Conducting rod positioning structure

Through the combined limiting mechanism of the fork plate and double-stand rod, the inefficiency problem caused by the shaking of the conductive rod during the guide process is solved, and the rapid positioning and guidance of the conductive rod is achieved, and the working efficiency is improved.

CN223061107UActive Publication Date: 2025-07-04FOSHAN YINXUAN AUTOMATION EQUIP TECH CO LTD
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Patent Information

Application Number
CN202422131728.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-30
Publication Date
2025-07-04
Estimated Expiration
2034-08-30

AI Technical Summary

Technical Problem

The conductive rod is easily shaken during the oxidation tank, resulting in position deviation, requiring multiple adjustments, which consumes time and effort, and is inefficient.

Method used

The conductive rod positioning structure including a vertical support plate, a transverse and longitudinal limiting mechanism is adopted. Through the combined limit of the fork plate and the double support rod, the transverse and longitudinal shaking of the conductive rod is limited to achieve rapid positioning and guidance.

Benefits of technology

It effectively limits the shaking of the conductive rod, quickly stabilizes and guides the conductive rod, and improves the guiding rate and working efficiency of the conductive rod.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a conducting rod positioning structure which comprises a vertical supporting plate, a first transverse limiting mechanism, a second transverse limiting mechanism, a first longitudinal limiting mechanism and a second longitudinal limiting mechanism, and the first transverse limiting mechanism and the second transverse limiting mechanism are symmetrically arranged on the vertical supporting plate. The first longitudinal limiting mechanism and the second longitudinal limiting mechanism are symmetrically arranged on the vertical supporting plate, the first longitudinal limiting mechanism is located above the first transverse limiting mechanism, the second longitudinal limiting mechanism is located above the second transverse limiting mechanism, the first longitudinal limiting mechanism is provided with a first double-handrail used for longitudinal rotation calibration, and the second longitudinal limiting mechanism is provided with a second double-handrail used for longitudinal rotation calibration. The second longitudinal limiting mechanism is provided with a second double-holding rod used for longitudinal rotation calibration. According to the conducting rod positioning structure provided by the utility model, the shaking conducting rod is limited layer by layer, the shaking conducting rod can be quickly guided, the problem of low efficiency caused by shaking of the conducting rod is solved, the guiding speed of the conducting rod is accelerated, and the working efficiency is improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of guiding mechanisms, in particular to a positioning structure for a conductive rod. Background Art

[0002] When an aluminum product is undergoing an oxidation operation, the aluminum product is immersed in an oxidation tank filled with an electrolyte solution. At this time, it is also necessary to energize the solution. In the prior art, when energizing the solution, a conductive device needs to be placed in the oxidation tank, and generally an oxidation electrode is used to complete this. However, when using a conductive rod as the oxidation electrode and placing it in the oxidation tank, the placement process in the oxidation tank needs to be guided to a specified position through a guiding structure. However, the guiding rod will shake during the placement process, and the conductive rod is likely to deviate from the guiding structure, requiring a lot of time to repeatedly adjust the position, which is time-consuming and laborious, resulting in low work efficiency.

[0003] Therefore, it is necessary to provide a new positioning structure for a conductive rod to solve the above technical problems. Summary of the Utility Model

[0004] To solve the above technical problems, the utility model provides a positioning structure for a conductive rod.

[0005] A positioning structure for a conductive rod provided by the utility model includes a vertical support plate, a first transverse limiting mechanism, a second transverse limiting mechanism, a first longitudinal limiting mechanism, and a second longitudinal limiting mechanism. The first transverse limiting mechanism and the second transverse limiting mechanism are symmetrically arranged on the vertical support plate. The first longitudinal limiting mechanism and the second longitudinal limiting mechanism are symmetrically arranged on the vertical support plate. The first longitudinal limiting mechanism is located above the first transverse limiting mechanism, and the second longitudinal limiting mechanism is located above the second transverse limiting mechanism. A first fork plate for transverse limiting is arranged on the first transverse limiting mechanism, a second fork plate for transverse limiting is arranged on the second transverse limiting mechanism. A first double support rod for longitudinal rotation calibration is arranged on the first longitudinal limiting mechanism, and a second double support rod for longitudinal rotation calibration is arranged on the second longitudinal limiting mechanism.

[0006] Preferably, the first longitudinal limiting mechanism and the second longitudinal limiting mechanism are the same longitudinal limiting structure. The longitudinal limiting structure includes a support vertical plate, a support transverse plate, a sliding transverse plate, a first cylinder, a second cylinder, a first toothed plate, and a second toothed plate. The support vertical plate is fixedly connected to the support transverse plate. The first cylinder is fixedly connected to the support transverse plate. The sliding transverse plate is slidably connected to the support transverse plate. The telescopic end of the first cylinder is fixedly connected to the sliding transverse plate. The second cylinder is fixedly connected to the sliding transverse plate. The telescopic end of the second cylinder is fixedly connected to the first toothed plate. The first toothed plate meshes with the second toothed plate. The first toothed plate and the second toothed plate are located on the sliding transverse plate. A first support rod is arranged on the first toothed plate, and a second support rod is arranged on the second toothed plate.

[0007] Preferably, the first double support bar and the second double support bar are the same double support bar structure, and the double support bar structure is composed of the first support bar and the second support bar.

[0008] Preferably, the first lateral limiting mechanism includes a first platform plate, a first sliding plate, a third cylinder, a pad plate and a first fork plate, the first sliding plate is slidably connected to the first platform plate, the third cylinder is fixedly connected to the first platform plate, the telescopic end of the third cylinder is fixedly connected to the first sliding plate, the pad plate is fixedly connected to the first sliding plate, and the first fork plate is fixedly connected to the pad plate.

[0009] Preferably, the second lateral limiting mechanism includes a second platform plate, a second sliding plate, a fourth cylinder, a raising plate and a second fork plate, the second sliding plate is slidably connected to the second platform plate, the fourth cylinder is fixedly connected to the second platform plate, the telescopic end of the fourth cylinder is fixedly connected to the second sliding plate, and the second fork plate is fixedly connected to the first sliding plate.

[0010] Preferably, the conductive rod positioning structure further includes a guide assembly, and the guide assembly is connected below the vertical support plate.

[0011] Preferably, the guide assembly comprises a first guide wheel, a second guide wheel and a platform vertical plate, and the first guide wheel and the second guide wheel are rotatably connected to the platform vertical plate.

[0012] Compared with the related art, the conductive rod positioning structure provided by the utility model has the following beneficial effects:

[0013] The conductive rod positioning structure provided by the utility model limits the longitudinal shaking of the conductive rod by rotating double supporting rods, and then cooperates with the fork plate to limit the lateral shaking, and performs layer-by-layer limiting, which effectively limits the shaking of the conductive rod. The conductive rod positioning structure provided by the utility model performs layer-by-layer limiting processing on the shaking conductive rod, and can quickly stabilize and guide the shaking conductive rod, solving the problem of low efficiency caused by the shaking of the conductive rod when guiding it to fall, speeding up the guiding rate of the conductive rod, and improving work efficiency. BRIEF DESCRIPTION OF THE DRAWINGS

[0014] Figure 1 A schematic diagram of the structure of the conductive rod positioning structure provided by the utility model;

[0015] Figure 2 Another structural schematic diagram of the conductive rod positioning structure provided by the utility model from another angle;

[0016] Figure 3 This is a structural schematic diagram of the longitudinal limiting structure provided by the utility model.

[0017] Reference numerals in the figure: 1, vertical support plate; 2, guiding assembly; 21, platform vertical plate; 22, first guiding wheel; 23, second guiding wheel; 3, first lateral limiting mechanism; 31, first fork plate; 32, first platform plate; 33, first sliding plate; 34, third cylinder; 35, heightening plate; 4, second lateral limiting mechanism; 41, second fork plate; 42, second platform plate; 43, second sliding plate; 44, fourth cylinder; 5, first longitudinal limiting mechanism; 51, first double support rod; 511, first support rod; 512, second support rod; 52, support vertical plate; 53, support horizontal plate; 54, sliding horizontal plate; 55, first cylinder; 56, second cylinder; 57, first toothed plate; 58, second toothed plate; 6, second longitudinal limiting mechanism; 61, second double support rod; 7, conducting rod. Detailed implementation mode

[0018] The present utility model will be further described below in conjunction with the accompanying drawings and the implementation mode.

[0019] Please refer to Figures 1 to 3 , wherein, Figure 1 is a schematic structural view of the conducting rod positioning structure provided by the present utility model; Figure 2 is a schematic structural view of another angle of the conducting rod positioning structure provided by the present utility model; Figure 3 is a schematic structural view of the longitudinal limiting structure provided by the present utility model.

[0020] During the specific implementation process, as Figures 1 to 3 shown, a conducting rod positioning structure includes a vertical support plate 1, a first lateral limiting mechanism 3, a second lateral limiting mechanism 4, a first longitudinal limiting mechanism 5, a second longitudinal limiting mechanism 6 and a guiding assembly 2. The guiding assembly 2 is connected below the vertical support plate 1. The first lateral limiting mechanism 3 and the second lateral limiting mechanism 4 are symmetrically arranged on the vertical support plate 1. The first longitudinal limiting mechanism 5 and the second longitudinal limiting mechanism 6 are symmetrically arranged on the vertical support plate 1. The first longitudinal limiting mechanism 5 is located above the first lateral limiting mechanism 3, and the second longitudinal limiting mechanism 6 is located above the second lateral limiting mechanism 4. A first fork plate 31 for lateral limiting is arranged on the first lateral limiting mechanism 3, and a second fork plate 41 for lateral limiting is arranged on the second lateral limiting mechanism 4. A first double support rod 51 for longitudinal rotation calibration is arranged on the first longitudinal limiting mechanism 5, and a second double support rod 61 for longitudinal rotation calibration is arranged on the second longitudinal limiting mechanism 6. Both the first double support rod 51 and the second double support rod 61 are composed of two rotatable support rods, which can limit and contract the conducting rod 7 between the two support rods. The first double support rod 51 of the longitudinal limiting mechanism cooperates with the second double support rod 61 of the second longitudinal limiting mechanism 6 to limit the swaying conducting rod 7 within the first double support rod 51 and the second double support rod 61, realizing the rapid positioning of the conducting rod 7.

[0021] Preferably, the first longitudinal limiting mechanism 5 and the second longitudinal limiting mechanism 6 are of the same longitudinal limiting structure. The longitudinal limiting structure includes a supporting vertical plate 52, a supporting horizontal plate 53, a sliding horizontal plate 54, a first cylinder 55, a second cylinder 56, a first toothed plate 57 and a second toothed plate 58. The supporting vertical plate 52 is fixedly connected to the supporting horizontal plate 53. The first cylinder 55 is fixedly connected to the supporting horizontal plate 53. The sliding horizontal plate 54 is slidably connected to the supporting horizontal plate 53. The telescopic end of the first cylinder 55 is fixedly connected to the sliding horizontal plate 54. The second cylinder 56 is fixedly connected to the sliding horizontal plate 54. The telescopic end of the second cylinder 56 is fixedly connected to the first toothed plate 57. The first toothed plate 57 meshes with the second toothed plate 58. The first toothed plate 57 and the second toothed plate 58 are located on the sliding horizontal plate 54. A first supporting rod 511 is provided on the first toothed plate 57, and a second supporting rod 512 is provided on the second toothed plate 58. The supporting horizontal plate 53 has a slide rail and a slider for cooperating with the sliding horizontal plate 54. Specifically, the first double supporting rod 51 and the second double supporting rod 61 are of the same double supporting rod structure. The double supporting rod structure is composed of the first supporting rod 511 and the second supporting rod 512. There is a supporting space between the first supporting rod 511 and the second supporting rod 512. The first supporting rod 511 and the second supporting rod 512 stabilize the conductive rod 7 in the supporting space. The second cylinder 56 controls the rotation of the first toothed plate 57. Under the meshing of the first toothed plate 57 and the second toothed plate 58, the second toothed plate 58 rotates in the opposite direction driven by the first toothed plate 57, that is, the second cylinder 56 can control the first supporting rod 511 and the second supporting rod 512. When the second cylinder 56 retracts, the first toothed plate 57 drives the second toothed plate 58, and the first supporting rod 511 and the second supporting rod 512 turn from the retracted state to the unfolded state. At this time, the first supporting rod 511 and the second supporting rod 512 are fully unfolded to prepare for contracting and capturing the shaking conductive rod 7. When the second cylinder 56 extends, the first supporting rod 511 and the second supporting rod 512 turn from the unfolded state to the retracted state. During this process, the first supporting rod 511 and the second supporting rod 512 slowly stabilize the shaking conductive rod 7 in the supporting space, can limit the longitudinal shaking of the conductive rod 7, and is simple to operate and convenient to use.

[0022] Preferably, the first lateral limiting mechanism 3 includes a first platform plate 32, a first sliding plate 33, a third cylinder 34, a heightening plate 35 and a first fork plate 31. The first sliding plate 33 is slidably connected to the first platform plate 32. The third cylinder 34 is fixedly connected to the first platform plate 32, and the telescopic end of the third cylinder 34 is fixedly connected to the first sliding plate 33. The heightening plate 35 is fixedly connected to the first sliding plate 33, and the first fork plate 31 is fixedly connected to the heightening plate 35. The first platform plate 32 has a slide rail and a slider for cooperating with the first sliding plate 33. The third cylinder 34 controls the telescopic movement of the first fork plate 31 by controlling the first sliding plate 33. The second lateral limiting mechanism 4 includes a second platform plate 42, a second sliding plate 43, a fourth cylinder 44, the heightening plate 35 and a second fork plate 41. The second sliding plate 43 is slidably connected to the second platform plate 42. The fourth cylinder 44 is fixedly connected to the second platform plate 42, and the telescopic end of the fourth cylinder 44 is fixedly connected to the second sliding plate 43. The second fork plate 41 is fixedly connected to the first sliding plate 33. The second platform plate 42 has a slide rail and a slider for cooperating with the second sliding plate 43. The fourth cylinder 44 controls the telescopic movement of the second fork plate 41 by controlling the first sliding plate 33. The first fork plate 31 and the second fork plate 41 have the same fork plate structure, and a slot for limiting the conductive rod 7 is provided on the fork plate structure. The slot of the first fork plate 31 and the slot of the second fork plate 41 form a lateral limiting space. The first lateral limiting mechanism 3 and the second lateral limiting mechanism 4 have similar structures. The first lateral limiting mechanism 3 and the second lateral limiting mechanism 4 are symmetrically arranged in a mirror image on the vertical support plate 1. The first lateral limiting mechanism 3 has one more heightening plate 35 than the second lateral limiting mechanism 4, so that the first fork plate 31 and the second fork plate 41 are offset. Under the longitudinal limitation of the conductive rod 7 by the first longitudinal limiting mechanism 5 and the second longitudinal limiting mechanism 6 in one layer, the third cylinder 34 extends the first fork plate 31, and the fourth cylinder 44 extends the second fork plate 41. The first fork plate 31 cooperates with the second fork plate 41 to laterally limit the conductive rod 7 from both sides, and limits the conductive rod 7 in the lateral limiting space, which can stably hold the conductive rod 7 effectively.

[0023] Preferably, the guiding assembly 2 includes a first guiding wheel 22, a second guiding wheel 23 and a platform vertical plate 21. The first guiding wheel 22 and the second guiding wheel 23 are rotatably connected to the platform vertical plate 21. There is a guiding space for passing the conductive rod 7 between the first guiding wheel 22 and the second guiding wheel 23, and the conductive rod 7 passes between the first guiding wheel 22 and the second guiding wheel 23. The platform vertical plate 21 is fixed at the middle position of the vertical support plate 1. The first platform plate 32 is located above the platform vertical plate 21 and close to one side of the vertical support plate 1. The second platform plate 42 is located above the platform vertical plate 21 and close to the other side of the vertical support plate 1. The first longitudinal limiting mechanism 5 is located above the first platform plate 32, and the second longitudinal limiting mechanism 6 is located above the second platform plate 42. That is, the first fork plate 31 of the first transverse limiting mechanism 3 and the second fork plate 41 of the second transverse limiting mechanism 4 are located above the guiding assembly 2. The first double support rod 51 of the first longitudinal limiting mechanism 5 is above the first fork plate 31 of the first transverse limiting mechanism 3, and the second double support rod 61 of the second longitudinal limiting mechanism 6 is above the second fork plate 41 of the second transverse limiting mechanism 4. The guiding space, the transverse limiting space and the supporting space are on the same vertical line. The first longitudinal limiting mechanism 5, the second longitudinal limiting mechanism 6, the first transverse limiting mechanism 3, the second transverse limiting mechanism 4 and the guiding assembly 2 perform layer-by-layer processing on the conductive rod 7, which can quickly and stably guide the shaking conductive rod 7, reduce the shaking of the conductive rod 7, accelerate the guiding rate of the conductive rod 7, and improve the working efficiency.

[0024] The operation process provided by the present utility model is as follows: The first cylinder 55 on the first longitudinal limiting mechanism 5 and the second longitudinal limiting mechanism 6 extends its telescopic end, so that the first double support rod 51 of the first longitudinal limiting mechanism 5 approaches the second double support rod 61 of the second longitudinal limiting mechanism 6. When the second cylinder 56 retracts its telescopic end, the first toothed plate 57 drives the second toothed plate 58, and the first support rod 511 and the second support rod 512 turn from the retracted state to the deployed state to prepare for capturing the swaying conductive rod 7, that is, the first double support rod 51 of the first longitudinal limiting mechanism 5 and the second double support rod 61 of the second longitudinal limiting mechanism 6 are deployed. The third motor of the first transverse limiting mechanism 3 retracts the first sliding plate 33, and the fourth motor of the second transverse limiting mechanism 4 retracts the second sliding plate 43, that is, the first fork plate 31 and the second fork plate 41 are in a state to be closed; When the conductive rod 7 needs to be guided into the oxidation tank, the conductive rod 7 is slowly lowered. When a part of the conductive rod 7 drops beyond the first longitudinal limiting mechanism 5 and the second longitudinal limiting mechanism 6, the second cylinder 56 on the first longitudinal limiting mechanism 5 and the second longitudinal limiting mechanism 6 retracts its telescopic end. During this process, the first support rod 511 and the second support rod 512 slowly stabilize the swaying conductive rod 7 in the support space, that is, the conductive rod 7 is limited within the deployment of the first double support rod 51 of the first longitudinal limiting mechanism 5 and the second double support rod 61 of the second longitudinal limiting mechanism 6; When a part of the conductive rod 7 drops beyond the second fork plate 41, the third motor of the first transverse limiting mechanism 3 extends the first sliding plate 33, and the fourth motor of the second transverse limiting mechanism 4 extends the second sliding plate 43, so that the first fork plate 31 and the second fork plate 41 close to limit the conductive rod 7. The conductive rod 7 continues to drop through the guiding assembly 2 and finally drops into the oxidation tank to complete the guiding work.

[0025] The conductive rod positioning structure provided by the present utility model restricts the longitudinal sway of the conductive rod 7 through the rotating double support rods, and then cooperates with the fork plates to restrict the transverse sway, performing layer-by-layer limiting, effectively restricting the sway of the conductive rod 7. The conductive rod positioning structure provided by the present utility model performs layer-by-layer limiting treatment on the swaying conductive rod 7, can quickly stabilize and guide the swaying conductive rod 7, solves the problem of low efficiency caused by the sway of the conductive rod 7 during the guiding and dropping process, speeds up the guiding rate of the conductive rod 7, and improves the work efficiency.

[0026] The above are only the embodiments of the present utility model, and do not limit the patent scope of the present utility model accordingly. Any equivalent structure or equivalent process transformation made by using the content of the specification and drawings of the present utility model, or directly or indirectly applied to other related technical fields, shall be equally included in the patent protection scope of the present utility model.

Claims

1. A conductive rod positioning structure, characterized in that, It includes a vertical support plate (1), a first lateral limiting mechanism (3), a second lateral limiting mechanism (4), a first longitudinal limiting mechanism (5) and a second longitudinal limiting mechanism (6). The first lateral limiting mechanism (3) and the second lateral limiting mechanism (4) are symmetrically arranged on the vertical support plate (1). The first longitudinal limiting mechanism (5) and the second longitudinal limiting mechanism (6) are symmetrically arranged on the vertical support plate (1). The first longitudinal limiting mechanism (5) is located above the first lateral limiting mechanism (3), and the second longitudinal limiting mechanism (6) is located above the second lateral limiting mechanism (4). A first fork plate (31) for lateral limiting is arranged on the first lateral limiting mechanism (3), and a second fork plate (41) for lateral limiting is arranged on the second lateral limiting mechanism (4). A first double support rod (51) for longitudinal rotation calibration is arranged on the first longitudinal limiting mechanism (5), and a second double support rod (61) for longitudinal rotation calibration is arranged on the second longitudinal limiting mechanism (6).

2. The conductive rod positioning structure according to claim 1, characterized in that The first longitudinal limiting mechanism (5) and the second longitudinal limiting mechanism (6) are of the same longitudinal limiting structure. The longitudinal limiting structure includes a support vertical plate (52), a support horizontal plate (53), a sliding horizontal plate (54), a first cylinder (55), a second cylinder (56), a first toothed plate (57) and a second toothed plate (58). The support vertical plate (52) is fixedly connected to the support horizontal plate (53). The first cylinder (55) is fixedly connected to the support horizontal plate (53). The sliding horizontal plate (54) is slidably connected to the support horizontal plate (53). The telescopic end of the first cylinder (55) is fixedly connected to the sliding horizontal plate (54). The second cylinder (56) is fixedly connected to the sliding horizontal plate (54). The telescopic end of the second cylinder (56) is fixedly connected to the first toothed plate (57). The first toothed plate (57) meshes with the second toothed plate (58). The first toothed plate (57) and the second toothed plate (58) are located on the sliding horizontal plate (54). A first support rod (511) is arranged on the first toothed plate (57), and a second support rod (512) is arranged on the second toothed plate (58).

3. The conductive rod positioning structure according to claim 2, characterized in that, The first double support rod (51) and the second double support rod (61) are of the same double support rod structure. The double support rod structure is composed of a first support rod (511) and a second support rod (512).

4. The conductive rod positioning structure according to claim 1, characterized in that, The first lateral limiting mechanism (3) includes a first platform plate (32), a first sliding plate (33), a third cylinder (34), a heightening plate (35) and a first fork plate (31). The first sliding plate (33) is slidably connected to the first platform plate (32). The third cylinder (34) is fixedly connected to the first platform plate (32). The telescopic end of the third cylinder (34) is fixedly connected to the first sliding plate (33). The heightening plate (35) is fixedly connected to the first sliding plate (33). The first fork plate (31) is fixedly connected to the heightening plate (35).

5. The conductive rod positioning structure according to claim 1, characterized in that, The second lateral limiting mechanism (4) includes a second platform plate (42), a second sliding plate (43), a fourth cylinder (44), a heightening plate (35) and a second fork plate (41). The second sliding plate (43) is slidably connected to the second platform plate (42). The fourth cylinder (44) is fixedly connected to the second platform plate (42). The telescopic end of the fourth cylinder (44) is fixedly connected to the second sliding plate (43). The second fork plate (41) is fixedly connected to the first sliding plate (33).

6. The conductive rod positioning structure according to claim 1, characterized in that, The conductive rod positioning structure further includes a guiding assembly (2). The guiding assembly (2) is connected below the vertical support plate (1).

7. The conductive rod positioning structure according to claim 6, characterized in that, The guiding assembly (2) includes a first guiding wheel (22), a second guiding wheel (23) and a platform vertical plate (21). The first guiding wheel (22) and the second guiding wheel (23) are rotatably connected to the platform vertical plate (21).