Inlet and outlet groove structure for nickel-plated chromium wire
By designing the inlet and outlet groove structure for nickel-chromium plating wire, including lifting components and triggering components, the problem of uneven electrophoretic effect of nickel-chromium plating products is solved, and the uniformity of product quality and the improvement of electrophoretic effect is achieved.
Patent Information
- Application Number
- CN202421301442.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-07
- Publication Date
- 2025-05-30
- Estimated Expiration
- 2034-06-07
AI Technical Summary
During the nickel chromium plating process, the electrophoresis effect of the product in the electrophoresis tank is uneven, resulting in uneven product quality.
A nickel-chromium-plated inlet and outlet groove structure is designed, including an electrophoresis tank, lifting assembly, bracket and trigger assembly. The lifting assembly drives the bracket to lift and lower the movement through the drive motor, immersing the product in the electrophoresis liquid, triggering the assembly to start the electrophoresis process after the product is completely immersed.
By controlling the opening of the electrophoresis process, we ensure that the product's electrophoresis time is consistent in the electrophoresis tank, and the electrophoresis effect and quality uniformity of nickel-chromium plating products are improved.
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Figure CN222923295U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the field of nickel-chromium plating of products. Specifically, the utility model relates to an inlet and outlet tank structure for a nickel-chromium plating line. Background Art
[0002] In the process of nickel-chromium plating of products, when the product to be nickel-chromium plated enters the electrophoresis tank, the product is hung on a bracket, and the bracket is gradually immersed in the electrophoresis tank. The product also gradually enters the electrophoresis tank and is gradually immersed in the electrophoresis solution. Usually, when the bracket drives the product to start descending, the product is already powered on, and the electrophoresis process continues as the product continuously enters the electrophoresis tank, resulting in uneven electrophoresis effect of the product. The electrophoresis time of the products at different positions on the bracket is different, resulting in uneven product quality and poor product quality.
[0003] To solve the above problems, the patent document CN205474058U discloses an electrophoresis control structure, including a longitudinal station guide beam. A longitudinal station vehicle frame is arranged on the longitudinal station guide beam. The longitudinal station vehicle frame includes a vertical support beam of the vehicle frame and transverse guide beams of the vehicle frame located at the front and rear upper ends. A transverse translation vehicle frame is arranged on the transverse guide beams of the vehicle frame. Suspension chains are arranged at the lower left and right sides of the transverse translation vehicle frame. Horizontal suspension rods are connected to the lower ends of the left and right suspension chains. A hook is arranged at the lower end of the horizontal suspension rod, but the above problems cannot be solved. Summary of the Utility Model
[0004] The present utility model is made to solve the above problems, and aims to provide an inlet and outlet tank structure for a nickel-chromium plating line that is convenient to control the start of electrophoresis, can improve the electrophoresis effect of nickel-chromium plated products, and can improve the uniformity of the quality of nickel-chromium plated products. To achieve the above object, the technical solution adopted by the present utility model is as follows:
[0005] The present utility model provides an inlet and outlet tank structure for a nickel-chromium plating line, which has the following characteristics: including an electrophoresis tank, a lifting assembly, a bracket, and a triggering assembly. The electrophoresis tank stores electrophoresis solution. The bracket is movably arranged on the lifting assembly, and the triggering assembly is arranged on the lifting assembly.
[0006] In the inlet and outlet tank structure for a nickel-chromium plating line provided by the present utility model, it may further have the following characteristics: the lifting assembly includes a fixed rod, a lifting guide rail, and a lifting slider. One end of the fixed rod is connected to the electrophoresis tank. One end of the lifting guide rail is vertically connected to one end of the fixed rod. The lifting guide rail is adapted to the lifting slider, and the lifting slider is movably arranged on the lifting guide rail.
[0007] In the in-out tank structure for nickel-chromium plating wire provided by the present utility model, it may further have the following feature: The lifting assembly further includes a driving assembly, and the driving assembly includes a driving motor, a gear, and a rack. The rack is arranged on the lifting guide rail, the driving motor is arranged on the lifting slider, the gear is sleeved on the motor shaft of the driving motor, and the gear meshes with the rack.
[0008] In the in-out tank structure for nickel-chromium plating wire provided by the present utility model, it may further have the following feature: The lifting assembly further includes a connecting rod and a hanging rod. One end of the connecting rod is connected to the lifting slider, and the other end of the connecting rod is connected to the hanging rod.
[0009] In the in-out tank structure for nickel-chromium plating wire provided by the present utility model, it may further have the following feature: The hanging rod is provided with a limiting protrusion, and the bracket is provided with a lifting lug.
[0010] In the in-out tank structure for nickel-chromium plating wire provided by the present utility model, it may further have the following feature: The bracket includes a cross bar and a vertical bar. The end of the cross bar is connected to the end of the vertical bar, the vertical bar is provided with a mounting rod, and the mounting rod is provided with a mounting protrusion.
[0011] In the in-out tank structure for nickel-chromium plating wire provided by the present utility model, it may further have the following feature: The triggering assembly includes a protrusion arranged on the lifting slider and a trigger switch arranged on the fixed rod, and the protrusion abuts against the trigger switch.
[0012] In the in-out tank structure for nickel-chromium plating wire provided by the present utility model, it may further have the following feature: It further includes an electrophoresis assembly. The electrophoresis assembly includes a power supply, a cathode wire, and an anode wire. One end of the cathode wire is connected to the cathode of the power supply, and the other end is connected to the hanging rod. One end of the anode wire is connected to the anode of the power supply, and the other end is connected to the electrophoresis tank. The power supply is connected to the trigger switch.
[0013] The technical effect of the present utility model is as follows: The in-out tank structure for nickel-chromium plating wire provided by the present utility model includes an electrophoresis tank, a lifting assembly, a bracket, and a triggering assembly. The electrophoresis tank stores electrophoresis solution. The bracket is movably arranged on the lifting assembly, and the product to be nickel-chromium plated is placed on the bracket. The lifting assembly can drive the bracket to move up and down, so as to immerse the product in the electrophoresis solution. The triggering assembly is arranged on the lifting assembly, and the triggering assembly can start the electrophoresis process after all the products on the bracket are immersed in the electrophoresis solution, thereby improving the electrophoresis effect of the nickel-chromium plated products and improving the quality uniformity of the nickel-chromium plated products.
[0014] Therefore, the in-out tank structure for nickel-chromium plating wire provided by the present utility model is convenient to control the start of the electrophoresis process, can improve the electrophoresis effect of the nickel-chromium plated products, and can improve the quality uniformity of the nickel-chromium plated products. Description of the Drawings
[0015] This specification includes the following drawings, which show respectively:
[0016] Figure 1 It is a schematic structural diagram of the inlet and outlet tank structure for nickel-chromium plating wire in the embodiment of the present utility model;
[0017] Figure 2 It is a schematic structural diagram of the lifting component in the embodiment of the present utility model;
[0018] Figure 3 It is a schematic structural diagram of the hanging rod in the embodiment of the present utility model;
[0019] Figure 4 It is a schematic structural diagram of the bracket in the embodiment of the present utility model;
[0020] The markings in the figure are: 10 - electrophoresis tank, 20 - lifting component, 21 - fixed rod, 22 - lifting guide rail, 23 - lifting slider, 24 - driving component, 241 - driving motor, 242 - gear, 243 - rack, 25 - connecting rod, 26 - hanging rod, 261 - limiting protrusion, 30 - bracket, 31 - lifting lug, 32 - cross bar, 33 - vertical bar, 34 - mounting rod, 341 - mounting protrusion, 40 - triggering component, 41 - protrusion, 42 - trigger switch, 50 - electrophoresis component, 51 - power supply, 52 - cathode wire, 53 - anode wire. Detailed implementation manners
[0021] The following is a detailed description of the specific implementation manners of the present invention by referring to the drawings and describing the embodiments, aiming to help those skilled in the art have a more complete, accurate and in-depth understanding of the inventive concept and technical solution of the present invention, and facilitate its implementation.
[0022] Figure 1 It is a schematic structural diagram of the inlet and outlet tank structure for nickel-chromium plating wire in the embodiment of the present utility model.
[0023] As Figure 1 shown, the inlet and outlet tank structure for nickel-chromium plating wire provided by the present utility model includes an electrophoresis tank 10, a lifting component 20, a bracket 30 and a triggering component 40. The electrophoresis tank 10 stores electrophoresis liquid. The bracket 30 is movably arranged on the lifting component 20. The product to be nickel-chromium plated is placed on the bracket 30. The lifting component 20 can drive the bracket 30 to move up and down, so as to immerse the product in the electrophoresis liquid. The triggering component 40 is arranged on the lifting component 20. The triggering component 40 can start the electrophoresis process after all the products on the bracket 30 are immersed in the electrophoresis liquid, thereby improving the electrophoresis effect of the nickel-chromium plated product and improving the quality uniformity of the nickel-chromium plated product.
[0024] Figure 2 It is a schematic structural diagram of the lifting component in the embodiment of the present utility model.
[0025] As Figure 2 shown, the lifting assembly 20 includes a fixed rod 21, a lifting guide rail 22, and a lifting slider 23. The electrophoresis tank 10 is in a cuboid shape. The fixed rod 21 is arranged on one side of the electrophoresis tank 10. One side of the fixed rod 21 is connected to one side of the electrophoresis tank 10. The fixed rod 21 is arranged horizontally. One end of the lifting guide rail 22 is vertically connected to the end of the fixed rod 21 away from the electrophoresis tank 10. The lifting guide rail 22 and the fixed rod 21 are perpendicular to each other. The lifting slider 23 is adapted to the lifting guide rail 22. The lifting slider 23 is movably arranged on the lifting guide rail 22. The lifting slider 23 can move up and down along the lifting guide rail 22 in the vertical direction.
[0026] The lifting assembly 20 further includes a driving assembly 24. The driving assembly 24 includes a driving motor 241, a gear 242, and a rack 243. The rack 243 is arranged on the lifting guide rail 22 along the length direction of the lifting guide rail 22. The driving motor 241 is arranged on the lifting slider 23. The gear 242 is sleeved on the motor shaft of the driving motor 241. The gear 242 meshes with the rack 243. The driving motor 241 drives the gear 242 to rotate, thereby driving the lifting slider 23 to move up and down along the lifting guide rail 22 in the vertical direction.
[0027] The lifting assembly 20 further includes a connecting rod 25 and a hanging rod 26. One end of the connecting rod 25 is connected to the lifting slider 23. The other end of the connecting rod 25 is connected to the hanging rod 26. The bracket 30 is suspended on the hanging rod 26, so that the lifting slider 23 can drive the bracket 30 to move up and down through the hanging rod 26, thereby immersing the bracket 30 in the electrophoresis tank 10 or lifting the bracket 30 out of the electrophoresis tank 10.
[0028] Figure 3 is a schematic structural view of the hanging rod in the embodiment of the present invention; Figure 4 is a schematic structural view of the bracket in the embodiment of the present invention.
[0029] As Figure 3 and Figure 4 shown, the hanging rod 26 is provided with a limiting protrusion 261. The hanging rod 26 is in a cylindrical shape. The limiting protrusion 261 is in an annular shape. The two limiting protrusions 261 are respectively arranged at both ends of the hanging rod 26. The bracket 30 is provided with a hanging ear 31. The bracket 30 is suspended on the hanging rod 26 through the hanging ear 31. The limiting protrusion 261 can limit the hanging ear 31, prevent the bracket 30 from falling off, avoid causing safety accidents or damaging products, and improve the structural reliability.
[0030] As Figure 4As shown in the figure, the bracket 30 includes a cross bar 32 and a vertical bar 33. The ends of the cross bar 32 and the vertical bar 33 are connected. The ends of the two cross bars 32 and the ends of the two vertical bars 33 are connected to each other, thus enclosing a rectangular bracket 30. Two lifting lugs 31 are respectively arranged on both sides of the cross bar 32. An installation rod 34 is provided on the vertical bar 33, and an installation protrusion 341 is provided on the installation rod 34. The nickel-chromium plated products are evenly placed on the bracket 30 through the installation protrusion 341.
[0031] The trigger assembly 40 includes a protrusion 41 and a trigger switch 42. The protrusion 41 is arranged on the lifting slider 23, and the trigger switch 42 is arranged on the fixed rod 21. The protrusion 41 is located above the trigger switch 42. The trigger switch 42 is a push-button switch. When the lifting slider 23 moves to the lowest point, all the nickel-chromium plated products placed on the bracket 30 are immersed in the electrophoresis solution in the electrophoresis tank 10, and the protrusion 41 presses the trigger switch 42 to turn on the trigger switch 42.
[0032] The in-out tank structure for nickel-chromium plating line provided by the present utility model further includes an electrophoresis assembly 50. The electrophoresis assembly 50 includes a power supply 51, a cathode wire 52 and an anode wire 53. One end of the cathode wire 52 is connected to the cathode of the power supply 51, and the other end of the cathode wire 52 is connected to the hanging rod 26. One end of the anode wire 53 is connected to the anode of the power supply 51, and the other end of the anode wire 53 is connected to the electrophoresis tank 10, so as to carry out an electrophoresis reaction to complete the nickel-chromium plating of the product. The power supply 51 is connected to the trigger switch 42, so that when all the nickel-chromium plated products are immersed in the electrophoresis solution in the electrophoresis tank 10, the electrophoresis reaction starts, avoiding the continuous progress of the electrophoresis process as the products continuously enter the electrophoresis tank, avoiding uneven electrophoresis effect of the products and uneven quality of the products, and improving the quality and quality uniformity of the products.
[0033] Functions and effects of the embodiment
[0034] The in-out tank structure for nickel-chromium plating line provided by the present utility model includes an electrophoresis tank 10, a lifting assembly 20, a bracket 30 and a trigger assembly 40. The electrophoresis tank 10 stores electrophoresis solution. The bracket 30 is movably arranged on the lifting assembly 20. The product to be nickel-chromium plated is placed on the bracket 30. The lifting assembly 20 can drive the bracket 30 to move up and down, so as to immerse the product in the electrophoresis solution. The trigger assembly 40 is arranged on the lifting assembly 20. The trigger assembly 40 can start the electrophoresis process after all the products on the bracket 30 are immersed in the electrophoresis solution, so as to improve the electrophoresis effect of the nickel-chromium plated products and improve the quality uniformity of the nickel-chromium plated products. Therefore, the in-out tank structure for nickel-chromium plating line provided by the present utility model is convenient to control the start of the electrophoresis process, can improve the electrophoresis effect of the nickel-chromium plated products, and can improve the quality uniformity of the nickel-chromium plated products.
[0035] The above has made an exemplary description of the present utility model in conjunction with the accompanying drawings. Obviously, the specific implementation of the present utility model is not limited by the above methods. As long as various non-substantive improvements are made by adopting the method concept and technical solution of the present utility model; or without improvement, the above concept and technical solution of the present utility model are directly applied to other occasions, all are within the protection scope of the present utility model.
Claims
1. A nickel-chromium plated wire inlet and outlet slot structure, characterized in that: The device comprises an electrophoresis tank (10), a lifting assembly (20), a support (30) and a trigger assembly (40); the electrophoresis tank (10) stores electrophoresis liquid; the support (30) is movably arranged on the lifting assembly (20); and the trigger assembly (40) is arranged on the lifting assembly (20). The lifting assembly (20) comprises a fixed rod (21), a lifting guide rail (22) and a lifting slider (23), one end of the fixed rod (21) is connected to the electrophoresis tank (10), one end of the lifting guide rail (22) is connected to one end of the fixed rod (21) in a vertical direction, the lifting guide rail (22) is adapted to the lifting slider (23), and the lifting slider (23) is movably arranged on the lifting guide rail (22). The trigger assembly (40) comprises a protrusion (41) arranged on the lifting slider (23) and a trigger switch (42) arranged on the fixing rod (21), and the protrusion (41) abuts against the trigger switch (42).
2. The inlet and outlet groove structure for nickel-chromium plated wire according to claim 1, characterized in that: The lifting assembly (20) further comprises a driving assembly (24), wherein the driving assembly (24) comprises a driving motor (241), a gear (242) and a rack (243), wherein the rack (243) is arranged on the lifting guide rail (22), the driving motor (241) is arranged on the lifting slider (23), the gear (242) is sleeved on the motor shaft of the driving motor (241), and the gear (242) is meshed with the rack (243).
3. The inlet and outlet groove structure for nickel-chromium plated wire according to claim 2, characterized in that: The lifting assembly (20) further comprises a connecting rod (25) and a hanging rod (26), one end of the connecting rod (25) being connected to the lifting slider (23), and the other end of the connecting rod (25) being connected to the hanging rod (26).
4. The inlet and outlet groove structure for nickel-chromium plated wire according to claim 3, characterized in that: The hooking rod (26) is provided with a limiting protrusion (261), and the bracket (30) is provided with a lifting ear (31).
5. The inlet and outlet groove structure for nickel-chromium plated wire according to claim 4, characterized in that: The bracket (30) comprises a cross bar (32) and a vertical bar (33); the end of the cross bar (32) is connected to the end of the vertical bar (33); a mounting rod (34) is provided on the vertical bar (33); and a mounting protrusion (341) is provided on the mounting rod (34).
6. The inlet and outlet groove structure for nickel-chromium plated wire according to claim 5, characterized in that: It also includes an electrophoresis assembly (50), the electrophoresis assembly (50) including a power supply (51), a cathode wire (52) and an anode wire (53), one end of the cathode wire (52) is connected to the cathode of the power supply (51), and the other end is connected to the hanging rod (26), one end of the anode wire (53) is connected to the anode of the power supply (51), and the other end is connected to the electrophoresis tank (10), and the power supply (51) is connected to the trigger switch (42).
Citation Information
Patent Citations
Electrophoresis control structure
CN205474058U