Device for automatically adjusting position of molybdenum foil
The automatic adjustment device driven by sensors and servo electric cylinders solves the problems of unstable quality and low efficiency caused by inaccurate manual adjustment during the molybdenum foil rolling process, achieves precise alignment and efficient rolling of the molybdenum foil, and improves product quality and production efficiency.
Patent Information
- Application Number
- CN202422770018.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-14
- Publication Date
- 2025-09-26
- Estimated Expiration
- 2034-11-14
AI Technical Summary
The existing small-size molybdenum foil rolling process has manual adjustment inaccuracies, resulting in unstable product quality, high labor intensity, low production efficiency, and the molybdenum foil is easy to deform during the rolling process and difficult to control.
The automatic adjustment device driven by sensors and servo cylinders accurately detects the position of the molybdenum foil through sensors and uses servo cylinders to achieve precise drive, ensuring that the molybdenum foil is accurately aligned with the rollers before rolling, reducing deformation caused by alignment errors.
It improves the accuracy and consistency of molybdenum foil rolling, reduces the frequency of manual intervention, improves production efficiency and automation level, reduces the labor intensity of operators, and meets the market demand for high-quality molybdenum foil.
Smart Images

Figure CN223382268U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of metallurgical rolling processing equipment, and particularly relates to a device for automatically adjusting the position of a molybdenum foil. Background Art
[0002] In today's metalworking industry, rolling small-gauge molybdenum foil presents a number of challenges. Molybdenum foil, with its high melting point, excellent electrical conductivity, and low thermal expansion coefficient, is widely used in industries such as electronics, aerospace, and chemicals. However, the traditional rolling process for small-gauge molybdenum foil presents several challenges that need to be addressed.
[0003] The initial dimensions of raw molybdenum sheet are typically 1500mm × 600mm × 1mm, and the rolling process relies on manual operation. Before rolling, operators must place the sheet onto an unpowered guide. During each rolling process, operators must determine and adjust the position of the molybdenum foil before it enters the rolls based on the deformation of the foil. This offset is typically on the order of millimeters. However, manual adjustment is subject to subjectivity and inaccuracy. Furthermore, as the foil gradually lengthens during rolling, reaching up to approximately 2500mm, manual feeding increases the difficulty of aligning the foil's centerline with the roll's centerline. This often creates an angle, leading to further deformation after rolling and requiring further adjustment during the next feeding. This manual rolling method is not only labor-intensive but also inefficient. Furthermore, due to the inaccuracies of manual adjustment, it is difficult to guarantee the expected quality and precision of each roll. This not only increases the technical complexity of the operation but also easily leads to substandard products.
[0004] In summary, the main defects of existing small-sized molybdenum foil during rolling are as follows: high manual labor intensity leads to limited production efficiency; the inaccuracy of manual adjustment of the rolling position of the molybdenum foil affects product quality; the deformation of the molybdenum foil during the rolling process is difficult to control and requires frequent manual intervention. In order to overcome these problems, it is urgent to develop a new type of automated tooling that should be able to: automatically adjust the position of the molybdenum foil before rolling to ensure that it is accurately aligned with the rollers; ensure the consistency of the center line of the molybdenum foil and the rolling direction, and reduce deformation caused by alignment errors; reduce the frequency of manual intervention, and improve the automation level and production efficiency of the rolling process; by introducing this automated tooling, not only can the labor intensity of the operators be reduced, but the accuracy and consistency of the molybdenum foil rolling can also be significantly improved, thereby improving product quality and meeting the growing market demand. Utility Model Content
[0005] The purpose of the utility model is to provide a device for automatically adjusting the position of molybdenum foil, which solves the technical problem that in the existing molybdenum foil rolling process, the product quality is affected by the inaccuracy of manual adjustment of the molybdenum foil rolling position.
[0006] The technical solution adopted by the utility model is a device for automatically adjusting the position of the molybdenum foil, comprising a mounting frame, a plurality of transmission rubber rollers being rotatably connected to the bottom inner wall of the mounting frame, a transition plate being arranged between adjacent transmission rubber rollers, two push plates being symmetrically arranged on the middle inner wall of the mounting frame, a guide shaft a being slidably connected between the two push plates via a linear bearing, both ends of the guide shaft a being rotatably connected to the middle inner wall of the mounting frame, a T-shaped guide shaft support being sleeved on the guide shaft a and located between the two push plates, the T-shaped guide shaft support being connected to a limit plate, a first sensing detection device being connected to the limit plate, a second sensing detection device being connected to the two push plates, and the push plates being further connected to a driving mechanism for controlling the movement of the push plates on the guide shaft a.
[0007] The utility model is also characterized in that:
[0008] The first sensing detection device includes a guide shaft support connected to the limit plate, the guide shaft support is vertically connected to the guide shaft, the guide shaft is circumferentially clamped with a fixing clamp, the fixing clamp is connected to the photoelectric mounting plate b, and the photoelectric mounting plate b is connected to the sensor b.
[0009] The second sensing detection device includes a photoelectric mounting board a connected to the push plate, and a sensor a is connected to the photoelectric mounting board a.
[0010] The driving mechanism includes a servo electric cylinder a and a servo electric cylinder b. The output end of the servo electric cylinder b is connected to a compensation rod, which passes through two push plates. The end of the compensation rod passing through the push plate and the output end of the servo electric cylinder a are both connected to floating joints, and the floating joints are both connected to the push plates.
[0011] One end of the plurality of transmission rubber rollers passes through the mounting frame, and one end of the plurality of transmission rubber rollers passing through the mounting frame is connected with a false double-row sprocket, and the false double-row sprocket is connected with a reduction motor.
[0012] Guide shafts c are installed on both side walls of one end of the mounting frame, and a sliding sleeve is installed on the guide shaft c; the upper plane of the sliding sleeve is connected to the upper guide plate, and the two sides of the upper guide plate are connected to the mounting frame through locking handles a, and a pull plate is connected in the middle of the upper guide plate, and the two sides of the pull plate are connected to the limit plate through locking handles b, and a handle is provided on the pull plate, and the lower plane of the sliding sleeve is connected to the lower guide plate.
[0013] The reduction motor, the servo electric cylinder a and the servo electric cylinder b are all electrically connected to the electric control box.
[0014] Sensor a and sensor b are electrically connected to the electric control box through a wire tube.
[0015] Compared with the prior art, the beneficial effects of the present invention are:
[0016] Through precise detection by sensors and precise drive by servo electric cylinders, the utility model can automatically adjust the position of the molybdenum foil before rolling to ensure that it is accurately aligned with the rolling rollers; ensure the consistency of the center line of the molybdenum foil and the rolling direction, reduce deformation caused by alignment errors; reduce the frequency of manual intervention, and improve the automation level and production efficiency of the rolling process; it can not only reduce the labor intensity of operators, but also significantly improve the accuracy and consistency of molybdenum foil rolling, thereby improving product quality and meeting the growing market demand. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 This is a schematic structural diagram of a device for automatically adjusting the position of a molybdenum foil according to the present invention;
[0018] Figure 2 yes Figure 1 The main view;
[0019] Figure 3 yes Figure 1 Top view of .
[0020] In the figure, 1. Mounting frame, 2. Transmission rubber roller, 3. False double-row sprocket, 4. Transition plate, 5. Reducer motor, 6. Electric control box, 7. Guide shaft a, 8. Linear bearing, 9. Push plate, 10. Floating joint, 11. Servo cylinder a, 12. Servo cylinder b, 13. Compensating rod, 14. Photoelectric mounting plate a, 15. Sensor a, 16. T-type guide shaft support, 17. Limit plate, 18. Guide shaft support, 19. Guide shaft b, 20. Fixing clamp, 21. Photoelectric mounting plate b, 22. Sensor b, 23. Guide shaft c, 24. Sliding sleeve, 25. Upper guide plate, 26. Locking handle a, 27. Pull plate, 28. Locking handle b, 29. Handle, 30. Lower guide plate, 31. Touch screen, 32. Wire tube. DETAILED DESCRIPTION
[0021] The following will be combined with the drawings in the embodiments of this application to clearly and completely describe the technical solutions in the embodiments of this application. Obviously, the embodiments described are only part of the embodiments of this application, not all of the embodiments. Based on the embodiments in this application, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of this application.
[0022] Example 1
[0023] like Figure 1-3 As shown, the device for automatically adjusting the position of the molybdenum foil disclosed in this embodiment includes a mounting frame 1 with a U-shaped longitudinal section. The mounting frame 1 serves as the basic structure of the entire device for automatically adjusting the position of the molybdenum foil, and the mounting frame 1 is mainly used to install multiple components.
[0024] A plurality of transmission rubber rollers 2 are rotatably connected to the inner wall of the bottom of the mounting frame 1 . A transition plate 4 is provided between adjacent transmission rubber rollers 2 . The transition plate 4 is connected to the mounting frame 1 to achieve a smooth transition.
[0025] Two push plates 9 are symmetrically provided on the inner wall of the middle portion of the mounting frame 1 . Two guide shafts a7 are slidably connected between the two push plates 9 via linear bearings 8 to ensure the linear motion of the push plates 9 .
[0026] The two guide shafts a7 are respectively located near the two ends of the push plate 9, and the two ends of the two guide shafts a7 are rotatably connected to the middle inner wall of the mounting frame 1.
[0027] A T-shaped guide shaft support 16 is sleeved on the guide shaft a7 and located between the two push plates 9. The T-shaped guide shaft support 16 is connected to a limiting plate 17 to ensure stable positioning of the guide shaft a7.
[0028] The limiting plate 17 is connected to a first sensing device, the two push plates 9 are connected to a second sensing device, and the push plates 9 are further connected to a driving mechanism for controlling the push plates 9 to move on the guide shaft a7.
[0029] The utility model realizes rapid and fine adjustment of the position of the molybdenum foil before rolling through precise detection of the sensor and precise drive of the servo electric cylinder; reduces manual labor intensity and improves production efficiency; improves the accuracy of the position of the molybdenum foil before rolling, thereby ensuring the stability of product quality; simplifies the operating process and facilitates automatic control.
[0030] The utility model can automatically adjust the position of the molybdenum foil before rolling, ensuring that it is accurately aligned with the rolling roller; ensure the consistency of the center line of the molybdenum foil and the rolling direction, reduce deformation caused by alignment error; reduce the frequency of manual intervention, and improve the automation level and production efficiency of the rolling process; not only can it reduce the labor intensity of the operators, but also can significantly improve the accuracy and consistency of molybdenum foil rolling, thereby improving product quality and meeting the growing market demand.
[0031] Example 2
[0032] The device for automatically adjusting the position of the molybdenum foil disclosed in this embodiment includes a mounting frame 1 with a U-shaped longitudinal section. The mounting frame 1 serves as the basic structure of the entire device for automatically adjusting the position of the molybdenum foil, and is mainly used to install multiple components.
[0033] A plurality of transmission rubber rollers 2 are rotatably connected to the inner wall of the bottom of the mounting frame 1 . A transition plate 4 is provided between adjacent transmission rubber rollers 2 . The transition plate 4 is connected to the mounting frame 1 to achieve a smooth transition.
[0034] Two push plates 9 are symmetrically provided on the inner wall of the middle portion of the mounting frame 1 . Two guide shafts a7 are slidably connected between the two push plates 9 via linear bearings 8 to ensure the linear motion of the push plates 9 .
[0035] The two guide shafts a7 are respectively located near the two ends of the push plate 9, and the two ends of the two guide shafts a7 are rotatably connected to the middle inner wall of the mounting frame 1.
[0036] A T-shaped guide shaft support 16 is sleeved on the guide shaft a7 and located between the two push plates 9. The T-shaped guide shaft support 16 is connected to a limiting plate 17 to ensure stable positioning of the guide shaft a7.
[0037] The limiting plate 17 is connected to a first sensing device, the two push plates 9 are connected to a second sensing device, and the push plates 9 are further connected to a driving mechanism for controlling the push plates 9 to move on the guide shaft a7.
[0038] The utility model realizes rapid and fine adjustment of the position of the molybdenum foil before rolling through precise detection of the sensor and precise drive of the servo electric cylinder; reduces manual labor intensity and improves production efficiency; improves the accuracy of the position of the molybdenum foil before rolling, thereby ensuring the stability of product quality; simplifies the operating process and facilitates automatic control.
[0039] The utility model can automatically adjust the position of the molybdenum foil before rolling, ensuring that it is accurately aligned with the rolling roller; ensure the consistency of the center line of the molybdenum foil and the rolling direction, reduce deformation caused by alignment error; reduce the frequency of manual intervention, and improve the automation level and production efficiency of the rolling process; not only can it reduce the labor intensity of the operators, but also can significantly improve the accuracy and consistency of molybdenum foil rolling, thereby improving product quality and meeting the growing market demand.
[0040] Furthermore, the first sensing detection device includes a guide shaft support 18 connected to the limit plate 17, a guide shaft b19 is vertically connected to the guide shaft support 18, and a fixing clamp 20 is circumferentially clamped on the guide shaft b19 for precise clamping and detection. The fixing clamp 20 is connected to a photoelectric mounting plate b21, and the photoelectric mounting plate b21 is connected to a sensor b22. The sensor b22 is used to detect the tail edge of the molybdenum foil.
[0041] Example 3
[0042] The device for automatically adjusting the position of the molybdenum foil disclosed in this embodiment includes a mounting frame 1 with a U-shaped longitudinal section. The mounting frame 1 serves as the basic structure of the entire device for automatically adjusting the position of the molybdenum foil, and is mainly used to install multiple components.
[0043] A plurality of transmission rubber rollers 2 are rotatably connected to the inner wall of the bottom of the mounting frame 1 . A transition plate 4 is provided between adjacent transmission rubber rollers 2 . The transition plate 4 is connected to the mounting frame 1 to achieve a smooth transition.
[0044] Two push plates 9 are symmetrically provided on the inner wall of the middle portion of the mounting frame 1 . Two guide shafts a7 are slidably connected between the two push plates 9 via linear bearings 8 to ensure the linear motion of the push plates 9 .
[0045] The two guide shafts a7 are respectively located near the two ends of the push plate 9, and the two ends of the two guide shafts a7 are rotatably connected to the middle inner wall of the mounting frame 1.
[0046] A T-shaped guide shaft support 16 is sleeved on the guide shaft a7 and located between the two push plates 9. The T-shaped guide shaft support 16 is connected to a limiting plate 17 to ensure stable positioning of the guide shaft a7.
[0047] The limiting plate 17 is connected to a first sensing device, the two push plates 9 are connected to a second sensing device, and the push plates 9 are further connected to a driving mechanism for controlling the push plates 9 to move on the guide shaft a7.
[0048] The utility model realizes rapid and fine adjustment of the position of the molybdenum foil before rolling through precise detection of the sensor and precise drive of the servo electric cylinder; reduces manual labor intensity and improves production efficiency; improves the accuracy of the position of the molybdenum foil before rolling, thereby ensuring the stability of product quality; simplifies the operating process and facilitates automatic control.
[0049] The utility model can automatically adjust the position of the molybdenum foil before rolling, ensuring that it is accurately aligned with the rolling roller; ensure the consistency of the center line of the molybdenum foil and the rolling direction, reduce deformation caused by alignment error; reduce the frequency of manual intervention, and improve the automation level and production efficiency of the rolling process; not only can it reduce the labor intensity of the operators, but also can significantly improve the accuracy and consistency of molybdenum foil rolling, thereby improving product quality and meeting the growing market demand.
[0050] Furthermore, the first sensing detection device includes a guide shaft support 18 connected to the limit plate 17, and a guide shaft b19 is vertically connected to the guide shaft support 18. The guide shaft b19 is circumferentially clamped with a fixing clamp 20 for precise clamping and detection. The fixing clamp 20 is connected to a photoelectric mounting plate b21, and the photoelectric mounting plate b21 is connected to a sensor b22. The sensor b22 is used to detect and monitor the tail edge of the molybdenum foil. The second sensing detection device includes a photoelectric mounting plate a14 connected to the push plate 9, and the photoelectric mounting plate a14 is connected to a sensor a15. The sensor a15 automatically detects and determines the edge position of the molybdenum plate.
[0051] Example 4
[0052] The device for automatically adjusting the position of the molybdenum foil disclosed in this embodiment includes a mounting frame 1 with a U-shaped longitudinal section. The mounting frame 1 serves as the basic structure of the entire device for automatically adjusting the position of the molybdenum foil, and is mainly used to install multiple components.
[0053] A plurality of transmission rubber rollers 2 are rotatably connected to the inner wall of the bottom of the mounting frame 1 . A transition plate 4 is provided between adjacent transmission rubber rollers 2 . The transition plate 4 is connected to the mounting frame 1 to achieve a smooth transition.
[0054] Two push plates 9 are symmetrically provided on the inner wall of the middle portion of the mounting frame 1 . Two guide shafts a7 are slidably connected between the two push plates 9 via linear bearings 8 to ensure the linear motion of the push plates 9 .
[0055] The two guide shafts a7 are respectively located near the two ends of the push plate 9, and the two ends of the two guide shafts a7 are rotatably connected to the middle inner wall of the mounting frame 1.
[0056] A T-shaped guide shaft support 16 is sleeved on the guide shaft a7 and located between the two push plates 9. The T-shaped guide shaft support 16 is connected to a limiting plate 17 to ensure stable positioning of the guide shaft a7.
[0057] The limiting plate 17 is connected to a first sensing device, the two push plates 9 are connected to a second sensing device, and the push plates 9 are further connected to a driving mechanism for controlling the push plates 9 to move on the guide shaft a7.
[0058] The utility model realizes rapid and fine adjustment of the position of the molybdenum foil before rolling through precise detection of the sensor and precise drive of the servo electric cylinder; reduces manual labor intensity and improves production efficiency; improves the accuracy of the position of the molybdenum foil before rolling, thereby ensuring the stability of product quality; simplifies the operating process and facilitates automatic control.
[0059] The utility model can automatically adjust the position of the molybdenum foil before rolling, ensuring that it is accurately aligned with the rolling roller; ensure the consistency of the center line of the molybdenum foil and the rolling direction, reduce deformation caused by alignment error; reduce the frequency of manual intervention, and improve the automation level and production efficiency of the rolling process; not only can it reduce the labor intensity of the operators, but also can significantly improve the accuracy and consistency of molybdenum foil rolling, thereby improving product quality and meeting the growing market demand.
[0060] Furthermore, the driving mechanism includes a servo cylinder a11 and a servo cylinder b12. The output end of the servo cylinder b12 is connected to a compensation rod 13. The compensation rod 13 passes through the two push plates 9. The ends of the compensation rod 13 passing through the push plates 9 and the output end of the servo cylinder a11 are both connected to floating joints 10. The floating joints 10 are both connected to the push plates 9 for adapting to adjustments in different positions. The push plates 9 slide along the guide shaft a7 and are driven by the servo cylinder a11 and the servo cylinder b12. The servo cylinders a11 and the servo cylinders b12 can drive the push plates 9 to slide along the guide shaft a7 for adjusting the positions of the two push plates 9, and can further complete the centering and offset actions of the molybdenum foil during work to achieve efficient and precise push plate movement.
[0061] Example 5
[0062] The device for automatically adjusting the position of the molybdenum foil disclosed in this embodiment includes a mounting frame 1 with a U-shaped longitudinal section. The mounting frame 1 serves as the basic structure of the entire device for automatically adjusting the position of the molybdenum foil, and is mainly used to install multiple components.
[0063] A plurality of transmission rubber rollers 2 are rotatably connected to the inner wall of the bottom of the mounting frame 1 . A transition plate 4 is provided between adjacent transmission rubber rollers 2 . The transition plate 4 is connected to the mounting frame 1 to achieve a smooth transition.
[0064] Two push plates 9 are symmetrically provided on the inner wall of the middle portion of the mounting frame 1 . Two guide shafts a7 are slidably connected between the two push plates 9 via linear bearings 8 to ensure the linear motion of the push plates 9 .
[0065] The two guide shafts a7 are respectively located near the two ends of the push plate 9, and the two ends of the two guide shafts a7 are rotatably connected to the middle inner wall of the mounting frame 1.
[0066] A T-shaped guide shaft support 16 is sleeved on the guide shaft a7 and located between the two push plates 9. The T-shaped guide shaft support 16 is connected to a limiting plate 17 to ensure stable positioning of the guide shaft a7.
[0067] The limiting plate 17 is connected to a first sensing device, the two push plates 9 are connected to a second sensing device, and the push plates 9 are further connected to a driving mechanism for controlling the push plates 9 to move on the guide shaft a7.
[0068] The utility model realizes rapid and fine adjustment of the position of the molybdenum foil before rolling through precise detection of the sensor and precise drive of the servo electric cylinder; reduces manual labor intensity and improves production efficiency; improves the accuracy of the position of the molybdenum foil before rolling, thereby ensuring the stability of product quality; simplifies the operating process and facilitates automatic control.
[0069] The utility model can automatically adjust the position of the molybdenum foil before rolling, ensuring that it is accurately aligned with the rolling roller; ensure the consistency of the center line of the molybdenum foil and the rolling direction, reduce deformation caused by alignment error; reduce the frequency of manual intervention, and improve the automation level and production efficiency of the rolling process; not only can it reduce the labor intensity of the operators, but also can significantly improve the accuracy and consistency of molybdenum foil rolling, thereby improving product quality and meeting the growing market demand.
[0070] Furthermore, one end of several transmission rubber rollers 2 passes through the mounting frame 1, and one end of several transmission rubber rollers 2 passing through the mounting frame 1 is connected to a fake double-row sprocket 3 to ensure the stability of the transmission. The fake double-row sprocket 3 is connected to a reduction motor 5, and the reduction motor 5 can be installed on the mounting frame 1.
[0071] The dummy double-row sprocket 3 is an existing technical structure, corresponding to the double-row sprocket. The difference is that the two rows of sprockets in the dummy double-row sprocket 3 are spaced wider apart. Multiple dummy double-row sprockets 3 can be connected in series via multiple single-row chains to transmit power to multiple rollers. The double-row sprocket is connected to the finished double-row chain, reducing the space occupied by the structure while transmitting the same power.
[0072] Example 6
[0073] The device for automatically adjusting the position of the molybdenum foil disclosed in this embodiment includes a mounting frame 1 with a U-shaped longitudinal section. The mounting frame 1 serves as the basic structure of the entire device for automatically adjusting the position of the molybdenum foil, and is mainly used to install multiple components.
[0074] A plurality of transmission rubber rollers 2 are rotatably connected to the inner wall of the bottom of the mounting frame 1 . A transition plate 4 is provided between adjacent transmission rubber rollers 2 . The transition plate 4 is connected to the mounting frame 1 to achieve a smooth transition.
[0075] Two push plates 9 are symmetrically provided on the inner wall of the middle portion of the mounting frame 1 . Two guide shafts a7 are slidably connected between the two push plates 9 via linear bearings 8 to ensure the linear motion of the push plates 9 .
[0076] The two guide shafts a7 are respectively located near the two ends of the push plate 9, and the two ends of the two guide shafts a7 are rotatably connected to the middle inner wall of the mounting frame 1.
[0077] A T-shaped guide shaft support 16 is sleeved on the guide shaft a7 and located between the two push plates 9. The T-shaped guide shaft support 16 is connected to a limiting plate 17 to ensure stable positioning of the guide shaft a7.
[0078] The limiting plate 17 is connected to a first sensing device, the two push plates 9 are connected to a second sensing device, and the push plates 9 are further connected to a driving mechanism for controlling the push plates 9 to move on the guide shaft a7.
[0079] The utility model realizes rapid and fine adjustment of the position of the molybdenum foil before rolling through precise detection of the sensor and precise drive of the servo electric cylinder; reduces manual labor intensity and improves production efficiency; improves the accuracy of the position of the molybdenum foil before rolling, thereby ensuring the stability of product quality; simplifies the operating process and facilitates automatic control.
[0080] The utility model can automatically adjust the position of the molybdenum foil before rolling, ensuring that it is accurately aligned with the rolling roller; ensure the consistency of the center line of the molybdenum foil and the rolling direction, reduce deformation caused by alignment error; reduce the frequency of manual intervention, and improve the automation level and production efficiency of the rolling process; not only can it reduce the labor intensity of the operators, but also can significantly improve the accuracy and consistency of molybdenum foil rolling, thereby improving product quality and meeting the growing market demand.
[0081] Furthermore, guide shafts c23 are installed on both side walls of one end of the mounting frame 1, and a sliding sleeve 24 is installed on the guide shaft c23; the upper plane of the sliding sleeve 24 is connected to an upper guide plate 25, and the two sides of the upper guide plate 25 are connected to the mounting frame 1 through locking handles a26, and a pull plate 27 is connected in the middle of the upper guide plate 25, and the two sides of the pull plate 27 are connected to the limit plate 17 through locking handles b28. A handle 29 is provided on the pull plate 27 for easy operation, and a lower guide plate 30 is connected to the lower plane of the sliding sleeve 24, and a 40 mm high channel is formed between the upper guide plate 25 and the lower guide plate 30. When the molybdenum foil is fed in, it is restricted by the channel to ensure that it can reliably enter the rolling mill.
[0082] The guide shaft c23, the sliding sleeve 24, the upper guide plate 25, and the lower guide plate 30 are used together to achieve stable guidance of the molybdenum foil. The movement of the pulling plate 27, the upper guide plate 25, and the lower guide plate 30 in the direction of movement of the aluminum foil can be adjusted by the locking handle a26 and the locking handle b28. The movement of the upper guide plate 25 and the lower guide plate 30 can adjust the gap between the guide plate and the roller.
[0083] When rolling molybdenum foil, the gap between the upper guide plate 25 and the lower guide plate 30 and the roller is very small to ensure that the molybdenum foil moves between the upper guide plate 25 and the lower guide plate 30. When the roller needs to be replaced after a long period of work, the gap between the upper guide plate 25 and the lower guide plate 30 and the roller is increased to complete the roller replacement work.
[0084] Example 7
[0085] The device for automatically adjusting the position of the molybdenum foil disclosed in this embodiment includes a mounting frame 1 with a U-shaped longitudinal section. The mounting frame 1 serves as the basic structure of the entire device for automatically adjusting the position of the molybdenum foil, and is mainly used to install multiple components.
[0086] A plurality of transmission rubber rollers 2 are rotatably connected to the inner wall of the bottom of the mounting frame 1 . A transition plate 4 is provided between adjacent transmission rubber rollers 2 . The transition plate 4 is connected to the mounting frame 1 to achieve a smooth transition.
[0087] Two push plates 9 are symmetrically provided on the inner wall of the middle portion of the mounting frame 1 . Two guide shafts a7 are slidably connected between the two push plates 9 via linear bearings 8 to ensure the linear motion of the push plates 9 .
[0088] The two guide shafts a7 are respectively located near the two ends of the push plate 9, and the two ends of the two guide shafts a7 are rotatably connected to the middle inner wall of the mounting frame 1.
[0089] A T-shaped guide shaft support 16 is sleeved on the guide shaft a7 and located between the two push plates 9. The T-shaped guide shaft support 16 is connected to a limiting plate 17 to ensure stable positioning of the guide shaft a7.
[0090] The limiting plate 17 is connected to a first sensing device, the two push plates 9 are connected to a second sensing device, and the push plates 9 are further connected to a driving mechanism for controlling the push plates 9 to move on the guide shaft a7.
[0091] The utility model realizes rapid and fine adjustment of the position of the molybdenum foil before rolling through precise detection of the sensor and precise drive of the servo electric cylinder; reduces manual labor intensity and improves production efficiency; improves the accuracy of the position of the molybdenum foil before rolling, thereby ensuring the stability of product quality; simplifies the operating process and facilitates automatic control.
[0092] The utility model can automatically adjust the position of the molybdenum foil before rolling, ensuring that it is accurately aligned with the rolling roller; ensure the consistency of the center line of the molybdenum foil and the rolling direction, reduce deformation caused by alignment error; reduce the frequency of manual intervention, and improve the automation level and production efficiency of the rolling process; not only can it reduce the labor intensity of the operators, but also can significantly improve the accuracy and consistency of molybdenum foil rolling, thereby improving product quality and meeting the growing market demand.
[0093] Furthermore, the reduction motor 5, the servo electric cylinder a11 and the servo electric cylinder b12 are all electrically connected to the electric control box 6, which is used to control the speed of the reduction motor 5 and accurately drive the servo electric cylinder a11 and the servo electric cylinder b12.
[0094] Example 8
[0095] The device for automatically adjusting the position of the molybdenum foil disclosed in this embodiment includes a mounting frame 1 with a U-shaped longitudinal section. The mounting frame 1 serves as the basic structure of the entire device for automatically adjusting the position of the molybdenum foil, and is mainly used to install multiple components.
[0096] A plurality of transmission rubber rollers 2 are rotatably connected to the inner wall of the bottom of the mounting frame 1 . A transition plate 4 is provided between adjacent transmission rubber rollers 2 . The transition plate 4 is connected to the mounting frame 1 to achieve a smooth transition.
[0097] Two push plates 9 are symmetrically provided on the inner wall of the middle portion of the mounting frame 1 . Two guide shafts a7 are slidably connected between the two push plates 9 via linear bearings 8 to ensure the linear motion of the push plates 9 .
[0098] The two guide shafts a7 are respectively located near the two ends of the push plate 9, and the two ends of the two guide shafts a7 are rotatably connected to the middle inner wall of the mounting frame 1.
[0099] A T-shaped guide shaft support 16 is sleeved on the guide shaft a7 and located between the two push plates 9. The T-shaped guide shaft support 16 is connected to a limiting plate 17 to ensure stable positioning of the guide shaft a7.
[0100] The limiting plate 17 is connected to a first sensing device, the two push plates 9 are connected to a second sensing device, and the push plates 9 are further connected to a driving mechanism for controlling the push plates 9 to move on the guide shaft a7.
[0101] The utility model realizes rapid and fine adjustment of the position of the molybdenum foil before rolling through precise detection of the sensor and precise drive of the servo electric cylinder; reduces manual labor intensity and improves production efficiency; improves the accuracy of the position of the molybdenum foil before rolling, thereby ensuring the stability of product quality; simplifies the operating process and facilitates automatic control.
[0102] The utility model can automatically adjust the position of the molybdenum foil before rolling, ensuring that it is accurately aligned with the rolling roller; ensure the consistency of the center line of the molybdenum foil and the rolling direction, reduce deformation caused by alignment error; reduce the frequency of manual intervention, and improve the automation level and production efficiency of the rolling process; not only can it reduce the labor intensity of the operators, but also can significantly improve the accuracy and consistency of molybdenum foil rolling, thereby improving product quality and meeting the growing market demand.
[0103] Furthermore, the sensor a15 and the sensor b22 are electrically connected to the electric control box 6 through the wire tube 32 and are specifically used to detect the edge of the molybdenum foil to improve the accuracy of the detection.
[0104] As a preferred solution, the present invention can also install a touch screen 31 on the electric control box 6 and electrically connect it to the electric control box 6. The position of the push plate 9 can be adjusted and the start, stop and speed of the reduction motor 5 can be controlled through the touch screen 31, thereby achieving convenience and flexibility in operation.
[0105] The use process of this utility model is as follows:
[0106] Step 1: Align the molybdenum plate;
[0107] The operator places the molybdenum plate to be rolled in the designated position of the device for automatically adjusting the position of the molybdenum foil. Using touch screen 31, the operator selects and presses the "Center" button to initiate the centering process. Servo cylinders a11 and b12 work together to drive push plate 9 to the sides of the molybdenum plate. Sensor a15 automatically detects and determines the edge position of the molybdenum plate. Based on the feedback from sensor a15, push plate 9 automatically adjusts to the center of the molybdenum plate, completing the centering process.
[0108] Step 2: Molybdenum plate rolling;
[0109] The operator selects and presses the "Roll" button on the touch screen 31 to start the rolling process; the reduction motor 5 is activated, driving the molybdenum plate to enter the rolling mill smoothly; the sensor b22 monitors the tail edge of the molybdenum foil in real time, and once a signal is detected, the system automatically sets a delay; after completing a single rolling, the molybdenum foil is controlled to return to its initial position.
[0110] Step 3: Molybdenum foil position adjustment and re-rolling;
[0111] Based on the initial rolling results, the operator can fine-tune the position of the molybdenum foil through the "Adjust" button on the touch screen 31; after the adjustment is completed, the "Roll" button is pressed again to repeat the rolling process until the required specifications are reached; after the rolling is completed, the operator takes out the rolled molybdenum foil and prepares for the next operation or packaging.
[0112] Finally, it should be noted that, in this document, relational terms such as first and second, etc., are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprises," "comprising," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or device comprising a series of elements includes not only those elements, but also other elements not explicitly listed, or elements inherent to such process, method, article, or device. In the absence of further limitations, an element defined by the phrase "comprising a ..." does not exclude the presence of additional identical elements in the process, method, article, or device comprising the element.
[0113] The various embodiments in this specification are described in a progressive manner, and each embodiment focuses on the differences from other embodiments. The same or similar parts between the various embodiments can be referenced to each other.
[0114] The above description of the disclosed embodiments is intended to enable one skilled in the art to implement or use the present application. Various modifications to these embodiments will be readily apparent to one skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of the present application. Therefore, the present application is not limited to the embodiments shown herein, but is intended to conform to the widest scope consistent with the principles and novel features disclosed herein.
Claims
1. A device for automatically adjusting the position of a molybdenum foil, characterized in that: The invention comprises a mounting frame (1), wherein the bottom inner wall of the mounting frame (1) is rotatably connected to a plurality of transmission rubber rollers (2), a transition plate (4) is provided between adjacent transmission rubber rollers (2), and two push plates (9) are symmetrically provided on the middle inner wall of the mounting frame (1), a guide shaft a (7) is slidably connected between the two push plates (9) through a linear bearing (8), and both ends of the guide shaft a (7) are rotatably connected to the middle inner wall of the mounting frame (1), a T-shaped guide shaft support (16) is sleeved on the guide shaft a (7) and located between the two push plates (9), the T-shaped guide shaft support (16) is connected to a limit plate (17), a first sensor detection device is connected to the limit plate (17), a second sensor detection device is connected to the two push plates (9), and the push plates (9) are further connected to a driving mechanism for controlling the push plates (9) to move on the guide shaft a (7).
2. The device for automatically adjusting the position of the molybdenum foil according to claim 1, characterized in that: The first sensing detection device comprises a guide shaft support (18) connected to a limit plate (17), a guide shaft b (19) vertically connected to the guide shaft support (18), a fixing clamp (20) circumferentially clamped to the guide shaft b (19), a photoelectric mounting plate b (21) connected to the fixing clamp (20), and a sensor b (22) connected to the photoelectric mounting plate b (21).
3. The device for automatically adjusting the position of the molybdenum foil according to claim 2, characterized in that: The second sensing detection device comprises a photoelectric mounting plate a (14) connected to the push plate (9), and a sensor a (15) is connected to the photoelectric mounting plate a (14).
4. The device for automatically adjusting the position of the molybdenum foil according to claim 3, characterized in that: The sensor a (15) and the sensor b (22) are electrically connected to the electric control box (6) via a wire tube (32).
5. The device for automatically adjusting the position of the molybdenum foil according to claim 1, characterized in that: The driving mechanism includes a servo electric cylinder a (11) and a servo electric cylinder b (12), wherein the output end of the servo electric cylinder b (12) is connected to a compensation rod (13), the compensation rod (13) passes through two push plates (9), and the end of the compensation rod (13) passing through the push plate (9) and the output end of the servo electric cylinder a (11) are both connected to a floating joint (10), and the floating joint (10) is connected to the push plate (9).
6. The device for automatically adjusting the position of the molybdenum foil according to claim 5, characterized in that: One end of the plurality of transmission rubber rollers (2) passes through the mounting frame (1), and one end of the plurality of transmission rubber rollers (2) passing through the mounting frame (1) is connected to a dummy double-row sprocket (3), and the dummy double-row sprocket (3) is connected to a reduction motor (5).
7. The device for automatically adjusting the position of the molybdenum foil according to claim 6, characterized in that: The reduction motor (5), the servo electric cylinder a (11) and the servo electric cylinder b (12) are all electrically connected to the electric control box (6).
8. The device for automatically adjusting the position of the molybdenum foil according to claim 1, characterized in that: A guide shaft c (23) is installed on both side walls of one end of the mounting frame (1), and a sliding sleeve (24) is installed on the guide shaft c (23); an upper guide plate (25) is connected to the upper plane of the sliding sleeve (24), and both sides of the upper guide plate (25) are connected to the mounting frame (1) through locking handles a (26); a pull plate (27) is connected in the middle of the upper guide plate (25), and both sides of the pull plate (27) are connected to the limit plate (17) through locking handles b (28); a handle (29) is provided on the pull plate (27), and a lower guide plate (30) is connected to the lower plane of the sliding sleeve (24).