A cast-in-place uniform current anode steel claw

CN122564656APending Publication Date: 2026-08-14CHONGQING QINENG ELECTRICITY & ALUMINUM
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-06-10
Publication Date
2026-08-14

AI Technical Summary

Technical Problem

[0005]针对现有技术的不足,本发明提供了一种铸造一体成型的均流阳极钢爪,解决了在连接时不能进行角度调节适配不同安装要求的问题

Benefits of technology

1、本发明通过移动块上下侧的导向块与圆环槽内的导向槽配合,可保证移动块沿圆环槽平稳滑动,避免偏移,调节螺栓与调节孔螺纹连接且尺寸匹配,能牢固固定调节板位置,同时限位组件可防止调节板滑动偏移,固定块与U型块尺寸匹配且滑动连接,确保衔接紧密,整体可灵活调节连接角度和长度,适配不同连接需求。

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Abstract

This invention relates to the field of aluminum electrolysis equipment technology, and discloses a cast-in-place uniform current anode steel claw, including a first connecting ring. The outer wall of the first connecting ring has an annular groove. Multiple moving blocks are slidably connected inside the annular groove. A hollow plate is rotatably connected to one side of each of the moving blocks. An adjusting plate is slidably connected inside the hollow plate. An adjusting component is provided on the front side of the hollow plate. A limit component is provided inside the hollow plate. A fixed block is rotatably connected to the top of the adjusting plate. A second connecting ring is provided on the top of the first connecting ring. Multiple U-shaped blocks are fixedly connected to the outer wall of the second connecting ring. By cooperating with the guide blocks on the upper and lower sides of the moving blocks and the guide grooves in the annular groove, the moving blocks can be ensured to slide smoothly along the annular groove. The fixed blocks and U-shaped blocks are sized and slidably connected, ensuring a tight connection. The overall design allows for flexible adjustment of the connection angle and length to adapt to different connection requirements.
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Description

Technical Field

[0001] This invention relates to the field of aluminum electrolysis equipment technology, specifically to a cast-in-place uniform current anode steel claw. Background Technology

[0002] The cast-in-place uniform current anode steel claw is a key supporting conductive component of the aluminum electrolysis cell. It is mainly assembled above the prebaked anode carbon block and undertakes the functions of conductive current transmission and load-bearing positioning. It can conduct the electrolysis working current and bear the overall weight of the anode. A reasonable steel claw structure can stabilize the current distribution, reduce the conductive contact voltage drop, and ensure the continuous and stable operation of the aluminum electrolysis cell.

[0003] The anode steel claw is equipped with a connecting mechanism and a supporting mechanism. The connecting mechanism is used for the alignment, assembly and locking of the upper and lower parts of the steel claw. The supporting mechanism is installed at the bottom of the steel claw and is used to support the entire steel claw and distribute the force. The two mechanisms work together to complete the installation, positioning, angle adjustment and static support of the anode steel claw.

[0004] The existing connection mechanisms of cast one-piece flow equalization anode steel claws are mostly fixed structures, lacking position and angle adjustment capabilities. The sliding fit of components lacks guiding and limiting structures, resulting in large assembly alignment errors and insufficient reliability of connection fastening. At the same time, the support mechanisms mostly adopt an integral rigid support form, which cannot adapt to the slight tilt of the support surface on site, resulting in poor fit and stress state. Long-term use can easily cause uneven local stress on the steel claws, leading to deformation and cracking. Moreover, the overall structure is cumbersome to disassemble and assemble, and it is difficult to disassemble and replace individual components after damage, increasing the investment cost of equipment operation and maintenance. Summary of the Invention

[0005] To address the shortcomings of existing technologies, this invention provides a cast-in-place uniform current anode steel claw, which solves the problem that the angle cannot be adjusted during connection to adapt to different installation requirements.

[0006] To achieve the above objectives, the present invention provides the following technical solution: a cast integral current equalization anode steel claw, comprising an integral steel claw, wherein a connecting mechanism is provided at the top of the integral steel claw and a supporting mechanism is provided at the bottom of the integral steel claw, the supporting mechanism being used to support the integral steel claw; The connecting mechanism includes a first connecting ring, the outer wall of which has an annular groove. Multiple movable blocks are slidably connected inside the annular groove. A hollow plate is rotatably connected to one side of each of the multiple movable blocks. An adjusting plate is slidably connected inside the hollow plate. An adjusting component is provided on the front side of the hollow plate. A limiting component is provided inside the hollow plate. A fixing block is rotatably connected to the top of the adjusting plate. A second connecting ring is provided on the top of the first connecting ring. Multiple U-shaped blocks are fixedly connected to the outer wall of the second connecting ring. A locking component is provided on the outer wall of each U-shaped block.

[0007] Preferably, the support mechanism includes a U-shaped frame, which is fixedly connected to the bottom of the integrated steel claw. A rotating shaft is fixedly connected to the bottom of the U-shaped frame. A rotating plate is rotatably connected to both ends of the rotating shaft. A rotating plate is rotatably connected to the middle of the outer wall of the rotating shaft. A tension spring is fixedly connected between the rotating plate and the rotating plate. A base plate is rotatably connected to the bottom of the rotating plate and the rotating plate.

[0008] Preferably, the adjusting assembly includes an adjusting bolt, which is rotatably connected to the front side of the hollow plate. The front side of the adjusting plate has multiple adjusting holes, and the top of the front side of the hollow plate has a positioning hole.

[0009] Preferably, the limiting component includes two limiting blocks, which are respectively fixedly connected to the left and right sides of the adjusting plate, and limiting grooves are formed on the left and right sides of the hollow plate.

[0010] Preferably, guide blocks are fixedly connected to the upper and lower sides of the plurality of movable blocks, and guide grooves are provided on the upper and lower sides of the inner side of the annular groove.

[0011] Preferably, the adjusting bolt passes through the positioning hole and is threaded into the interior of the corresponding adjusting hole, and the size of the adjusting bolt matches that of the adjusting hole.

[0012] Preferably, the locking assembly includes an insert plate that is slidably connected to the outer wall of the U-shaped block. The left end of the insert plate passes through the U-shaped block and the fixing block in sequence. A groove is provided on the top left side of the insert plate, and a locking block is slidably connected to the middle of the groove.

[0013] Preferably, the fixing block is slidably connected inside the U-shaped block, and the size of the fixing block matches that of the U-shaped block.

[0014] This invention provides a cast, one-piece molded current equalization anode steel claw. It has the following beneficial effects: 1. This invention ensures that the moving block slides smoothly along the annular groove by cooperating with the guide blocks on the upper and lower sides of the moving block and the guide groove in the annular groove, thus avoiding deviation. The adjusting bolt is threadedly connected to the adjusting hole and the size is matched, which can firmly fix the position of the adjusting plate. At the same time, the limiting component can prevent the adjusting plate from sliding and deviating. The fixed block and the U-shaped block are matched in size and slidably connected to ensure tight connection. The overall connection angle and length can be flexibly adjusted to adapt to different connection requirements.

[0015] 2. In this invention, the U-shaped frame is fixed to the bottom of the integrated steel claw. The rotating shaft provides a stable rotation fulcrum for the rotating plate one and the rotating plate two. The tension spring can tighten and limit the two to prevent the rotation angle from being too large. The bottom plate can fit tightly with the support surface. Even if the support surface is slightly tilted, the rotating plate can be finely adjusted to effectively transfer the weight of the integrated steel claw, achieve stable support, and avoid deformation of the steel claw.

[0016] 3. The present invention can achieve the fastening and disassembly of connecting ring one and connecting ring two through the insert plate and locking block of the locking component. The setting of the adjusting bolt facilitates the quick adjustment of the position of the adjusting plate. The support mechanism has a simple structure, the connection of each component is reliable, and when a single component is damaged, it can be disassembled and replaced individually without the need for the whole to be scrapped, thus reducing maintenance costs. Attached Figure Description

[0017] Figure 1 This is a perspective view of the present invention; Figure 2 The exploded view is provided to highlight the structure of the connecting mechanism of the present invention; Figure 3 for Figure 2 Enlarged view of point A in the image; Figure 4 The exploded view of the hollow plate structure of the present invention is shown in the figure. Figure 5 A schematic diagram of the support mechanism of the present invention is shown to highlight its structure.

[0018] The components include: 1. Integrated steel claw; 2. Connecting mechanism; 21. Connecting ring one; 22. Circular groove; 23. Moving block; 24. Hollow plate; 25. Adjusting plate; 26. Adjusting assembly; 261. Adjusting bolt; 262. Adjusting hole; 263. Positioning hole; 27. Limiting assembly; 271. Limiting block; 272. Limiting groove; 28. Fixing block; 29. ​​Locking assembly; 291. Insert plate; 292. Groove; 293. Locking block; 210. Connecting ring two; 211. U-shaped block; 3. Supporting mechanism; 31. U-shaped frame; 32. Rotating shaft; 33. Rotating plate one; 34. Rotating plate two; 35. Base plate; 36. Tension spring; 4. Guide block; 5. Guide groove. Detailed Implementation

[0019] The technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0020] Reference Figure 1 , Figure 2 , Figure 3 and Figure 4 This invention provides a cast integral current equalization anode steel claw, including an integral steel claw 1, a connecting mechanism 2 provided at the top of the integral steel claw 1, and a supporting mechanism 3 provided at the bottom of the integral steel claw 1, the supporting mechanism 3 being used to support the integral steel claw 1. The connecting mechanism 2 includes a connecting ring 21, which serves as the basic carrier for the overall connection. A circular groove 22 is formed on the outer wall of the connecting ring 21, providing a circular sliding track. Multiple moving blocks 23 are slidably connected inside the circular groove 22, adjusting the circumferential installation position along the groove. A hollow plate 24 is rotatably connected to one side of each moving block 23, allowing for angle rotation to adapt to different installation conditions. An adjusting plate 25 is slidably connected inside the hollow plate 24, extending and retracting to change the overall connection length. An adjusting component 26 is provided on the front side of the hollow plate 24, locking the extension / retraction position of the adjusting plate 25. A limit component 27 is provided inside the hollow plate 24, restricting left and right deviations during sliding of the adjusting plate 25. A fixed block 28 is rotatably connected to the top of the adjusting plate 25, forming a counter with the U-shaped block 211. Connecting ring 21 is topped with connecting ring 210, which forms an upper and lower combination with connecting ring 21. Multiple U-shaped blocks 211 are fixedly connected to the outer wall of connecting ring 210, providing a receiving and mounting point for the fixing block 28. A locking assembly 29 is provided on the outer wall of the U-shaped blocks 211, locking them to the fixing block 28. Adjusting assembly 26 includes adjusting bolts 261, which are used for insertion and positioning to achieve position locking. Adjusting bolts 261 are rotatably connected to the front side of hollow plate 24, providing a rotatable mounting point for adjusting bolts 261. Multiple adjusting holes 262 are provided on the front side of adjusting plate 25, cooperating with adjusting bolts 261 to achieve multi-position positioning. A positioning hole 263 is provided at the top front side of hollow plate 24, allowing adjusting bolts 261 to pass through. The limiting component 27 includes two limiting blocks 271, which are used to slide and limit synchronously with the adjusting plate 25. The two limiting blocks 271 are fixedly connected to the left and right sides of the adjusting plate 25, respectively. The adjusting plate 25 is used to drive the limiting blocks 271 to move synchronously. The hollow plate 24 has limiting grooves 272 on both the left and right sides inside. The limiting grooves 272 are used to accommodate the limiting blocks 271 and limit the sliding trajectory. The locking component 29 includes an insert plate 291, which is used to insert and fix the components initially. The insert plate 291 slides. Connected to the outer wall of the U-shaped block 211, the U-shaped block 211 provides a sliding guide path for the insert plate 291. The left end of the insert plate 291 passes through the U-shaped block 211 and the fixing block 28 in sequence. The through structure is used to limit the separation of the U-shaped block 211 and the fixing block 28. A groove 292 is provided on the top left side of the insert plate 291. The groove 292 provides a sliding installation space for the locking block 293. The locking block 293 is slidably connected in the middle of the groove 292. The locking block 293 is used to engage and limit to prevent the insert plate 291 from slipping off on its own. Specifically, connecting ring 21 is the basic load-bearing component of the entire connecting mechanism 2, providing an installation carrier for various auxiliary structures. Its outer wall has an annular groove 22 to accommodate and guide the sliding of the moving block 23, providing a track for adjusting the position of the moving block 23. The moving block 23 is slidably connected within the annular groove 22 and can adjust its position along the groove to adapt to different connection requirements. A hollow plate 24 is rotatably connected to one side, allowing the hollow plate 24 to rotate around the moving block 23, thus adjusting its angle. The hollow plate 24 accommodates the adjusting plate 25, providing space for its sliding. An adjusting component 26 is installed on its front side, and a limiting component 27 is installed inside, respectively used to fix the position of the adjusting plate 25 and limit its sliding offset. The adjusting plate 25 is slidably connected inside the hollow plate 24 and can move up and down along the plate to adjust the connection length. A fixing block 28 is rotatably connected to its top, cooperating with the U-shaped block 211 to connect connecting ring 21 and connecting ring 210. In the adjusting assembly 26, the adjusting bolt 261 is rotatably connected to the front side of the hollow plate 24, and is used to pass through the positioning hole 263 and insert into the adjusting hole 262 to fix the adjusting position of the adjusting plate 25. The positioning hole 263 is opened at the top of the front side of the hollow plate 24, providing a through channel for the adjusting bolt 261. The adjusting hole 262 is opened on the front side of the adjusting plate 25, and by cooperating with the adjusting bolt 261, the adjusting plate 25 can be fixed in different positions. In the limiting assembly 27, two limiting blocks 271 are fixed on the left and right sides of the adjusting plate 25 respectively, and the limiting grooves 272 are opened on the left and right sides inside the hollow plate 24. The limiting blocks 271 slide along the limiting grooves 272 to ensure that the adjusting plate 25 always moves along the central axis of the hollow plate 24 and avoids deviation. Connecting ring 21 0 is set at the top of the connecting ring 21 and is used to cooperate with the connecting ring 21 to realize the connection of components; multiple U-shaped blocks 211 fixed on its outer wall correspond one-to-one with the fixing blocks 28, providing a carrier for the installation and cooperation of the locking assembly 29. In the locking assembly 29, the insert plate 291 is slidably connected to the outer wall of the U-shaped block 211 and can pass through the U-shaped block 211 and the fixing block 28 in sequence to realize the initial connection between the two; the groove 292 is opened on the top left side of the insert plate 291 to accommodate the locking block 293; the locking block 293 is slidably connected in the middle of the groove 292 and is fixed by snapping to realize the limit of the insert plate 291, thereby completing the tight connection between the connecting ring 21 and the connecting ring 20. When disassembling, the locking block 293 can be pushed in the opposite direction to release the limit.

[0021] Reference Figure 1 and Figure 5The support mechanism 3 includes a U-shaped frame 31, which supports the weight of the integrated steel claw 1 and transmits the load. The U-shaped frame 31 is fixedly connected to the bottom of the integrated steel claw 1, which provides a fixed installation base for the U-shaped frame 31. A rotating shaft 32 is fixedly connected to the bottom of the U-shaped frame 31, which provides a rotation fulcrum for rotating plate 1 33 and rotating plate 2 34. Rotating plate 1 33 is rotatably connected to both ends of the rotating shaft 32, which works with rotating plate 2 34 to achieve fine angle adjustment. Rotating plate 2 34 is rotatably connected to the middle of the outer wall of the rotating shaft 32, which, together with rotating plate 1 33, supports the base plate 35. A tension spring 36 is fixedly connected between rotating plate 1 33 and rotating plate 2 34, which is used to tighten and limit the rotation of rotating plate 1 33 and rotating plate 2 34 to prevent excessive rotation. A base plate 35 is rotatably connected to the bottom of rotating plate 1 33 and rotating plate 2 34, which fits against the support surface to bear the overall load. Specifically, the U-shaped frame 31 is the basic load-bearing component of the support mechanism 3. It is fixedly connected to the bottom of the integrated steel claw 1 to bear the weight of the integrated steel claw 1 and transfer the load to other components of the support mechanism 3. The bottom of the U-shaped frame 31 is fixedly connected to the rotating shaft 32. The rotating shaft 32 connects and supports the rotating plate 1 33 and the rotating plate 2 34, providing a fulcrum for their rotation, allowing the rotating plate 1 33 and the rotating plate 2 34 to rotate freely around it. Among them, the rotating plate 1 33 is rotatably connected to both ends of the rotating shaft 32, and the rotating plate 2 34 is rotatably connected to the middle of the outer wall of the rotating shaft 32. The two cooperate to connect the U-shaped frame 31 and the base plate 35 to transfer the support load. The tension spring 36 is fixedly connected between the first rotating plate 33 and the second rotating plate 34. It is always in a stretched state during operation. Its function is to tighten and limit the rotation of the first rotating plate 33 and the second rotating plate 34, preventing them from rotating too much around the axis 32 and ensuring the stability of the support angle. The base plate 35 is rotatably connected to the bottom of the first rotating plate 33 and the second rotating plate 34 respectively. Its function is to fit against the support surface and directly bear the overall load transmitted by the integrated steel claw 1 through the U-shaped frame 31, the first rotating plate 33 and the second rotating plate 34. When the support surface is slightly tilted, the base plate 35 can drive the first rotating plate 33 and the second rotating plate 34 to make a slight adjustment of the angle around the axis 32, ensuring that it fits tightly against the support surface and achieves stable support.

[0022] Reference Figure 2 and Figure 4Multiple movable blocks 23 are fixedly connected to guide blocks 4 on their upper and lower sides. The guide blocks 4 are used to cooperate with guide grooves 5 to achieve guiding and limiting. Guide grooves 5 are opened on the upper and lower sides of the inner side of the annular groove 22. The guide grooves 5 are used to accommodate guide blocks 4 and limit the sliding trajectory of movable blocks 23. Adjusting bolts 261 pass through positioning holes 263 and are threaded into the corresponding adjusting holes 262. The threaded connection is used to firmly lock the extension and retraction position of the adjusting plate 25. The size of the adjusting bolts 261 and the size of the adjusting holes 262 are matched. The size matching is used to ensure a tight connection and prevent loosening. Fixed blocks 28 are slidably connected inside U-shaped blocks 211. The sliding connection is used to achieve precise docking between fixed blocks 28 and U-shaped blocks 211. The size of fixed blocks 28 and U-shaped blocks 211 are matched. The size matching is used to ensure stable connection and prevent shaking. Specifically, each movable block 23 is fixedly connected to a guide block 4 on both the upper and lower sides. Correspondingly, the annular groove 22 opened on the outer wall of the connecting ring 21 has guide grooves 5 on both the upper and lower sides inside. The guide block 4 and the guide groove 5 cooperate with each other to guide the sliding of the movable block 23, ensuring that the movable block 23 slides smoothly along the annular groove 22 and avoids deviation. In the adjustment assembly 26, the adjustment bolt 261 passes through the positioning hole 263 on the front side of the hollow plate 24 and is threadedly connected to the corresponding adjustment hole 262 on the front side of the adjustment plate 25. The size of the adjustment bolt 261 and the adjustment hole 262 are matched to ensure that the two are tightly connected, which can effectively fix the position of the adjustment plate 25 and prevent the adjustment plate 25 from sliding freely in the hollow plate 24. The fixing block 28, which is rotatably connected to the top of the adjusting plate 25, is slidably connected inside the U-shaped block 211 fixed on the outer wall of the connecting ring 210. The size of the fixing block 28 and the U-shaped block 211 are matched, so that the fixing block 28 can be accurately embedded in the U-shaped block 211, ensuring that the two are tightly connected, and providing a stable foundation for the subsequent locking operation of the locking component 29.

[0023] Working principle: Multiple movable blocks 23 slide along the annular groove 22 to adjust their positions to meet connection requirements. The hollow plate 24, rotatably connected to one side of the movable block 23, can rotate around the movable block 23 to further adjust the angle of the hollow plate 24. The adjusting plate 25, slidably connected inside the hollow plate 24, can move up and down along the hollow plate 24 to adjust the connection length. During adjustment, rotate the adjusting bolt 261 so that it passes through the positioning hole 263 on the front side of the hollow plate 24 and is inserted into the corresponding adjusting hole 262 on the front side of the adjusting plate 25 to fix the position of the adjusting plate 25. The limiting blocks 271 on the left and right sides of the adjusting plate 25 can slide synchronously along the limiting groove 272 inside the hollow plate 24 to ensure that the adjusting plate 25 always moves along the central axis of the hollow plate 24. After adjustment, the connecting ring 210 is placed on top of the connecting ring 21. The multiple U-shaped blocks 211 on the outer wall of the connecting ring 210 must correspond one-to-one with the fixing block 28 rotatably connected to the top of the adjusting plate 25. Locking is then achieved via locking assembly 29: push the insert plate 291 to slide along the outer wall of the U-shaped block 211, with the left end passing through the U-shaped block 211 and the fixing block 28 in sequence, and then push the locking block 293 in the groove 292 to engage and fix it, thus achieving a tight connection between connecting ring 1 21 and connecting ring 210. When disassembling, push the locking block 293 in the opposite direction to disengage it, pull out the insert plate 291, and the fixing block 28 and U-shaped block 211 can be separated. Then loosen the adjusting bolt 261 to adjust the position of the adjusting plate 25 or rotate the hollow plate 24 to complete the disassembly of the components. Furthermore, the U-shaped frame 31 is fixed to the bottom of the integrated steel claw 1, serving as the basic load-bearing component of the support mechanism 3. The bottom of the U-shaped frame 31 is fixedly connected to the rotating shaft 32. The two ends of the rotating shaft 32 are rotatably connected to the rotating plate 33, and the middle is rotatably connected to the rotating plate 34. The rotating plate 33 and the rotating plate 34 can rotate freely around the rotating shaft 32. The tension spring 36 fixed between the rotating plate 33 and the rotating plate 34 is always in a stretched state, which plays a tensioning and limiting role to prevent the rotation angle from being too large. The bottom of the rotating plate 33 and the rotating plate 34 are rotatably connected to the base plate 35. The base plate 35 is in contact with the contact surface and bears the overall support load. During operation, the base plate 35 is in contact with the support surface, and the rotating plate 33 and the rotating plate 34 maintain a stable angle under the action of the tension spring 36. The weight of the integrated steel claw 1 is transferred to the base plate 35 through the U-shaped frame 31 to achieve stable support. When the contact surface is slightly tilted, the rotating plate 33 and the rotating plate 34 can be slightly adjusted around the rotating shaft 32 to ensure that the base plate 35 is tightly in contact.

[0024] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A cast-in-place uniform current anode steel claw, comprising an integral steel claw (1), characterized in that, The top of the integrated steel claw (1) is provided with a connecting mechanism (2), and the bottom of the integrated steel claw (1) is provided with a supporting mechanism (3). The supporting mechanism (3) is used to support the integrated steel claw (1). The connecting mechanism (2) includes a connecting ring one (21), the outer wall of the connecting ring one (21) is provided with an annular groove (22), a plurality of moving blocks (23) are slidably connected inside the annular groove (22), a hollow plate (24) is rotatably connected to one side of each of the plurality of moving blocks (23), an adjusting plate (25) is slidably connected inside the hollow plate (24), an adjusting component (26) is provided on the front side of the hollow plate (24), a limiting component (27) is provided inside the hollow plate (24), a fixing block (28) is rotatably connected to the top of the adjusting plate (25), a connecting ring two (210) is provided on the top of the connecting ring one (21), a plurality of U-shaped blocks (211) are fixedly connected to the outer wall of the connecting ring two (210), and a locking component (29) is provided on the outer wall of the U-shaped blocks (211).

2. The integrally cast uniform anode steel claw according to claim 1, characterized in that, The support mechanism (3) includes a U-shaped frame (31), which is fixedly connected to the bottom of the integrated steel claw (1). A rotating shaft (32) is fixedly connected to the bottom of the U-shaped frame (31). A rotating plate (33) is rotatably connected to both ends of the rotating shaft (32). A rotating plate (34) is rotatably connected to the middle of the outer wall of the rotating shaft (32). A tension spring (36) is fixedly connected between the rotating plate (33) and the rotating plate (34). A base plate (35) is rotatably connected to the bottom of the rotating plate (33) and the rotating plate (34).

3. The integrally cast uniform anode steel claw according to claim 1, characterized in that, The adjustment assembly (26) includes an adjustment bolt (261), which is rotatably connected to the front side of the hollow plate (24). The front side of the adjustment plate (25) is provided with a plurality of adjustment holes (262), and the top of the front side of the hollow plate (24) is provided with a positioning hole (263).

4. The integrally cast uniform anode steel claw according to claim 1, characterized in that, The limiting component (27) includes two limiting blocks (271), which are fixedly connected to the left and right sides of the adjusting plate (25) respectively. Limiting grooves (272) are provided on the left and right sides of the hollow plate (24).

5. The integrally cast uniform anode steel claw according to claim 1, characterized in that, Guide blocks (4) are fixedly connected to the upper and lower sides of the multiple movable blocks (23), and guide grooves (5) are opened on the upper and lower sides of the inner annular groove (22).

6. The integrally cast uniform anode steel claw according to claim 3, characterized in that, The adjusting bolt (261) passes through the positioning hole (263) and is threaded into the interior of the corresponding adjusting hole (262). The size of the adjusting bolt (261) matches that of the adjusting hole (262).

7. The integrally cast uniform anode steel claw according to claim 1, characterized in that, The locking assembly (29) includes a insert plate (291), which is slidably connected to the outer wall of the U-shaped block (211). The left end of the insert plate (291) passes through the U-shaped block (211) and the fixing block (28) in sequence. A groove (292) is provided on the top left side of the insert plate (291), and a locking block (293) is slidably connected to the middle of the groove (292).

8. The integrally cast uniform anode steel claw according to claim 1, characterized in that, The fixing block (28) is slidably connected inside the U-shaped block (211), and the size of the fixing block (28) matches that of the U-shaped block (211).