Printing head accessory machining device and method
By designing the printhead accessories processing device, using a combination of a two-way push plate and a cleaning unit, the double-side cleaning and copper foil bonding of the ceramic substrate are achieved, solving the problems of uneven cleaning and low efficiency in the prior art, and improving the cleaning and drying efficiency.
Patent Information
- Application Number
- CN202510548113.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-28
- Publication Date
- 2025-07-25
AI Technical Summary
In the prior art, ceramic substrate cleaning is uneven and inefficient, and double-sided cleaning and copper foil bonding automation cannot be achieved.
A printhead accessories processing device is designed, including side plates and cleaning units arranged symmetrically. The double-sided cleaning of the ceramic substrate and copper foil bonding is achieved through a clamping system driven by a two-way push plate, moving block and motor-driven clamping system. The mixing rod and partition are combined to ensure uniform mixing of the cleaning liquid. The flushing strength and range are used to regulate the use of electric sliders, and the brush plate and fan are used for auxiliary cleaning and drying.
It realizes efficient and comprehensive double-sided cleaning and copper foil bonding of ceramic substrates, avoids the problems of uneven cleaning and low efficiency, improves the cleaning effect and drying efficiency, and ensures the accuracy of copper foil bonding.
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Figure CN120362183A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of ceramic substrate processing, and specifically to a processing device and method for print head accessories. Background Art
[0002] As an important part of the print head, the ceramic substrate will be cleaned and copper foil bonded during the production of the print head. If the cleaning liquid is not sufficiently stirred during the cleaning of the ceramic substrate, uneven cleaning will occur. And when bonding with the copper foil after cleaning, the copper foil cannot be automatically placed.
[0003] The prior art discloses a Chinese patent with the application number CN202420876380.4, a brush plate machine for cleaning copper-clad ceramic substrates, and discloses that a spray head flushes the surface of the ceramic substrate, a sponge roller wipes the rinsed ceramic substrate, and subsequent drying and drying of the ceramic substrate, etc.
[0004] Although the above device can clean and dry the ceramic substrate, there are still some problems: 1. When flushing the ceramic substrate, the above device can only clean one surface of it, and the flushing force cannot be adjusted during flushing, and the flushing range cannot be continuously changed. Therefore, the flushing area is single, and uneven flushing is likely to occur; 2. After flushing the ceramic substrate, the ceramic substrate is displaced to achieve drying, thus increasing the workload, and at the same time, the copper foil cannot be bonded to the surface of the ceramic substrate. Summary of the Invention
[0005] The purpose of the present invention is to provide a processing device and method for print head accessories to solve the problems of uneven flushing and low efficiency of the ceramic substrate in the background art.
[0006] The purpose of the present invention can be achieved by the following technical solutions: A processing device for print head accessories includes two symmetrically arranged side plates. A collection box is detachably installed at the lower part of the two side plates. Symmetric guide grooves are opened in the middle of the side of the two side plates close to each other. A plurality of groups of equally spaced moving blocks are slidably installed in the guide grooves through a conveyor belt. A two-way push plate is rotatably installed on one side of the moving block through a motor. Two symmetrically arranged connecting plates are jointly installed on both sides of the two two-way push plates. A moving groove is opened in the middle of the connecting plate. A moving member is slidably installed in the moving groove. One end of the moving member is fixedly installed with a clamping block arranged at a right angle. The ceramic substrates in the print head accessories are jointly clamped between the four diagonally arranged clamping blocks for subsequent cleaning and copper foil bonding. A cleaning unit is jointly installed between the two side plates. A feeding unit connected to the side plate is arranged on one side of the cleaning unit.
[0007] Furthermore, a circular shaft is fixedly installed on one side of the upper end face of the moving part. In the middle of one side of the connecting plate, an electric push plate is fixedly installed. The telescopic end of the electric push plate is fixedly installed with a regulating frame. Sleeve grooves are formed on both sides of the regulating frame, and the sleeve grooves on both sides are respectively sleeved on the outer parts of the circular shafts on both sides. In the middle of the inner side of the side plate, an inner plate is fixedly installed. On the upper end face of the inner plate, a hydraulic rod is fixedly installed, and a stabilizing plate is fixedly installed at the top of the hydraulic rod.
[0008] Furthermore, the cleaning unit includes two symmetrically arranged support frames, which are respectively fixedly connected to the tops of the side plates on both sides. On the lower end face of the support frame, two symmetrically arranged electric push rods are fixedly installed front and back. The telescopic ends of the electric push rods on both sides are jointly installed with a fixing frame. In the middle of the upper end face of the fixing frame, a mixing box is fixedly installed. On one side of the mixing box, a feeding box is fixedly installed, and on the side of the mixing box away from the feeding box, a water injection box is fixedly installed.
[0009] Furthermore, a transposition rod is rotatably installed in the middle of the feeding box through a motor. On the outer part of the transposition rod, circumferentially arranged partition plates are fixedly installed. Feeding pipes communicating with the inside of the mixing box are provided on both the feeding box and the water injection box. In the middle of the inner cavity of the mixing box, a stirring rod is rotatably installed through a motor. The mixing box is transparent and a scale is provided on its outer part.
[0010] Furthermore, symmetrically arranged vertical grooves are formed on both the front and rear sides of the fixing frame. In the vertical grooves, a lifting frame is slidably installed through electric sliders. Between the front and rear lifting frames, a flushing box is rotatably installed through electric sliders. A water pipe is jointly installed between the flushing box and the mixing box.
[0011] Furthermore, two symmetrically arranged U-shaped rods are fixedly installed on the lower end face of the fixing frame. A baffle is slidably installed jointly between the front and rear U-shaped rods. Springs are sleeved on both sides of the U-shaped rods. On one side of the two U-shaped rods, a middle plate is jointly fixedly installed. On one side of the middle plate, a convex plate is fixedly installed. On the upper end face of the convex plate, a cam is rotatably installed through a motor. On one side of the cam, a contact plate fixed to the top side edge of the baffle is provided.
[0012] Furthermore, multiple groups of symmetrically arranged hanging plates are fixedly installed on the lower end face of the baffle. Between each group of hanging plates, a rotating cylinder is rotatably installed through a motor. A plurality of circumferentially arranged storage grooves are formed on the outer wall of the rotating cylinder. A brush plate is slidably installed in the storage groove. On both sides of the rotating cylinder, a rotating ring is slidably installed through electric sliders. A plurality of circumferentially arranged pushing plates are hinged to the outer side of the rotating ring. The ends of the pushing plates away from the rotating ring are respectively hinged to the corresponding brush plates.
[0013] Furthermore, a plurality of circumferentially arranged blowing grooves are formed on the outer part of the rotating cylinder. Between the plurality of blowing grooves, a blower fixed to the inner cavity of the rotating cylinder is provided. On both sides of the blowing groove, a sticky plate detachably connected to the rotating cylinder is provided.
[0014] On one side of the upper end face of the side plate, two sets of symmetrically arranged top frames are fixedly installed. On each set of top frames, two pulleys arranged vertically are rotatably installed through motors. A belt is installed between the two pulleys. On the outside of the belt, supporting plates are installed at equal intervals. Copper foils are placed on two corresponding supporting plates. Inside the two-way push plate, a cylinder is fixedly installed, and at one end of the cylinder, an abutting plate is fixedly installed.
[0015] Furthermore, another object of the present invention is to provide a processing method for a print head accessory processing device, including the following steps: S1: Cleaning of the ceramic substrate: Put concentrated sulfuric acid in the blanking box and deionized water in the water injection box into the mixing box in proportion, and then stir it to make a cleaning solution. The ceramic substrate transported below it is repeatedly rinsed through the rinsing box. By turning on the motor to drive the two-way push plate to flip, the two sides of the ceramic substrate can be rinsed once. When the motor is turned on and the rotating cylinder rotates, the brush plate can brush and clean the ceramic substrate during the impact. S2: Drying of the ceramic substrate: Retract the brush plate into the storage groove, and then turn on the blower so that the blowing groove blows and dries the surface of the ceramic substrate. And in cooperation with the rotation of the rotating cylinder, the sticky plate can also adhere to and clean the dried surface of the ceramic substrate. By sticking the dust on its surface, the dust and impurities on its surface can be effectively removed. S3: Feeding and bonding of copper foil: The cleaned ceramic substrate is transported below the feeding unit. Then the motor is turned on to drive the pulley to rotate. When the pulley rotates, the copper foils on the two supporting plates are lowered above the ceramic substrate. Then, through an external processing furnace, the ceramic substrate and the copper foil are bonded.
[0016] The beneficial effects of the present invention: 1. In the present invention, the distance between the two connecting plates is adjusted by the expansion and contraction of the two-way push plate. At this time, the clamping blocks on both sides move synchronously with the two connecting plates on both sides, so that multiple clamping blocks can clamp different-width ceramic substrates before processing. And the movement of the two moving parts on the same connecting plate can also clamp different-length ceramic substrates. Through the setting of the cleaning unit, the ceramic substrate can be cleaned efficiently and comprehensively. At this time, the motor is turned on to make the two-way push plates on both sides flip, so that the ceramic substrate is turned over, realizing the cleaning of both sides of the ceramic substrate in sequence, as well as the film covering of the copper foil. And with the setting of multiple groups of moving blocks, multiple fixed ceramic substrates can be sequentially transported below the cleaning unit and the feeding unit, so as to perform continuous cleaning and copper foil bonding operations on a batch of ceramic substrates.
[0017] 2. In the present invention, deionized water in the water injection tank is injected into the mixing tank by opening the injection pipe. The capacity of the injected deionized water can be accurately observed through the setting of the scale. Subsequently, the low-temperature crystalline sulfuric acid in the feeding tank is put into the mixing tank by opening the injection pipe. The motor is started to drive the stirring rod to rotate, so that the cleaning solution prepared by sulfuric acid and deionized water in proportion can be fully stirred. Stirring the cleaning solution can avoid the situation that the ceramic substrate is unevenly cleaned due to the stratification and segregation of the cleaning solution. Through the setting of multiple partitions, multiple placement bins can be formed in the feeding tank. The solid sulfuric acid crystals put into each placement bin can be quantitatively put into the mixing tank, and the sulfuric acid crystals in the placement bin formed between every two adjacent partitions are the dosage for one time. Quantitative feeding can ensure the effective cleaning of the cleaning solution prepared by mixing sulfuric acid and deionized water, so as to ensure the cleaning effect on the ceramic substrate.
[0018] 3. In the present invention, the electric slider is started to drive the lifting frame to lift in the vertical groove. When the lifting frame lifts, it can drive the flushing tank to lift. Through the setting of the water pipe, the cleaning solution in the mixing tank can be supplied to the flushing tank. The flushing tank is opened, and the cleaning solution of its external nozzle is sprayed on the surface of the ceramic substrate for cleaning. By lifting the flushing tank, the impact force of the cleaning solution sprayed on the ceramic substrate can be regulated when flushing the surface of the ceramic substrate. And by starting the electric slider to drive the flushing tank to rotate in the lifting frame, the flushing surface of the ceramic substrate can be continuously changed, thereby increasing the cleaning surface of the ceramic substrate. Compared with the existing device, the present invention can regulate the flushing intensity of the ceramic substrate during cleaning, and through the rotation of the two flushing tanks, the surface of the ceramic substrate can also be evenly flushed.
[0019] 4. Through the setting of the baffle plate, the present invention can resist the cleaning liquid when it flushes and splashes on the surface of the ceramic substrate, avoiding the splashing of the cleaning liquid everywhere. When the flushing is completed, the electric slider is turned on to drive the lifting frame to move the flushing box upward. Then, the electric push rod is turned on to make the brush plate abut against the surface of the ceramic substrate. Subsequently, the motor is turned on to drive the rotating cylinder to rotate. When the rotating cylinder rotates, the brush plate outside it brushes the surface of the ceramic substrate flexibly, further assisting in the cleaning of the ceramic substrate. At the same time, the blower is turned on, and the blower blows and dries the cleaning liquid on the ceramic substrate through the blowing groove. By turning on the electric slider to drive the rotating ring to rotate, when the rotating ring rotates, the brush plate is retracted into the storage groove through multiple pushing plates. At this time, multiple sticky plates are convenient to directly contact the ceramic substrate to adhere and clean the surface of the ceramic substrate. Through the adhesion cleaning, the surface of the ceramic substrate can be thoroughly cleaned. Compared with the existing device, the present invention can, after flushing the ceramic substrate, assist in cleaning it through the brush plate, and can blow and dry the ceramic substrate to further assist the drying efficiency after cleaning. And under the action of the sticky plate, the dust on the surface of the ceramic substrate can also be effectively adhered, so as to facilitate the subsequent copper foil bonding of the ceramic substrate.
[0020] 5. The present invention drives the pulley to rotate by turning on the motor. When the pulley rotates, it drives the belt to rotate, so that the copper foil falls onto the ceramic substrate below to achieve copper foil bonding. Through the setting of the cylinder, the copper foil can accurately fall onto the ceramic substrate when it falls, effectively avoiding the situation of misalignment caused by the offset of the copper foil when it falls. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] In order to more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, for those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings. Figure 1 It is a schematic diagram of the overall structure of the device of the present invention; Figure 2 It is a schematic diagram of the front structure of the device of the present invention; Figure 3 It is a schematic diagram of the structure between the ceramic substrate and the clamping block of the present invention; Figure 4 It is a schematic diagram of the cleaning unit structure of the present invention; Figure 5 It is a partial top view schematic diagram of the cleaning unit of the present invention; Figure 6 It is a schematic diagram of the placement unit structure of the present invention; Figure 7 It is a schematic diagram of the external structure of the rotating cylinder of the present invention; Figure 8It is a schematic structural diagram of the delivery unit of the present invention.
[0022] The reference numerals in the figure are as follows: 1, side plate; 10, collection box; 11, guide groove; 12, moving block; 13, two-way push plate; 131, cylinder; 132, abutting plate; 14, connecting plate; 141, electric push plate; 142, regulation frame; 143, sleeve groove; 15, moving groove; 16, moving part; 17, clamping block; 18, round shaft; 2, support frame; 21, electric push rod; 22, fixing frame; 221, vertical groove; 222, lifting frame; 23, mixing box; 231, blanking box; 232, water injection box; 233, transposition rod; 234, partition board; 235, delivery pipe; 24, U-shaped rod; 241, middle plate; 242, convex plate; 243, cam; 25, baffle; 251, contact plate; 26, flushing box; 261, water pipe; 3, hanging plate; 31, rotating cylinder; 32, blowing groove; 33, sticky plate; 34, storage groove; 35, brush plate; 36, rotating ring; 37, pushing plate; 38, inner plate; 39, hydraulic rod; 390, stabilizing plate; 4, top frame; 41, belt pulley; 42, belt; 43, supporting plate. Specific embodiments
[0023] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0024] As shown in the Figure 1-8 accompanying drawings, a processing device for print head accessories includes two symmetrically arranged side plates 1. A collection box 10 is detachably installed at the lower part of the two side plates 1. Symmetric guide grooves 11 are opened in the middle of the two side plates 1 on the side close to each other. A plurality of groups of equally spaced moving blocks 12 are slidably installed in the guide grooves 11 through a conveyor belt. A two-way push plate 13 is rotatably installed on one side of the moving block 12 through a motor. Two symmetrically arranged connecting plates 14 are commonly installed on both sides of the two two-way push plates 13. A moving groove 15 is opened in the middle of the connecting plate 14. A moving part 16 is slidably installed in the moving groove 15. One end of the moving part 16 is fixedly installed with a clamping block 17 arranged at a right angle. The ceramic substrates in the print head accessories are commonly clamped between the four diagonally arranged clamping blocks 17 for subsequent cleaning and copper foil bonding. A cleaning unit is commonly installed between the two side plates 1, and a delivery unit connected to the side plate 1 is arranged on one side of the cleaning unit.
[0025] The expansion and contraction of the bidirectional push plate 13 drives the adjustment of the distance between the two connecting plates 14. At this time, the clamping blocks 17 on both sides move synchronously with the two connecting plates 14 on both sides, so that multiple clamping blocks 17 can clamp the ceramic substrate with different widths before processing. Moreover, the movement of the two moving parts 16 on the same connecting plate 14 can also clamp the ceramic substrate with different lengths. Through the setting of the cleaning unit, the ceramic substrate can be cleaned efficiently and comprehensively. At this time, the motor is turned on to make the bidirectional push plates 13 on both sides flip, so that the ceramic substrate is turned over, realizing the cleaning of both sides of the ceramic substrate in sequence, as well as the copper foil laminating. And with the setting of multiple groups of moving blocks 12, multiple fixed ceramic substrates can be sequentially conveyed to the lower part of the cleaning unit and the feeding unit, so as to perform continuous cleaning and copper foil bonding operations on a batch of ceramic substrates.
[0026] As shown in the attached Figure 4 figure, a circular shaft 18 is fixedly installed on one side of the upper end surface of the moving part 16, an electric push plate 141 is fixedly installed in the middle of one side of the connecting plate 14, a regulating frame 142 is fixedly installed at the telescopic end of the electric push plate 141, and sleeve grooves 143 are opened on both sides of the regulating frame 142. The two sleeve grooves 143 are respectively sleeved on the outer parts of the two circular shafts 18. An inner plate 38 is fixedly installed in the middle of the inner side of the side plate 1, a hydraulic rod 39 is fixedly installed on the upper end surface of the inner plate 38, and a stabilizing plate 390 is fixedly installed at the top of the hydraulic rod 39.
[0027] The hydraulic rod 39 is turned on to push upward. At this time, the hydraulic rod 39 drives the stabilizing plate 390 to move upward. At this time, the ceramic substrate to be clamped on the side is placed on the stabilizing plate 390. Then, by turning on the telescopic of the electric push plates 141 on both sides, when the electric push plates 141 telescope, the two regulating frames 142 on both sides approach or move away from each other. At this time, under the traction of the sleeve grooves 143 on the circular shafts 18, the regulating frame 142 drives the two moving parts 16 on the same connecting plate 14 to move relative to each other. At this time, the two moving parts 16 drive the two clamping blocks 17 to approach or move away from each other, so as to clamp the ceramic substrate with different lengths, so that the whole device has a wider range of usability when processing the print head accessories.
[0028] As shown in the attached Figure 4 、 5 Figure 6, the cleaning unit includes two symmetrically arranged support frames 2, the two support frames 2 are respectively fixedly connected to the tops of the side plates 1 on both sides, two front and rear symmetrically arranged electric push rods 21 are fixedly installed on the lower end surfaces of the support frames 2, a fixed frame 22 is jointly installed at the telescopic ends of the electric push rods 21 on both sides, a mixing box 23 is fixedly installed in the middle of the upper end surface of the fixed frame 22, a feeding box 231 is fixedly installed on one side of the mixing box 23, and a water injection box 232 is fixedly installed on the side of the mixing box 23 away from the feeding box 231.
[0029] In the middle of the blanking box 231, a transposition rod 233 is rotatably installed by a motor. A circumferentially arranged partition 234 is fixedly installed outside the transposition rod 233. Feeding pipes 235 communicating with the inside of the mixing box 23 are provided on both the blanking box 231 and the water injection box 232. In the middle of the inner cavity of the mixing box 23, a stirring rod is rotatably installed by a motor. The mixing box 23 is transparent and is provided with a scale outside it.
[0030] Place the sulfuric acid crystals at low temperature in the blanking box 231. Open the feeding pipe 235 to inject deionized water in the water injection box 232 into the mixing box 23. Through the setting of the scale, the capacity of the injected deionized water can be accurately observed. Then open the feeding pipe 235 to put the low-temperature crystalline sulfuric acid in the blanking box 231 into the mixing box 23. Start the motor to drive the stirring rod to rotate, which can fully stir the cleaning solution prepared by sulfuric acid and deionized water in proportion. By stirring the cleaning solution, the situation of uneven cleaning of the ceramic substrate caused by the stratification and segregation of the cleaning solution can be avoided. Through the setting of multiple partitions 234, multiple placement bins can be formed in the blanking box 231. The solid sulfuric acid crystals put into each placement bin can be quantitatively put into the mixing box 23, and the sulfuric acid crystals in the placement bin formed between every two adjacent partitions 234 are for one-time use. Through quantitative feeding, the effective cleaning of the cleaning solution made by mixing sulfuric acid and deionized water can be ensured to guarantee the cleaning effect on the ceramic substrate.
[0031] Symmetrically arranged vertical grooves 221 are opened on both the front and rear sides of the fixing frame 22. An elevating frame 222 is slidably installed in the vertical grooves 221 through electric sliders. A flushing box 26 is rotatably installed between the front and rear elevating frames 222 through electric sliders. A water pipe 261 is commonly installed between the flushing box 26 and the mixing box 23.
[0032] Start the electric slider to drive the elevating frame 222 to rise and fall in the vertical groove 221. When the elevating frame 222 rises and falls, it can drive the flushing box 26 to rise and fall. Through the setting of the water pipe 261, the cleaning solution in the mixing box 23 can be supplied to the flushing box 26. Open the flushing box 26 and spray the cleaning solution on the surface of the ceramic substrate through the nozzles outside it. By raising and lowering the flushing box 26, the impact force of the cleaning solution at the spraying position of the ceramic substrate can be regulated when flushing the surface of the ceramic substrate. And by starting the electric slider to drive the flushing box 26 to rotate in the elevating frame 222, the flushing surface of the ceramic substrate can be continuously changed, thereby increasing the cleaning surface of the ceramic substrate. Compared with the existing device, the present invention can regulate the flushing intensity of the ceramic substrate during cleaning, and through the rotation of the two flushing boxes 26, the surface of the ceramic substrate can also be evenly flushed.
[0033] Two symmetrically arranged U-shaped rods 24 are fixedly installed on the lower end surface of the fixing frame 22. A baffle 25 is slidably installed between the front and rear U-shaped rods 24. Springs are sleeved on both sides of the U-shaped rods 24. A middle plate 241 is fixedly installed on one side of the two U-shaped rods 24. A convex plate 242 is fixedly installed on one side of the middle plate 241. A cam 243 is rotatably installed on the upper end surface of the convex plate 242 through a motor. A contact plate 251 fixed to the top side edge of the baffle 25 is provided on one side of the cam 243.
[0034] Through the setting of the baffle 25, the cleaning liquid can be blocked when flushing and sputtering the surface of the ceramic substrate, avoiding the splashing of the cleaning liquid everywhere. When the flushing is completed, the electric slider is turned on to drive the lifting frame 222 to move the flushing box 26 upward. Then, the electric push rod 21 is turned on to make the brush plate 35 abut against the surface of the ceramic substrate. Then, the motor is turned on to drive the rotating cylinder 31 to rotate. When the rotating cylinder 31 rotates, the brush plate 35 outside it brushes the surface of the ceramic substrate flexibly, further assisting in the cleaning of the ceramic substrate. At the same time, the blower is turned on. The blower blows and dries the cleaning liquid on the ceramic substrate through the blowing groove 32. By turning on the electric slider to drive the rotating ring 36 to rotate, when the rotating ring 36 rotates, the brush plate 35 is retracted into the storage groove 34 through a plurality of pushing plates 37. At this time, a plurality of sticky plates 33 are convenient to directly contact the ceramic substrate, so as to adhere and clean the surface of the ceramic substrate. Through the adhesion cleaning, the surface of the ceramic substrate can be thoroughly cleaned. Compared with the existing device, the present invention can, after flushing the ceramic substrate, assist in cleaning it through the brush plate 35, and can blow and dry the ceramic substrate, further assisting the drying efficiency after cleaning. And under the action of the sticky plate 33, the dust on the surface of the ceramic substrate can also be effectively adhered, so as to facilitate the subsequent copper foil bonding of the ceramic substrate.
[0035] As shown in the Figure 7 drawing, a plurality of groups of symmetric hanging plates 3 are fixedly installed on the lower end surface of the baffle 25. A rotating cylinder 31 is rotatably installed between each group of hanging plates 3 through a motor. A plurality of circumferentially arranged storage grooves 34 are formed on the outer wall of the rotating cylinder 31. A brush plate 35 is slidably installed in the storage groove 34. The rotating cylinder 31 is slidably installed with a rotating ring 36 on both sides through electric sliders. A plurality of circumferentially arranged pushing plates 37 are hinged on the outer side of the rotating ring 36. One end of the pushing plate 37 away from the rotating ring 36 is respectively hinged to the corresponding brush plate 35.
[0036] A plurality of circumferentially arranged blowing grooves 32 are formed on the outside of the rotating cylinder 31. A blower fixed to the inner cavity of the rotating cylinder 31 is provided between the plurality of blowing grooves 32. Sticky plates 33 detachably connected to the rotating cylinder 31 are provided on both sides of the blowing groove 32.
[0037] As shown in the Figure 8As shown in the figure, on one side of the upper end surface of the side plate 1, two symmetrically arranged top frames 4 are fixedly installed. On each top frame 4, two pulleys 41 arranged vertically are rotatably installed by a motor. A belt 42 is installed between the two pulleys 41. A plurality of pallet 43 are installed at equal intervals on the outside of the belt 42. Copper foils are placed on two corresponding pallets 43. Inside the inner side of the two-way push plate 13, a cylinder 131 is fixedly installed. One end of the cylinder 131 is fixedly installed with an abutting plate 132.
[0038] When the motor is started, it drives the pulley 41 to rotate. When the pulley 41 rotates, it drives the belt 42 to rotate, so that the copper foil falls onto the ceramic substrate below, so as to realize copper foil bonding. Through the setting of the cylinder 131, the copper foil can accurately fall onto the ceramic substrate when falling, effectively avoiding the situation of misalignment caused by the offset of the copper foil when falling.
[0039] Another object of the present invention is to provide a processing method for a print head accessory processing device, including the following steps: S1: Cleaning of the ceramic substrate: Put concentrated sulfuric acid in the blanking box 231 and deionized water in the water injection box 232 into the mixing box 23 in proportion, and then stir it to make a cleaning solution. The ceramic substrate transported below it is repeatedly rinsed through the rinsing box 26. When the motor is started, it drives the two-way push plate 13 to turn over, so that both sides of the ceramic substrate can be rinsed once. When the motor is started and the rotating cylinder 31 rotates, the brush plate 35 can brush and clean the ceramic substrate during the impact. S2: Drying of the ceramic substrate: The brush plate 35 is recycled into the storage groove 34. Then, the blower is turned on to blow-dry the surface of the ceramic substrate through the blowing groove 32. And in cooperation with the rotation of the rotating cylinder 31, the sticky plate 33 can also adhere to and clean the dried surface of the ceramic substrate, and effectively remove the dust and impurities on its surface by sticking the dust on its surface. S3: Feeding and bonding of the copper foil: The cleaned ceramic substrate is transported below the feeding unit. Then, the motor is started to drive the pulley 41 to rotate. When the pulley 41 rotates, the copper foils on the two pallets 43 are lowered above the ceramic substrate. Then, the ceramic substrate and the copper foil are bonded through an external processing furnace.
[0040] During use, the expansion and contraction of the bidirectional push plate 13 drives the adjustment of the distance between the two connecting plates 14. At this time, the clamping blocks 17 on both sides move synchronously with the two connecting plates 14 on both sides, so that multiple clamping blocks 17 can clamp ceramic substrates with different widths before processing. In addition, the movement of the two moving members 16 on the same connecting plate 14 can also clamp ceramic substrates with different lengths. The cleaning unit can efficiently and comprehensively clean the ceramic substrates. At this time, the motor is turned on to flip the bidirectional push plates 13 on both sides, so that the ceramic substrates are turned over, realizing the sequential cleaning of both sides of the ceramic substrates and the copper foil laminating. Moreover, with the arrangement of multiple sets of moving blocks 12, multiple fixed ceramic substrates can be sequentially conveyed to the lower part of the cleaning unit and the feeding unit, so as to perform continuous cleaning and copper foil bonding operations on a batch of ceramic substrates. The hydraulic rod 39 is turned on to push upward. At this time, the hydraulic rod 39 drives the stabilizing plate 390 to move upward. At this time, the ceramic substrate to be clamped on the side is placed on the stabilizing plate 390. Subsequently, by turning on the expansion and contraction of the electric push plates 141 on both sides, when the electric push plates 141 expand and contract, the two regulating frames 142 on both sides move closer to or away from each other. At this time, under the traction of the sleeve groove 143 on the round shaft 18, the regulating frame 142 drives the two moving members 16 on the same connecting plate 14 to move relative to each other. At this time, the two moving members 16 drive the two clamping blocks 17 to move closer to or away from each other, so as to clamp ceramic substrates with different lengths, making the whole device more versatile when processing print head accessories; Place the sulfuric acid crystals at low temperature in the feeding box 231. Open the feeding pipe 235 to inject deionized water in the water injection box 232 into the mixing box 23. Through the setting of the scale, the capacity of the injected deionized water can be accurately observed. Subsequently, open the feeding pipe 235 to put the low-temperature crystalline sulfuric acid in the feeding box 231 into the mixing box 23. Start the motor to drive the stirring rod to rotate, and the cleaning liquid prepared by mixing sulfuric acid and deionized water in proportion can be fully stirred. By stirring the cleaning liquid, the situation of uneven cleaning of the ceramic substrate caused by the stratification and segregation of the cleaning liquid can be avoided. Through the setting of multiple partitions 234, multiple placement bins can be formed in the feeding box 231. The solid sulfuric acid crystals put into each placement bin can be quantitatively put into the mixing box 23, and the sulfuric acid crystals in the placement bin formed between every two adjacent partitions 234 are the dosage for one time. Through quantitative feeding, the effective cleaning of the cleaning liquid prepared by mixing sulfuric acid and deionized water can be ensured to guarantee the cleaning effect on the ceramic substrate. The electric slider is started to drive the lifting frame 222 to lift in the vertical groove 221. When the lifting frame 222 lifts, it can drive the flushing box 26 to lift. Through the setting of the water pipe 261, the cleaning liquid in the mixing box 23 can be supplied to the flushing box 26. The flushing box 26 is opened, and the cleaning liquid of its external nozzle is sprayed on the surface of the ceramic substrate for cleaning. By lifting the flushing box 26, when flushing the surface of the ceramic substrate, the impact force of the cleaning liquid sprayed on the ceramic substrate can be regulated. And by starting the electric slider to drive the flushing box 26 to rotate in the lifting frame 222, the flushing surface of the ceramic substrate can also be continuously changed, thereby increasing the cleaning surface of the ceramic substrate. Compared with the existing device, the present invention can regulate the flushing intensity when cleaning the ceramic substrate, and through the rotation of the two flushing boxes 26, the surface of the ceramic substrate can also be evenly flushed; The setting of the baffle plate 25 can resist the cleaning liquid when it flushes and sputters the surface of the ceramic substrate, preventing the cleaning liquid from splashing everywhere. When the flushing is completed, the electric slider is turned on to drive the lifting frame 222 to move the flushing box 26 upward. Then, the electric push rod 21 is turned on to make the brush plate 35 abut against the surface of the ceramic substrate. Subsequently, the motor is turned on to drive the rotating cylinder 31 to rotate. When the rotating cylinder 31 rotates, the brush plate 35 outside it brushes the surface of the ceramic substrate flexibly, further assisting in the cleaning of the ceramic substrate. At the same time, the blower is turned on, and the blower blows and dries the cleaning liquid on the ceramic substrate through the blowing groove 32. By turning on the electric slider to drive the rotating ring 36 to rotate, when the rotating ring 36 rotates, the brush plate 35 is retracted into the storage groove 34 through multiple pushing plates 37. At this time, the multiple sticky plates 33 are convenient to directly contact the ceramic substrate to adhere and clean the surface of the ceramic substrate. Through the adhesion cleaning, the surface of the ceramic substrate can be thoroughly cleaned. Compared with the existing device, the present invention can, after flushing the ceramic substrate, assist in cleaning it through the brush plate 35, and can blow and dry the ceramic substrate to further assist the drying efficiency after cleaning. And under the action of the sticky plate 33, the dust on the surface of the ceramic substrate can also be effectively adhered, so as to facilitate the subsequent copper foil bonding of the ceramic substrate. The motor is turned on to drive the pulley 41 to rotate. When the pulley 41 rotates, it drives the belt 42 to rotate, so that the copper foil falls onto the lower ceramic substrate plate to achieve copper foil bonding. Through the setting of the cylinder 131, the copper foil can accurately fall onto the ceramic substrate when it falls, effectively avoiding the situation of misalignment caused by the offset of the copper foil when it falls.
[0041] The above shows and describes the basic principles, main features and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited by the above embodiments. The above embodiments and the descriptions in the specification only illustrate the principles of the present invention. Without departing from the spirit and scope of the present invention, the present invention will have various changes and improvements, and these changes and improvements all fall within the scope of the present invention claimed.
Claims
1. A processing device for a print head fitting, comprising two symmetrically arranged side plates (1), a collection frame (10) is detachably installed at the lower part of the two side plates (1), and symmetric guiding grooves (11) are formed in the middle of the sides of the two side plates (1) close to each other, characterized in that, A plurality of moving blocks (12) arranged at equal intervals are slidably installed in the guiding groove (11) through a conveyor belt. A two-way push plate (13) is rotatably installed on one side of the moving block (12) by a motor. Two symmetrically arranged connecting plates (14) are commonly installed on both sides of the two two-way push plates (13). A moving groove (15) is formed in the middle of the connecting plate (14). A moving member (16) is slidably installed in the moving groove (15). A clamping block (17) arranged at a right angle is fixedly installed at one end of the moving member (16). The ceramic substrate in the print head assembly is commonly clamped among the four diagonally arranged clamping blocks (17) for subsequent cleaning and copper foil bonding. A cleaning unit is commonly installed between the two side plates (1). A feeding unit connected to the side plate (1) is arranged on one side of the cleaning unit.
2. The processing device for a print head fitting according to claim 1, wherein, A round shaft (18) is fixedly installed on one side of the upper end surface of the moving member (16). An electric push plate (141) is fixedly installed in the middle of one side of the connecting plate (14). A regulating frame (142) is fixedly installed at the telescopic end of the electric push plate (141). Sleeve grooves (143) are formed on both sides of the regulating frame (142). The sleeve grooves (143) on both sides are respectively sleeved on the outer parts of the round shafts (18) on both sides. An inner plate (38) is fixedly installed in the middle of the inner side of the side plate (1). A hydraulic rod (39) is fixedly installed on the upper end surface of the inner plate (38). A stabilizing plate (390) is fixedly installed at the top of the hydraulic rod (39).
3. The processing device for a print head fitting according to claim 1, wherein The cleaning unit includes two symmetrically arranged support frames (2). The two support frames (2) are respectively fixedly connected to the tops of the two side plates (1). Two front and rear symmetrically arranged electric push rods (21) are fixedly installed on the lower end surface of the support frame (2). A fixed frame (22) is commonly installed at the telescopic ends of the electric push rods (21) on both sides. A mixing box (23) is fixedly installed in the middle of the upper end surface of the fixed frame (22). A feeding box (231) is fixedly installed on one side of the mixing box (23). A water injection box (232) is fixedly installed on the side of the mixing box (23) away from the feeding box (231).
4. A processing device for a print head accessory according to claim 3, characterized in that, A transposition rod (233) is rotatably installed in the middle of the feeding box (231) by a motor. Annularly arranged partition plates (234) are fixedly installed on the outer part of the transposition rod (233). Feeding pipes (235) communicating with the inside of the mixing box (23) are arranged on both the feeding box (231) and the water injection box (232). A stirring rod is rotatably installed in the middle of the inner cavity of the mixing box (23). The mixing box (23) is transparent and a scale is arranged on its outer part.
5. The processing device for a print head accessory according to claim 3, wherein, Symmetrically arranged vertical grooves (221) are formed on both the front and rear sides of the fixed frame (22). A lifting frame (222) is slidably installed in the vertical grooves (221) through electric sliders. A flushing box (26) is rotatably installed between the front and rear lifting frames (222) through electric sliders. A water pipe (261) is commonly installed between the flushing box (26) and the mixing box (23).
6. The processing device for a print head fitting according to claim 5, characterized in that, Two symmetrically arranged U-shaped rods (24) are fixedly installed on the lower end surface of the fixing frame (22). A baffle (25) is slidably installed between the front and rear U-shaped rods (24). Springs are sleeved on both sides of the U-shaped rods (24). A middle plate (241) is fixedly installed on one side of the two U-shaped rods (24). A convex plate (242) is fixedly installed on one side of the middle plate (241). A cam (243) is rotatably installed on the upper end surface of the convex plate (242) by a motor. A contact plate (251) fixed to the top side edge of the baffle (25) is arranged on one side of the cam (243).
7. A printing head accessory processing device according to claim 6, characterized in that, Multiple groups of symmetrically arranged hanging plates (3) are fixedly installed on the lower end surface of the baffle (25). A rotating cylinder (31) is rotatably installed between each group of hanging plates (3) by a motor. A plurality of circumferentially arranged storage grooves (34) are formed on the outer wall of the rotating cylinder (31). A brush plate (35) is slidably installed in the storage groove (34). Rotating rings (36) are slidably installed on both sides of the rotating cylinder (31) by electric sliders. A plurality of circumferentially arranged pushing plates (37) are hinged on the outer side of the rotating rings (36). One end of the pushing plate (37) away from the rotating ring (36) is respectively hinged to the corresponding brush plate (35).
8. A printing head accessory processing device according to claim 7, characterized in that, A plurality of circumferentially arranged blowing grooves (32) are formed outside the rotating cylinder (31). A blower fixed to the inner cavity of the rotating cylinder (31) is arranged between the plurality of blowing grooves (32). Adhesive plates (33) detachably connected to the rotating cylinder (31) are arranged on both sides of the blowing groove (32).
9. A processing device for a print head accessory according to claim 1, characterized in that, Two groups of symmetrically arranged top frames (4) are fixedly installed on one side of the upper end surface of the side plate (1). Two vertically arranged belt pulleys (41) are rotatably installed on each group of top frames (4) by motors. A belt (42) is installed between the two belt pulleys (41). A plurality of support plates (43) are equidistantly installed outside the belt (42). Copper foils are placed on two corresponding support plates (43). A cylinder (131) is fixedly installed inside the two-way push plate (13). An abutting plate (132) is fixedly installed at one end of the cylinder (131).
10. A processing method of a print head fitting processing device, applied to a print head fitting processing device described in claim 7, characterized in that, Including the following steps: S1: Cleaning of the ceramic substrate: Concentrated sulfuric acid in the blanking tank (231) and deionized water in the water injection tank (232) are proportionally put into the mixing tank (23), and then the cleaning solution is stirred. The ceramic substrate transported below it is repeatedly rinsed by the rinsing tank (26). The two-way push plate (13) is driven by a motor to flip, so that the two sides of the ceramic substrate can be rinsed once. When the motor is started and the rotating cylinder (31) rotates, the brush plate (35) can brush and clean the ceramic substrate during the impact. S2: Drying of the ceramic substrate: The brush plate (35) is retracted into the storage groove (34). Then the blower is started to blow-dry the surface of the ceramic substrate through the blowing groove (32). And with the rotation of the rotating cylinder (31), the adhesive plate (33) can also adhere and clean the surface of the ceramic substrate after drying, and the dust impurities on its surface can be effectively removed by adhering the dust on its surface. S3: Feeding and bonding of the copper foil: The cleaned ceramic substrate is conveyed below the placement unit. Subsequently, the motor is turned on to drive the pulley (41) to rotate. When the pulley (41) rotates, the copper foils on the two pallets (43) are lowered above the ceramic substrate. Subsequently, the ceramic substrate and the copper foil are bonded through an external processing furnace.
Citation Information
Patent Citations
Plate brushing machine for cleaning copper-clad ceramic substrate
CN222175136U