rod (13) extend to one side of the second support plate (9), and the second spring (18) is sleeved on the second movable rod (13).
5. A non-ferrous metal rolling die according to claim 1, characterized in that, The traction structure includes a telescopic rod 1 (10) fixedly installed on the bracket (5) and connected to the slider 1 (6), a telescopic rod 2 (11) fixedly installed on the bracket (5) and connected to the slider 2 (7), a telescopic rod 3 (16) fixedly installed on the support plate 1 (8) and connected to the pressure table (3), a telescopic rod 4 (19) fixedly installed on the support plate 2 (9) and connected to the pressure table (3), and a controller (24) electrically connected to the telescopic rod 1 (10), telescopic rod 2 (11), telescopic rod 3 (16) and telescopic rod 4 (19) is provided on the base (1).
6. A non-ferrous metal rolling die according to claim 1, characterized in that, The clamp structure includes two mounting rods (20) placed on the base (1), and an intercepting rod (21) for intercepting non-ferrous metal is connected between the two mounting rods (20). The intercepting rod (21) is slidably fitted with symmetrically arranged moving blocks (22), and the moving blocks (22) are fixedly installed with clamping plates (23) that move against both ends of the non-ferrous metal. The mounting rods (20) are threaded with fixing bolts connected to the base (1), and the moving blocks (22) are threaded with locking bolts connected to the intercepting rods (21). The intercepting rods (21) have a U-shaped structure, and the clamping plates (23) are vertically arranged on both sides of the non-ferrous metal.