Anode net conductive structure for immersion plating
By setting connecting rods and connecting plates between the anode meshes to form an integrated structure, the problem of unstable anode wire fixation is solved, ensuring that conductivity is not affected and achieving stable fixation of the anode mesh and reliable conductivity.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-14
- Publication Date
- 2026-04-10
AI Technical Summary
In existing technologies, the anode wire clamps are not securely fixed to the anode mesh, making them prone to loose connections. Even slight impacts can cause them to detach, affecting conductivity.
A conductive structure for immersion plating anode mesh is designed. By setting a connecting rod and a connecting plate between two anode meshes to form an integrated structure, and by winding and fixing the connecting rod to the anode wire, the conductivity is ensured to be unaffected.
This achieves stable fixation of the anode mesh, preventing the anode wires from falling off due to displacement or collision, and ensuring the stability and reliability of the conductivity.
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Figure CN224105980U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model discloses an anode net conductive structure for immersion plating, and belongs to the field of electroplating equipment. BACKGROUND
[0002] The immersion plating tank is a key equipment in the surface treatment process, mainly used for depositing metal or alloy coating on the surface of the base material through chemical method; the inside of the sub-tank needs to be installed with fixing blocks on both sides, and then an anode net is placed between the fixing blocks and the tank wall to immerse the lower end of the anode net into the electroplating solution, and the upper end of the anode net needs to be powered through an anode wire to complete the electrolytic reaction.
[0003] In the existing production process, the staff of the company found that when the anode net is placed at the edge of the fixing block and clamped by the anode wire, the end of the anode wire needs to be clamped together with the anode wire and the side wall of the plating tank, and the anode wire will be clamped insecurely and loosely on the anode net, and slight collision may cause the anode wire to fall off, affecting the conductive effect. CONTENT OF THE UTILITY MODEL
[0004] (I) Technical problem to be solved
[0005] In view of the above-mentioned shortcomings and deficiencies of the prior art, the utility model provides an anode net conductive structure for immersion plating, which solves the technical problem that when the anode net is clamped by the anode wire, the anode wire will be clamped insecurely and loosely on the anode net, and slight collision may cause the anode wire to fall off, affecting the conductive effect.
[0006] (II) Technical scheme
[0007] The utility model discloses an anode net conductive structure for immersion plating, which comprises a tank body, a plating tank is arranged at the upper end of the tank body, a spoiler is arranged in the plating tank, an anode conductive frame is arranged in the plating tank, an anode wire is connected to the anode conductive frame, the anode conductive frame comprises an anode net, a connecting plate and a connecting rod, the number of the anode nets is two, the upper end of each anode net is provided with a connecting plate, a connecting rod is arranged between the connecting plates of the two anode nets, the connecting rod and the end of the connecting plate are fixed by mounting screws, and the end of the anode wire is wrapped around the connecting rod of the anode conductive frame.
[0008] Preferably, the connecting rod and the anode net are connected by a connecting plate made of metal material.
[0009] Preferably, the connecting plate extends upward from the anode net, is connected to the connecting rod at the end away from the plating tank, and the other end of the connecting plate is fixed to the anode plate by welding.
[0010] Preferably, the two anode nets are arranged on the inner side of the side wall of the plating tank, and the connecting rod spans the plating tank.
[0011] Preferably, overflow ports are further arranged at two ends of the plating tank.
[0012] Preferably, the bottom plate of the plating tank is further provided with through holes, and the number of the through holes is two or more.
[0013] Preferably, the connecting rod is made of metal, and screw holes are arranged at two ends of the connecting rod.
[0014] (Three) beneficial effects
[0015] By arranging the connecting rod between the two anode nets to form an integrated structure, the anode net can be placed in the plating tank in three dimensions, without worrying about the anode net deviating from the position, and the connecting rod and the anode wire are fixed in a winding manner, so that the conductivity of the connecting rod and the anode wire will not be disconnected due to the deviation from the position, and the problem that the anode wire will fall off due to collision and affect the conductivity is avoided. BRIEF DESCRIPTION OF DRAWINGS
[0016] The accompanying drawings are used to provide a further understanding of the technical scheme of the present application, and constitute a part of the specification, and are used together with the embodiments of the present application to explain the technical scheme of the present application, and do not constitute a limitation on the technical scheme of the present application.
[0017] Fig. 1 is a whole structure perspective view of the anode net conductive structure for immersion plating;
[0018] Fig. 2 is an exploded view of the whole structure of the anode net conductive structure for immersion plating;
[0019] Marked for explanation:
[0020] 1, tank body; 2, plating tank; 21, overflow port; 22, bottom plate; 23, through hole; 3, spoiler; 4, anode conductive frame; 41, anode net; 42, connecting plate; 43, connecting rod; 44, mounting screw; 5, anode wire. DETAILED DESCRIPTION
[0021] In order to make the purpose, technical scheme and advantages of the present application more clear and understandable, the present application will be further described in detail below in combination with the drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present application, and are not used to limit the present application.
[0022] The following will be combined with the drawings Figs. 1-2, for further description, the utility model discloses an anode net 41 conductive structure for immersion plating, including groove body 1, the upper end of groove body 1 is provided with plating groove 2, the spoiler 3 is provided in plating groove 2, anode conductive frame 4 is erected in plating groove 2, and is contacted with the electroplating solution in plating groove 2, and anode conductive frame 4 is connected with anode wire 5, and anode conductive frame 4 includes anode net 41, connecting plate 42 and connecting rod 43, the number of anode net 41 is two, and the upper end of each anode net 41 is provided with two connecting plates 42, and the lower end of the oppositely arranged two anode nets 41 is provided on anode conductive frame 4, and the connecting rod 43 is arranged between the oppositely arranged connecting plates 42 of two anode plates, and the end of connecting rod 43 and connecting plate 42 is fixed through mounting screw 44, the mounting screw 44 is inserted and passes through the through hole of the preset connecting plate 42 and is connected with the screw hole of the end of connecting rod 43, and the end of anode wire 5 is wrapped around the connecting rod 43 of anode conductive frame 4, so that the conductivity of connecting rod 43 and anode wire 5 will not be disconnected due to deviation.
[0023] In the preferred embodiment, the connecting rod 43 and the anode net 41 are connected by the connecting plate 42 made of metal material, so that the conductivity is not affected.
[0024] In the preferred embodiment, the connecting plate 42 extends upward from the anode net 41, and is connected to the connecting rod 43 at the end away from the plating groove 2, i.e. maintaining a proper space between the connecting rod 43 and the plating groove 2. The other end of the connecting plate 42 is fixed to the anode plate by welding, making the connection more secure.
[0025] In the preferred embodiment, when the anode conductive frame 4 is placed in the plating groove 2, the two anode nets 41 are arranged on the inner side of the side wall of the plating groove 2, and the connecting rod 43 spans across the plating groove 2. Then, the end of the anode wire 5 is wrapped around the connecting rod 43 of the anode conductive frame 4.
[0026] In the preferred embodiment, the plating groove 2 is also provided with overflow ports 21 at both ends.
[0027] In the preferred embodiment, the bottom plate 22 of the plating groove 2 is also provided with through holes 23, and the number of through holes 23 is more than two.
[0028] In the preferred embodiment, the connecting rod 43 is a metal cylindrical body, and screw holes are arranged at both ends of the connecting rod 43.
[0029] In summary, by arranging the connecting rod between the two anode nets, an integrated structure is formed, which can be placed in the plating groove in three dimensions, without worrying about the deviation of the anode net, making the installation and disassembly more convenient. By wrapping the anode wire around the connecting rod, the conductivity of the connecting rod and the anode wire will not be disconnected due to deviation, avoiding the problem that the anode wire will fall off due to collision, affecting the conductivity.
[0030] Although the above has shown the embodiments of the present application, it can be understood that the above embodiments are exemplary and cannot be understood as limiting the present application, and the ordinary skilled in the art can modify the above embodiments, but the modifications are included in the broad scope of the foregoing disclosure, drawings and claims.
Claims
1. A kind of anode net conductive structure for immersion plating, including tank body, the upper end of the tank body is provided with plating tank, the plating tank is provided with spoiler, the plating tank is provided with anode conductive frame, it is characterized by: The anode conducting frame is connected with an anode wire, the anode conducting frame comprises an anode net, a connecting plate and a connecting rod, the number of the anode net is two, the upper end of the anode net is provided with the connecting plate, the connecting plate between the two anode nets is provided with the connecting rod, the connecting rod and the end of the connecting plate are fixed through the mounting screw, and the end of the anode wire is surrounded on the connecting rod of the anode conducting frame.
2. An anode mesh conductive structure for immersion plating according to claim 1, characterized in that: The connecting rod and the anode net are connected through the connecting plate made of metal.
3. The anode mesh conductive structure for immersion plating according to claim 1, characterized by: The connecting plate extends upward from the anode net, is connected with the connecting rod at the end far away from the plating tank, and the other end of the connecting plate is fixed with the anode plate through welding.
4. The anode mesh conductive structure for immersion plating according to claim 1, characterized by: The two anode nets are arranged on the inner side of the side wall of the plating tank, and the connecting rod spans the plating tank.
5. The anode mesh conductive structure for immersion plating according to claim 1, wherein: The two ends of the plating tank are also provided with overflow ports.
6. The anode mesh conductive structure for immersion plating according to claim 1, wherein: The bottom plate of the plating tank is also provided with through holes, and the number of the through holes is two or more.
7. The anode mesh conductive structure for immersion plating according to claim 1, wherein: The connecting rod is made of metal, and screw holes are arranged at both ends of the connecting rod.