Anti-corrosion rack plating flying bar
By installing tie rods and support lifting and adjustment mechanisms at both ends of the flybar longitudinal beam, the corrosion problem of the rack-plating longitudinal beam is solved, enabling full immersion electroplating and convenient cleaning of the rack-plating longitudinal beam, and ensuring the stability of the electroplating process and the efficiency of cleaning.
Patent Information
- Application Number
- CN202520680263.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-11
- Publication Date
- 2026-02-03
- Estimated Expiration
- 2035-04-11
AI Technical Summary
The existing flybar longitudinal beams are exposed to the air, making them susceptible to corrosion and difficult to clean.
Tie rods are installed at both ends of the plating longitudinal beam, and the beam can be immersed in the electroplating solution through the bracket lifting and adjustment mechanism and the electric contact conductive mechanism. It can also be cleaned by immersing it in a clean water tank. The resistance is reduced by combining the resistance-reducing conductive component.
It enables full immersion electroplating of the longitudinal beams and facilitates cleaning, avoiding corrosion and stabilizing the electroplating process.
Smart Images

Figure CN223866814U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to hanging plating device technical field, concretely is anticorrosive hanging plating fly bar. BACKGROUND
[0002] Fly bar is the common name of hanging plating support in electroplating industry, multiple hanging supports can be hung on the longitudinal beam, multiple workpieces to be electroplated are hung on the hanging supports, the whole fly bar can be lifted and put down through lifting device and transferred to different electroplating tanks.
[0003] The longitudinal beam of the existing fly bar is not set to sink, the part of the longitudinal beam of the hanging plating support exposed in the air is easy to be corroded and difficult to clean. UTILITY MODEL CONTENT
[0004] The utility model solves the technical problem of overcoming the defects of the prior art and provides an anticorrosive hanging plating fly bar, two pull rods are arranged at the two ends of the hanging plating longitudinal beam, the hanging plating longitudinal beam is sunk relative to the electroplating tank, the hanging plating longitudinal beam can be fully immersed in the electroplating solution during the hanging plating process, the hanging plating longitudinal beam is convenient to clean by immersing in the clean water tank during cleaning, the corrosion part on the hanging plating longitudinal beam can be conveniently cleaned, and the problems in the background art can be effectively solved.
[0005] To achieve the above object, the utility model provides the following technical scheme: an anticorrosive hanging plating fly bar, comprising an electroplating tank, further comprising:
[0006] The hanging plating support comprises a hanging plating longitudinal beam, a hanging groove, a pull rod, a screw one, a connecting block and a screw two, the front end and the rear end of the hanging plating longitudinal beam are fixedly connected with the bottom ends of two pull rods through screw one, the top ends of the two pull rods are fixedly connected with two connecting blocks through screw two, and the top of the hanging plating longitudinal beam is provided with the hanging groove at equal distances.
[0007] The support lifting adjusting mechanism is provided with two, and the two support lifting adjusting mechanisms are fixedly connected with two connecting blocks, respectively, the two support lifting adjusting mechanisms are connected with the bottom of two hanging mechanisms through two external components, respectively, the two external components are connected with two electric shock conducting mechanisms, respectively, and the two electric shock conducting mechanisms are installed on the top of the electroplating tank on the front side and the rear side.
[0008] The electro-conductive mechanism facilitates the connection of the cathode of the external power source to the plating beam. An external component connects the electro-conductive mechanism and the support lifting and adjustment mechanism. The hanging mechanism allows the lifting device to easily lift and transfer the entire anti-corrosion plating flybar. Hangers can be attached to the plating beam, holding multiple workpieces to be electroplated. The pull rod design allows the plating beam to sink relative to the plating tank, enabling complete immersion in the plating solution during plating. Cleaning is also convenient via immersion in a clean water tank. The support lifting and adjustment mechanism moves the plating rack up and down, adjusting its height relative to the plating tank as needed. The rack can be hung in the hanging slot, which ensures stability between the rack and the plating beam, preventing the rack from sliding along the beam.
[0009] Furthermore, the bracket lifting and adjustment mechanism includes a lifting frame, a guide column, an adjusting block, a lead screw, a lead screw nut, and a knob. A vertical guide column is fixedly connected inside the lifting frame, and the guide column is vertically slidably connected to the adjusting block. A vertical lead screw is rotatably connected inside the lifting frame via a bearing. A lead screw nut is installed on the adjusting block, and the lead screw nut is connected to the lead screw. A knob is fixedly connected to the top of the lead screw, and the side of the adjusting block is fixedly connected to a corresponding connecting block. Rotating the knob clockwise on the lead screw causes the threaded action of the lead screw and lead screw nut to move the adjusting block upwards along the guide column, thus pulling the plating bracket upwards. Rotating the knob counterclockwise on the lead screw causes the threaded action of the lead screw and lead screw nut to move the adjusting block downwards along the guide column, thus moving the plating bracket downwards, thereby changing the depth of the plating bracket in the electroplating bath.
[0010] Furthermore, the external assembly includes a fixing sleeve, a disassembly screw, and a disassembly rod. Two fixing sleeves are fixedly connected to the two lifting frames on opposite sides, and two disassembly rods are fixedly connected to the two fixing sleeves by disassembly screws. The fixing sleeves can be detachably connected to the disassembly rods using the disassembly screws, and the disassembly rods facilitate the installation of the hanging mechanism and the electric contact conductive mechanism.
[0011] Furthermore, the suspension mechanism includes bracket screws, bent rods, hanging plates, and support columns. Each disassembly rod is fixedly connected to a bent rod via bracket screws. A hanging plate is fixedly connected to the top side of the bent rod, and a longitudinal support column is fixedly connected to the top of the hanging plate. Hanging plates are installed on the disassembly rods using the bracket screws and bent rods. Each hanging plate has two support columns installed on it. An external lifting device can lift and transfer the anti-corrosion plating flybar using the support columns on the hanging plates.
[0012] Furthermore, the conductive contact mechanism includes a base plate, base plate screws, an arched frame, supports, electrode contacts, and conductive copper blocks. Two base plates are fixedly connected to the front and rear sides of the top of the electroplating tank via base plate screws. Two supports are fixedly connected to the two base plates via arched frames. Each support has two V-shaped grooves, and two electrode contacts are embedded in the inner walls of each V-shaped groove. Two conductive copper blocks are fixedly connected to the opposite ends of the two disassembly rods. The bottom of each conductive copper block has a triangular block that mates with the V-shaped groove. When the external lifting device lifts the copper blocks using the support columns on the lifting plate, the conductive copper blocks detach from the V-shaped grooves on the supports. When lowered, the triangular blocks at the bottom of the conductive copper blocks mate with the V-shaped grooves on the supports, and the electrode contacts connect to the cathode of the external power supply. Through the contact between the electrode contacts and the conductive copper blocks, the plating beam can be connected to the cathode of the external power supply, and the workpiece on the rack can be connected to the cathode of the external power supply, enabling electroplating of the workpiece.
[0013] Furthermore, the conductive contact mechanism also includes baffles and baffle screws. The baffles are fixedly connected to the ends of the two supports that are far apart from each other by the baffle screws. The baffles limit the outer ends of the supports, preventing the triangular block at the bottom of the conductive copper block from moving back and forth relative to the V-shaped groove on the support and detaching.
[0014] Furthermore, it also includes a resistance-reducing conductive component, which comprises a conductive connector, a cable, and a conductive ring. The top of the conductive copper block is connected to one end of the cable via the conductive connector, and the other end of the cable is connected to the top of the plating longitudinal beam via the conductive ring. Because of the support lifting and adjustment mechanism and external components, the resistance between the conductive copper block and the plating longitudinal beam is too high. Therefore, a cable is installed, and the conductive connector and conductive ring are used to conduct current between the conductive copper block and the plating longitudinal beam, reducing the resistance and allowing the conductive copper block to better conduct current to the plating longitudinal beam, the hanger, and the workpiece on the hanger.
[0015] Compared with existing technologies, the beneficial effects of this anti-corrosion plating flybar are:
[0016] 1. The bracket lifting and adjustment mechanism is used to drive the rack plating bracket to move up and down. It can change the height of the rack plating bracket relative to the electroplating tank as needed. The rack can be hung in the position of the hanging groove. The setting of the hanging groove facilitates the stability of the rack and the longitudinal beam of the plating, and prevents the rack from sliding along the longitudinal beam of the plating.
[0017] 2. Two tie rods are installed at both ends of the plating beam to allow the plating beam to sink relative to the electroplating tank. During the plating process, the plating beam can be fully immersed in the electroplating solution, and it is also easy to clean by immersing it in a clean water tank. Attached Figure Description
[0018] Figure 1 This is a schematic diagram of the structure of this utility model;
[0019] Figure 2 This utility model Figure 1 A magnified view of the structure at point A in the middle;
[0020] Figure 3 This utility model Figure 1 A magnified schematic diagram of the structure at point B in the middle;
[0021] Figure 4 This is a partial structural schematic diagram of the electric contact conductive mechanism in this utility model;
[0022] In the diagram: 1. Electroplating tank; 2. Plating rack; 21. Plating longitudinal beam; 22. Hanging groove; 23. Tie rod; 24. Screw 1; 25. Connecting block; 26. Screw 2; 3. Bracket lifting and adjusting mechanism; 31. Lifting frame; 32. Guide column; 33. Adjusting block; 34. Lead screw; 35. Lead screw nut; 36. Knob; 4. External component; 41. Fixing sleeve; 42. Removal screw; 43. Removal rod; 5. Hanging mechanism; 51. Bracket screw; 52. Bend rod; 53. Hanging plate; 54. Support column; 6. Electro-conductive mechanism; 61. Seat plate; 62. Seat plate screw; 63. Arch frame; 64. Support; 65. Baffle; 66. Baffle screw; 67. Electrode contact; 68. Conductive copper block; 7. Resistance reducing conductive component; 71. Conductive connector; 72. Cable; 73. Conductive ring. Detailed Implementation
[0023] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0024] Example 1, please refer to Figures 1 to 4 The present invention provides a technical solution: an anti-corrosion plating flybar, including an electroplating tank 1, a plating bracket 2, and a bracket lifting and adjusting mechanism 3.
[0025] The plating bracket 2 includes a plating longitudinal beam 21, a hanging groove 22, a pull rod 23, a screw 1 24, a connecting block 25, and a screw 26. The front and rear ends of the plating longitudinal beam 21 are respectively fixedly connected to the bottom ends of the two pull rods 23 by screw 1 24, and the top ends of the two pull rods 23 are respectively fixedly connected to the two connecting blocks 25 by screw 26. The top of the plating longitudinal beam 21 is provided with hanging grooves 22 at equal intervals.
[0026] There are two support lifting and adjustment mechanisms 3, and the two support lifting and adjustment mechanisms 3 are respectively fixedly connected to two connecting blocks 25. The two support lifting and adjustment mechanisms 3 are respectively connected to the bottom of two hanging mechanisms 5 through two external components 4, and the two external components 4 are respectively connected to two electric contact conductive mechanisms 6. The two electric contact conductive mechanisms 6 are respectively installed on the front and rear sides of the top of the electroplating tank 1.
[0027] The support lifting and adjusting mechanism 3 includes a lifting frame 31, a guide column 32, an adjusting block 33, a lead screw 34, a lead screw nut 35, and a knob 36. The vertical guide column 32 is fixedly connected inside the lifting frame 31. The guide column 32 is vertically slidably connected to the adjusting block 33. The vertical lead screw 34 is rotatably connected inside the lifting frame 31 through a bearing. The lead screw nut 35 is installed on the adjusting block 33. The lead screw nut 35 is connected to the lead screw 34. The knob 36 is fixedly connected to the top of the lead screw 34. The side of the adjusting block 33 is fixedly connected to the corresponding connecting block 25. Rotating the screw 34 clockwise by knob 36 causes the screw 34 and screw nut 35 to move the adjusting block 33 upward along the guide post 32. The adjusting block 33 can pull the plating rack 2 upward. Rotating the screw 34 counterclockwise by knob 36 causes the adjusting block 33 to move downward along the guide post 32. The adjusting block 33 can pull the plating rack 2 downward, thereby changing the depth of the plating rack 2 in the electroplating tank 1.
[0028] The external component 4 includes a fixing sleeve 41, a disassembly screw 42, and a disassembly rod 43. Two fixing sleeves 41 are fixedly connected to the two lifting frames 31 on opposite sides. The two fixing sleeves 41 are fixedly connected to the two disassembly rods 43 by the disassembly screws 42. The fixing sleeves 41 can be detachably connected to the disassembly rods 43 by means of the disassembly screws 42. The disassembly rods 43 facilitate the installation of the hanging mechanism 5 and the electric contact conductive mechanism 6.
[0029] The hanging mechanism 5 includes bracket screws 51, bent rods 52, hanging plates 53, and support columns 54. Each disassembly rod 43 is fixedly connected to a bent rod 52 by bracket screws 51. A hanging plate 53 is fixedly connected to the top side of the bent rod 52, and a longitudinal support column 54 is fixedly connected to the top of the hanging plate 53. The hanging plate 53 is installed on the disassembly rod 43 by means of bracket screws 51 and bent rods 52. Two support columns 54 are installed on each hanging plate 53. The external lifting device can lift and transfer the anti-corrosion plating flybar by means of the support columns 54 on the hanging plate 53.
[0030] The conductive contact mechanism 6 includes a base plate 61, base plate screws 62, an arched frame 63, a support 64, electrode contacts 67, and conductive copper blocks 68. The top front and rear sides of the electroplating tank 1 are fixedly connected to two base plates 61 by base plate screws 62. The two base plates 61 are fixedly connected to two supports 64 by arched frames 63. Two V-shaped grooves are opened on the two supports 64. Two electrode contacts 67 are embedded in the inner walls of the two V-shaped grooves. Two conductive copper blocks 68 are fixedly connected to the ends of the two disassembly rods 43 that are far apart from each other. The bottom of the two conductive copper blocks 68 is provided with triangular blocks that cooperate with the V-shaped grooves. When the external lifting device lifts the workpiece using the support column 54 on the lifting plate 53, the conductive copper block 68 will disengage from the V-shaped groove on the support 64. When lowered, the triangular block at the bottom of the conductive copper block 68 engages with the V-shaped groove on the support 64, and the electrode contact 67 connects to the cathode of the external power supply. Through the contact between the electrode contact 67 and the conductive copper block 68, the plating beam 21 can be connected to the cathode of the external power supply, and the workpiece on the hanger can be connected to the cathode of the external power supply, so that the workpiece can be electroplated.
[0031] The bottom of the conductive copper block 68 is provided with triangular blocks that cooperate with the V-shaped groove, so that the structure is stable when the flybar is lowered, and the electrode contact is more stable.
[0032] The electric shock conductive mechanism 6 also includes a baffle 65 and a baffle screw 66. The baffle 65 is fixedly connected to the two supports 64 at their far ends by the baffle screw 66. The baffle 65 limits the outer end of the support 64 to prevent the triangular block at the bottom of the conductive copper block 68 from moving back and forth relative to the V-shaped groove on the support 64 and detaching.
[0033] In use, the cathode of the external power supply can be easily connected to the plating beam 21 using the electric contact conductive mechanism 6. At the same time, the external component 4 is used to connect the electric contact conductive mechanism 6 and the bracket lifting and adjustment mechanism 3 together. The hanging mechanism 5 facilitates the lifting device to lift and transfer the entire anti-corrosion plating fly bar. A hanger can be hung on the plating beam 21, and multiple workpieces to be electroplated can be hung on the hanger. The setting of the pull rod 23 allows the plating beam 21 to sink relative to the electroplating tank 1. During the plating process, the plating beam 21 can be completely immersed in the electroplating solution. It is also easy to clean by immersing it in a clean water tank. The bracket lifting and adjustment mechanism 3 is used to drive the plating bracket 2 to move up and down, and can change the height of the plating bracket 2 relative to the electroplating tank 1 as needed. The hanger can be hung in the position of the hanging groove 22. The setting of the hanging groove 22 facilitates the stability of the position of the hanger and the plating beam 21, and prevents the hanger from sliding along the plating beam 21.
[0034] Example 2, please refer to Figures 1 to 4 This utility model provides a technical solution: anti-corrosion plating flybar. This embodiment is structurally similar to Embodiment 1, with the difference being:
[0035] It also includes a resistance-reducing conductive component 7, which comprises a conductive connector 71, a cable 72, and a conductive ring 73. The top of the conductive copper block 68 is connected to one end of the cable 72 via the conductive connector 71, and the other end of the cable 72 is connected to the top of the plating longitudinal beam 21 via the conductive ring 73. Due to the presence of the bracket lifting and adjusting mechanism 3 and the external component 4, the resistance between the conductive copper block 68 and the plating longitudinal beam 21 is too high. Therefore, the cable 72 is provided to conduct the current between the conductive copper block 68 and the plating longitudinal beam 21 through the conductive connector 71 and the conductive ring 73, thereby reducing the resistance and allowing the conductive copper block 68 to better conduct the current to the plating longitudinal beam 21, the bracket, and the workpiece on the bracket.
[0036] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.
[0037] Although embodiments of the present 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 present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A corrosion-resistant plating flybar, comprising an electroplating bath (1), characterized in that, Also includes: The plating bracket (2) includes a plating longitudinal beam (21), a hanging groove (22), a pull rod (23), a screw one (24), a connecting block (25), and a screw two (26). The front and rear ends of the plating longitudinal beam (21) are respectively fixedly connected to the bottom ends of the two pull rods (23) by screw one (24), and the top ends of the two pull rods (23) are respectively fixedly connected to the two connecting blocks (25) by screw two (26). The top of the plating longitudinal beam (21) is provided with hanging grooves (22) at equal intervals. There are two support lifting and adjusting mechanisms (3), and the two support lifting and adjusting mechanisms (3) are respectively fixedly connected to two connecting blocks (25). The two support lifting and adjusting mechanisms (3) are respectively connected to the bottom of two hanging mechanisms (5) through two external components (4), and the two external components (4) are respectively connected to two electric contact conductive mechanisms (6). The two electric contact conductive mechanisms (6) are respectively installed on the front and rear sides of the top of the electroplating tank (1).
2. The anti-corrosion plating flybar according to claim 1, characterized in that: The support lifting and adjusting mechanism (3) includes a lifting frame (31), a guide column (32), an adjusting block (33), a lead screw (34), a lead screw nut (35), and a knob (36). A vertical guide column (32) is fixedly connected inside the lifting frame (31). The guide column (32) is vertically slidably connected to the adjusting block (33). A vertical lead screw (34) is rotatably connected inside the lifting frame (31) through a bearing. A lead screw nut (35) is installed on the adjusting block (33). The lead screw nut (35) is connected to the lead screw (34). A knob (36) is fixedly connected to the top of the lead screw (34). The side of the adjusting block (33) is fixedly connected to the corresponding connecting block (25).
3. The anti-corrosion plating flybar according to claim 2, characterized in that: The external component (4) includes a fixing sleeve (41), a disassembly screw (42) and a disassembly rod (43). Two fixing sleeves (41) are fixedly connected to the two lifting frames (31) on the side away from each other. The two fixing sleeves (41) are fixedly connected to the two disassembly rods (43) by the disassembly screws (42).
4. The anti-corrosion plating flybar according to claim 3, characterized in that: The hanging mechanism (5) includes a bracket screw (51), a bent rod (52), a hanging plate (53) and a support column (54). Each disassembly rod (43) is fixedly connected to a bent rod (52) by a bracket screw (51). A hanging plate (53) is fixedly connected to the top side of the bent rod (52). A longitudinal support column (54) is fixedly connected to the top of the hanging plate (53).
5. The anti-corrosion plating flybar according to claim 3, characterized in that: The conductive contact mechanism (6) includes a base plate (61), base plate screws (62), an arched frame (63), a support (64), an electrode contact (67), and a conductive copper block (68). The top front and rear sides of the electroplating tank (1) are fixedly connected to two base plates (61) by base plate screws (62). The two base plates (61) are fixedly connected to two supports (64) by an arched frame (63). The two supports (64) are respectively provided with two V-shaped grooves. The inner walls of the two V-shaped grooves are respectively inlaid with two electrode contacts (67). The ends of the two disassembly rods (43) that are far apart from each other are respectively fixedly connected to two conductive copper blocks (68). The bottom of the two conductive copper blocks (68) is respectively provided with triangular blocks that cooperate with the V-shaped grooves.
6. The anti-corrosion plating flybar according to claim 5, characterized in that: The electric contact conductive mechanism (6) also includes a baffle (65) and a baffle screw (66). The baffle (65) is fixedly connected to the two supports (64) at their far ends by the baffle screw (66).
7. The anti-corrosion plating flybar according to claim 5, characterized in that: It also includes a resistance-reducing conductive component (7), which includes a conductive connector (71), a cable (72) and a conductive ring (73). The top of the conductive copper block (68) is connected to one end of the cable (72) through the conductive connector (71), and the other end of the cable (72) is connected to the top of the plated longitudinal beam (21) through the conductive ring (73).