Electrolytic polar plate stripping machine

By designing an electrolytic electrode plate stripping machine, and utilizing the cooperation of the conveying and driving components, the problems of low efficiency of manual hammering and electrode plate deformation caused by rolling stripping machines were solved. This achieved uniform force and controllable force during the electrode plate stripping process, improving stripping efficiency and reducing labor intensity.

CN224280505UActive Publication Date: 2026-05-26江苏丹源环保科技有限公司

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
江苏丹源环保科技有限公司
Filing Date
2025-05-07
Publication Date
2026-05-26

AI Technical Summary

Technical Problem

In the existing electrolytic manganese process, manual hammering peeling is inefficient and labor-intensive, while roller peeling machines cause electrode plate deformation.

Method used

Design an electrolytic electrode stripping machine, which uses a conveying component to transport the electrode plates and a driving component to control the stripping component to strike the electrode plates, ensuring that the striking force is uniform and controllable and avoiding electrode plate deformation.

Benefits of technology

This achieves uniform force and controllable force during the electrode peeling process, avoids electrode deformation, improves peeling efficiency, and reduces labor intensity.

✦ Generated by Eureka AI based on patent content.

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  • Figure CN224280505U_ABST
    Figure CN224280505U_ABST
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Abstract

The utility model discloses an electrolytic polar plate stripping machine which comprises a stripping machine frame, a plurality of stripping assemblies are symmetrically arranged on the two sides in the stripping machine frame, and the stripping assemblies are connected with a driving assembly arranged on the stripping machine frame. A conveying assembly is arranged on the top of the stripping rack in the length direction and comprises a conveying rack, a driving wheel, a driven wheel, a conveying chain and a plurality of hooks, wherein the driving wheel and the driven wheel are installed at the two ends of the conveying rack respectively, the conveying chain is wound around the driving wheel and the driven wheel, and the hooks are evenly distributed on the conveying chain. The polar plate is suspended between the stripping assemblies on the two sides through the hooks, the plane of the polar plate is perpendicular to the moving direction of the stripping assemblies, and the driving assembly drives the stripping assemblies to reciprocate to periodically knock the two sides of the polar plate. And the knocking force is controllable, so that the deformation of the polar plate can be avoided.
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Description

Technical Field

[0001] This utility model relates to the field of electrolytic manganese cathode plate stripping equipment, and in particular to an electrolytic electrode plate stripping machine. Background Technology

[0002] Electrolytic manganese is the process of extracting manganese metal from manganese ore through electrolysis in an electrolytic cell. During electrolysis, oxidation occurs at the anode and reduction occurs at the cathode. Manganese ions gain electrons at the cathode and are released as manganese metal. During electrolysis, metallic manganese is deposited on the cathode plate, which needs to be peeled off. Previously, the peeling method was usually manual hammering. However, manual hammering produces a lot of dust, is labor-intensive, and uneven force control can easily deform the electrode plate. Therefore, a rolling peeling machine was subsequently developed, such as the electrolytic electrode plate rolling peeling machine disclosed in our authorized patent CN106929884A. The electrode plate is rolled by the peeling component to achieve the peeling of metallic manganese. However, this rolling peeling machine also has drawbacks. Because the peeling component has to both peel the metallic manganese and transport the electrode plate, the transport of the electrode plate relies on the peeling component. Therefore, the electrode plate is squeezed by the peeling component during the peeling process, which can also cause deformation of the electrode plate. Utility Model Content

[0003] The purpose of this invention is to provide an electrolytic electrode stripping machine.

[0004] The innovation of this utility model is that: this application sets up a conveying component to transport the electrode plate, and controls the peeling component to strike the electrode plate through the driving component. The structure is simple, the force is uniform and the striking force is controllable, which can avoid the deformation of the electrode plate.

[0005] To achieve the aforementioned objectives, the technical solution of this utility model is as follows:

[0006] An electrolytic electrode plate stripping machine includes a stripping frame with several stripping components symmetrically arranged on both sides inside the frame. The stripping components are connected to a drive component mounted on the frame. A conveying component is arranged along the length of the top of the frame, including a conveying frame, a drive wheel and a driven wheel respectively mounted at both ends of the frame, a conveying chain wound around the drive wheel and the driven wheel, and multiple hooks evenly distributed on the conveying chain. The electrode plate is suspended between the two stripping components via the hooks, and the plane of the electrode plate is perpendicular to the movement direction of the stripping components. The drive component drives the stripping components to reciprocate and periodically strike both sides of the electrode plate.

[0007] Furthermore, the peeling assembly includes several peeling shafts arranged in parallel, which are connected by a bracket. The bracket is connected to a drive assembly, and peeling rollers are arranged at axial intervals on the peeling shafts.

[0008] Furthermore, the drive assembly includes a drive motor, a drive shaft connected to the drive motor, and a drive plate; a movable slider is respectively provided on the upper and lower parts of one side of the drive plate, the movable slider is provided on the slide rail of the stripping frame, a gear rail is provided in the middle of the other side of the drive plate, and a gear is provided at the end of the drive shaft, the gear is provided on the gear rail and meshes with the gear rail.

[0009] Furthermore, extended peeling sections are provided at both ends of the peeling shaft, and the extended peeling sections are detachably connected to the peeling shaft.

[0010] Furthermore, a corrosion-resistant rubber layer is provided on the circumferential surface of the peeling roller.

[0011] The beneficial effects of this utility model are:

[0012] First: This application sets up a conveying component to transport the electrode plate, and controls the peeling component to strike the electrode plate through the driving component. The structure is simple, the force is uniform and the striking force is controllable, which can avoid the deformation of the electrode plate.

[0013] Second: Extended stripping sections are provided at both ends of the stripping shaft to accommodate plates of different heights.

[0014] Third: A corrosion-resistant rubber layer is set on the circumferential surface of the stripping roller. On the one hand, this can extend the service life of the stripping roller and prevent it from being corroded. On the other hand, it can also act as a buffer to prevent the electrode plate from deforming. Attached Figure Description

[0015] Figure 1 This is a perspective view of the present utility model.

[0016] Figure 2 This is a schematic diagram of the structure of the stripping roller and the extended glass section.

[0017] In the diagram: 10 is the peeling frame, 20 is the peeling assembly, 21 is the peeling shaft, 21.1 is the peeling roller, 22 is the support, 23 is the extended peeling section, 30 is the drive assembly, 31 is the drive motor, 32 is the drive shaft, 33 is the drive plate, 34 is the moving slider, 35 is the slide rail, 36 is the gear rail, 37 is the gear, 40 is the conveying assembly, 41 is the conveyor frame, 42 is the driving wheel, 43 is the driven wheel, 44 is the conveyor chain, 45 is the hook, and 50 is the electrode plate. Detailed Implementation

[0018] The technical solutions in the embodiments of this utility model will now be clearly and completely described with reference to the accompanying drawings.

[0019] An electrolytic electrode plate stripping machine includes a stripping frame 10. Several stripping components 20 are symmetrically arranged on both sides of the stripping frame 10. Each stripping component 20 is connected to a drive component 30 mounted on the stripping frame 10. A conveying component 40 is arranged along the length of the top of the stripping frame 10, including a conveying frame 41, a drive wheel 42 and a driven wheel 43 respectively mounted at both ends of the conveying frame 41, a conveying chain 44 wound around the drive wheel 42 and the driven wheel 43, and multiple hooks 45 distributed on the conveying chain 44. An electrode plate 50 is suspended between the two stripping components 20 via the hooks 45, and the plane of the electrode plate 50 is perpendicular to the direction of movement of the stripping components 20. The drive component 30 drives the stripping components 20 to reciprocate and periodically strike both sides of the electrode plate 50. The drive wheel 42 is connected to the output end of a motor (not shown in the figure). This is prior art and will not be described further here.

[0020] Furthermore, the peeling assembly 20 includes several peeling shafts 21 arranged in parallel, which are connected by a bracket 22. The bracket 22 is connected to the drive assembly 30, and peeling rollers 21.1 are arranged axially on the peeling shafts 21.

[0021] Furthermore, the peeling shaft 21 in the peeling assembly 20 can be set vertically or horizontally. Figure 1 The peeling shaft 21 in the front section is vertically arranged, and the peeling shaft 21 in the rear section is horizontally arranged. In addition, in the symmetrically arranged peeling components 20, the positions of the peeling shafts 21 can be staggered. The arrangement of the peeling shafts 21 is the prior art and will not be described in detail here.

[0022] Furthermore, the drive assembly 30 includes a drive motor 31, a drive shaft 32 connected to the drive motor 31, and a drive plate 33; a movable slider 34 is respectively provided on the upper and lower parts of one side of the drive plate 33, and the movable slider 34 is provided on the slide rail 35 of the stripping frame 10; a gear rail 36 is provided in the middle of the other side of the drive plate 33; a gear 37 is provided at the end of the drive shaft 32, and the gear 37 is provided on the gear rail 36 and meshes with the gear rail 36.

[0023] Furthermore, the drive motor 31 drives the drive shaft 32 to rotate, and the gear 37 at the end of the drive shaft 32 drives the drive plate 33 to move back and forth to strike the pole plate 50. The striking force can be adjusted by the distance the drive plate 33 moves. Therefore, in this application, the striking force is adjustable.

[0024] Furthermore, the peeling shaft 21 is provided with extended peeling sections 23 at both ends, and the extended peeling sections 23 are detachably connected to the peeling shaft 21. The connection between the extended peeling sections 23 and the peeling shaft 21 can be a threaded connection or a pin connection. The main purpose is to adapt to the electrode plates 50 of different heights. When the electrode plate 50 is high, extended peeling sections 23 can be added to both ends or one end of the peeling shaft 21.

[0025] Furthermore, a corrosion-resistant rubber layer is provided on the circumferential surface of the peeling roller 21.1.

[0026] The described embodiments are merely some, not all, of the embodiments of this utility model. All other embodiments obtained by those skilled in the art based on the embodiments of this utility model without inventive effort are within the scope of protection of this utility model.

Claims

1. An electrolytic electrode plate stripping machine, comprising a stripping frame (10), characterized in that: Several peeling components (20) are symmetrically arranged on both sides inside the peeling frame (10), and the peeling components (20) are connected to the drive components (30) arranged on the peeling frame (10); The top of the stripping frame (10) is provided with a conveying assembly (40) along the length direction, including a conveying frame (41), a drive wheel (42) and a driven wheel (43) respectively installed at both ends of the conveying frame (41), a conveying chain (44) wound on the drive wheel (42) and the driven wheel (43), and a plurality of hooks (45) distributed on the conveying chain (44). The electrode plate (50) is suspended between the two peeling components (20) by a hook (45), and the plane of the electrode plate (50) is perpendicular to the movement direction of the peeling component (20). The driving component (30) drives the peeling component (20) to reciprocate and periodically strike the two sides of the electrode plate (50).

2. The electrolytic electrode stripping machine according to claim 1, characterized in that: The peeling assembly (20) includes several peeling shafts (21) arranged in parallel. The several peeling shafts (21) are connected by a bracket (22). The bracket (22) is connected to the drive assembly (30). Peeling rollers (21.1) are arranged axially on the peeling shafts (21).

3. An electrolytic electrode stripping machine according to claim 1 or 2, characterized in that: The drive assembly (30) includes a drive motor (31), a drive shaft (32) connected to the drive motor (31), and a drive plate (33). The drive plate (33) has a movable slider (34) on the upper and lower parts of one side, and the movable slider (34) is set on the slide rail (35) of the stripping frame (10). The drive plate (33) has a toothed rail (36) in the middle of the other side, and a gear (37) is set at the end of the drive shaft (32). The gear (37) is set on the toothed rail (36) and meshes with the toothed rail (36).

4. The electrolytic electrode stripping machine according to claim 2, characterized in that: The peeling shaft (21) is further provided with extended peeling sections (23) at both ends, and the extended peeling sections (23) are detachably connected to the peeling shaft (21).

5. An electrolytic electrode stripping machine according to claim 2, characterized in that: The circumferential surface of the stripping roller (21.1) is provided with a corrosion-resistant rubber layer.