Electroplating moving frame
By designing an electroplating mobile rack and utilizing a transfer mechanism and multiple temporary storage seats, the problems of high labor costs and low efficiency in the electroplating process were solved, achieving efficient product changeover and production process optimization.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- TAIZHOU CHUXIN PLATING CO LTD
- Filing Date
- 2025-06-17
- Publication Date
- 2026-05-19
AI Technical Summary
In the current electroplating process, hanging and removing products consumes a lot of manpower and time, resulting in low production efficiency.
Design an electroplating mobile rack, including an electroplating box, a hanging rack, a temporary storage seat, and a transfer mechanism. By setting up multiple temporary storage seats and transfer mechanisms, the rack can be efficiently transported and products can be quickly changed.
It reduces non-production-related waiting time, improves production efficiency, enhances equipment safety and convenience, and reduces labor costs.
Smart Images

Figure CN224258831U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of electroplating equipment, and in particular to an electroplating mobile rack. Background Technology
[0002] Electroplating is the process of depositing a thin layer of another metal or alloy onto the surface of certain metals using the principle of electrolysis. It utilizes electrolysis to coat the surface of metal or other material parts with a metallic film, thereby preventing metal oxidation and improving wear resistance, conductivity, reflectivity, corrosion resistance, and aesthetics. Many coins also have an electroplated outer layer. During electroplating, the plating metal or other insoluble material acts as the anode, and the workpiece to be plated acts as the cathode. The cations of the plating metal are reduced on the surface of the workpiece to form the plating layer. To eliminate interference from other cations and to ensure a uniform and firm plating layer, a solution containing the plating metal cations is used as the electroplating bath to maintain a constant concentration of the plating metal cations. The purpose of electroplating is to deposit a metallic coating onto a substrate, altering the surface properties or dimensions of the substrate. Electroplating can enhance the corrosion resistance of metals, increase hardness, prevent wear, improve conductivity, smoothness, heat resistance, and surface aesthetics.
[0003] When a product is about to be electroplated, it needs to be suspended on an electroplating rack. Then, the electroplating rack and the product are placed together in the electroplating tank for electroplating. After electroplating is completed, the electroplating solution on the outer wall of the product needs to be drained before the product is removed. Then, the next set of products to be electroplated is suspended on the electroplating rack for the next electroplating. This process requires a lot of manpower and time, resulting in low production efficiency. Utility Model Content
[0004] In order to reduce waiting time required for non-production and improve production efficiency, this application provides an electroplating moving rack.
[0005] The electroplating mobile rack provided in this application adopts the following technical solution:
[0006] An electroplating mobile rack includes an electroplating box, a hanging rack, a temporary storage seat, and a transfer mechanism. The electroplating box has a receiving cavity at its upper end for storing electroplating solution. Several temporary storage seats are provided and spaced apart horizontally. The hanging rack includes a crossbar and a hanging rack. The crossbar abuts against the upper end of the electroplating box or the temporary storage seat. The upper end of the hanging rack is connected to the crossbar. Several hanging racks are provided and spaced apart horizontally. The hanging rack is used for placing products. The transfer mechanism is used to transport the hanging rack to the electroplating box or place the hanging rack on the temporary storage seat.
[0007] By adopting the above technical solution and setting up multiple temporary storage seats, when the transfer mechanism transports the rack on any temporary storage seat to the electroplating box, it can pick up and put on the racks on other temporary storage seats, reducing the waiting time required for non-production and improving production efficiency.
[0008] Preferably, the transfer mechanism includes a fixed frame, a gantry frame, a horizontal drive assembly, a second lifting seat, and a vertical drive assembly. The fixed frame is located above the electroplating box and the temporary storage seat. The gantry frame is slidably connected to the fixed frame, and the sliding direction of the gantry frame is vertical. The horizontal drive assembly is connected to the fixed frame and is used to drive the gantry frame to slide. The second lifting seat is slidably connected to the gantry frame, and the sliding direction of the second lifting seat is vertical. A second abutment block is connected to the lower end of the second lifting seat. A first abutment block is connected to the upper end of the crossbar, and the second abutment block is used to abut the lower end of the first abutment block. The vertical drive assembly is connected to the gantry frame and is used to drive the second lifting seat to slide.
[0009] By adopting the above technical solution, the vertical drive component drives the second lifting seat to slide in the vertical direction, the horizontal drive component drives the gantry to slide in the horizontal direction, the first abutment block moves to below the second abutment block, the second lifting seat moves up, and the first abutment block abuts against the second abutment block, so that the hanger is detached from the temporary storage seat, thereby realizing the transfer mechanism to transport the hanger.
[0010] Preferably, the upper end of the second abutment block is provided with a second groove, which is used for the first abutment block to be inserted.
[0011] By adopting the above technical solution, the possibility of relative movement between the hanging frame and the transfer mechanism in the horizontal direction is reduced when the transfer mechanism is conveying the hanging frame, thereby improving the safety of the equipment.
[0012] Preferably, there are two second lifting seats, which are distributed at intervals along the sliding direction of the gantry frame, and the number of vertical drive components is the same as the number of second lifting seats and corresponds one-to-one.
[0013] By adopting the above technical solution and setting up two lifting seats, two racks can be moved at the same time. After the rack in the electroplating box is taken out, the next rack can be put into the electroplating box, or the rack on the temporary storage seat can be moved away from the temporary storage seat and the rack taken out of the electroplating box can be placed on the temporary storage seat, reducing the waiting time required for non-production and improving production efficiency.
[0014] Preferably, it also includes slide rails, wherein there are a plurality of slide rails, the plurality of slide rails are divided into a plurality of groups, the plurality of groups of slide rails correspond to a plurality of temporary storage seats, the temporary storage seats are slidably connected to the slide rails, the sliding direction of the temporary storage seats is parallel to the length direction of the slide rails, the plurality of temporary storage seats are distributed at intervals along a direction perpendicular to the sliding direction of the temporary storage seats, and the sliding direction of the gantry is perpendicular to the sliding direction of the temporary storage seats.
[0015] By adopting the above technical solution, the slide rail allows the temporary storage seat to slide along the length of the slide rail. When it is necessary to remove the product from the rack or hang the workpiece on the rack, the temporary storage seat can be moved away from the side of the electroplating box, making it easier for staff to pick up and put down the product, and improving the safety and convenience of the equipment.
[0016] Preferably, it further includes a first lifting seat and a lifting drive assembly. The first lifting seat is slidably connected to the temporary storage seat. The sliding direction of the first lifting seat is vertical. The upper end of the first lifting seat abuts against the crossbar. The lifting drive assembly is connected to the temporary storage seat and is used to drive the first lifting seat to slide.
[0017] By adopting the above technical solution, the lifting drive assembly drives the first lifting seat to slide in the vertical direction, causing the second abutment block to move upward, which makes it easier for the second lifting seat to lift or lower the hanging bracket from the temporary storage seat, thereby improving the reliability of the equipment.
[0018] Preferably, the lower end of the crossbar is provided with a first groove, which is used for embedding the upper end of the first lifting seat or the upper end of the electroplating box.
[0019] By adopting the above technical solution, the crossbar is provided with a first groove, which is used for the first lifting seat or electroplating box to be embedded. This reduces the possibility of the hanging frame moving relative to the temporary storage seat or electroplating box in the horizontal direction when the temporary storage seat slides or the hanging frame is placed in the electroplating box for electroplating, thereby improving the reliability of the equipment.
[0020] Preferably, the device also includes liquid storage frames, the number of which is the same as the number of temporary storage seats and corresponds one-to-one. The liquid storage frames are connected to the temporary storage seats and are located below the hanger.
[0021] By adopting the above technical solution, the liquid storage frame can effectively collect the electroplating solution dripping from the rack, avoiding waste or environmental pollution caused by random dripping of the electroplating solution, and improving the safety of the equipment.
[0022] In summary, this application includes at least one of the following beneficial technical effects:
[0023] 1. Multiple temporary storage seats are set up. When the transfer mechanism transports the rack on any temporary storage seat to the electroplating box, it can pick up and put on the racks on other temporary storage seats, reducing the waiting time required for non-production and improving production efficiency.
[0024] 2. Two lifting seats are provided, which can move two racks at the same time. After the rack in the electroplating box is taken out, the next rack can be put into the electroplating box, or the rack on the temporary storage seat can be moved away from the temporary storage seat and the rack taken out of the electroplating box can be placed on the temporary storage seat, reducing the waiting time not required for production and improving production efficiency.
[0025] 3. The slide rail allows the temporary storage seat to slide along the length of the slide rail. When it is necessary to remove the product from the rack or hang the workpiece on the rack, the temporary storage seat can be moved away from the side of the electroplating box, making it easier for the staff to pick up and put down the product, and improving the safety and convenience of the equipment. Attached Figure Description
[0026] Figure 1 This is a structural diagram of the electroplating mobile rack.
[0027] Figure 2 This is a partial sectional view of the temporary storage components and the mounting bracket.
[0028] Figure 3 yes Figure 1 Enlarged view of point A in the middle.
[0029] Explanation of reference numerals in the attached figures:
[0030] 1. Temporary storage mechanism; 11. Temporary storage component; 111. Slide rail; 112. Temporary storage seat; 1121. Base plate; 11211. First slide groove; 1122. First roller; 1123. First column; 1124. First connecting plate; 11241. First through groove; 1125. First rotating seat; 113. Liquid storage frame; 114. First lifting seat; 1141. Connecting rod; 1142. Second slide groove; 1143. Connecting block; 115. Second roller; 116. Lifting drive component; 1161. First drive motor; 1162. First rotating shaft; 1163. First winding sleeve; 1164. First fixed pulley; 1165. First connecting belt;
[0031] 2. Hanger; 21. Crossbar; 211. First groove; 22. Hanger bracket; 23. First connecting rod; 24. First abutment block;
[0032] 3. Electroplating tank; 31. Receiving cavity;
[0033] 4. Transfer mechanism; 41. Fixed frame; 411. Support column; 412. Guide rail; 413. Third rotating seat; 42. Gantry frame; 421. Sliding seat; 422. Second column; 4221. Third slide groove; 423. Second connecting plate; 4231. Second through groove; 424. Second rotating seat; 43. Third roller; 44. Horizontal drive assembly; 441. Lead screw; 442. Third drive motor; 45. Second lifting seat; 451. Second connecting rod; 452. Second abutment block; 4521. Second groove; 46. Vertical drive assembly; 461. Second drive motor; 462. Second rotating shaft; 463. Second winding sleeve; 464. Second fixed pulley; 465. Second connecting belt. Detailed Implementation
[0034] The present application will be further described in detail below with reference to the accompanying drawings.
[0035] Reference Figure 1 This application discloses an electroplating movable rack including a temporary storage mechanism 1, which includes a temporary storage component 11. The temporary storage component 11 includes a slide rail 111, and there are several slide rails 111, which are spaced apart along a direction perpendicular to the length of the slide rails 111. In this embodiment, there are two slide rails 111 and two temporary storage components 11, which are spaced apart along a direction perpendicular to the length of the slide rails 111.
[0036] Reference Figure 1 and Figure 2 The temporary storage component 11 also includes a temporary storage seat 112, which includes a base plate 1121. The base plate 1121 is slidably connected to the slide rail 111. The sliding direction of the base plate 1121 is parallel to the length direction of the base plate 1121, and the length direction of the base plate 1121 is parallel to the length direction of the slide rail 111. A first groove 11211 is provided on the side surface of the base plate 1121 near the slide rail 111. There are two first grooves 11211, which are symmetrically distributed along the width direction of the base plate 1121. Two slide rails 111 in the same group are slidably embedded in the two first grooves 11211 respectively, and the groove wall of the first groove 11211 is in contact with the side wall of the slide rail 111.
[0037] Reference Figure 2The temporary storage seat 112 also includes a number of first rollers 1122. These first rollers 1122 are divided into two groups, each group rotatably embedded in one of two first sliding grooves 11211. The rotation axis of the first rollers 1122 is parallel to the width direction of the base plate 1121. The outer wall of each first roller 1122 abuts against the side surface of the slide rail 111 near the bottom of the first sliding groove 11211. The first rollers 1122 in each group are spaced apart along the sliding direction of the base plate 1121. In this embodiment, ten first rollers 1122 are provided, with five first rollers 1122 in each group evenly distributed along the length direction of the base plate 1121.
[0038] The temporary storage seat 112 also includes a first column 1123 and a first connecting plate 1124. The length direction of the first column 1123 is vertical, and the lower end of the first column 1123 is fixedly connected to the surface of the base plate 1121 away from the slide rail 111. There are four first columns 1123, which are divided into two groups. The two groups of first columns 1123 are symmetrically distributed along the length direction of the base plate 1121, and the two first columns 1123 in the same group are symmetrically distributed along the width direction of the base plate 1121. The first connecting plate 1124 is fixedly connected to the upper end of the four first columns 1123. The first connecting plate 1124 has a first through groove 11241, which penetrates the first connecting plate 1124 vertically. The temporary storage assembly 11 also includes a first lifting seat 114, a second roller 115, a liquid storage frame 113, and a lifting drive assembly 116. The liquid storage frame 113 is fixedly connected to the upper end of the base plate 1121 and is located between the four first columns 1123. The first lifting seat 114 is slidably connected to the first columns 1123. The sliding direction of the first lifting seat 114 is vertical. There are two first lifting seats 114, which are symmetrically distributed along the length direction of the base plate 1121. A connecting rod 1141 is fixedly connected to the side surface of the first lifting seat 114 closest to the other first lifting seat 114. The length direction of the connecting rod 1141 is parallel to the length direction of the base plate 1121. There are two connecting rods 1141, which are symmetrically distributed along the width direction of the base plate 1121. The first lifting seat 114 has second sliding grooves 1142 on both sides along the width direction of the base plate 1121. Four first columns 1123 are slidably embedded in the four second sliding grooves 1142, with the groove walls of the second sliding grooves 1142 abutting against the side walls of the first columns 1123. Several second rollers 115 are provided, divided into four groups. Each group of four second rollers 115 is rotatably embedded in one of the four second sliding grooves 1142. The rotation axis of the second rollers 115 is parallel to the length direction of the base plate 1121. The outer wall of each second roller 115 abuts against the side surface of the first column 1123 closest to another first column 1123 in the same group. Several second rollers 115 in the same group are spaced apart along the sliding direction of the first lifting seat 114. In this embodiment, eight second rollers 115 are provided. The lifting drive assembly 116 is connected to the base plate 1121. The lifting drive assembly 116 is used to drive the first lifting seat 114 to slide. The lifting drive assembly 116 includes a first drive motor 1161, a first fixed pulley 1164, a first connecting belt 1165, a first rotating shaft 1162, and a first winding sleeve 1163. Two first rotating seats 1125 are fixedly connected to the side surface of the base plate 1121 away from the slide rail 111. The two first rotating seats 1125 are symmetrically distributed along the length direction of the base plate 1121. The two ends of the first rotating shaft 1162 are rotatably connected to the two first rotating seats 1125 respectively. The rotation axis of the first rotating shaft 1162 is parallel to the length direction of the base plate 1121. The first rotating shaft 1162 is located above the liquid storage frame 113.The first drive motor 1161 is connected to the base plate 1121 and is used to drive the first rotating shaft 1162 to rotate. In this embodiment, the housing of the first drive motor 1161 is fixedly connected to one side surface of the slide rail 111 on the base plate 1121, and the output shaft of the first drive motor 1161 is coaxially fixedly connected to one end of the first rotating shaft 1162. The number of the first fixed pulley 1164, the first connecting belt 1165, and the first winding sleeve 1163 is the same as the number of the first lifting seats 114 and corresponds one-to-one. The first winding sleeve 1163 is coaxially fixedly connected to the outer periphery of the first rotating shaft 1162, and the first fixed pulley 1164 is rotatably connected to one side surface of the first connecting plate 1124 near the base plate 1121. The rotation axis of the first fixed pulley 1164 is parallel to the rotation axis of the first rotating shaft 1162. A connecting block 1143 is fixedly connected to the side surface of the first lifting seat 114 away from the other first lifting seat 114. One end of the first connecting belt 1165 is fixedly connected to the side surface of the connecting block 1143 away from the bottom plate 1121. The other end of the first connecting belt 1165 passes around the first fixed pulley 1164 and is fixedly connected to the outer periphery of the first winding sleeve 1163.
[0039] Reference Figure 1 and Figure 2 An electroplating mobile rack also includes a hanging rack 2, which includes a crossbar 21 and a hanging rack 22. The length direction of the crossbar 21 is parallel to the length direction of the base plate 1121. The crossbar 21 abuts against the end of the first lifting seat 114 away from the base plate 1121. The side surface of the crossbar 21 near the base plate 1121 is provided with a first groove 211. There are two first grooves 211, which are symmetrically distributed along the length direction of the crossbar 21. The bottom of the first groove 211 is used to abut against the upper end of the first lifting seat 114. The groove wall of the first groove 211 is in contact with both sides of the first lifting seat 114 along the length direction of the base plate 1121. There are several hanging racks 22, which are distributed at intervals along the length direction of the crossbar 21. The upper end of the hanging rack 22 is fixedly connected to the side surface of the crossbar 21 near the base plate 1121. The hanging rack 22 is used for placing products. In this embodiment, there are seven hanging racks 22, which are evenly distributed along the length of the crossbar 21. A first connecting rod 23 is fixedly connected to the crossbar 21 away from its upper end. There are two first connecting rods 23, which are symmetrically distributed along the length of the crossbar 21. A first abutting block 24 is fixedly connected to the surface of one of the first connecting rods 23 closest to the other, and the first abutting block 24 is located on the side of the first connecting rod 23 away from the crossbar 21.
[0040] Reference Figure 1An electroplating mobile rack also includes an electroplating tank 3, which is located on the side of the temporary storage component 11 away from another temporary storage component 11 along the length direction perpendicular to the bottom of the tank. The electroplating tank 3 is also located on the side of the slide rail 111 along the length direction of the slide rail 111. The upper end of the electroplating tank 3 is provided with a receiving cavity 31 for storing electroplating solution. The bottom of the first groove 211 is used to abut against the upper end of the electroplating tank 3, and the wall of the first groove 211 is in contact with the outer wall of the electroplating tank 3 and the cavity wall of the receiving cavity 31.
[0041] An electroplating mobile rack also includes a transfer mechanism 4, which is used to transport the hanging rack 2 to the electroplating tank 3 or place it on the first lifting seat 114. The transfer mechanism 4 includes two fixed frames 41, which are spaced apart along the length of the slide rail 111. The electroplating tank 3 is located between the two fixed frames 41. The fixed frame 41 includes two support columns 411 and two guide rails 412, which are spaced apart along the length perpendicular to the slide rail 111. The temporary storage mechanism 1 and the electroplating tank 3 are located between the two support columns 411. The length direction of the support columns 411 is vertical. The two ends of the guide rail 412 are fixedly connected to the upper ends of the two support columns 411, and the guide rail 412 is located above the electroplating tank 3 and the temporary storage mechanism 1.
[0042] Reference Figure 1 and Figure 3The transfer mechanism 4 also includes a gantry frame 42, a third roller 43, and a transverse drive assembly 44. The gantry frame 42 includes a sliding seat 421, a second column 422, and a second connecting plate 423. The number of sliding seats 421 and second columns 422 is the same as the number of guide rails 412 and they correspond one-to-one. The sliding seat 421 is slidably connected to the side of the guide rail 412 away from the electroplating box 3, and the sliding direction of the sliding seat 421 is parallel to the length direction of the guide rail 412. The length direction of the second column 422 is vertical, and the second column 422 is fixedly connected to one end of the sliding seat 421 near the other sliding seat 421. The two ends of the second connecting plate 423 are respectively fixedly connected to the upper ends of the two second columns 422. Four third rollers 43 are provided, divided into two groups. The two groups of third rollers 43 are rotatably connected to two second columns 422 respectively. The rotation axis of the third rollers 43 is vertical. The outer wall of the third roller 43 abuts against the surface of the guide rail 412 closest to the other guide rail 412. Two third rollers 43 in the same group are spaced apart along the sliding direction of the sliding seat 421. A transverse drive assembly 44 is connected to the guide rail 412 and is used to drive the sliding seat 421 to slide. The transverse drive assembly 44 includes a lead screw 441 and a third drive motor 442. Two third rotating seats 413 are fixedly connected to the upper end of the guide rail 412, and the two third rotating seats 413 are spaced apart along the length of the guide rail 412. The two ends of the lead screw 441 are rotatably connected to two third rotating seats 413, respectively. The rotation axis of the lead screw 441 is parallel to the sliding direction of the sliding seat 421. The lead screw 441 is threadedly connected to the sliding seat 421. The third drive motor 442 is connected to the guide rail 412 and is used to drive the lead screw 441 to rotate. In this embodiment, the housing of the third drive motor 442 is fixedly connected to the surface of the guide rail 412 away from the support column 411, and the output shaft of the third drive motor 442 is coaxially fixedly connected to one end of the lead screw 441.
[0043] Reference Figure 3The transfer mechanism 4 also includes a second lifting seat 45 and a vertical drive assembly 46. The second lifting seat 45 is slidably connected between two second columns 422. The sliding direction of the second lifting seat 45 is vertical, and the length direction of the second lifting seat 45 is perpendicular to the length direction of the guide rail 412. There are two second lifting seats 45, which are spaced apart along the length direction of the guide rail 412. A third sliding groove 4221 is provided on the side of the second column 422 closest to the other second column 422. The number of third sliding grooves 4221 is the same as the number of second lifting seats 45 and they correspond one-to-one. The two ends of the second lifting seat 45 are slidably embedded in the two third sliding grooves 4221 respectively, and the groove wall of the third sliding groove 4221 is in contact with the side wall of the second lifting seat 45. A second connecting rod 451 is fixedly connected to the lower end of the second lifting seat 45. Two second connecting rods 451 are provided, symmetrically distributed along the length of the second lifting seat 45. A second abutment block 452 is fixedly connected to the surface of the second connecting rod 451 away from the other second connecting rod 451. The second abutment block 452 is located on the side of the second connecting rod 451 away from the second lifting seat 45. A second groove 4521 is provided on the side of the second abutment block 452 closest to the second lifting seat 45. The side of the second groove 4521 away from the second connecting rod 451 penetrates the second abutment block 452. The second groove 4521 is used for the first abutment block 24 to be embedded in, and the groove wall of the second groove 4521 fits against the side wall of the first abutment block 24. The number of vertical drive components 46 is the same as the number of second lifting seats 45 and they correspond one-to-one. The vertical drive components 46 are connected to the second connecting plate 423 and are used to drive the second lifting seats 45 to slide. The vertical drive components 46 include a second drive motor 461, a second fixed pulley 464, a second connecting belt 465, a second rotating shaft 462, and a second winding sleeve 463. A second rotating seat 424 is fixedly connected to the surface of the second connecting plate 423 away from the second column 422. There are four second rotating seats 424. The four second rotating seats 424 are divided into two groups. The two groups of second rotating seats 424 correspond to two second rotating shafts 462 respectively. The two second rotating seats 424 in the same group are symmetrically distributed along the length direction of the second connecting plate 423. The two ends of the second rotating shaft 462 are rotatably connected to the two second rotating seats 424 respectively. The rotation axis of the second rotating shaft 462 is parallel to the length direction of the second connecting plate 423. The second drive motor 461 is connected to the second connecting plate 423 and is used to drive the second rotating shaft 462 to rotate. In this embodiment, the housing of the second drive motor 461 is fixedly connected to one side surface of the guide rail 412 of the second connecting plate 423, and the output shaft of the second drive motor 461 is coaxially fixedly connected to one end of the second rotating shaft 462.The second winding sleeve 463 is coaxially and fixedly connected to the outer periphery of the second rotating shaft 462. Two second winding sleeves 463 are provided, symmetrically distributed along the rotation axis of the second rotating shaft 462. The number of second fixed pulleys 464 and second connecting belts 465 is the same as the number of second winding sleeves 463 and corresponds one-to-one. The second fixed pulleys 464 are rotatably connected to the surface of the second connecting plate 423 away from the guide rail 412, and the rotation axis of the second fixed pulleys 464 is parallel to the rotation axis of the second rotating shaft 462. One end of the second connecting belt 465 is fixedly connected to the upper end of the second lifting seat 45, and the other end of the second connecting belt 465 passes over the first fixed pulley 1164 and is fixedly connected to the outer periphery of the first winding sleeve 1163. The second connecting plate 423 is provided with second through slots 4231, the number of which is the same as the number of second lifting seats 45 and corresponds one-to-one. The second through slots 4231 are used for the second connecting belts 465 to pass through.
[0044] The implementation principle of an electroplating mobile rack in this application embodiment is as follows: the temporary storage seat 112 is slid to the side of the slide rail 111 away from the electroplating box 3, the first drive motor 1161 works, drives the first rotating shaft 1162 to rotate, drives the first winding sleeve 1163 to rotate, the first connecting belt 1165 is released, and the first lifting seat 114 moves down under the action of the hanger 2 and the gravity of the first lifting seat 114, so that the staff can take down the finished electroplating product and hang the product to be electroplated on the hanger rack 22.
[0045] After completion, slide the temporary storage seat 112 to the other side of the slide rail 111, and slide the other temporary storage seat 112 to the side of the slide rail 111 away from the electroplating box 3 for product loading and unloading. The first drive motor 1161 works, driving the first rotating shaft 1162 to rotate, driving the first winding sleeve 1163 to rotate, tightening the first connecting belt 1165, driving the first lifting seat 114 to move upward, and driving the hanging bracket 2 to move upward.
[0046] The third drive motor 442 operates, driving the lead screw 441 to rotate. The lead screw 441 is threadedly connected to the sliding seat 421, causing the gantry frame 42 to slide closer to the temporary storage seat 112. The first second drive motor 461 operates, driving the second rotating shaft 462 to rotate, causing the second winding sleeve 463 to rotate, loosening the second connecting belt 465. The second lifting seat 45 moves down under its own weight. When the gantry frame 42 slides to the point where the second abutting block 452 is below the first abutting block 24 of the hanging frame 2 on the temporary storage seat 112, the first second drive motor 461 operates, driving the second rotating shaft 462 to rotate, causing the second winding sleeve 463 to rotate, tightening the second connecting belt 465, causing the second lifting seat 45 to move up, and the first abutting block 24 to be embedded in the second groove 4521, causing the hanging frame 2 to move up.
[0047] The gantry 42 slides away from the electroplating box 3, the second drive motor 461 works, driving the second rotating shaft 462 to rotate, driving the second winding sleeve 463 to rotate, releasing the second connecting belt 465, and the second lifting seat 45 moves down under the action of its own weight and the weight of the hanging frame 2, and the first lifting seat 114 is embedded in the first groove 211.
[0048] When the gantry 42 slides close to the electroplating box 3, and the gantry 42 slides to the point where the second abutment block 452 is below the first abutment block 24 of the hanger 2 located in the receiving cavity 31, the second second drive motor 461 works, driving the second rotating shaft 462 to rotate, driving the second winding sleeve 463 to rotate, tightening the second connecting belt 465, driving the second lifting seat 45 to move upward, and the first abutment block 24 to be embedded in the second groove 4521, driving the hanger 2 to move upward.
[0049] The gantry 42 slides away from the temporary storage seat 112, the first second drive motor 461 works, driving the second rotating shaft 462 to rotate, driving the second winding sleeve 463 to rotate, releasing the second connecting belt 465, and the second lifting seat 45 moves down under the action of its own weight and the weight of the hanging frame 2, and the upper end of the electroplating box 3 is embedded in the first groove 211.
[0050] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.
Claims
1. An electroplating movable rack, characterized in that: The system includes an electroplating tank (3), a hanging rack (2), a temporary storage seat (112), and a transfer mechanism (4). The electroplating tank (3) has a receiving cavity (31) at its upper end. The receiving cavity (31) is used to store electroplating solution. There are several temporary storage seats (112). Several temporary storage seats (112) are distributed at intervals along the horizontal direction. The hanging rack (2) includes a crossbar (21) and a hanging rack (22). The crossbar (21) abuts against the upper end of the electroplating tank (3) or the temporary storage seat (112). The upper end of the hanging rack (22) is connected to the crossbar (21). There are several hanging racks (22). Several hanging racks (22) are distributed at intervals along the horizontal direction. The hanging rack (22) is used for placing products. The transfer mechanism (4) is used to transport the hanging rack (2) to the electroplating tank (3) or to place the hanging rack (2) on the temporary storage seat (112).
2. The electroplating movable frame according to claim 1, characterized in that: The transfer mechanism (4) includes a fixed frame (41), a gantry frame (42), a horizontal drive assembly (44), a second lifting seat (45), and a vertical drive assembly (46); the fixed frame (41) is located above the electroplating box (3) and the temporary storage seat (112); the gantry frame (42) is slidably connected to the fixed frame (41); the sliding direction of the gantry frame (42) is vertical; the horizontal drive assembly (44) is connected to the fixed frame (41); the horizontal drive assembly (44) is used to drive the gantry frame (42) to slide. The second lifting seat (45) is slidably connected to the gantry frame (42); the sliding direction of the second lifting seat (45) is vertical; the lower end of the second lifting seat (45) is connected to a second abutment block (452); the upper end of the crossbar (21) is connected to a first abutment block (24); the second abutment block (452) is used to abut the lower end of the first abutment block (24); the vertical drive assembly (46) is connected to the gantry frame (42); the vertical drive assembly (46) is used to drive the second lifting seat (45) to slide.
3. The electroplating movable frame according to claim 2, characterized in that: The second abutment block (452) has a second groove (4521) at its upper end; the second groove (4521) is used for the first abutment block (24) to be embedded.
4. The electroplating movable frame according to claim 2, characterized in that: There are two second lifting seats (45); the two second lifting seats (45) are distributed at intervals along the sliding direction of the gantry (42); the number of vertical drive components (46) is the same as the number of second lifting seats (45) and they correspond one-to-one.
5. The electroplating movable frame according to claim 2, characterized in that: It also includes slide rails (111); there are several slide rails (111); the slide rails (111) are divided into several groups; the several groups of slide rails (111) correspond to several temporary storage seats (112); the temporary storage seats (112) are slidably connected to the slide rails (111); the sliding direction of the temporary storage seats (112) is parallel to the length direction of the slide rails (111); the several temporary storage seats (112) are distributed at intervals along a direction perpendicular to the sliding direction of the temporary storage seats (112); the sliding direction of the gantry frame (42) is perpendicular to the sliding direction of the temporary storage seats (112).
6. The electroplating movable frame according to claim 5, characterized in that: It also includes a first lifting seat (114) and a lifting drive assembly (116); the first lifting seat (114) is slidably connected to the temporary storage seat (112); the sliding direction of the first lifting seat (114) is vertical; the upper end of the first lifting seat (114) abuts against the crossbar (21); the lifting drive assembly (116) is connected to the temporary storage seat (112); the lifting drive assembly (116) is used to drive the first lifting seat (114) to slide.
7. The electroplating movable frame according to claim 6, characterized in that: The lower end of the crossbar (21) is provided with a first groove (211); the first groove (211) is used for the upper end of the first lifting seat (114) or the upper end of the electroplating box (3) to be embedded.
8. The electroplating movable frame according to claim 1, characterized in that: It also includes a liquid storage frame (113); the number of liquid storage frames (113) is the same as the number of temporary storage seats (112) and they correspond one-to-one; the liquid storage frame (113) is connected to the temporary storage seat (112); the liquid storage frame (113) is located below the hanger (2).