Titanium-clad aluminum type anode plate rolling equipment for hydrometallurgy

By designing a titanium-clad aluminum-type anode plate rolling equipment for hydrometallurgy that automatically adjusts the roll gap, the problem of manual thickness adjustment is solved, efficient automatic rolling is achieved, and equipment wear is reduced.

CN120394554APending Publication Date: 2025-08-01XIANGXI LINGYUN NONFERROUS METAL MATERIAL CO LTD
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Patent Information

Application Number
CN202510848056.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-24
Publication Date
2025-08-01

AI Technical Summary

Technical Problem

The existing anode plate rolling equipment for titanium-clad aluminum-type hydrometallurgy requires multiple adjustments to the rolling thickness, resulting in low production efficiency.

Method used

A rolling equipment including a gantry, an upper rolling roller and a lower roll are designed. The upper rolls are driven by a motor to rotate in reverse synchronously, and are equipped with a locking mechanism and a hydraulic system to automatically adjust the roll gap and improve efficiency.

Benefits of technology

The automatic rolling process of the anode plate is realized, reducing manual intervention, improving production efficiency, and reducing equipment wear.

✦ Generated by Eureka AI based on patent content.

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Abstract

The anode plate rolling equipment comprises a portal frame fixed to a base, an upper roller and a lower roller are arranged on the portal frame, two sliding seats are connected to the portal frame in a sliding mode, the middle of a cross beam of the portal frame penetrates through and is connected with a threaded sleeve in a fixed-axis rotating mode, and a stud is connected into the threaded sleeve in a threaded mode. A telescopic rod is arranged on a cross beam of the portal frame, a pump cylinder and a first sliding cylinder are fixed to the cross beam of the portal frame, a piston plate is slidably connected into the pump cylinder, a second rack is fixed to the bottom face of the piston plate, a gear is fixed to the upper end of the telescopic rod, and a first sliding plate is slidably connected into the first sliding cylinder. A first rack is fixed to the first sliding plate, the gear ring sleeves and is coaxially and fixedly connected to the upper end of the threaded sleeve, and a locking mechanism is arranged on the sliding base. According to the titanium-clad aluminum type anode plate rolling equipment for hydrometallurgy, the gap between the two rollers is automatically adjusted after rolling each time, time and labor are saved, and the working efficiency is greatly improved.
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Description

Technical Field

[0001] The present invention relates to the field of preparation of anode plates for metallurgy, and particularly to a rolling equipment for anode plates for hydrometallurgy in the form of titanium-clad aluminum. Background Technique

[0002] In the process of wet extraction of metals such as zinc, copper, nickel, cobalt, manganese, and chromium, anode plates made of various materials are required. At present, during the production and processing of anode plates in the form of titanium-clad aluminum, after forming, they need to be rolled multiple times according to the designed thickness to make them alloy plates with qualified thickness. In the existing rolling process, the adjustment of the rolling thickness needs to be carried out multiple times, so it is time-consuming and laborious, reducing production efficiency. In view of this, we propose a rolling equipment for anode plates for hydrometallurgy in the form of titanium-clad aluminum. Summary of the Invention

[0003] The purpose of the present invention is to provide a rolling equipment for anode plates for hydrometallurgy in the form of titanium-clad aluminum to solve the problems proposed in the above background technique. To achieve the above purpose, the present invention provides the following technical solution: A rolling equipment for anode plates for hydrometallurgy in the form of titanium-clad aluminum, including a gantry fixed on a base, and an upper roll and a lower roll are arranged on the gantry. Conveyor frames are arranged on both sides of the gantry. Two sliding seats are slidably connected to the gantry. The two ends of the upper roll are respectively fixedly rotationally connected to the two sliding seats. The two ends of the lower roll are fixedly rotationally connected to the two columns of the gantry. A screw sleeve is penetrated and fixedly rotationally connected in the middle of the crossbeam of the gantry, and a screw rod is threadedly connected in the screw sleeve. The lower end of the screw rod is fixedly connected to a hanging bracket, and the two ends of the hanging bracket are respectively fixedly connected to the two sliding seats. An expansion rod is arranged on the crossbeam of the gantry, and a roller is fixedly rotationally connected to the lower end of the expansion rod. A pump cylinder and a first sliding cylinder are fixed on the crossbeam of the gantry, and the pump cylinder and the first sliding cylinder are connected and communicated through a pipeline. A piston plate is slidably connected in the pump cylinder, and a second rack is fixed to the bottom surface of the piston plate. A gear is fixed to the upper end of the expansion rod, and the gear is meshed and connected with the second rack. A first sliding plate is slidably connected in the first sliding cylinder, and a first rack is fixed to the first sliding plate. The first rack is meshed and connected with a toothed ring, and the toothed ring is sleeved and coaxially fixedly connected to the upper end of the screw sleeve. A locking mechanism is arranged on the sliding seat, and the pump cylinder is connected to the locking mechanism through a pipeline.

[0004] Preferably, through holes corresponding to the sliding seats are opened on the columns of the gantry. Chute grooves are opened on the vertical inner side walls of the through holes. The two sides of the sliding seats are correspondingly slidably connected in the chute grooves, and tooth grooves are opened on the chute grooves.

[0005] Preferably, a first shaft bracket is fixed on one of the gantry columns, and a first worm is rotatably connected to the first shaft bracket. The lower end of the first worm is in transmission connection with the motor, and a multi-faceted rod is coaxially and fixedly connected to the upper end of the first worm. One end of the lower roller corresponding to the first shaft bracket is coaxially and fixedly connected to a first worm gear, and the first worm gear is meshed with the first worm. A second shaft bracket is fixed on the sliding seat on the corresponding gantry column, and a second worm is rotatably connected to the second shaft bracket. The lower end of the second worm is hollow and is sleeved on the multi-faceted rod in a matching manner, and the multi-faceted rod slides on the second worm. One end of the upper roller corresponding to the second shaft bracket is coaxially and fixedly connected to a second worm gear, and the second worm gear is meshed with the second worm.

[0006] Preferably, a support rod is fixed on the cross beam of the gantry, and a screw rod passes through and is threadedly connected to the support rod. One end of the screw rod is hinged to a limiting plate, and the limiting plate is slidably connected to the cross beam. One end of the first rack away from the first sliding plate abuts against the limiting plate.

[0007] Preferably, a support is fixed on the bottom surface of the cross beam, and the lower end of the support is connected to the middle part of the telescopic rod through a first spring. A third shaft bracket is fixed on the support, and the gear is rotatably connected to the third shaft bracket. The second rack is slidably connected to the third shaft bracket.

[0008] Preferably, a first check valve and a second check valve are fixedly connected and communicated with the upper end of the pump barrel. The first check valve is connected to the oil sump through a first conduit, and the oil sump is fixed on the base. The second check valve is communicated with the first sliding cylinder through a second conduit. The conduction direction of the first check valve points to the inside of the pump barrel, and the conduction direction of the second check valve points to the inside of the first sliding cylinder.

[0009] Preferably, the first sliding cylinder is communicated with the oil sump through a third conduit, and a control valve is connected to the third conduit. The first sliding cylinder is communicated with the oil sump through a fourth conduit, and a pressure relief valve is connected to the fourth conduit.

[0010] Preferably, the locking mechanism includes a second sliding cylinder fixed on the sliding seat. The pump barrel is communicated with the second sliding cylinder through a fifth conduit. A second sliding plate is slidably connected in the second sliding cylinder, and the second sliding plate is connected to the upper end surface of the sliding seat through a second spring. A second connecting rod is fixed on the lower surface of the second sliding plate.

[0011] Preferably, a cavity is formed in the sliding seat, and the lower end of the second connecting rod passes through the top wall of the cavity and extends into the cavity. A groove is formed in the side wall of the sliding seat facing the sliding groove, and a toothed block is slidably connected in the groove. The teeth on the toothed block are engaged with the tooth grooves on the inner wall of the corresponding sliding groove. A push rod is fixed on the side of the toothed block away from the sliding groove, and the end of the push rod away from the toothed block passes through the side wall of the cavity and extends into the cavity. The lower end of the second connecting rod is hinged to the ends of the two push rods through two first connecting rods respectively.

[0012] Compared with the prior art, the beneficial effects of the present invention are:

[0013] In the present invention, the upper roller and the lower roller are driven by a motor to rotate synchronously in opposite directions, and the anode plate is rolled. After each rolling, the gap between the two rollers is automatically adjusted, which saves time and labor and greatly improves work efficiency.

[0014] In the present invention, by providing a locking mechanism, on the one hand, the upper roller can be kept stable when subjected to force, and on the other hand, the load damage to the thread on the stud caused by the gravity of the upper roller can be reduced. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] Figure 1 This is a schematic diagram of the general assembly cross-sectional structure of the present invention;

[0016] Figure 2 for Figure 1 AA cross-sectional structural diagram in FIG;

[0017] Figure 3 for Figure 1 BB cross-sectional structure diagram in;

[0018] Figure 4 for Figure 3 The enlarged structural diagram at C in FIG.

[0019] Figure 5 for Figure 2 The enlarged structural diagram at D in FIG.

[0020] In the figure: 1. base; 2. gantry; 3. motor; 4. lower roller; 5. upper roller; 6. through hole; 7. slide; 8. slide seat; 9. hanger; 10. stud; 11. screw sleeve; 12. gear ring; 13. shaft bracket 1; 14. worm gear 1; 15. worm gear 1; 16. shaft bracket 2; 17. worm gear 2; 18. worm gear 2; 19. polygonal rod; 20. slide cylinder 1; 21. slide plate 1; 22. rack 1; 23. support rod; 24. limit plate; 25. screw; 26. bracket; 27. shaft bracket 3; 28. Gear; 29. Telescopic rod; 30. Roller; 31. Spring 1; 32. Pump barrel; 33. Piston plate; 34. Rack 2; 35. Conduit 1; 36. One-way valve 1; 37. Conduit 2; 38. One-way valve 2; 39. Conduit 3; 40. Control valve; 41. Conduit 4; 42. Pressure relief valve; 43. Conduit 5; 44. Conveying rack; 45. Slide 2; 46. Cavity; 47. Groove; 48. Gear block; 49. Push rod; 50. Connecting rod 1; 51. Slide plate 2; 52. Connecting rod 2; 53. Spring 2. DETAILED DESCRIPTION

[0021] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative work belong to the scope of protection of the present invention.

[0022] Please refer to Figures 1 to 5 , the present invention provides a technical solution: a titanium-clad aluminum type anode plate rolling equipment for hydrometallurgy, including a gantry 2 fixed on a base 1, and an upper roll 5 and a lower roll 4 are arranged on the gantry 2. Conveyor frames 44 are arranged on both sides of the gantry 2. Two sliding seats 8 are slidably connected to the gantry 2. The two ends of the upper roll 5 are respectively fixedly rotatably connected to the two sliding seats 8. The two ends of the lower roll 4 are fixedly rotatably connected to the two columns of the gantry 2. A screw sleeve 11 is penetrated and fixedly rotatably connected in the middle of the cross beam of the gantry 2, and a screw rod 10 is threadedly connected in the screw sleeve 11. The lower end of the screw rod 10 is fixedly connected to a hanging bracket 9, and the two ends of the hanging bracket 9 are respectively fixedly connected to the two sliding seats 8. An expansion rod 29 is arranged on the cross beam of the gantry 2, and a roller 30 is fixedly rotatably connected to the lower end of the expansion rod 29. A pump cylinder 32 and a first sliding cylinder 20 are fixed on the cross beam of the gantry 2, and the pump cylinder 32 and the first sliding cylinder 20 are connected by a pipeline. A piston plate 33 is slidably connected in the pump cylinder 32, and a second rack 34 is fixed to the bottom surface of the piston plate 33. A gear 28 is fixed to the upper end of the expansion rod 29, and the gear 28 is meshed with the second rack 34. A first sliding plate 21 is slidably connected in the first sliding cylinder 20, and a first rack 22 is fixed to the first sliding plate 21. The first rack 22 is meshed with a gear ring 12, and the gear ring 12 is sleeved and coaxially fixedly connected to the upper end of the screw sleeve 11. A locking mechanism is arranged on the sliding seat 8, and the pump cylinder 32 is connected to the locking mechanism through a pipeline.

[0023] In this embodiment, through holes 6 corresponding to the sliding seats 8 are opened on the columns of the gantry 2. Tooth grooves are provided on the vertical inner side walls of the through holes 6, and the two sides of the sliding seats 8 are correspondingly slidably connected in the tooth grooves 7.

[0024] In this embodiment, a first shaft bracket 13 is fixed on one of the columns of the gantry 2. A first worm 15 is rotatably connected to the first shaft bracket 13 about a fixed axis. The lower end of the first worm 15 is drivingly connected to the motor 3. The upper end of the first worm 15 is coaxially and fixedly connected to a multi-faceted rod 19. One end of the lower roller 4 corresponding to the first shaft bracket 13 is coaxially and fixedly connected to a first worm gear 14. The first worm gear 14 is meshed with the first worm 15. A second shaft bracket 16 is fixed on the sliding seat 8 on the column of the gantry 2. A second worm 18 is rotatably connected to the second shaft bracket 16 about a fixed axis. The lower end of the second worm 18 is hollow and sleeved on the multi-faceted rod 19 in a matching manner. The multi-faceted rod 19 slides on the second worm 18. One end of the upper roller 5 corresponding to the second shaft bracket 16 is coaxially and fixedly connected to a second worm gear 17. The second worm gear 17 is meshed with the second worm 18. The thread helix directions of the first worm 15 and the second worm 18 are opposite, and the structures of the first worm 15 and the second worm 18 are completely the same. The structures of the first worm gear 14 and the second worm gear 17 are completely the same.

[0025] In this embodiment, a support rod 23 is fixed on the cross beam of the gantry 2. A screw rod 25 passes through and is threadedly connected to the support rod 23. One end of the screw rod 25 is hinged to a limit plate 24. The limit plate 24 is slidably connected to the cross beam. One end of the first rack 22 away from the first slide plate 21 abuts against the limit plate 24.

[0026] In this embodiment, a support 26 is fixed on the bottom surface of the cross beam. The lower end of the support 26 is connected to the middle part of the telescopic rod 29 through a first spring 31. A third shaft bracket 27 is fixed on the support 26. A gear 28 is rotatably connected to the third shaft bracket 27 about a fixed axis. A second rack 34 is slidably connected to the third shaft bracket 27.

[0027] In this embodiment, a first check valve 36 and a second check valve 38 are fixedly connected and communicated at the upper end of the pump barrel 32. The first check valve 36 is connected to an oil sump through a first conduit 35. The oil sump is fixed on the base 1. The oil sump is not shown in this application. The second check valve 38 is communicated with the first sliding cylinder 20 through a second conduit 37. The conduction direction of the first check valve 36 points to the inside of the pump barrel 32. The conduction direction of the second check valve 38 points to the inside of the first sliding cylinder 20.

[0028] In this embodiment, the first sliding cylinder 20 is communicated with the oil sump through a third conduit 39, and a control valve 40 is connected to the third conduit 39. The first sliding cylinder 20 is communicated with the oil sump through a fourth conduit 41, and a pressure relief valve 42 is connected to the fourth conduit 41.

[0029] In this embodiment, the locking mechanism includes a second sliding cylinder 45 fixed on the sliding seat 8. The pump cylinder 32 is connected to the second sliding cylinder 45 through a fifth conduit 43. A second sliding plate 51 is slidably connected inside the second sliding cylinder 45, and the second sliding plate 51 is connected to the upper end surface of the sliding seat 8 through a second spring 53. A second connecting rod 52 is fixed on the lower surface of the second sliding plate 51. A cavity 46 is formed inside the sliding seat 8, and the lower end of the second connecting rod 52 passes through the top wall of the cavity 46 and extends into the cavity 46. A groove 47 is formed on the side wall of the sliding seat 8 facing the sliding groove 7, and a tooth block 48 is slidably connected inside the groove 47. The teeth on the tooth block 48 are engaged with the tooth grooves on the inner wall of the corresponding sliding groove 7. A push rod 49 is fixed on the side of the tooth block 48 away from the sliding groove 7. One end of the push rod 49 away from the tooth block 48 passes through the side wall of the cavity 46 and extends into the cavity 46. The lower end of the second connecting rod 52 is respectively hinged to the ends of the two push rods 49 through two first connecting rods 50.

[0030] Working principle and advantages of the present invention: When the titanium-clad aluminum wet metallurgy anode plate rolling equipment is in use, the working process is as follows:

[0031] As Figures 1 to 5 shown, start the motor 3 to work, so that the motor 3 drives the first worm 15 to rotate, so that the first worm 15 drives the second worm 18 to rotate synchronously through the multi-faceted rod 19, so that the first worm 15 and the second worm 18 respectively drive the first worm gear 14 and the second worm gear 17 to rotate synchronously in opposite directions, and further the first worm gear 14 and the second worm gear 17 drive the lower rolling roll 4 and the upper rolling roll 5 to rotate synchronously in opposite directions. The anode plate to be rolled is conveyed from Figure 2 the right side of the middle gantry 2 to between the upper rolling roll 5 and the lower rolling roll 4, and the anode plate is rolled thin under the extrusion of the upper rolling roll 5 and the lower rolling roll 4 and pushed to the Figure 2 left side in the middle. When the anode plate moves to the lower end of the roller 30, the end part exerts an upward thrust on the telescopic rod 29 through the roller 30, so that the telescopic rod 29 drives the gear 28 to rotate clockwise in Figure 5 and makes the telescopic rod 29 stretch the first spring 31 to obtain a restoring force. While the gear 28 rotates clockwise in Figure 5 , it drives the piston plate 33 to move downward through the second rack 34, so that the piston plate 33 generates a suction force in the pump cylinder 32. Since the conduction direction of the one-way valve 36 points to the inside of the pump cylinder 32 and the conduction direction of the one-way valve 38 points to the inside of the first sliding cylinder 20, this suction force sucks the oil in the oil pool into the pump cylinder 32 through the first conduit 35. When the rolling of the anode plate is completed, the roller 30 drops from the surface of the anode plate, so that the telescopic rod 29 drives the gear 28 to rotate in Figure 5The second gear 33 is rotated counterclockwise, and at the same time, the piston plate 33 is driven to move upward through the rack 2 34, so that the piston plate 33 generates a compressive force on the pump barrel 32. The compressive force increases the oil pressure in the pump barrel 32 and transmits the oil to the slide cylinder 2 45 through the conduit 53. At the same time, the oil is also transmitted to the slide cylinder 1 20 through the conduit 2 37. The oil entering the slide cylinder 2 45 exerts pressure on the slide plate 2 51, so that the slide plate 2 51 drives the connecting rod 2 52 to move downward and compress the spring 2 53, so that the connecting rod 2 52 exerts a pulling force on the push rod 49 through the connecting rod 1 50, so that the push rod 49 pulls the corresponding tooth block 48 away from the tooth groove in the corresponding slide groove 7, thereby releasing the lock on the slide seat 8, and the oil entering the slide cylinder 1 20 exerts pressure on the slide plate 1 21, so that the slide plate 1 21 drives the rack 1 22 to move downward. Figure 1 The cam 11 is pressed against the top of the roller 5 and the cam 12 is pressed against the top of the roller 5, and the cam 12 is pressed against the bottom of the roller 5, so that the cam 11 is pressed against the top of the roller 5 and the cam 12 is pressed against the top of the roller 5. Figure 2 The right side of the middle gantry 2 is transported to between the upper roller 5 and the lower roller 4 for another rolling, and this reciprocating process is repeated to achieve multiple anode plate rolling operations, and the gap is automatically adjusted each time, greatly improving work efficiency.

[0032] When the rack 22 contacts the limit plate 24, the set anode plate rolling thickness is obtained. After this rolling, the anode plate of the set thickness can be obtained. The position of the limit plate 24 can be adjusted by rotating the screw 25, so as to set the minimum gap between the two rollers according to the actual thickness of the anode plate, thereby improving the scope of use of the equipment.

[0033] As mentioned above, after the rack 22 and the limit plate 24 are in contact with each other, the compression force in the pump barrel 32 transports the oil in the pump barrel 32 to the slide 20 through the conduit 2 37. When the oil pressure in the slide 20 is too high and exceeds the set value of the pressure relief valve 42, the pressure relief valve 42 opens to allow the excess oil to flow back to the oil pool through the conduit 4 41.

[0034] After the rolling is completed, the telescopic rod 29 is shortened and pressed down, so that the telescopic rod 29 drives the gear 28 to Figure 5Rotate counterclockwise in the [direction], and at the same time drive the piston plate 33 to move upward through the second rack 34, so that the piston plate 33 generates a compressive force in the pump barrel 32, and then, as described above, the locking mechanism releases the locking of the sliding seat 8, and at the same time opens the control valve 40 and pushes the first rack 22 in the Figure 1 Move leftward in the [direction], so that the first rack 22 transports the oil in the first sliding cylinder 20 to the oil sump through the first sliding plate 21. At the same time, the leftward movement of the first rack 22 drives the nut sleeve 11 to rotate reversely through the gear ring 12, so that the nut sleeve 11 drives the stud 10 to move upward, so that the stud 10 drives the two sliding seats 8 to move upward and reset through the hanger 9, and then restores the length of the telescopic rod 29 to facilitate the rolling process of the next anode plate.

[0035] For those skilled in the art, it is obvious that the present invention is not limited to the details of the above-described exemplary embodiments, and without departing from the spirit or basic characteristics of the present invention, the present invention can be implemented in other specific forms. Therefore, from any point of view, the embodiments should be regarded as exemplary and non-restrictive. The scope of the present invention is defined by the appended claims rather than the above description. Therefore, all changes falling within the meaning and scope of the equivalent elements of the claims are intended to be included in the present invention. Any reference signs in the claims should not be construed as limiting the claimed rights.

[0036] In the description of the present invention, unless otherwise specified, the meaning of "a plurality" is two or more; the terms "upper", "lower", "left", "right", "inner", "outer", "front end", "rear end", "head", "tail", etc. indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings, and are only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be construed as a limitation of the present invention. In addition, the terms "first", "second", "third", etc. are only used for descriptive purposes and cannot be construed as indicating or implying relative importance.

[0037] In the description of the present invention, it should be noted that unless otherwise clearly specified and limited, the terms "connected" and "connected" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific circumstances.

Claims

1. A rolling equipment for an anode plate used in titanium-clad aluminum hydrometallurgy, comprising a gantry (2) fixed on a base (1), and an upper rolling roll (5) and a lower rolling roll (4) are arranged on the gantry (2). Conveyor frames (44) are arranged on both sides of the gantry (2). Two sliding seats (8) are slidably connected to the gantry (2). Two ends of the upper rolling roll (5) are respectively rotatably connected to the two sliding seats (8) in a fixed-axis manner. Two ends of the lower rolling roll (4) are rotatably connected to two columns of the gantry (2) in a fixed-axis manner. It is characterized in that: The middle of the crossbeam of the gantry (2) penetrates and is rotatably connected to a screw sleeve (11) in a fixed axis, and a screw rod (10) is threadedly connected in the screw sleeve (11). The lower end of the screw rod (10) is fixedly connected to a hanging bracket (9), and both ends of the hanging bracket (9) are respectively fixedly connected to two of the sliding seats (8). An expansion rod (29) is arranged on the crossbeam of the gantry (2), and a roller (30) is rotatably connected to the lower end of the expansion rod (29) in a fixed axis. A pump barrel (32) and a first sliding barrel (20) are fixed on the crossbeam of the gantry (2), and the pump barrel (32) and the first sliding barrel (20) are communicated through a pipeline. A piston plate (33) is slidably connected in the pump barrel (32), and a second rack (34) is fixed to the bottom surface of the piston plate (33). The upper end of the expansion rod (29) is fixed with a gear (28), and the gear (28) is meshed and connected with the second rack (34). A first sliding plate (21) is slidably connected in the first sliding barrel (20), and a first rack (22) is fixed to the first sliding plate (21). The first rack (22) is meshed and connected with a toothed ring (12), and the toothed ring (12) is sleeved and coaxially fixedly connected to the upper end of the screw sleeve (11). A locking mechanism is arranged on the sliding seat (8), and the pump barrel (32) is communicated with the locking mechanism through a pipeline.

2. The rolling equipment for titanium-clad aluminum anodes used in hydrometallurgy according to claim 1, characterized in that: Through holes (6) corresponding to the sliding seats (8) are formed in the columns of the gantry (2). A sliding groove (7) is formed in the vertical inner side wall of the through hole (6), and both sides of the sliding seat (8) are correspondingly slidably connected in the sliding groove (7), and a toothed alveolus is formed in the sliding groove (7).

3. The rolling equipment for titanium-clad aluminum anodes used in hydrometallurgy according to claim 2, characterized in that: A first shaft bracket (13) is fixed on one of the columns of the gantry (2), and a first worm (15) is rotatably connected to the first shaft bracket (13) in a fixed axis. The lower end of the first worm (15) is in transmission connection with a motor (3), and a multi-faceted rod (19) is coaxially fixedly connected to the upper end of the first worm (15). One end of the lower rolling roller (4) corresponding to the first shaft bracket (13) is coaxially fixedly connected to a first worm gear (14), and the first worm gear (14) is meshed and connected with the first worm (15). A second shaft bracket (16) is fixed on the sliding seat (8) on the corresponding column of the gantry (2), and a second worm (18) is rotatably connected to the second shaft bracket (16) in a fixed axis. The lower end of the second worm (18) is hollow and is sleeved on the multi-faceted rod (19) in a matching manner, and the multi-faceted rod (19) slides on the second worm (18). One end of the upper rolling roller (5) corresponding to the second shaft bracket (16) is coaxially fixedly connected to a second worm gear (17), and the second worm gear (17) is meshed and connected with the second worm (18).

4. A rolling equipment for titanium-clad aluminum anodes used in hydrometallurgy according to claim 1, characterized in that: A support rod (23) is fixed on the crossbeam of the gantry (2). A screw rod (25) penetrates through and is threadedly connected to the support rod (23). One end of the screw rod (25) is hinged to a limiting plate (24), and the limiting plate (24) is slidably connected to the crossbeam. One end of the first rack (22) away from the first sliding plate (21) abuts against the limiting plate (24).

5. The rolling equipment for anodes used in titanium-clad aluminum hydrometallurgy according to claim 1, characterized in that: A bracket (26) is fixed to the bottom surface of the cross beam, and the lower end of the bracket (26) is connected to the middle of the telescopic rod (29) through a first spring (31). A third shaft bracket (27) is fixed to the bracket (26). The gear (28) is rotatably connected to the third shaft bracket (27) about a fixed axis, and the second rack (34) is slidably connected to the third shaft bracket (27).

6. The rolling equipment for the titanium-clad aluminum anode plate used in hydrometallurgy according to claim 2, characterized in that: The upper end of the pump barrel (32) is fixed and communicates with a first check valve (36) and a second check valve (38). The first check valve (36) is connected to an oil reservoir through a first conduit (35), and the oil reservoir is fixed to the base (1). The second check valve (38) communicates with the first sliding cylinder (20) through a second conduit (37). The conduction direction of the first check valve (36) points to the inside of the pump barrel (32), and the conduction direction of the second check valve (38) points to the inside of the first sliding cylinder (20).

7. The rolling equipment for anodes used in titanium-clad aluminum hydrometallurgy according to claim 6, characterized in that: The first sliding cylinder (20) communicates with the oil reservoir through a third conduit (39), and a control valve (40) is connected to the third conduit (39). The first sliding cylinder (20) communicates with the oil reservoir through a fourth conduit (41), and a pressure relief valve (42) is connected to the fourth conduit (41).

8. The rolling equipment for anodic plates used in titanium-clad aluminum hydrometallurgy according to claim 6, characterized in that: The locking mechanism includes a second sliding cylinder (45) fixed to the sliding seat (8). The pump barrel (32) communicates with the second sliding cylinder (45) through a fifth conduit (43). A second sliding plate (51) is slidably connected inside the second sliding cylinder (45), and the second sliding plate (51) is connected to the upper end surface of the sliding seat (8) through a second spring (53). A second connecting rod (52) is fixed to the lower surface of the second sliding plate (51).

9. The anode plate rolling equipment for titanium-clad aluminum hydrometallurgy according to claim 8, wherein: A cavity (46) is formed inside the sliding seat (8). The lower end of the second connecting rod (52) passes through the top wall of the cavity (46) and extends into the cavity (46). A groove (47) is formed in the side wall of the sliding seat (8) facing the sliding groove (7). A tooth block (48) is slidably connected inside the groove (47), and the teeth on the tooth block (48) engage with the tooth grooves on the inner wall of the corresponding sliding groove (7). A push rod (49) is fixed to the side of the tooth block (48) away from the sliding groove (7). The end of the push rod (49) away from the tooth block (48) passes through the side wall of the cavity (46) and extends into the cavity (46). The lower end of the second connecting rod (52) is respectively hinged to the ends of the two push rods (49) through two first connecting rods (50).