Support and automatic spraying production line
By designing a support structure and an automated spraying production line, the recycling rate of the coating liquid was improved, which solved the problem of high production cost of titanium anode coatings and achieved the effects of reducing costs and increasing yield.
Patent Information
- Application Number
- CN202520027629.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-07
- Publication Date
- 2026-01-06
- Estimated Expiration
- 2035-01-07
AI Technical Summary
The production cost of titanium anode coatings in the existing technology is relatively high, mainly because a lot of the coating solution is wasted after being applied to the surface of the titanium anode, and the recovery rate is low.
Design a support frame and an automated spraying production line, including a support frame and a base box. The coating liquid flows back to the receiving cavity of the base box through the drain port of the support frame. Before baking, the support frame and the base box are removed to recover the coating liquid, thereby improving the utilization rate of the coating liquid. Automated production is achieved through a conveying mechanism and a spraying mechanism.
This reduces the production cost of titanium anode coatings, increases the recycling rate of coating solutions, reduces coating waste, and improves the yield and production efficiency of titanium anode surface coatings.
Smart Images

Figure CN223761329U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of titanium anode coating preparation technology, and in particular to a support and automated spraying production line. Background Technology
[0002] The main preparation methods for titanium anode coatings include thermal decomposition, electrodeposition, sol-gel, and magnetron sputtering. However, the most common preparation method for titanium anode coatings is thermal decomposition, which is the most traditional method for preparing titanium anode coatings. It mainly involves dissolving various metal salts in organic solvents to form a coating solution, which is then brushed onto the titanium anode and sintered repeatedly to obtain the final titanium anode coating.
[0003] In related technologies, a significant amount of coating liquid is wasted when applied to the surface of titanium anodes, resulting in high production costs for titanium anode coatings. Utility Model Content
[0004] This application aims to address at least one of the technical problems existing in the prior art. To this end, this application proposes a support and an automated spraying production line capable of recovering the coating liquid dripping during the coating process on the surface of titanium anodes, thereby reducing the production cost of titanium anode coatings.
[0005] The bracket according to a first aspect embodiment of this application includes:
[0006] A support frame includes a frame and a support body, the support body being used to support the titanium anode, and the support body having a drain outlet;
[0007] The bottom box is detachably connected to the support frame. The bottom box has a receiving cavity. The support frame covers the bottom box so that the leakage port can communicate with the receiving cavity. The receiving cavity is used to contain the coating liquid applied to the titanium anode. The support body is disposed on the side of the frame away from the receiving cavity.
[0008] The stent according to the embodiments of this application has at least the following beneficial effects:
[0009] A support frame is used to hold the titanium anode, and a base box is located below the support frame. When the coating solution is applied to the surface of the titanium anode, excess coating solution can flow back into the receiving cavity of the base box through the drain port of the support frame. Before baking, the support frame and the base box are detached from each other, and the titanium anode is baked solely by supporting it with the support frame. The coating solution in the removed base box is then recovered, improving the recycling rate of the coating solution, reducing waste, and helping to lower the production cost of the titanium anode coating. Furthermore, the titanium anode can be transported to the baking area by holding the base box, reducing the possibility of contact with the coating solution on the surface of the titanium anode. This helps to reduce the possibility of the coating solution on the surface of the titanium anode being disturbed or scratched, thereby improving the yield of the coating on the surface of the titanium anode.
[0010] According to some embodiments of this application, the support body includes multiple sub-frames, which are arranged in parallel and / or cross directions, and multiple adjacent sub-frames surround the leakage port.
[0011] According to some embodiments of this application, the width of the sub-frame on the side closer to the receiving cavity is greater than the width of the sub-frame on the side away from the receiving cavity.
[0012] According to some embodiments of this application, the side wall of the bottom box has a positioning groove, and the supporting body portion is located in the positioning groove so that the supporting body is engaged with the bottom box.
[0013] According to some embodiments of this application, the frame surrounds the outer periphery of the base box.
[0014] An automated spraying production line according to a second aspect embodiment of this application includes:
[0015] A spraying mechanism for spraying a coating liquid onto the surface of a titanium anode;
[0016] A conveying mechanism is installed through the spraying mechanism;
[0017] The bracket according to any of the foregoing embodiments is disposed on the conveying mechanism so that the titanium anode can pass through the conveying mechanism to the spraying mechanism.
[0018] According to some embodiments of this application, the automated spraying production line has a loading station, a spraying station, and an unloading station. The loading station and the unloading station are located at opposite ends of the spraying mechanism. The spraying station is located within the spraying mechanism. When the conveying mechanism moves one of the titanium anodes from the loading station to the spraying station, the other titanium anode can be located at the loading station.
[0019] According to some embodiments of this application, the automated spraying production line further includes a baking mechanism for baking the coating liquid on the surface of the titanium anode to form a coating. The spraying mechanism and the baking mechanism are arranged at intervals. A portion of the conveying mechanism passes through the spraying mechanism, and another portion of the conveying mechanism passes through the baking mechanism. The automated spraying production line has an adjustment station located between the spraying mechanism and the baking mechanism. When the support is located at the adjustment station, the base box is separated from the support frame.
[0020] According to some embodiments of this application, the baking mechanism includes multiple infrared lamps, which are arranged at intervals and the plane formed by the multiple infrared lamps is arranged parallel to the conveying mechanism.
[0021] According to some embodiments of this application, the conveying mechanism is a conveyor belt, which is arranged parallel to the support so that the conveyor belt is arranged parallel to the titanium anode.
[0022] Additional aspects and advantages of this application will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of this application. Attached Figure Description
[0023] The present application will be further described below with reference to the accompanying drawings and embodiments, wherein:
[0024] Figure 1 This is a schematic diagram of the structure of the bracket in one embodiment of this application;
[0025] Figure 2 This is an exploded structural diagram of the bracket in one embodiment of this application, showing the titanium anode;
[0026] Figure 3 This is a schematic diagram of an automated spraying production line according to an embodiment of this application, showing the spraying room and baking room in perspective.
[0027] Figure label:
[0028] 100. Automated spray coating production line; 1. Bracket; 11. Support frame; 111. Frame; 112. Support body; 112a. Drain outlet; 1121. Sub-frame; 12. Base box; 12a. Receiving cavity; 12b. Positioning groove; 2. Spray coating mechanism; 3. Conveying mechanism; 4. Baking mechanism; 41. Infrared lamp tube; 5. Spray coating room; 6. Baking room; 100a. Loading station; 100b. Spray coating station; 100c. Unloading station; 100d. Adjustment station; 100e. Baking station; 200. Titanium anode. Detailed Implementation
[0029] The embodiments of this application are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain this application, and should not be construed as limiting this application.
[0030] In the description of this application, it should be understood that the orientation descriptions, such as up, down, front, back, left, right, etc., indicating the orientation or position relationship, are based on the orientation or position relationship shown in the accompanying drawings. They are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this application.
[0031] In the description of this application, "several" means one or more, "multiple" means two or more, "greater than," "less than," and "exceeding" are understood to exclude the stated number, while "above," "below," and "within" are understood to include the stated number. The use of "first" and "second" in the description is merely for distinguishing technical features and should not be construed as indicating or implying relative importance, or implicitly indicating the number of indicated technical features, or implicitly indicating the order of the indicated technical features.
[0032] In the description of this application, unless otherwise expressly defined, terms such as "setup," "installation," and "connection" should be interpreted broadly, and those skilled in the art can reasonably determine the specific meaning of the above terms in this application in conjunction with the specific content of the technical solution.
[0033] In the description of this application, the terms "one embodiment," "some embodiments," "illustrative embodiment," "example," "specific example," or "some examples," etc., refer to specific features, structures, materials, or characteristics described in connection with that embodiment or example, which are included in at least one embodiment or example of this application. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.
[0034] In related technologies, the preparation of titanium anode coatings using the thermal decomposition method usually involves manually brushing the coating solution onto the surface of the titanium anode. The coating solution remaining on the support frame is usually directly washed off, resulting in a significant waste of the coating solution brushed onto the surface of the titanium anode and a low recovery rate, which in turn leads to a high production cost for titanium anode coatings.
[0035] In view of this, this application provides a support 1, including a support frame 11 and a base box 12. The support frame 11 is used to support the titanium anode 200, and the base box 12 is disposed below the support frame 11. When the coating liquid is applied to the surface of the titanium anode 200, the excess coating liquid can flow back through the drain port 112a of the support frame 11 to the receiving cavity 12a of the base box 12 to recover the excess coating liquid, thereby improving the recycling rate of the coating liquid, reducing the waste of the coating liquid, and helping to reduce the production cost of the titanium anode 200 coating.
[0036] Figure 1 The specific structure of the support 1 in one embodiment of this application is shown. Specifically, the support 1 includes a support frame 11 and a base box 12. The support frame 11 can be made of metal or other materials with a certain strength, and the base box 12 can also be made of metal or other materials with a certain strength. The support frame 11 includes a frame 111 and a support body 112. The support body 112 is used to support the titanium anode 200 and has a drain port 112a. For example, please refer to... Figure 1 and Figure 2When the titanium anode 200 is located in the support 1, and is positioned on the side of the support frame 11 away from the bottom box 12, during the process of applying coating liquid to the surface of the titanium anode 200, excess coating liquid can flow back into the bottom box 12 through the drain port 112a of the support body 112 to recover the coating liquid. The shape of the titanium anode 200 can be... Figure 2 The mesh-like shape shown can also be other shapes. The base box 12 has a receiving cavity 12a, and the support frame 11 covers the base box 12 so that the drain port 112a can communicate with the receiving cavity 12a, so that the receiving cavity 12a can be used to contain the coating liquid applied to the titanium anode 200. The base box 12 and the support frame 11 are detachably connected. For example, the base box 12 can be snapped onto the support frame 11, or the base box 12 can be bolted to the support frame 11. After the coating solution is applied to the surface of the titanium anode 200, the titanium anode 200 needs to be baked to accelerate the conversion of the coating solution into a coating layer. On the one hand, the titanium anode 200 can be transferred to the baking area by holding the support frame 11 without contacting the coating layer on the surface of the titanium anode 200, thereby reducing the possibility of contact with the coating solution on the surface of the titanium anode 200 and thus reducing the possibility of contamination or scratches to the coating solution on the surface of the titanium anode 200. On the other hand, the support frame 11 and the base box 12 can be separated before baking, and the titanium anode 200 can be baked only by supporting the support frame 11. The coating solution in the removed base box 12 can be recovered to improve the recycling rate of the coating solution and reduce the production cost of the coating layer on the surface of the titanium anode 200. The support body 112 is located on the side of the frame 111 away from the receiving cavity 12a to reduce the space occupied by the support body 112 in the receiving cavity 12a and improve the capacity of the receiving cavity 12a to hold the coating solution.
[0037] For example, the shape of the bracket 1 can be as follows: Figure 1 and Figure 2 The rectangle shown can also be an ellipse, oblong, or circle.
[0038] In this embodiment, the support frame 11 is used to support the titanium anode 200, and the base box 12 is disposed below the support frame 11. When the coating liquid is applied to the surface of the titanium anode 200, excess coating liquid can flow back into the receiving cavity 12a of the base box 12 through the drain port 112a of the support frame 11. Before baking, the support frame 11 and the base box 12 are separated from each other, and the titanium anode 200 is supported by the support frame 11 for baking. The coating liquid in the disassembled base box 12 is recycled, which improves the recycling rate of the coating liquid, reduces waste of the coating liquid, and helps to reduce the production cost of the titanium anode 200 coating. Furthermore, the titanium anode 200 can be transferred to the baking area by holding the base box 12, thereby reducing the possibility of contact with the coating liquid on the surface of the titanium anode 200, which in turn helps to reduce the possibility of the coating liquid on the surface of the titanium anode 200 being disturbed or scratched, and improves the yield of the coating on the surface of the titanium anode 200.
[0039] In one embodiment, please refer to Figure 1 and Figure 2 The support body 112 includes multiple sub-frames 1121. For example, both ends of the multiple sub-frames 1121 are connected to the frame 111 and are located on the side of the frame 111 away from the receiving cavity 12a. The multiple sub-frames 1121 are arranged in parallel and / or crosswise, and multiple adjacent sub-frames 1121 surround a drain outlet 112a, so as to form a large number of drain outlets 112a on the support frame 11, which is beneficial to increase the flow rate of the coating liquid flowing back from the drain outlets 112a into the receiving cavity 12a.
[0040] For example, please refer to Figure 1 and Figure 2 There are six sub-shelves 1121, which are divided into two groups. One group has three sub-shelves 1121 arranged in parallel with each other. The other group also has three sub-shelves 1121 arranged in parallel with each other. One group of sub-shelves 1121 is arranged perpendicular to the other group of sub-shelves 1121.
[0041] For example, there are multiple sub-shelves 1121, and the multiple sub-shelves 1121 are arranged in parallel with each other.
[0042] For example, there are two sub-shelves 1121, and the two sub-shelves 1121 are arranged to cross each other.
[0043] In one embodiment, please refer to Figure 1 and Figure 2 The width of the side of the sub-frame 1121 closest to the receiving cavity 12a is greater than the width of the side of the sub-frame 1121 away from the receiving cavity 12a. On the one hand, this reduces the contact area between the sub-frame 1121 and the surface of the titanium anode 200, which helps to reduce the impact of the sub-frame 1121 on the integrity of the coating liquid on the surface of the titanium anode 200, thereby helping to improve the yield of the coating on the surface of the titanium anode 200. On the other hand, it allows the width of the sub-frame 1121 to gradually increase along the flow direction of the coating liquid, which facilitates the flow of the coating liquid remaining on the sub-frame 1121 along the side wall of the sub-frame 1121 into the receiving cavity 12a, which helps to improve the recovery rate of the coating liquid and reduce the production cost of the coating on the surface of the titanium anode 200.
[0044] For example, please refer to Figure 1 and Figure 2 The side of the sub-frame 1121 away from the receiving cavity 12a is pointed, which makes it less likely that the coating liquid will remain on the side of the sub-frame 1121 away from the receiving cavity 12a, thereby allowing most of the coating liquid on the sub-frame 1121 to flow into the receiving cavity 12a.
[0045] It is understood that the width of the side of the sub-frame 1121 closest to the receiving cavity 12a is not limited to being greater than the width of the side of the sub-frame 1121 away from the receiving cavity 12a. Exemplarily, the width of the side of the sub-frame 1121 closest to the receiving cavity 12a may also be less than or equal to the width of the side of the sub-frame 1121 away from the receiving cavity 12a.
[0046] In one embodiment, please refer to Figure 1 and Figure 2 The side wall of the bottom box 12 has a positioning groove 12b, and the support body 112 is partially located in the positioning groove 12b so that the support body 112 is engaged with the bottom box 12. On the one hand, the connection between the support body 112 and the bottom box 12 is relatively firm, and on the other hand, the support frame 11 and the bottom box 12 can be disassembled simply by removing the support body 112 from the positioning groove 12b, making the disassembly of the support frame 11 and the bottom box 12 relatively simple.
[0047] For example, please refer to Figure 1 and Figure 2 There are six sub-frames 1121, divided into two groups. One group has three sub-frames 1121 arranged in parallel with each other, and the other group also has three sub-frames 1121 arranged in parallel with each other. One group of sub-frames 1121 is arranged perpendicular to the other group of sub-frames 1121. Each end of each sub-frame 1121 has a positioning groove 12b at the connection position with the base box 12. Both ends of each sub-frame 1121 are located in the positioning groove 12b, which allows the base box 12 to limit the support body 112 in two intersecting directions. This helps to reduce the possibility of the support frame 11 moving relative to the base box 12, thereby reducing the possibility of the titanium anode 200 being misaligned.
[0048] It is understood that the sidewalls of the base box 12 are not limited to having positioning grooves 12b. Exemplarily, the support body 112 can be directly mounted on the base box 12.
[0049] In one embodiment, please refer to Figure 1 and Figure 2 The frame 111 surrounds the outer periphery of the base box 12. On the one hand, this reduces the space occupied by the frame 111 in the receiving cavity 12a of the base box 12, which is beneficial to improving the ability of the base box 12 to recover the coating liquid. On the other hand, the frame 111 surrounding the outer periphery of the base box 12 facilitates the positioning of the support frame 11 and the base box 12, reducing the difficulty of connecting the support frame 11 and the base box 12. Furthermore, during the separation of the support frame 11 and the base box 12, the support frame 11 can be separated from the base box 12 by holding the frame 111 located on the outside of the base box 12, reducing the possibility of touching the titanium anode 200, thereby improving the yield of the surface coating of the titanium anode 200.
[0050] It is understood that the frame 111 is not limited to surrounding the outer periphery of the base box 12. Exemplarily, the frame 111 may also surround the inner periphery of the base box 12.
[0051] Please see Figure 3 A second aspect of this application provides an automated spraying production line 100, including a spraying mechanism 2, a conveying mechanism 3, and a support 1. The spraying mechanism 2 is used to spray a coating liquid onto the surface of a titanium anode 200. The conveying mechanism 3 passes through the spraying mechanism 2, and the support 1 is disposed on the conveying mechanism 3 so that the titanium anode 200 can pass through the spraying mechanism 2 via the conveying mechanism 3.
[0052] For example, please refer to Figure 3 The automated spraying production line 100 includes a spraying chamber 5, a spraying mechanism 2 disposed within the spraying chamber 5, and a conveying mechanism 3 passing through the spraying chamber 5. The spraying chamber 5 is also equipped with a positioning sensor and a ventilation mechanism. When the titanium anode 200 is conveyed to the spraying chamber 5 via the support 1 and the conveying mechanism 3, the positioning sensor can correct the position of the titanium anode 200, ensuring that the titanium anode 200 can be sprayed within the spraying range of the spraying mechanism 2. The spraying mechanism 2 can be a spraying robotic arm, which can atomize the coating liquid into finer particles and automatically and evenly spray and adhere the atomized coating liquid to the surface of the titanium anode 200. This allows the automated spraying production line 100 to more accurately control the amount of coating liquid used, reduces the possibility of uneven coating liquid adhesion to the surface of the titanium anode 200, and helps improve the yield of the titanium anode 200 coating. During the process of spraying the coating liquid onto the surface of the titanium anode 200, the spraying room 5 can be a separate area. The exhaust system works normally to promptly discharge harmful gases into the external environment, reducing the harm to the workers.
[0053] In this embodiment, the titanium anode 200 is mounted on the support 1 and conveyed to the spraying mechanism 2 via the conveying mechanism 3 for spraying. This allows the production line to complete the spraying of the coating liquid on the surface of the titanium anode 200 more automatically, reducing labor costs and correspondingly reducing the area occupied by the production of the titanium anode 200 surface coating.
[0054] In one embodiment, please refer to Figure 3 The automated spraying production line 100 has a loading station 100a, a spraying station 100b, and a unloading station 100c. The loading station 100a and the unloading station 100c are located at opposite ends of the spraying mechanism 2, and the spraying station 100b is located in the spraying mechanism 2. When the conveying mechanism 3 moves one titanium anode 200 from the loading station 100a to the spraying station 100b, the other titanium anode 200 can be located in the loading station 100a.
[0055] For example, please refer to Figure 3Titanium anode 200 is placed on support 1, and support 1 is positioned at loading station 100a. Under the conveying mechanism 3, titanium anode 200 can move to spraying station 100b. While spraying mechanism 2 is spraying titanium anode 200, another titanium anode 200 can be positioned at loading station 100a via support 1, utilizing the spraying time of the previous titanium anode 200. This helps to accelerate the production cycle of the titanium anode 200 surface coating and improves the production efficiency of the titanium anode 200 surface coating. Once the first titanium anode 200 has completed its spraying operation, it can move to unloading station 100c under the conveying mechanism 3, and another titanium anode 200 can then move to spraying station 100b for spraying.
[0056] In this embodiment of the application, when the conveying mechanism 3 moves one titanium anode 200 from the loading station 100a to the spraying station 100b, another titanium anode 200 can be located at the loading station 100a, so that the latter titanium anode 200 can make full use of the time of the previous titanium anode 200 spraying operation, thereby improving the production efficiency of the titanium anode 200 surface coating.
[0057] In one embodiment, please refer to Figure 3 The automated spraying production line 100 also includes a baking mechanism 4, which is used to bake the coating liquid on the surface of the titanium anode 200 to form a coating. The spraying mechanism 2 and the baking mechanism 4 are arranged at intervals. A part of the conveying mechanism 3 passes through the spraying mechanism 2, and another part of the conveying mechanism 3 passes through the baking mechanism 4. The automated spraying production line 100 has an adjustment station 100d, which is located between the spraying mechanism 2 and the baking mechanism 4. When the support 1 is located at the adjustment station 100d, the bottom box 12 is separated from the support frame 11.
[0058] For example, please refer to Figure 3 The automated spray coating production line 100 includes a baking chamber 6, a baking mechanism 4 located within the baking chamber 6, a conveying mechanism 3 passing through the baking chamber 6, and an adjustment station 100d located between the spray coating chamber 5 and the baking chamber 6. After the titanium anode 200 is sprayed, it is conveyed to the adjustment station 100d via the conveying mechanism 3. This allows the bottom box 12 containing the coating liquid to be separated from the support frame 11 supporting the titanium anode 200, enabling the coating liquid in the bottom box 12 to be recycled. The automated spray coating production line 100 also has a baking station 100e, located within the baking mechanism 4, between the adjustment station 100d and the unloading station 100c. When the titanium anode 200, supported by the support frame 11, is conveyed to the baking station 100e via the conveying mechanism 3, the baking mechanism 4 can bake the undried coating liquid on the surface of the titanium anode 200, thereby increasing the rate at which the undried coating liquid on the surface of the titanium anode 200 dries to form a coating layer.
[0059] For example, please refer to Figure 3 Baking station 100e may include multiple sub-stations, which are spaced apart along the conveying direction of conveying mechanism 3. Each sub-station can accommodate one titanium anode 200. The baking time for the coating liquid on the surface of each titanium anode 200 can be set to 180 seconds, the conveying time interval of conveying mechanism 3 can be set to 75 seconds, and the conveying time of conveying mechanism 3 can be set to 15 seconds. When the titanium anode 200 located at adjustment station 100d moves to the sub-station after 15 seconds, the next titanium anode 200 can be moved from spraying station 100b to adjustment station 100d. During the 75-second baking process of the titanium anode 200 located at the sub-station, the support 1 of the titanium anode 200 located at adjustment station 100d can be disassembled. After the titanium anode 200 at the sub-position has been baked for 75 seconds, the conveyor mechanism 3 restarts for 15 seconds, moving the titanium anode 200 at the sub-position to the next sub-position for baking. During this process, the first titanium anode 200 is baked for a total of 90 seconds, while the titanium anode 200 at the adjustment station 100d is moved to the first sub-position for baking. This cycle continues until the first titanium anode 200 has been baked for 180 seconds and is moved to the unloading station 100c. The next titanium anode 200 is then baked for 90 seconds and moved to the second sub-position for baking. This allows multiple titanium anodes 200 to be baked together at the baking station 100e, improving the baking efficiency of the titanium anode 200 surface coating in the automated spray coating production line 100.
[0060] For example, the conveying mechanism 3 can drive multiple titanium anodes 200 to move synchronously at the loading station 100a, the spraying station 100b, the adjustment station 100d, the baking station 100e, and the unloading station 100c. When the first titanium anode 200 is placed at the loading station 100a, the conveying mechanism 3 drives the first titanium anode 200 to the spraying station 100b and stops. During the spraying process of the spraying mechanism 2 on the first titanium anode 200, the second titanium anode 200 is placed at the loading station 100a. When the first titanium anode 200 at spraying station 100b is finished, the conveying mechanism 3 moves the first titanium anode 200 to adjustment station 100d and the second titanium anode 200 to spraying station 100b. During the spraying process of the spraying mechanism 2 on the second titanium anode 200 and the disassembly of the bracket 1 at adjustment station 100d, the third titanium anode 200 is placed at loading station 100a. When the second titanium anode 200 is finished and the bracket 1 corresponding to the first titanium anode 200 is disassembled, the conveying mechanism 3 moves the first titanium anode 200 to baking station 100e for baking, moves the second titanium anode 200 to adjustment station 100d to disassemble the corresponding bracket 1, and moves the third titanium anode 200 to spraying station 100b. During this process, the fourth titanium anode 200 can be placed at loading station 100a, and so on. The automated spraying production line 100 can be pre-set with seven titanium anodes 200. When the seventh titanium anode 200 is located at the loading station 100a and moves to the spraying station 100b, the first titanium anode 200 can move from the baking station 100e to the unloading station 100c for unloading.
[0061] In this embodiment, when the bracket 1 is located at the adjustment station 100d, the bottom box 12 is separated from the support frame 11, and the titanium anode 200 is supported by the support frame 11 to enter the baking mechanism 4 for baking. The coating liquid in the disassembled bottom box 12 is recycled to improve the recycling rate of the coating liquid, which is beneficial to reduce the production cost of the coating on the surface of the titanium anode 200.
[0062] In one embodiment, please refer to Figure 3 The baking mechanism 4 includes multiple infrared lamps 41, which are arranged at intervals and form a plane parallel to the conveying mechanism 3. The infrared lamps 41 heat up quickly and evenly, which helps to shorten the baking time of the coating liquid on the surface of the titanium anode 200, thereby improving the production efficiency of the coating on the surface of the titanium anode 200.
[0063] For example, please refer to Figure 3The infrared lamps 41 extend continuously along the conveying direction of the conveying mechanism 3. There are multiple infrared lamps 41, and they are arranged parallel to each other along the direction that intersects with the conveying direction of the conveying mechanism 3, so that the plane formed by the multiple infrared lamps 41 can be arranged parallel to the titanium anode 200.
[0064] For example, the spacing between the multiple infrared lamps 41 can be adjusted according to different titanium anodes 200, allowing the automated spraying production line 100 to adjust the time it takes for the temperature inside the baking chamber 6 to rise to a preset temperature. This also ensures that the titanium anode 200 is comprehensively covered by the multiple infrared lamps 41 and heats up more uniformly. During the baking process of the coating liquid on the surface of the titanium anode 200, the infrared lamps 41 generate steam. This steam can pass through the gaps between the multiple infrared lamps 41 and be extracted by the ventilation system located at the top of the baking chamber 6, reducing the possibility of steam accumulation inside the baking chamber 6 and thus reducing the probability of accidents.
[0065] In one embodiment, please refer to Figure 3 The conveying mechanism 3 is a conveyor belt, which is arranged parallel to the support 1 so that the conveyor belt is arranged parallel to the titanium anode 200. This allows the titanium anode 200 to be arranged parallel to the plane formed by multiple infrared lamps 41, thereby allowing the coating liquid on the surface of the titanium anode 200 to be baked and dried more evenly. It also reduces the possibility of the vapor generated by the coating liquid on the surface of the titanium anode 200 adhering to the surface of the titanium anode 200 during baking, thereby improving the uniformity of the coating on the surface of the titanium anode 200.
[0066] The embodiments of this application have been described in detail above with reference to the accompanying drawings. However, this application is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of this application. Furthermore, unless otherwise specified, the embodiments and features described in the embodiments of this application can be combined with each other.
Claims
1. A stent, characterized by, A support frame for supporting a titanium anode, the support frame comprising: A support frame comprising a frame and a support body for supporting the titanium anode, the support body having a liquid leakage opening; A bottom box detachably connected with the support frame, the bottom box having a receiving cavity, the support frame cover being arranged on the bottom box so that the liquid leakage opening can communicate with the receiving cavity, the receiving cavity being used for containing coating liquid coated on the titanium anode, the support body being arranged on the side of the frame away from the receiving cavity.
2. The stent of claim 1, wherein The support body comprises a plurality of sub-frames, the plurality of sub-frames being arranged in parallel and / or intersecting, and a plurality of adjacent sub-frames surrounding the liquid leakage opening.
3. The stent of claim 2, wherein, The width of the side of the sub-frame close to the receiving cavity is greater than the width of the side of the sub-frame away from the receiving cavity.
4. The stent of claim 1, wherein The side wall of the bottom box has a positioning groove, and the support body is partially located in the positioning groove so that the support body is clamped with the bottom box.
5. The stent of claim 1, wherein The frame surrounds the outer periphery of the bottom box.
6. An automated spray painting line characterized in that, Comprise: A spraying mechanism for spraying coating liquid on the surface of a titanium anode; A conveying mechanism penetrating through the spraying mechanism; The support frame according to any one of claims 1-5 is arranged on the conveying mechanism so that the titanium anode can pass through the spraying mechanism through the conveying mechanism.
7. The automated spray production line of claim 6, wherein, The automatic spraying production line has a feeding station, a spraying station and a discharging station, the feeding station and the discharging station are respectively located at both ends of the spraying mechanism, and the spraying station is located in the spraying mechanism. When one of the titanium anodes is moved from the feeding station to the spraying station by the conveying mechanism, another titanium anode can be located in the feeding station.
8. The automated spray production line of claim 6, wherein, The automatic spraying production line further comprises a baking mechanism for baking the coating liquid on the surface of the titanium anode to form a coating layer, the spraying mechanism and the baking mechanism are arranged at intervals, a part of the conveying mechanism penetrates through the spraying mechanism, and another part of the conveying mechanism penetrates through the baking mechanism. The automatic spraying production line has an adjusting station between the spraying mechanism and the baking mechanism, when the support frame is located in the adjusting station, the bottom box is separated from the support frame.
9. The automated spray production line of claim 8, wherein, The baking mechanism comprises a plurality of infrared lamp tubes, the plurality of infrared lamp tubes are arranged at intervals, and the plane formed by the plurality of infrared lamp tubes is arranged in parallel with the conveying mechanism.
10. The automated spray production line of claim 6, wherein, The conveying mechanism is a conveying belt, the conveying belt is arranged in parallel with the support frame, so that the conveying belt is arranged in parallel with the titanium anode.