Rolling forming device for nonferrous metal processing
Through the combination of gear linkage and intelligent tension adjustment system, adjustable distance synchronous calendering of non-ferrous metal processing devices is realized, solving the problem of uneven calendering and is suitable for high-precision rolling processing of precision non-ferrous metals.
Patent Information
- Application Number
- CN202510826487.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-19
- Publication Date
- 2025-08-01
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing metal calendering devices lack the ability to adjust the calendering spacing, resulting in low calendering uniformity and accuracy, especially when dealing with non-ferrous metals of different thicknesses.
The gear linkage system is used to realize adjustable distance synchronous calendering, combining the lifting mechanism and the thickness measurement system to monitor the sheet metal thickness in real time, ensure production stability through an intelligent tension adjustment system, and adapt to material length changes through the differential motor design to ensure calendering uniformity.
High-precision rolling processing of non-ferrous metals of different thicknesses is achieved, ensuring uniform calendering effect, solving the problem of poor single-pass calendering effect, and is particularly suitable for the processing needs of precision non-ferrous metals.
Smart Images

Figure CN120394567A_ABST
Abstract
Description
Technical Field
[0001] The present invention mainly relates to the technical field of metal rolling, and specifically provides a rolling forming device for non-ferrous metal processing. Background Art
[0002] A metal rolling device is a device that applies pressure to a metal blank to cause plastic deformation, thereby obtaining metal products with the required shape, size, and performance. It mainly rolls metal ingots or blanks into different specifications of profiles such as plates, strips, and foils, refines metal grains to improve mechanical properties, realizes continuous and large-scale production of metals, and improves material utilization rate. Existing metal rolling devices usually consist of multiple sets of equipment for grading, and a single rolling device lacks the ability to adjust the rolling spacing. Moreover, existing rolling devices are usually single-pass rolling, and the rolling uniformity and accuracy are not high.
[0003] According to a non-ferrous metal rolling device provided by application number CN202411735946.2, it includes a primary rolling device for initially rolling non-ferrous metals. A precision rolling device and a winding device are arranged on the primary rolling device. The precision rolling device is used for rolling non-ferrous metals, and the winding device is used for rewinding the rolled non-ferrous metals; the primary rolling device can initially roll non-ferrous metals, and through the continuously reciprocating rolling of the movable rolling roller, it performs reciprocating rolling on non-ferrous metals, and with the heating of the heating tube, it realizes the initial rolling of non-ferrous metals and improves the rolling effect; the winding device can automatically wind the rolled non-ferrous metals to prevent the end of the non-ferrous metal from not being able to enter the insertion groove due to the rotation of the winding cylinder.
[0004] The above patent document improves the rolling effect by continuously reciprocating rolling of the movable rolling roller on non-ferrous metals and with the heating of the heating tube, and automatically winds the rolled non-ferrous metals through the winding device. However, it lacks the ability to adjust the problem of reduced tension that occurs during the length change of non-ferrous metals during the rolling process, and also lacks the ability to roll non-ferrous metals of different thicknesses. Summary of the Invention
[0005] Based on this, the purpose of the present invention is to provide a rolling forming device for non-ferrous metal processing to solve the technical problems raised in the above background art.
[0006] To achieve the above purpose, the present invention provides the following technical solutions:
[0007] A rolling forming device for non-ferrous metal processing, including a control base. A workbench is fixedly installed on the top of the control base. A gantry is fixedly installed on the top of the workbench. A bottom pressing wheel is rotatably installed at the bottom end inside the gantry. A top pressing wheel is movably installed on the top of the bottom pressing wheel. A lifting component is fixedly installed on the top of the gantry. The top pressing wheel is rotatably installed on both sides of the bottom of the lifting component. Two thickness measuring components are fixedly connected to both ends of the bottom of the lifting component. A driving component fixedly installed on the top of the workbench and used to drive the bottom pressing wheel and the top pressing wheel to operate synchronously is provided at one end outside the gantry. Two tension adjusting components are provided on both sides inside the gantry. A deflecting wheel is connected to the outside of the tension adjusting component in a lifting manner. A winding component is fixedly installed on the top of each side of the workbench.
[0008] Preferably, both ends of the middle shaft of the bottom pressing wheel are rotatably installed at the bottom end inside the gantry. A first face gear fixedly connected to the middle shaft of the bottom pressing wheel is provided on one side of the gantry close to the driving component. The tooth end of the first face gear faces the driving component.
[0009] Preferably, a lifting plate is rotatably connected to both ends of the middle shaft of the top pressing wheel. The lifting plate and the middle shaft of the top pressing wheel are connected through a bearing. A second face gear fixedly connected to the middle shaft of the top pressing wheel is provided at one end of a lifting plate. The second face gear has the same orientation as the first face gear and is in an up-and-down alignment state outside one end of the gantry.
[0010] Preferably, two sliding grooves for the lifting plate to slide are opened at both ends of the top of the gantry. Limiting grooves penetrating the side wall of the gantry are opened on both sides of the sliding grooves. Two first C-shaped frames are fixedly installed up and down at one end outside the gantry. A column gear is rotatably installed in the middle of the two first C-shaped frames. The bottom of the column gear meshes with the first face gear, and the middle and upper parts of the column gear mesh with the second face gear.
[0011] Preferably, the thickness measuring component includes two second C-shaped frames inserted into the limiting grooves at both ends and respectively fixedly connected to the same side of the two lifting plates. The second C-shaped frames are used to limit the two ends of the lifting plates. A thickness gauge is fixedly installed on each side of the two second C-shaped frames away from each other. A roller frame is fixedly provided at the bottom end of the probe at the bottom of the thickness gauge. A driven roller is rotatably installed inside the roller frame.
[0012] Preferably, the lifting component includes a first double-output shaft reduction gearbox fixedly installed at the top of the gantry. A first driving motor is fixedly installed at the top of the first double-output shaft reduction gearbox. The execution end of the first driving motor is connected to the input end of the first double-output shaft reduction gearbox. Two output ends of the first double-output shaft reduction gearbox are respectively connected to a first threaded rod. The first threaded rod is vertically and rotatably installed in the sliding groove. A first threaded sleeve is vertically installed in the middle of the lifting plate. The nut of the first threaded sleeve is threadedly connected to the first threaded rod.
[0013] Preferably, the driving component includes a single-output shaft reduction gearbox fixedly installed at the top of the workbench. A second driving motor is fixedly installed at the top of the single-output shaft reduction gearbox. The execution end of the second driving motor is connected to the input end of the single-output shaft reduction gearbox. The output end of the single-output shaft reduction gearbox is fixedly connected to the middle of the first face gear.
[0014] Preferably, the tension adjusting component includes two second threaded rods rotatably installed on one side inside the gantry. A second double-output shaft reduction gearbox is fixedly installed in the middle layer of the control base. Two output ends of the second double-output shaft reduction gearbox are respectively connected to one of the second threaded rods. A third driving motor is provided on one side of the second double-output shaft reduction gearbox. The execution end of the third driving motor is connected to the input end of the second double-output shaft reduction gearbox.
[0015] Preferably, both ends of the deflection wheel are respectively rotatably connected in a clamping plate. A pressure sensor is fixedly connected to one side of the clamping plate. An installation plate is fixedly connected to the other side of the pressure sensor. A second threaded sleeve is vertically installed in the middle of the installation plate. The nut of the second threaded sleeve is threadedly connected to the second threaded rod.
[0016] Preferably, the winding component includes a fourth driving motor fixedly installed at the top of one side of the workbench. A metal winding sleeve is fixedly sleeved on the outer wall of the execution end of the fourth driving motor. A winding card slot is opened on the side wall of the metal winding sleeve.
[0017] In summary, the present invention mainly has the following beneficial effects:
[0018] In this embodiment, the non-ferrous metal rolling forming device realizes adjustable-distance synchronous rolling through an innovative gear linkage system. The device adopts a composite transmission structure of a face gear and a column gear, so that the top pressing wheel and the bottom pressing wheel always rotate in reverse synchronously, and a stable transmission relationship is still maintained during the distance adjustment process. The lifting mechanism drives the threaded rod through a double-output shaft reduction gearbox to accurately control the distance between the pressing wheels, and cooperates with an integrated thickness measurement system to monitor the thickness of the sheet metal in real time, and can perform adaptive real-time thickness detection on the sheet metal whose rolling distance is adjusted, so as to effectively judge the current rolling effect.
[0019] The stability of continuous production is ensured by an intelligent tension adjustment system. The deflection wheel driven by a double-threaded rod cooperates with a pressure sensor to dynamically adjust the height, constantly maintaining the material tension during the rolling process. The winding component adopts a differential motor design, automatically adapting to the change in the length of the material before and after calendering. Through symmetric design and the reverse effect of each motor, the sheet metal can be repeatedly calendered, avoiding the problem of poor one-way calendering effect. The intelligent linkage between thickness measurement data and tension control ensures that the calendering uniformity of the sheet metal meets the standard, which is especially suitable for the high-precision rolling processing requirements of precision non-ferrous metals. Brief Description of the Drawings
[0020] Figure 1 Isometric view of the overall device of the present invention;
[0021] Figure 2 Front view cross-sectional view of the overall device of the present invention;
[0022] Figure 3 Partial structure magnification of the present invention Figure 1 ;
[0023] Figure 4 Partial structure magnification of the present invention Figure 1 ;
[0024] Figure 5 Rear isometric view of the overall device of the present invention;
[0025] Figure 6 Rear split view of the overall device of the present invention;
[0026] Figure 7 Bottom split view of the overall device of the present invention.
[0027] Brief Description of the Drawings: 10. Control base; 11. Workbench; 12. Gantry; 13. Bottom pressure wheel; 14. Top pressure wheel; 15. Lifting component; 16. Thickness measurement component; 17. Driving component; 18. Tension adjustment component; 19. Deflection wheel; 20. Winding component; 131. First face gear; 141. Lifting plate; 142. Bearing; 143. Second face gear; 121. Sliding groove; 122. Limiting groove; 123. First C-shaped frame; 124. Column gear; 161. Second C-shaped frame; 162. Thickness gauge; 163. Roller frame; 164. Driven roller; 151. First double-output shaft reducer; 152. First driving motor; 153. First threaded rod; 154. First threaded sleeve; 171. Single-output shaft reducer; 172. Second driving motor; 181. Second threaded rod; 182. Second double-output shaft reducer; 183. Third driving motor; 191. Clamp; 192. Pressure sensor; 193. Mounting plate; 194. Second threaded sleeve; 201. Fourth driving motor; 202. Metal winding sleeve; 203. Winding slot. Detailed Description of the Invention
[0028] The technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention. The embodiments described below by referring to the accompanying drawings are exemplary and are only used to explain the present invention, and should not be construed as a limitation to the present invention.
[0029] The embodiments of the present invention will be described below according to its overall structure.
[0030] Embodiment
[0031] Please refer specifically to the attached Figure 1 and 2, as shown in Figures 5 and 6, a rolling forming device for non-ferrous metal processing includes a control base 10. A workbench 11 is fixedly installed on the top of the control base 10. A gantry 12 is fixedly installed on the top of the workbench 11. A bottom pressing wheel 13 is rotatably installed at the inner bottom end of the gantry 12. A top pressing wheel 14 is movably installed on the top of the bottom pressing wheel 13. A lifting component 15 is fixedly installed on the top of the gantry 12. The top pressing wheel 14 is rotatably installed on both sides of the bottom of the lifting component 15. Two thickness measuring components 16 are fixedly connected to both ends of the bottom of the lifting component 15. A driving component 17 for driving the synchronous operation of the bottom pressing wheel 13 and the top pressing wheel 14 is fixedly installed at one end outside the gantry 12 on the top of the workbench 11. Two tension adjusting components 18 are arranged on both sides inside the gantry 12. A deflecting wheel 19 is connected to the outside of the tension adjusting component 18 in a lifting manner. A winding component 20 is fixedly installed on the top of both sides of the workbench 11; both ends of the middle shaft of the bottom pressing wheel 13 are rotatably installed at the inner bottom end of the gantry 12. A first face gear 131 fixedly connected to the middle shaft of the bottom pressing wheel 13 is arranged on one side outside the gantry 12 near the driving component 17. The tooth end of the first face gear 131 faces the driving component 17; both ends of the middle shaft of the top pressing wheel 14 are respectively rotatably connected to a lifting plate 141. The lifting plate 141 and the middle shaft of the top pressing wheel 14 are connected through a bearing 142. A second face gear 143 fixedly connected to the middle shaft of the top pressing wheel 14 is arranged at one end of a lifting plate 141. The second face gear 143 has the same orientation as the first face gear 131 and is in an up-and-down alignment state outside one end of the gantry 12; Two sliding grooves 121 for the sliding of the lifting plate 141 are opened at both ends of the top of the gantry 12. Limit grooves 122 penetrating the side wall of the gantry 12 are opened on both sides of the sliding groove 121. Two first C-shaped frames 123 are fixedly installed up and down at one end outside the gantry 12. A column gear 124 is rotatably installed in the middle of the two first C-shaped frames 123. The bottom of the column gear 124 meshes with the first face gear 131, and the middle and upper parts of the column gear 124 mesh with the second face gear 143; The driving component 17 includes a single-output shaft reduction gear 171 fixedly installed on the top of the workbench 11. A second driving motor 172 is fixedly installed on the top of the single-output shaft reduction gear 171. The execution end of the second driving motor 172 is connected to the input end of the single-output shaft reduction gear 171. The output end of the single-output shaft reduction gear 171 is fixedly connected to the middle of the first face gear 131.
[0032] As described above, in this embodiment, each drive motor, speed reducer, thickness gauge 162, and pressure sensor 192 are all conventional devices in industrial mechanical equipment. Each drive motor can rotate forward and backward as needed to reciprocally drive components, and each drive motor is a servo motor that can be precisely controlled. Each electrical device is connected to the control base 10 through a power circuit. A display screen is provided on the control base 10. At the same time, a conventional signal collection and control system used in existing electronic control devices is provided inside the control base 10, which can collect the operating status information of each electronic component and can also perform active adjustment and control through the control system. The two ends of the central axis of the bottom pressure wheel 13 are rotatably installed at the bottom end inside the gantry 12. The first face gear 131 at one end thereof is connected to the output end of the single-output shaft speed reducer 171 of the drive component 17. The second drive motor 172 drives the first face gear 131 to rotate through the single-output shaft speed reducer 171, thereby driving the bottom pressure wheel 13 to rotate. The two ends of the central axis of the top pressure wheel 14 are connected to the lifting plate 141 through bearings 142. The lifting plate 141 is slidably installed in the sliding groove 121 at the top of the gantry 12. The second face gear 143 at one end thereof meshes with the middle upper part of the column gear 124 outside the gantry 12. The bottom of the column gear 124 also meshes with the first face gear 131 to form a gear transmission chain. When the bottom pressure wheel 13 rotates, the first face gear 131 drives the second face gear 143 to rotate synchronously through the column gear 124, and finally drives the top pressure wheel 14 and the bottom pressure wheel 13 to rotate in reverse synchronously to realize the rolling forming of non-ferrous metal sheet metal.
[0033] Please refer specifically to the attached Figure 1 , 2 , Figures 4 and 5. The thickness measuring component 16 includes two second C-shaped frames 161 whose two ends are inserted into the limiting grooves 122 and are respectively fixedly connected to the same side of the two lifting plates 141. The second C-shaped frames 161 are used to limit the two ends of the lifting plates 141. One thickness gauge 162 is fixedly installed on each of the mutually remote sides of the two second C-shaped frames 161. The bottom probe of the thickness gauge 162 is fixedly provided with a roller frame 163 inside which a driven roller 164 is rotatably installed. The lifting component 15 includes a first double-output shaft speed reducer 151 fixedly installed at the top of the gantry 12. A first drive motor 152 is fixedly installed on the top of the first double-output shaft speed reducer 151. The execution end of the first drive motor 152 is connected to the input end of the first double-output shaft speed reducer 151. The two output ends of the first double-output shaft speed reducer 151 are respectively connected to a first threaded rod 153. The first threaded rod 153 is vertically rotatably installed in the sliding groove 121. A first threaded sleeve 154 is vertically installed in the middle of the lifting plate 141. The nut of the first threaded sleeve 154 is connected to the first threaded rod 153.
[0034] As described above, the first drive motor 152 of the lifting component 15 drives the first double-output shaft reduction gear 151, and the first threaded rods 153 at its two output ends rotate synchronously. The lifting plate 141 is driven to lift along the sliding groove 121 through the first threaded sleeve 154 in the middle of the lifting plate 141, so as to adjust the distance between the top pressing wheel 14 and the bottom pressing wheel 13 to meet the rolling requirements of sheet metals with different thicknesses. During the process of adjusting the distance between the top pressing wheel 14 and the bottom pressing wheel 13, the meshing position range of the second surface gear 143 and the column gear 124 is the distance from the middle to the upper part of the column gear 124. This design enables not only the change of the distance between the top pressing wheel 14 and the bottom pressing wheel 13, but also the maintenance of the transmission relationship between the top pressing wheel 14 and the bottom pressing wheel 13, preventing the problem of the top pressing wheel 14 from idling during the distance adjustment process, thus greatly increasing the adjustable height of the top pressing wheel 14; the second C-shaped frame 161 of the thickness measuring component 16 is fixedly connected to the lifting plate 141 and lifts synchronously with it. It can not only be used as the limiting structure on both sides of the lifting plate 141, but also, according to the adjusted rolling distance between the top pressing wheel 14 and the bottom pressing wheel 13, enables the synchronous adjustment of the relative distance between the thickness gauge 162 and the deflection wheel 19 when the deflection wheel 19 is at the topmost position during the adjustment of the rolling distance. When the middle of the deflection wheel 19 deflects and carries a sheet metal, the driven roller 164 at the bottom of the thickness gauge 162 rolls along the surface of the sheet metal. The thickness gauge 162 measures the thickness of the sheet metal in real time through a probe and feeds it back to the control base 10, and can accurately measure the rolling thickness of the sheet metal at this time.
[0035] Please refer specifically to Attachment Figure 1 、 2 As shown in Figures 3 and 7, the tension adjusting component 18 includes two second threaded rods 181 rotatably installed on one side inside the gantry 12. The second double-output shaft reduction gear 182 is fixedly installed in the middle layer inside the control base 10. One second threaded rod 181 is connected to each of the two output ends of the second double-output shaft reduction gear 182. A third drive motor 183 is provided on one side of the second double-output shaft reduction gear 182, and the execution end of the third drive motor 183 is connected to the input end of the second double-output shaft reduction gear 182; both ends of the deflection wheel 19 are rotatably connected in a clamping plate 191. A pressure sensor 192 is fixedly connected to one side of the clamping plate 191. An installation plate 193 is fixedly connected to the other side of the pressure sensor 192. A second threaded sleeve 194 is vertically installed in the middle of the installation plate 193, and the nut of the second threaded sleeve 194 is threadedly connected to the second threaded rod 181; the winding component 20 includes a fourth drive motor 201 fixedly installed at the top of one side of the workbench 11. A metal winding sleeve 202 is fixedly sleeved on the outer wall of the execution end of the fourth drive motor 201, and a winding slot 203 is provided on the side wall of the metal winding sleeve 202.
[0036] As described above, the third drive motor 183 of the tension adjustment component 18 drives the second double-output shaft speed reducer 182 to drive the rotation of two second threaded rods 181, drives the lifting of the mounting plate 193 through the second thread sleeve 194, and further drives the lifting of the deflection wheel 19. Since the number of forward and reverse turns of the third drive motor 183 is proportional to the lifting distance of the deflection wheel 19, the signal collection system in the control base 10 can simply calculate the current height of the deflection wheel 19 by collecting the operation data of the third drive motor 183; the probe movable stroke of the thickness gauge 162 is long enough to ensure that when the height of the deflection wheel 19 changes, the deflection wheel 19 at the bottom of the thickness gauge 162 can press on the upper surface of the sheet metal. Since the thickness gauge reading changes correspondingly when the tension adjustment component 18 adjusts the height of the deflection wheel 19, the actual sheet metal thickness is the detected value of the thickness gauge 162 minus the descending distance of the deflection wheel 19 relative to the topmost position. The actual thickness will be calculated by the signal collection system of the control base 10 and displayed on the display screen for the staff to observe; before the sheet metal is rolled, both ends of the sheet metal are wound around different groups of metal winding sleeves 202 through the winding slots 203. When the sheet metal is rolled, the rotation speed of the fourth drive motor 201 before rolling is slow, and the rotation speed of the fourth drive motor 201 after rolling is fast to adapt to the increase in the length of the sheet metal after rolling. At the same time, both ends of the two deflection wheels 19 responsible for deflecting the sheet metal act on the pressure sensor 192 through the clamping plates 191. When the reading of the pressure sensor 192 generates a pressure change from the set value, the third drive motor 183 starts to drive the lifting of the deflection wheel 19, so that the pressure of the sheet metal pressing on the deflection wheel 19 is maintained stable, thereby maintaining the tension during the sheet metal rolling and ensuring the stability of the rolling process. When one round of rolling process is completed, the second drive motor 172 and the two groups of fourth drive motors 201 reverse to drive the sheet metal to be rolled again. Such cyclic rolling is carried out until the rolling thickness and the uniformity of each area of the sheet metal reach the set values, and then the rolled sheet metal can be taken off.
[0037] Although the embodiments of the present invention have been shown and described, the specific embodiments are only explanations of the present invention and are not limitations to the invention. The specific features, structures, materials or characteristics described can be combined in a suitable manner in any one or more embodiments or examples. After reading this specification, those skilled in the art can make modifications, substitutions and variations without creative contributions to the embodiments according to needs, but as long as they are within the scope of the claims of the present invention, they are protected by the patent law.
Claims
1. A rolling forming device for non-ferrous metal processing, comprising a control base (10), a workbench (11) is fixedly installed on the top of the control base (10), and a gantry (12) is fixedly installed on the top of the workbench (11), characterized in that, A bottom pressure wheel (13) is rotatably installed at the inner bottom end of the gantry (12). A top pressure wheel (14) is movably installed on the top of the bottom pressure wheel (13). A lifting component (15) is fixedly installed at the top of the gantry (12). The top pressure wheels (14) are rotatably installed on both sides of the bottom of the lifting component (15). Two thickness measuring components (16) are fixedly connected to both ends of the bottom of the lifting component (15). A driving component (17) for driving the synchronous operation of the bottom pressure wheel (13) and the top pressure wheel (14) is fixedly installed at one end outside the gantry (12) and on the top of the workbench (11). Two tension adjusting components (18) are arranged on both sides inside the gantry (12). A deflecting wheel (19) is connected to the outside of the tension adjusting component (18) in a lifting manner. A winding component (20) is fixedly installed on the top of each side of the workbench (11).
2. The rolling forming device for non-ferrous metal processing according to claim 1, characterized in that, Both ends of the central axis of the bottom pressure wheel (13) are rotatably installed at the inner bottom end of the gantry (12). A first face gear (131) fixedly connecting the central axis of the bottom pressure wheel (13) is arranged on one side of the gantry (12) close to the driving component (17). The tooth end of the first face gear (131) faces the driving component (17).
3. A rolling forming device for non-ferrous metal processing according to claim 2, characterized in that, Both ends of the central axis of the top pressure wheel (14) are respectively rotatably connected to a lifting plate (141). The lifting plate (141) is connected to the central axis of the top pressure wheel (14) through a bearing (142). A second face gear (143) fixedly connecting the central axis of the top pressure wheel (14) is arranged at one end of a lifting plate (141). The second face gear (143) has the same orientation as the first face gear (131) and is in an up-and-down alignment state outside one end of the gantry (12).
4. A rolling forming device for non-ferrous metal processing according to claim 3, characterized in that, Two sliding grooves (121) for the sliding of the lifting plates (141) are opened at both ends of the top of the gantry (12). Limiting grooves (1) penetrating the side wall of the gantry (12) are opened on both sides of the sliding grooves (121). Two first C-shaped frames (123) are fixedly installed up and down at one end outside the gantry (12). A column gear (124) is rotatably installed in the middle of the two first C-shaped frames (123). The bottom of the column gear (124) meshes with the first face gear (131). The middle upper part of the column gear (124) meshes with the second face gear (143).
5. A rolling forming device for non-ferrous metal processing according to claim 4, characterized in that, The thickness measuring component (16) includes two second C-shaped frames (161) inserted into the limiting grooves (122) at both ends and respectively fixedly connected to the same side of the two lifting plates (141). The second C-shaped frames (161) are used for limiting both ends of the lifting plates (141). A thickness gauge (162) is fixedly installed on each side of the two second C-shaped frames (161) away from each other. The bottom end of the probe at the bottom of the thickness gauge (162) is fixedly provided with a roller frame (163). A driven roller (164) is rotatably installed inside the roller frame (163).
6. A rolling forming device for non-ferrous metal processing according to claim 4, characterized in that, The lifting component (15) includes a first double-output shaft reduction gear (151) fixedly installed at the top of the gantry (12). A first driving motor (152) is fixedly installed at the top of the first double-output shaft reduction gear (151). The execution end of the first driving motor (152) is connected to the input end of the first double-output shaft reduction gear (151). Two output ends of the first double-output shaft reduction gear (151) are respectively connected to a first threaded rod (153). The first threaded rod (153) is vertically and rotatably installed in the sliding groove (121). A first threaded sleeve (154) is vertically installed in the middle of the lifting plate (141). The threaded nut of the first threaded sleeve (154) is threadedly connected to the first threaded rod (153).
7. A rolling forming device for non-ferrous metal processing according to claim 2, characterized in that, The driving component (17) includes a single-output shaft reduction gear (171) fixedly installed at the top of the workbench (11). A second driving motor (172) is fixedly installed at the top of the single-output shaft reduction gear (171). The execution end of the second driving motor (172) is connected to the input end of the single-output shaft reduction gear (171). The output end of the single-output shaft reduction gear (171) is fixedly connected to the middle of the first surface gear (131).
8. A rolling forming device for non-ferrous metal processing according to claim 1, characterized in that, The tension adjusting component (18) includes two second threaded rods (181) rotatably installed on one side inside the gantry (12). A second double-output shaft reduction gear (182) is fixedly installed in the middle layer inside the control base (10). Two output ends of the second double-output shaft reduction gear (182) are respectively connected to one of the second threaded rods (181). A third driving motor (183) is arranged on one side of the second double-output shaft reduction gear (182). The execution end of the third driving motor (183) is connected to the input end of the second double-output shaft reduction gear (182).
9. A rolling forming device for non-ferrous metal processing according to claim 8, characterized in that, Both ends of the deflection wheel (19) are respectively rotatably connected in a clamping plate (191). A pressure sensor (192) is fixedly connected to one side of the clamping plate (191). An installation plate (193) is fixedly connected to the other side of the pressure sensor (192). A second threaded sleeve (194) is vertically installed in the middle of the installation plate (193). The threaded nut of the second threaded sleeve (194) is threadedly connected to the second threaded rod (181).
10. A rolling forming device for non-ferrous metal processing according to claim 1, characterized in that, The winding component (20) includes a fourth driving motor (201) fixedly installed at the top on one side of the workbench (11). A metal winding sleeve (202) is fixedly sleeved on the outer wall of the execution end of the fourth driving motor (201). A winding slot (203) is formed on the side wall of the metal winding sleeve (202).
Citation Information
Patent Citations
Non-ferrous metal calendering device
CN119634445A