Automatic waste collecting device for tin plating device
By designing the automatic waste collection device for tin coating devices, and using the automatic treatment technology of the waste collection module, the problem of waste floating in the tin furnace is solved, the automatic collection and treatment of waste is realized, and the quality and work efficiency of welding tape processing are improved.
Patent Information
- Application Number
- CN202510431349.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-08
- Publication Date
- 2025-05-06
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
After the existing tin coating device works for a period of time, a lot of waste will float on the liquid in the tin furnace, which needs to be manually removed regularly, which increases the amount of labor, and not being taken in time will affect the quality of the welding tape.
An automatic waste collection device for tin coating devices is designed, including a tin furnace, a waste pick-up module and a waste collection module. The waste collection module automatically picks up, compacts and processes the waste on the liquid surface of the tin furnace through components such as peeling sheets, compression cylinders and push sheets to ensure that the waste is cleaned in time.
It realizes automatic collection and treatment of waste materials, reduces labor, ensures the quality of welding tape processing, and improves work efficiency.
Smart Images

Figure CN119932458A_ABST
Abstract
Description
Technical Field
[0001] The invention belongs to the technical field of tin coating devices, and in particular relates to an automatic waste collection device for tin coating devices. Background Art
[0002] The welding strip is also called tinned copper strip or tin-coated copper strip. It is divided into a collector strip and an interconnection strip. It is used to connect the cells of photovoltaic modules and plays an important role in conducting electricity. The welding strip is an important raw material in the welding process of photovoltaic modules. The quality of the welding strip will directly affect the current collection efficiency of the photovoltaic module and have a great impact on the power of the photovoltaic module. When processing the welding strip, a layer of film needs to be coated on the surface of the copper wire with a tin coating device to enhance the performance of the welding strip.
[0003] After the existing tinning device has been working for a period of time, a lot of waste will float on the liquid in the tin furnace. In order to prevent the waste from being adsorbed on the solder strip after tinning, it is necessary to manually remove the waste in the tin furnace regularly, which not only increases the workload, but also affects the quality of the solder strip if the waste is not removed in time. Summary of the invention
[0004] The present invention provides an automatic waste collection device for a tin coating device, which aims to solve the problem that after the existing tin coating device has been working for a period of time, a lot of waste will float on the liquid in the tin furnace. In order to prevent the waste from being adsorbed on the soldering strip after tin coating, it is necessary to manually remove the waste in the tin furnace regularly, which not only increases the workload, but also affects the quality of the soldering strip if the waste is not removed in time.
[0005] The embodiment of the present invention provides an automatic waste collection device for a tin coating device, comprising a tin furnace, a waste scooping module and a waste collection module are arranged on the side of the tin furnace, and the lower end of the waste scooping module is connected to the upper end of the waste collection module; The waste collection module includes a shell, a stripping sheet is installed in the shell, a pressing cylinder is installed above the stripping sheet in the shell, the pressing cylinder is rotatably and movably installed in the shell, a pushing sheet is movably installed above the stripping sheet in the shell, a traction unit for pulling the pushing sheet to move is installed on the shell, an ash collecting bucket is installed on one side of the outer shell, a connection port connected to the ash collecting bucket is reserved on one side of the shell, a blocking piece for isolating the connection port is movably installed at the mouth of the connection port in the shell, a rotating rod 1 and a rotating rod 2 are respectively installed at both ends of the pressing cylinder, both ends of the pushing sheet are fixedly connected to the support, the rotating rod 1 is screwed to one of the supports, and the rotating The movable rod 2 is screwed to another support, and a traction strip 1 is installed on one side of the outer shell. The rotating movable rod 1 is screwed to the transmission disk, and the transmission disk and the traction strip 1 are engaged with each other through the teeth. A connecting platform is movably installed in the push piece, and a scraper is installed on one side of the connecting platform. The scraper passes through the push piece to remove the waste on the stripping piece. One end of the connecting platform passes through the push piece and is fixedly connected to the transmission piece 2. The rotating rod 2 is fixedly connected to the eccentric wheel, and the eccentric wheel is tightly attached to the transmission piece 2; a spiral beryllium copper wire 3 is installed in the push piece, and the spiral beryllium copper wire 3 is located on the side of the connecting platform far from the scraper. The two ends of the spiral beryllium copper wire 3 are respectively connected to the connecting platform and the inner surface of the push piece.
[0006] Furthermore, the waste collection module includes an electric slide rail, a slider on the electric slide rail is fixedly connected to a linear push rod 1, an extended end of the linear push rod 1 is fixedly connected to an assembly plate, a side of the assembly plate close to the tin furnace is fixedly connected to a rectangular frame, both lateral ends of the rectangular frame are fixedly connected to brackets, a lead screw is screwed between a pair of brackets, an outer side of a bracket is fixedly connected to a motor 2, a rotating part of the motor 2 is connected to one end of the lead screw, the threads at both ends of the lead screw are in opposite directions, a pair of slides are threadedly connected to the lead screw, the slides are movably connected to the rectangular frame, the bottom of the slide passes through the rectangular frame and is hinged to the filter frame, one side of the slide is fixedly connected to a motor 3, the rotating part of the motor 3 passes through the slide and is fixedly connected to the take-up wheel, a traction rope is wound around the take-up wheel, and the movable end of the traction rope is connected to the filter frame.
[0007] Furthermore, the traction unit includes a pair of rotating columns and a motor for pulling the rotating columns to rotate. Assembly openings are reserved on the two wall surfaces opposite to the outer shell. The pair of rotating columns and the pair of assembly openings are paired with each other. The rotating columns are screwed into the corresponding assembly openings. The two ends of the pushing piece are fixedly connected to the connecting pieces. The pair of connecting pieces and the pair of rotating columns are paired with each other. The connecting pieces are threadedly connected to the corresponding rotating columns.
[0008] Furthermore, a storage cavity is reserved on the inner surface of the shell, and the storage cavity is located at one end of a pair of assembly ports. A connecting port is reserved on the lower wall of the storage cavity, and the upper end of the connecting port is open. A barrier plate is movably installed at the mouth of the connecting port. The upper end of the ash collecting bucket is fixedly connected to a linear push rod 2, and the movable end of the linear push rod 2 is fixedly connected to the barrier plate.
[0009] Furthermore, a pair of rubber sheets are arranged in the compression cylinder, the pair of rubber sheets are arranged opposite to each other, the rubber sheets are contracted and arranged on the compression cylinder, a through-hole is reserved in the compression cylinder, a pair of movable sheets are arranged opposite to the compression cylinder in the through-hole, the pair of rubber sheets and the pair of movable sheets are arranged in pairs, the rubber sheets are connected to the movable sheets, a transmission column is movably arranged between the pair of movable sheets in the compression cylinder, a transmission port is reserved on the transmission column, an inclined wall 1 is reserved on the surface of the transmission port, a transmission sheet 1 is fixedly connected to the side of the movable sheet close to the transmission column, an inclined wall 2 is reserved on the transmission sheet 1, when the transmission column moves toward the compression cylinder When the inside of the cylinder moves, the inclined wall 1 and the inclined wall 2 are in close contact and move to pull the movable sheet to move and allow the rubber sheet to move on the outside of the compression cylinder. A spiral beryllium copper wire 1 is also installed in the through-hole of the compression cylinder. The spiral beryllium copper wire 1 is on the side of the movable sheet farther from the transmission column. The two ends of the spiral beryllium copper wire 1 are respectively connected to the movable sheet and the inner surface of the compression cylinder. A rotating module that pulls the compression cylinder to rotate is installed in the outer shell. When the rubber sheet moves the outside of the compression cylinder, the rotating module pulls the compression cylinder to rotate, and the rubber sheet removes the waste on the pushing sheet and pushes the waste into the connection port.
[0010] Furthermore, the rotating rod 1 includes a connecting end, a rotating end and a variable end, the connecting end is fixedly connected to the compression cylinder, the rotating end and the connecting end are embedded and moveably cooperated, the rotating end and the connecting end are rotated, the variable end is located on the side of the transmission disk farther from the connecting end, the variable end and the rotating end rotate and cooperate, the transmission column and the rotating end are fixedly connected, a groove 2 is reserved on the side wall of the traction bar 1, an assembly table is movably arranged in the groove 2 of the traction bar 1, the transmission disk is rotated on the assembly table, the rotating end passes through the transmission disk, the rotating end is fixedly connected to the rotating disk, a plurality of teeth are reserved on the outer surface of the rotating disk, a circular bite opening is reserved on the side of the transmission disk close to the compression cylinder, and a peripheral wall of the bite opening is pre- A plurality of teeth are reserved, and the rotating disk and the bite mouth are engaged with each other through the teeth. The outer shell is fixedly connected to the assembly strip in the assembly mouth, and a groove one for cooperating with the movement of the variable platform is reserved on the assembly strip. The side of the variable end farther from the rotating end is fixedly connected to the variable platform, and the variable platform is movably arranged on the groove one. An inclined wall three is reserved on the side of the variable platform farther from the variable end, and an inclined wall four is reserved at one end of the groove one. When the pressing cylinder slowly moves to the storage chamber, the inclined walls three and four on the variable platform press each other and move. At this time, the movement of the variable platform pulls the rotating end toward one side of the pressing cylinder through the changing end, and the rotating disk is separated from the bite mouth, and the rotating module pulls the rotating disk to rotate.
[0011] Furthermore, an embedding interface is reserved in the connecting end, the rotating end is embedded in the embedding interface and movably connected, a constraint platform is fixedly connected to the outer surface of the rotating end, a constraint opening is reserved on the wall surface of the embedding interface at the connecting end, the constraint platform and the constraint opening are movably connected, one end of the transmission column is fixedly connected to the connecting column, the connecting column passes through the embedding interface and is fixedly connected to the rotating end, two spiral beryllium copper wires are installed in the embedding interface at the connecting end, the two spiral beryllium copper wires are hooped on the outer circumferential surface of the connecting column, and the two ends of the two spiral beryllium copper wires are respectively connected to the rotating end and the side wall of the embedding interface.
[0012] Furthermore, the rotating module includes a traction bar 2 and a linear push rod 3 that moves the traction bar 2. The traction bar 2 is movably arranged in the storage cavity along the vertical direction. When the rotating disk on the rotating end is separated from the bite mouth, the rotating disk and the traction bar 2 are engaged.
[0013] Furthermore, the linear push rod three is fixedly connected in the storage cavity, the linear push rod three is arranged vertically downward, and the movable end of the linear push rod three is fixedly connected to the traction bar two.
[0014] Furthermore, a pair of linear push rods four are fixedly connected inside the shell and below the stripping sheet, and the movable ends of the linear push rods four are fixedly connected to a supporting plate, on which a plurality of conducting ports are reserved, and the upper end of the supporting plate is fixedly connected to a plurality of clearing needles, which are directly opposite to the stripping ports on the stripping sheet.
[0015] The beneficial effects of the present invention are: 1. The present invention can scoop up the waste suspended on the liquid surface of the tin furnace through the waste collection module, which not only reduces the labor workload, but also can timely collect the waste, thereby ensuring the quality of solder strip processing. The waste collection module places the scooped waste in the waste collection module, and the waste collection module removes water and compacts the waste, and collects the waste after dehydration.
[0016] 2. The waste scooping module of the present invention puts the waste into the shell. After being peeled off by the peeling sheet, the waste is piled on the peeling sheet. The pressing cylinder moves above the peeling sheet to press the waste and squeeze out the excess liquid in the waste so as to process the waste. After being pressed, the waste adheres to the peeling sheet. Then the pushing sheet moves to shovel the waste off. At this time, the waste will gather before the direction where the pushing sheet moves. When the pushing sheet moves, it will drive the waste to move toward the direction of the connection port. The barrier sheet moves to open the connection port, and the pushing sheet will drive The waste is made to fall into the connection port, and then fall into the ash collecting bucket through the connection port, and the waste on the stripping sheet is removed by the pushing piece to prevent the waste from piling up in the stripping port, thereby ensuring the stripping function of the stripping sheet. After the waste on the stripping sheet is removed, the pushing piece and the pressing cylinder return to their original positions, the linear push rod is extended, and the carrying plate moves up to allow the dredging needle on the carrying plate to extend into the stripping port of the stripping sheet, thereby pushing the waste out of the stripping port, thereby clearing the stripping port on the stripping sheet, thereby ensuring the stripping function of the stripping sheet on the waste.
[0017] Other features and advantages of the present invention will be described in the following description, and partly become apparent from the description, or understood by practicing the present invention. The purpose and other advantages of the present invention can be realized and obtained by the structures particularly pointed out in the description and the drawings. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] The accompanying drawings are used to provide a further understanding of the present invention and constitute a part of the specification. Together with the embodiments of the present invention, they are used to explain the present invention and do not constitute a limitation of the present invention. In the accompanying drawings: Figure 1 It is a schematic diagram of the main structure of an embodiment of the present invention; Figure 2 It is a schematic diagram of the structure of the filter frame of an embodiment of the present invention; Figure 3 It is a schematic diagram of a partial top view of the structure of a waste scooping module according to an embodiment of the present invention; Figure 4 A schematic diagram of the three-dimensional structure of a waste collection module according to an embodiment of the present invention; Figure 5 A schematic cross-sectional structure diagram of a waste collection module according to an embodiment of the present invention; Figure 6 It is a schematic diagram of a partial three-dimensional cross-sectional structure of a waste collection module according to an embodiment of the present invention; Figure 7 For the embodiment of the present invention Figure 6 A schematic diagram of the structure at M of FIG. Figure 8 It is a schematic diagram of the cross-sectional structure of a compression cylinder according to an embodiment of the present invention; Fig. 9 It is a schematic diagram of the assembly structure of the assembly strip and the inclined wall four according to an embodiment of the present invention; Fig.10 This is a schematic diagram of the structure in which the rotating disk and the transmission disk are separated according to an embodiment of the present invention; Fig.11 For the embodiment of the present invention Figure 8 A schematic diagram of the enlarged structure at N; Fig.12 It is a schematic diagram of the engagement structure of the rotating disk and the traction strip according to an embodiment of the present invention; Fig.13 A schematic diagram of a blade assembly structure according to an embodiment of the present invention; Reference numerals: 1, tin furnace; 2, waste scooping module; 3, waste collection module; 21, electric slide rail; 22, linear push rod 1; 23, assembly plate; 24, rectangular frame; 25, bracket; 26, lead screw; 27, motor 2; 28, slide plate; 29, filter frame; 210, motor 3; 211, take-up wheel; 212, traction rope; 31, housing; 311, ash collection bucket; 3111, linear push rod 2; 312, connection port; 313 , barrier piece; 314, assembly opening; 3141, groove one; 3142, inclined wall four; 315, traction strip one; 3151, groove two; 3152, assembly table; 316, storage cavity; 317, assembly strip; 32, peeling piece; 33, pressing cylinder; 331, rotating rod one; 3311, connecting end; 33111, embedding interface; 33112, restraining opening; 3312, rotating end; 33121, rotating disk; 33122, Constraint platform; 3313, variable end; 33131, variable platform; 33132, inclined wall three; 332, rotating rod two; 3321, eccentric wheel; 333, through-hole; 334, movable sheet; 3341, transmission sheet one; 3342, inclined wall two; 335, rubber sheet; 336, spiral beryllium copper wire one; 34, push sheet; 341, connecting sheet; 342, support; 35, traction unit; 351, rotating column; 352, motor 1; 36, transmission plate; 361, bite mouth; 37, transmission column; 371, transmission mouth; 372, inclined wall 1; 373, connecting column; 374, spiral beryllium copper wire 2; 38, rotating module; 381, traction bar 2; 382, linear push rod 3; 39, connecting platform; 391, scraper; 392, transmission plate 2; 310, spiral beryllium copper wire 3; 3011, linear push rod 4; 3012, load-bearing plate; 3013, clearing needle. DETAILED DESCRIPTION
[0019] In order to make the purpose, technical solution and advantages of the technical solution of the present invention clearer, the technical solution of the embodiment of the present invention will be clearly and completely described in conjunction with the drawings of specific embodiments of the present invention. The same figure marks in the drawings represent the same parts. It should be noted that the described embodiments are part of the embodiments of the present invention, not all of the embodiments. Based on the described embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0020] See also Figure 1 and Figure 2The embodiment of the present invention proposes an automatic waste collection device for a tin coating device, comprising a tin furnace 1, a waste scooping module 2 and a waste collection module 3 are arranged on the side of the tin furnace 1, the lower end of the waste scooping module 2 is connected to the upper end of the waste collection module 3, and the waste suspended on the liquid surface of the tin furnace 1 can be scooped up through the waste collection module 3, which not only reduces the labor workload, but also can scoop up the waste in time, thereby ensuring the quality of solder strip processing, and the waste collection module 3 places the scooped waste in the waste collection module 3, and the waste collection module 3 dewaters and compacts the waste, and collects the waste after dewatering.
[0021] See also Figure 1-Figure 3The waste collection module 3 includes an electric slide rail 21, a slider on the electric slide rail 21 is fixedly connected to a linear push rod 22, an extended end of the linear push rod 22 is fixedly connected to a mounting plate 23, a side of the mounting plate 23 close to the tin furnace 1 is fixedly connected to a rectangular frame 24, both lateral ends of the rectangular frame 24 are fixedly connected to brackets 25, a pair of brackets 25 are screwed with a lead screw 26, an outer side of a bracket 25 is fixedly connected to a motor 27, a rotating part of the motor 27 is connected to one end of the lead screw 26, the threads at both ends of the lead screw 26 are in opposite directions, a pair of slide plates 28 are screwed to the lead screw 26, and the slide plates 28 and the rectangular frame 24 are movable The bottom of the slide plate 28 passes through the rectangular frame 24 and is hinged to the filter frame 29. One side of the slide plate 28 is fixedly connected to the motor 3 210. The rotating part of the motor 3 210 passes through the slide plate 28 and is fixedly connected to the wire take-up wheel 211. The wire take-up wheel 211 is wound with a traction rope 212. The movable end of the traction rope 212 is connected to the filter frame 29. When scooping waste, the linear push rod 1 22 is extended to lift the filter frame 29 so that the filter frame 29 can be extended into the tin furnace 1. The slider on the electric slide rail 21 pulls the linear push rod 1 22 to move toward the inside of the tin furnace 1. The linear push rod 1 22 is shortened, so that the bottom of the slide plate 28 can be extended to the tin furnace 1. In the liquid of furnace 1, motor three 210 is activated, and motor three 210 pulls the take-up wheel 211 to rotate, and reels up the traction rope 212, and then pulls up the filter frame 29, so that one side of the filter frame 29 is in close contact with the slide plate 28, and the upper end of the filter frame 29 extends out of the liquid surface to wrap the waste inside, and motor two 27 is activated, and motor two 27 pulls the lead screw 26 to rotate, and then pulls a pair of slide plates 28 to approach each other, and then allows a pair of filter frames 29 to approach each other. When the mouths of a pair of filter frames 29 are in close contact with each other, at this moment, the pair of filter frames 29 and the pair of slide plates 28 form a salvage space, and then the waste is collected in the space. The linear push rod 1 22 extends to lift the filter frame 29 containing the waste so that the filter frame 29 can be moved out of the tin furnace 1. The slider on the electric slide rail 21 pulls the filter frame 29 back to its original position. The linear push rod 1 22 shortens to move the filter frame 29 to an initial height. The motor 2 27 rotates in the reverse direction, and then pulls the lead screw 26 to rotate in the reverse direction, so that a pair of slide plates 28 move away from each other, and then the pair of filter frames 29 separate. The motor 3 210 pulls the take-up wheel 211 to rotate in the reverse direction, and then puts down the filter frame 29. The waste in the filter frame 29 falls into the middle of the waste collection module 3. At this moment, the salvage of the waste in the tin furnace 1 is completed.
[0022] See also Figure 4 and Figure 5The waste collection module 3 includes a shell 31, the top of the shell 31 is reserved with an opening, a stripping sheet 32 is installed in the shell 31, and a plurality of stripping openings are reserved on the stripping sheet 32 for stripping excess liquid in the dust, a pressing cylinder 33 is installed above the stripping sheet 32 in the shell 31, and the pressing cylinder 33 rotates on the stripping sheet 32, a pushing sheet 34 is movably installed above the stripping sheet 32 in the shell 31, and a traction unit 35 for pulling the pushing sheet 34 to move is installed on the shell 31. A dust collecting bucket 311 is installed on one side of the outer shell 31, and a connecting port 312 is reserved on one side of the outer shell 31. The connecting port 312 is connected to the dust collecting bucket 311, and a blocking piece 313 is movably installed at the mouth of the connecting port 312 of the outer shell 31. The blocking piece 313 is used to block the connecting port 312. A pair of linear push rods 3011 are fixedly connected inside the outer shell 31 and below the stripping piece 32. The movable ends of the linear push rods 3011 are fixedly connected to the supporting plate 3012. A plurality of conducting ports are reserved on the supporting plate 3012. A plurality of clearing needles 3013 are fixedly connected to the upper end of the supporting plate 3012. The clearing needles 3013 are directly opposite to the stripping port on the stripping piece 32.
[0023] The waste scooping module 2 puts the waste into the shell 31. After being peeled off by the peeling sheet 32, the waste is piled on the peeling sheet 32. The pressing cylinder 33 moves above the peeling sheet 32 to press the waste and squeeze out the excess liquid in the waste to facilitate the treatment of the waste. After being pressed, the waste adheres to the peeling sheet 32. Then the pushing sheet 34 moves to shovel the waste off. At this moment, the waste will gather before the direction where the pushing sheet 34 moves. When the pushing sheet 34 moves, it will drive the waste to move towards the connection port 312. The blocking sheet 313 moves to open the connection port 312. The pushing sheet 34 will drive the waste to fall into the connection port 312, and then fall into the ash collecting bin 311 through the connection port 312. The waste on the stripping sheet 32 is removed by the pushing sheet 34 to prevent the waste from piling up in the stripping port, thereby ensuring the stripping function of the stripping sheet 32. After the waste on the stripping sheet 32 is removed, the pushing sheet 34 and the pressing cylinder 33 return to their original positions, the linear push rod 3011 is extended, and the supporting plate 3012 moves up, allowing the clearing needle 3013 on the supporting plate 3012 to extend into the stripping port of the stripping sheet 32, and then push the waste out of the stripping port, thereby clearing the stripping port on the stripping sheet 32, thereby ensuring the stripping function of the stripping sheet 32 on the liquid in the waste.
[0024] See also Figure 4-Figure 6The traction unit 35 includes a pair of rotating columns 351 and a motor 1 352 for pulling the rotating columns 351 to rotate. The two walls facing the housing 31 are reserved with assembly openings 314. The pair of rotating columns 351 and the pair of assembly openings 314 are matched with each other. The rotating columns 351 are screwed into the corresponding assembly openings 314. The outer surface of the rotating columns 351 is reserved with threaded openings. The pair of motors 1 352 and the pair of rotating columns 351 are matched with each other. The motor 1 352 is fixedly connected to the outer surface of the housing 31. The rotating part of the motor 1 352 is fixedly connected to one end of the corresponding rotating column 351. The two ends of the pusher 34 are fixedly connected to the connecting pieces 341. The pair of connecting pieces 341 and the pair of rotating columns 351 are matched with each other. The connecting pieces 341 and the corresponding rotating columns 351 are threaded. The pair of motors 352 work together to rotate the rotating column 351 , and the pair of engaging pieces 341 move back and forth on the rotating column 351 , thereby pulling the pushing piece 34 to move back and forth.
[0025] See also Figure 6 and Figure 7 One end of the pressing cylinder 33 is fixedly connected to the rotating rod 1 331, and the other end of the pressing cylinder 33 is fixedly connected to the rotating rod 2 332. Both ends of the pushing piece 34 are fixedly connected to the support 342. The rotating rod 1 331 is screwed with one of the supports 342, and the rotating rod 2 332 is screwed with the other support 342. The pressing cylinder 33 is located before the position of the pushing piece 34 changes. A traction bar 1 315 is installed in the assembly opening 314 on one side of the rotating rod 1 331 of the outer shell 31, and the rotating rod 1 331 is screwed onto the transmission disk 36. A plurality of teeth are reserved on the outer peripheral surface of the transmission disk 36 and the upper wall surface of the traction bar 1 315, and the transmission disk 36 and the traction bar 1 315 are engaged with each other through the teeth. When the push piece 34 changes, the traction and pressing cylinder 33 changes together. When the pressing cylinder 33 changes, the transmission disk 36 changes accordingly. Under the cooperation of the traction bar 315, the transmission disk 36 moves, and the traction and pressing cylinder 33 rotates. When the pressing cylinder 33 rotates, it can press the waste and discharge the liquid in the waste. The pressing cylinder 33 is located before the position where the push piece 34 changes. When it changes, the pressing cylinder 33 presses the waste in the front, and the push piece 34 removes the waste in the back.
[0026] See also Figure 5A storage cavity 316 is reserved on the inner surface of the housing 31. The storage cavity 316 is located at one end of a pair of assembly ports 314. The storage cavity 316 and the assembly port 314 are connected. The connection port 312 is reserved on the lower wall of the storage cavity 316. The upper end of the connection port 312 is open. The barrier sheet 313 is movably installed at the mouth of the connection port 312. The upper end of the ash collecting bucket 311 is fixedly connected to the linear push rod 2 3111. The movable end of the linear push rod 2 3111 is fixedly connected to the barrier sheet 313. When the liquid in the waste is stripped off, the linear push rod 2 3111 pulls the barrier sheet 313 to move, the storage cavity 316 is opened, and then the push sheet 34 drives the material to move toward one side of the connection port 312, transferring the waste to the connection port 312, and finally falling into the ash collecting bucket 311.
[0027] See also Figure 5 and Figure 8 A through hole 333 is reserved in the compression cylinder 33, and a pair of movable sheets 334 are arranged opposite to the through hole 333 in the compression cylinder 33. The opposite sides of the pair of movable sheets 334 are fixedly connected to rubber sheets 335, and the rubber sheets 335 are movably connected to the wall surface of the compression cylinder 33, that is, the rubber sheets 335 are contracted and arranged on the compression cylinder 33; a transmission column 37 is movably arranged between the pair of movable sheets 334 in the compression cylinder 33, and a transmission hole 371 is reserved on the transmission column 37, and an inclined wall 372 is reserved on the surface of the transmission hole 371, and the side of the movable sheet 334 close to the transmission column 37 is fixedly connected to a transmission sheet 3341, and the transmission The first sheet 3341 is provided with a second inclined wall 3342, and the first inclined wall 372 is in close contact with the second inclined wall 3342; when the transmission column 37 moves toward the inside of the pressing cylinder 33, the first inclined wall 372 presses the second inclined wall 3342. At this moment, the first transmission sheet 3341 pulls the movable sheet 334 to move toward the side away from the transmission column 37, that is, it pulls the rubber sheet 335 to move the outside of the pressing cylinder 33. A rotating module 38 for pulling the pressing cylinder 33 to rotate is installed in the outer shell 31. When the rubber sheet 335 moves the outside of the pressing cylinder 33, the rotating module 38 pulls the pressing cylinder 33 to rotate, and the rubber sheet 335 removes the waste on the pushing sheet 34. After the liquid in the waste is stripped off, the barrier sheet 313 moves away from the connection port 312, and the pressing cylinder 33 moves to the storage chamber 316. The pressing cylinder 33 is at the upper end of the storage chamber 316. At this moment, the rubber sheet 335 extends to the outside of the pressing cylinder 33, and the storage chamber 316 avoids the rubber sheet 335. Then the rotating module 38 pulls the pressing cylinder 33 to rotate, and the rubber sheet 335 clears the waste on the pushing sheet 34, and removes the waste adhering to the pushing sheet 34.
[0028] A spiral beryllium copper wire 336 is also installed in the through hole 333 of the compression cylinder 33. The spiral beryllium copper wire 336 is located on the side of the movable sheet 334 that is farther from the transmission column 37. The two ends of the spiral beryllium copper wire 336 are respectively connected to the inner surface of the movable sheet 334 on the compression cylinder 33. When the waste is removed, the transmission column 37 returns to its original position. At this time, under the cooperation of the spiral beryllium copper wire 336, a pair of movable sheets 334 are pulled to face each other, so that the rubber sheet 335 is stored in the compression cylinder 33.
[0029] See also Figure 6 , Figure 7 , Fig. 9 and Fig.10 The rotating rod 331 includes a connecting end 3311, a rotating end 3312 and a variable end 3313. The connecting end 3311 is fixedly connected to the compression cylinder 33. The rotating end 3312 and the connecting end 3311 are embedded and move in cooperation. The rotating end 3312 and the connecting end 3311 are rotated. The variable end 3313 is located on the side of the transmission disk 36 farther from the connecting end 3311. The variable end 3313 and the rotating end 3312 rotate in cooperation, and the transmission column 37 and the rotating end 3312 are fixedly connected. The side of the variable end 3313 that is farther from the rotating end 3312 is fixedly connected to the variable platform 33131, and the housing 31 is fixedly connected to the assembly bar 317 in the assembly port 314. The assembly bar 317 is reserved with a groove 1 3141 that cooperates with the variable platform 33131 in movement. The side of the variable platform 33131 that is farther from the variable end 3313 is reserved with an inclined wall 3 33132, and one end of the groove 1 3141 is reserved with an inclined wall 4 3142. After the compression cylinder 33 slowly moves to the storage chamber 316, the inclined wall 3 33132 and the inclined wall 4 3142 on the variable platform 33131 press each other and move, the variable platform 33131 moves, and the rotating end 3312 moves toward one side of the compression cylinder 33 through the variable end 3313, and the rotating end 3312 pulls the transmission column 37 to move, and one side of the rubber sheet 335 moves to the outside of the compression cylinder 33.
[0030] A second groove 3151 is reserved on the side wall of the traction bar 1 315, and the second groove 3151 is arranged along the traction bar 1 315. The traction bar 1 315 is provided with an assembly table 3152 that can be movably installed in the second groove 3151. The transmission disk 36 is screwed on the assembly table 3152, and the rotating end 3312 penetrates the transmission disk 36. The rotating end 3312 is fixedly connected to the rotating disk 33121, and a plurality of teeth are reserved on the outer surface of the rotating disk 33121. A circular bite opening 361 is reserved on one side of the transmission disk 36 close to the pressing cylinder 33, and a plurality of teeth are reserved on the peripheral wall of the bite opening 361. The rotating disk 33121 and the bite opening 361 bite each other through the teeth.
[0031] When the push piece 34 and the pressing cylinder 33 change, due to the rotating disk 33121 and the bite opening 361, the transmission disk 36 pulls the rotating end 3312 to rotate, and then pulls the pressing cylinder 33 to rotate; when the changing end 3313 pulls the rotating end 3312 to change, the rotating disk 33121 and the bite opening 361 are separated, and the transmission disk 36 and the rotating end 3312 rotate in cooperation, and cannot rotate together; then the rotating module 38 pulls the rotating disk 33121 to rotate, which can make the pressing cylinder 33 rotate, and then achieve the purpose of removing the waste on the push piece 34.
[0032] See also Figure 8 , Fig. 9 and Fig.11 , an embedding interface 33111 is reserved in the connecting end 3311, the rotating end 3312 is embedded and movably connected with the embedding interface 33111, a constraint platform 33122 is fixedly connected to the outer surface of the rotating end 3312, a constraint opening 33112 is reserved on the wall surface of the embedding interface 33111 of the connecting end 3311, and the constraint platform 33122 is movably connected to the constraint opening 33112. One end of the transmission column 37 is fixedly connected to the connecting column 373, the connecting column 373 penetrates the embedding interface 33111 and is fixedly connected with the rotating end 3312, a spiral beryllium copper wire 374 is installed in the embedding interface 33111 of the connecting end 3311, the spiral beryllium copper wire 374 is hooped on the outer circumference of the connecting column 373, and the two ends of the spiral beryllium copper wire 374 are respectively connected to the rotating end 3312 and the side wall of the embedding interface 33111.
[0033] The rotating end 3312 and the embedding interface 33111 are embedded and movably connected, that is, the two constitute lateral movement, and the purpose of the two rotating together is achieved through the installation of the constraint platform 33122 and the constraint opening 33112; when the rotating end 3312 moves toward one side of the pressing cylinder 33, the transmission column 37 moves through the connecting column 373; after the waste material is removed, the pushing piece 34 moves in the reverse direction, at this time the inclined wall three 33132 is separated from the inclined wall four 3142, and under the cooperation of the spiral beryllium copper wire two 374, the rotating end 3312 returns to its original position, and the rotating disk 33121 re-engages with the bite opening 361.
[0034] See also Figure 5 , Fig. 9 , Fig.10 and Fig.12The rotating module 38 includes a traction bar 2 381 and a linear push rod 3 382 that moves the traction bar 2 381. The traction bar 2 381 is movably arranged in the storage chamber 316 along the vertical direction. The linear push rod 3 382 is fixedly connected to the storage chamber 316. The linear push rod 3 382 is vertically downwardly arranged. The movable end of the linear push rod 3 382 is fixedly connected to the traction bar 2 381. A plurality of teeth are reserved on one wall of the traction bar 2 381. When the rotating end 3312 changes, the rotating disk 33121 separates from the bite 361, and the rotating disk 33121 slowly bites with the traction bar 2 381. The linear push rod 3 382 moves, and the traction bar 2 381 moves upward, which can pull the rotating disk 33121 to rotate, thereby achieving the purpose of rotating the compression cylinder 33.
[0035] See also Figure 5 and Fig.13 A cavity is reserved inside the push piece 34, and a connecting platform 39 is movably installed in the push piece 34. The side of the connecting platform 39 close to the pressing cylinder 33 is fixedly connected to the scraper 391, and one side of the scraper 391 is located on the outside of the push piece 34. One end of the connecting platform 39 passes through the push piece 34 and is fixedly connected to the transmission piece 2 392. The rotating rod 2 332 is fixedly connected to the eccentric wheel 3321, and the eccentric wheel 3321 is tightly attached to the transmission piece 2 392; a spiral beryllium copper wire 310 is installed in the push piece 34, and the spiral beryllium copper wire 310 is located on the side of the connecting platform 39 far from the scraper 391. The two ends of the spiral beryllium copper wire 310 are respectively connected to the connecting platform 39 and the inner surface of the push piece 34. When the push piece 34 moves together with the pressing cylinder 33, the pressing cylinder 33 rotates to pull the rotating rod 2 332 to rotate, and the rotating rod 2 332 rotates to pull the eccentric wheel 3321 to rotate. Since the eccentric wheel 3321 and the transmission plate 2 392 on the connecting platform 39 are in close contact, when the eccentric wheel 3321 rotates, the connecting platform 39 is driven to move. Under the cooperation of the spiral beryllium copper wire 310, the connecting platform 39 moves back and forth, and the scraper 391 moves back and forth. The scraper 391 removes the waste on the stripping sheet 32 in front of the push piece 34. After being pressed by the pressing cylinder 33, the waste sticks to the stripping sheet 32, and is removed by the scraper 391, so that the waste moves loose on the stripping sheet 32, so that the push piece 34 can move the waste later.
[0036] The waste scooping module 2 puts the waste into the housing 31, and the stripping sheet 32 strips the liquid in the waste. After the stripping is completed, the linear push rod 2 3111 pulls the barrier sheet 313 to change, and the mouth of the connection port 312 is opened. The motor 1 352 pulls the rotating column 351 to rotate, and the push sheet 34 and the pressing cylinder 33 move together. Under the cooperation of the transmission disk 36 and the traction bar 1 315, the transmission disk 36 pulls the pressing cylinder 33 to rotate, and the pressing cylinder 33 rotates to perform the waste on the stripping sheet 32. The waste material pressed by the pressing cylinder 33 will adhere to the stripping sheet 32; when the pressing cylinder 33 rotates, the eccentric wheel 3321 rotates accordingly, and the eccentric wheel 3321 drives the connecting platform 39 to move back and forth, so that the scraper 391 moves back and forth to remove the waste material stuck in front, so that the waste material can be loosened on the stripping sheet 32, so that the pushing sheet 34 can push the waste material into the connection port 312; when the pressing cylinder 33 moves to the receiving chamber 316, the waste material is pushed into the receiving chamber 316 by the inclined wall. Under the cooperation of the third 33132 and the fourth inclined wall 3142, the rotating end 3312 changes, the rotating disk 33121 separates from the bite opening 361, and the rotating disk 33121 bites with the second traction bar 381. When the rotating end 3312 changes, the traction transmission column 37 changes, the rubber sheet 335 extends to the outside of the pressing cylinder 33, the linear push rod 382 pulls the second traction bar 381 to move upward, the traction bar 381 pulls the pressing cylinder 33 to rotate, and the rubber sheet 335 clears the push sheet 34. Waste, ensure that the waste on the pushing piece 34 can all fall into the connecting port 312. After the waste on the stripping piece 32 is removed, the pushing piece 34 and the pressing cylinder 33 return to their original positions, the linear push rod 3011 extends, and the supporting plate 3012 moves up, so that the clearing needle 3013 on the supporting plate 3012 extends into the stripping port of the stripping piece 32, and then pushes the waste out of the stripping port, so as to clear the stripping port on the stripping piece 32, and ensure the stripping effect of the stripping piece 32 on the liquid in the waste.
[0037] The above shows and describes the basic principles and main features of the present invention and the advantages of the present invention. It should be understood by those skilled in the art that the present invention is not limited to the above embodiments. The above embodiments and descriptions are only for explaining the principles of the present invention. Without departing from the spirit and scope of the present invention, the present invention may have various changes and improvements, which fall within the scope of the present invention to be protected. The scope of protection of the present invention is defined by the attached claims and their equivalents.
Claims
1. An automatic waste collection device for a tin coating device, comprising a tin furnace, characterized in that: A waste scooping module and a waste collecting module are arranged on the side of the tin furnace, and the lower end of the waste scooping module is connected to the upper end of the waste collecting module; The waste collection module includes a shell, a stripping sheet is installed in the shell, a pressing cylinder is installed above the stripping sheet in the shell, the pressing cylinder is rotatably and movably installed in the shell, a pushing sheet is movably installed above the stripping sheet in the shell, a traction unit for pulling the pushing sheet to move is installed on the shell, an ash collecting bucket is installed on one side of the outer shell, a connection port connected to the ash collecting bucket is reserved on one side of the shell, a blocking piece for isolating the connection port is movably installed at the mouth of the connection port in the shell, a rotating rod 1 and a rotating rod 2 are respectively installed at both ends of the pressing cylinder, both ends of the pushing sheet are fixedly connected to the support, the rotating rod 1 is screwed to one of the supports, and the rotating The movable rod 2 is screwed to another support, and a traction strip 1 is installed on one side of the outer shell. The rotating movable rod 1 is screwed to the transmission disk, and the transmission disk and the traction strip 1 are engaged with each other through the teeth. A connecting platform is movably installed in the push piece, and a scraper is installed on one side of the connecting platform. The scraper passes through the push piece to remove the waste on the stripping piece. One end of the connecting platform passes through the push piece and is fixedly connected to the transmission piece 2. The rotating rod 2 is fixedly connected to the eccentric wheel, and the eccentric wheel is tightly attached to the transmission piece 2; a spiral beryllium copper wire 3 is installed in the push piece, and the spiral beryllium copper wire 3 is located on the side of the connecting platform far from the scraper. The two ends of the spiral beryllium copper wire 3 are respectively connected to the connecting platform and the inner surface of the push piece.
2. The automatic waste collection device for tin coating equipment according to claim 1, characterized in that: The waste collection module includes an electric slide rail, a slider on the electric slide rail is fixedly connected to a linear push rod 1, an extended end of the linear push rod 1 is fixedly connected to an assembly plate, a side of the assembly plate close to the tin furnace is fixedly connected to a rectangular frame, both lateral ends of the rectangular frame are fixedly connected to brackets, a lead screw is screwed between a pair of brackets, an outer side of a bracket is fixedly connected to a motor 2, a rotating part of the motor 2 is connected to one end of the lead screw, the threads at both ends of the lead screw are in opposite directions, a pair of slides are threaded on the lead screw, the slides are movably connected to the rectangular frame, the bottom of the slide passes through the rectangular frame and is hinged to the filter frame, one side of the slide is fixedly connected to a motor 3, the rotating part of the motor 3 passes through the slide and is fixedly connected to the take-up wheel, a traction rope is wound around the take-up wheel, and the movable end of the traction rope is connected to the filter frame.
3. The automatic waste collection device for tin coating equipment according to claim 1, characterized in that: The traction unit includes a pair of rotating columns and a motor for pulling the rotating columns to rotate. Assembly openings are reserved on the two wall surfaces facing each other of the shell. The pair of rotating columns and the pair of assembly openings are matched with each other. The rotating columns are screwed into the corresponding assembly openings. The two ends of the pushing piece are fixedly connected to the connecting pieces. The pair of connecting pieces and the pair of rotating columns are matched with each other. The connecting pieces are threadedly connected with the corresponding rotating columns.
4. The automatic waste collection device for tin coating equipment according to claim 3, characterized in that: A storage cavity is reserved on the inner surface of the shell, and the storage cavity is located at one end of a pair of assembly ports. A connecting port is reserved on the lower wall of the storage cavity, and the upper end of the connecting port is open. A blocking piece can be movably installed at the mouth of the connecting port. The upper end of the ash collecting bucket is fixedly connected to a linear push rod 2, and the movable end of the linear push rod 2 is fixedly connected to the blocking piece.
5. The automatic waste collection device for tin coating equipment according to claim 1, characterized in that: A pair of rubber sheets are arranged in the compression cylinder, the pair of rubber sheets are arranged opposite to each other, the rubber sheets are contracted and arranged on the compression cylinder, a through-hole is reserved in the compression cylinder, a pair of movable sheets are arranged opposite to the compression cylinder in the through-hole, the pair of rubber sheets and the pair of movable sheets are arranged in pairs, the rubber sheets are connected to the movable sheets, a transmission column is movably arranged between the pair of movable sheets in the compression cylinder, a transmission port is reserved on the transmission column, an inclined wall 1 is reserved on the surface of the transmission port, a transmission sheet 1 is fixedly connected to the side of the movable sheet close to the transmission column, an inclined wall 2 is reserved on the transmission sheet 1, when the transmission column moves toward the compression cylinder When the inside moves, the inclined wall 1 and the inclined wall 2 are in close contact and move to pull the movable piece to move and allow the rubber piece to move on the outside of the compression cylinder. A spiral beryllium copper wire 1 is also installed in the through-hole of the compression cylinder. The spiral beryllium copper wire 1 is on the side of the movable piece farther from the transmission column. The two ends of the spiral beryllium copper wire 1 are respectively connected to the movable piece and the inner surface of the compression cylinder. A rotating module that pulls the compression cylinder to rotate is installed in the outer shell. When the rubber piece moves the outside of the compression cylinder, the rotating module pulls the compression cylinder to rotate, and the rubber piece removes the waste on the pushing piece and pushes the waste into the connection port.
6. The automatic waste collection device for tin coating equipment according to claim 5, characterized in that: The rotating rod 1 includes a connecting end, a rotating end and a variable end. The connecting end is fixedly connected to the compression cylinder. The rotating end and the connecting end are embedded and move in cooperation. The rotating end and the connecting end are rotated. The variable end is located on the side of the transmission disk farther from the connecting end. The variable end and the rotating end rotate in cooperation. The transmission column and the rotating end are fixedly connected. A groove 2 is reserved on the side wall of the traction bar 1. An assembly table is movably arranged in the groove 2 of the traction bar 1. The transmission disk is rotated on the assembly table. The rotating end passes through the transmission disk. The rotating end is fixedly connected to the rotating disk. A plurality of teeth are reserved on the outer surface of the rotating disk. A circular bite is reserved on the side of the transmission disk close to the compression cylinder. There are multiple teeth, and the rotating disk and the bite mouth are engaged with each other through the teeth. The outer shell is fixedly connected to the assembly strip in the assembly mouth, and a groove one is reserved on the assembly strip for cooperating with the movement of the variable platform. The side of the variable end farther from the rotating end is fixedly connected to the variable platform, and the variable platform is movably arranged on the groove one. The side of the variable platform farther from the variable end is reserved with an inclined wall three, and an inclined wall four is reserved at one end of the groove one. When the pressing cylinder slowly moves to the storage chamber, the inclined walls three and four on the variable platform press each other and move. At this time, the movement of the variable platform pulls the rotating end to move toward one side of the pressing cylinder through the changing end, the rotating disk is separated from the bite mouth, and the rotating module pulls the rotating disk to rotate.
7. The automatic waste collection device for tin coating equipment according to claim 6, characterized in that: An embedding interface is reserved in the connecting end, the rotating end is embedded in the embedding interface and movably connected, a constraint platform is fixedly connected to the outer surface of the rotating end, a constraint opening is reserved on the wall surface of the embedding interface at the connecting end, the constraint platform and the constraint opening are movably connected, one end of the transmission column is fixedly connected to the connecting column, the connecting column passes through the embedding interface and is fixedly connected to the rotating end, two spiral beryllium copper wires are installed in the embedding interface at the connecting end, the two spiral beryllium copper wires are hooped on the outer circumferential surface of the connecting column, and the two ends of the two spiral beryllium copper wires are respectively connected to the rotating end and the side wall of the embedding interface.
8. The automatic waste collection device for tin coating equipment according to claim 6, characterized in that: The rotating module comprises a traction bar 2 and a linear push rod 3 for moving the traction bar 2. The traction bar 2 is movably arranged in the storage cavity along the vertical direction. When the rotating disk on the rotating end is separated from the bite mouth, the rotating disk and the traction bar 2 are engaged.
9. The automatic waste collection device for tin coating equipment according to claim 8, characterized in that: The linear push rod three is fixedly connected in the storage cavity, the linear push rod three is vertically arranged downward, and the movable end of the linear push rod three is fixedly connected to the traction bar two.
10. The automatic waste collection device for tin coating equipment according to claim 1, characterized in that: A pair of linear push rods four are fixedly connected inside the shell and below the stripping sheet, and the movable ends of the linear push rods four are fixedly connected to a carrier plate, on which a plurality of conducting ports are reserved, and the upper end of the carrier plate is fixedly connected to a plurality of dredging needles, which are directly opposite to the stripping ports on the stripping sheet.
Citation Information
Patent Citations
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CN219787622U
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