Ceramic green body machining device
By designing ceramic body processing devices, including burr removal units, grinding units and cleaning units, the problem of difficult burrs after firing and difficult to collect waste chips after ceramic ceramic is solved, and efficient deburring, grinding and inner wall cleaning of ceramic body is achieved, and the quality and production efficiency of the product are improved.
Patent Information
- Application Number
- PCT/CN2023/131011
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2023-11-06
- Filing Date
- 2023-11-10
- Publication Date
- 2025-05-15
AI Technical Summary
After the ceramic body is fired, the excess structure needs to be removed and cut off. During the process, hardened burrs will be generated, which is difficult to remove. Moreover, there are many burrs and waste chips produced by the grinding of the ceramic after ceramic, which is difficult to collect. At the same time, watering and cooling during the grinding process to avoid cracking.
A ceramic body processing device is designed, including a sedimentation tank, a support table, a lift table and a cleaning table, equipped with a ceramic body top burr removal unit, a ceramic body surface grinding unit and a ceramic body inner wall cleaning unit. Through the cooperation of the lifting platform and the telescopic arm, the removal of burrs on the top of the ceramic body and the surface polishing are achieved, and the internal wall of the ceramic body is cleaned by the setting of the liquid spray chamber and the sewage pipe.
It effectively removes hard burrs on the top of the ceramic body, improves the surface smoothness and cover sealing effect, and improves the cleanliness and smoothness of the inner wall and surface of the ceramic body through rotary spraying and rotary grinding, while avoiding cracks caused by local drying.
Smart Images

Figure CN2023131011_15052025_PF_FP_ABST
Abstract
Description
Ceramic body processing device Technical Field
[0001] The invention relates to the field of ceramic body processing, in particular to a ceramic body processing device. Background Art
[0002] The ceramic body is the main component of a ceramic product, and its properties determine its performance and application. Ceramic products come in a wide variety, each with its own unique performance requirements and raw materials. Typically, ceramic raw materials are batched and processed through specific processes to create a uniform, multi-component mixture that meets the production process requirements. This is called a green body. Depending on the molding method and water content, green bodies can be divided into three categories: casting materials, plastic materials, and pressed powders. To obtain the right green body, the preparation process primarily involves finishing the raw materials, pre-sintering the raw materials, crushing the raw materials, preparing the slurry, dehydrating the slurry, kneading the slurry, and aging and granulating the slurry.
[0003] In the prior art, a ceramic blank processing device disclosed in publication number "CN111775290A" includes a base plate, characterized in that: the base plate is fixedly connected to a connecting bracket, a symmetrical straight groove is provided in the bracket, the bracket is fixedly connected to motor three, the output shaft of motor three passes through the bracket, the output shaft of motor three is provided in one of the straight grooves, a screw is provided in one of the straight grooves, the output shaft of the motor is fixedly connected to one end of the screw, the other end of the screw is connected to the bracket by a bearing, a round rod two is provided in the other straight groove, the round rod two is fixedly connected to the bracket, the bracket is fixedly connected to symmetrical vertical plates, and the symmetrical vertical plates are respectively fixedly connected to electric push rods. The present invention relates to the field of ceramic processing equipment, and specifically, to a ceramic blank processing device. The present invention facilitates ceramic blank processing.
[0004] However, the existing technology still has major deficiencies, such as:
[0005] After the ceramic body is fired, it needs to be demolded and the excess structure of the ceramic body needs to be cut off. During the cutting process, burrs will be generated on the surface of the ceramic body. The ceramic body needs to be sintered to vitrify it, but the burrs left by the cutting will harden and be difficult to remove. The hardened burrs can be removed by a grinding device, but the burrs and waste chips generated by grinding after vitrification are large and difficult to collect. At the same time, it should be noted that the sintered ceramic body needs to be watered and cooled during the grinding process to avoid local excessive drying of the ceramic body during the grinding process, which may cause cracking.
[0006] Summary of the Invention
[0007] The object of the present invention is to provide a ceramic body processing device to solve the problems raised in the above background technology.
[0008] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: a ceramic green body processing device, comprising a sedimentation tank, a support platform, a lifting platform and a cleaning platform, wherein an annular guide rail is installed on the outside of the sedimentation tank, the lifting platform is installed on the movable end of the annular guide rail, the support platform is placed on the bottom of the sedimentation tank, an anti-slip rubber block is installed on the top of the support platform, the anti-slip rubber block is used to place and support the ceramic green body, a telescopic arm is installed on the side of the lifting platform close to the support platform, a lifting groove is opened on the surface of the lifting platform, a screw and a limiting slide are installed in the lifting groove, a driving motor is installed on the top of the lifting platform, a lifting plate is sleeved on the surface of the screw and the limiting slide, the output end of the driving motor is connected to the top of the screw, and the lifting plate is fixed to one side of the cleaning platform;
[0009] A burr removal unit on the top of the ceramic body, which is arranged on the side of the lifting platform close to the anti-slip rubber block and is used to remove burrs from the top of the ceramic body to make the top surface of the ceramic body smooth and ensure the sealing effect between the ceramic body cover and the top of the ceramic body;
[0010] A ceramic body surface grinding unit, which is arranged at the bottom of the ceramic body top burr removal unit and is used to grind the rough surface of the ceramic body surface generated during the firing process to make the ceramic body surface smooth;
[0011] The ceramic blank inner wall cleaning unit is arranged at the bottom of the cleaning platform. When the ceramic blank is cleaned, the ceramic blank inner wall cleaning unit is inserted into the ceramic blank to perform annular spraying on the inner wall of the ceramic blank to reduce the adhesion of impurities on the inner wall of the ceramic blank.
[0012] Preferably, the burr removal unit on the top of the ceramic blank includes a mounting arm, a top plate, a jet pump, a positioning block and an annular surrounding plate. The mounting arm is installed on one side of the telescopic arm, the top plate is installed on the top of the mounting arm, and an arc-shaped clamping block is installed at one end of the top plate away from the mounting arm. The arc-shaped clamping block slides in contact with the end edge of the ceramic blank, the positioning block is installed on the top of the arc-shaped clamping block, the annular surrounding plate is installed on both sides of the arc-shaped clamping block, the jet pump is installed on the top of the top plate, a positioning plate is provided at the bottom of the positioning block through a connecting rod, a reciprocating block is slidably installed on the positioning plate, a scraper is provided at intervals at the bottom of the reciprocating block, and a first magnetic plate is installed at both ends of the positioning plate.
[0013] Preferably, the ceramic body surface polishing unit includes a mounting post, which is mounted on the side of the mounting arm away from the telescopic arm. An arc-shaped plate is provided on the mounting post, and a polishing sand layer is installed on the side of the arc-shaped plate away from the mounting post.
[0014] Preferably, the ceramic blank inner wall cleaning unit includes a sewage suction pipe, a liquid spraying tank, a counterweight and a liquid inlet pipe. The sewage suction pipe is arranged at the bottom of the cleaning table, and the liquid spraying tank is sleeved on the surface of the sewage suction pipe close to one end of the cleaning table. A booster pump is installed on the top of the liquid spraying tank, and the booster pump is connected to a liquid extraction pipe, one end of the liquid extraction pipe is inserted into the sedimentation tank, a first nozzle is arranged at intervals on the surface of the liquid spraying tank, a first hose is arranged at the bottom of the liquid spraying tank, the liquid inlet pipe is connected and installed at the bottom of the sewage suction pipe, and the counterweight is sleeved on the surface of the sewage suction pipe away from one end of the cleaning table.
[0015] Preferably, blocks are installed on both sides of the top of the reciprocating block, and the bottom of the block slides in contact with the top of the positioning plate, so that the reciprocating block can slide on the positioning plate. A strip groove is provided on the block, and a strip block is slidably installed in the adjacent strip groove. A placement groove is provided on the top surface of the strip block, and a counterweight ball is rolled in the placement groove. A second magnetic plate is installed on both sides of the block, and the adjacent first magnetic plate and second magnetic plate have the same magnetic properties.
[0016] Preferably, an air jet unit is provided on one side of the arc-shaped block, and the air jet unit includes an air supply pipe, which is installed at one end of the air pump. An air jet hole is opened on the side of the arc-shaped block close to the positioning block, and the air supply pipe is connected to the air jet hole. The gas ejected obliquely from the air jet hole will blow away the burrs and debris removed from the top of the ceramic green body and make it fall into the ceramic green body tank.
[0017] Preferably, a storage groove is provided on the surface of the counterweight block, and an expansion unit is provided in the storage groove. The expansion unit includes a rotating rod, which is fixedly installed inside the storage groove. A pressure block is rotatably sleeved on the rotating rod, and torsion springs are sleeved at both ends of the rotating rod. The two ends of the torsion spring are respectively fixed to one side of the pressure block and one side of the inner wall of the storage groove. A liquid separation chamber is provided at the top of the pressure block, and the liquid separation chamber is connected to the liquid spray chamber through the first hose. The top of the liquid separation chamber is connected and installed with a second nozzle.
[0018] Preferably, a cleaning frame is provided on one side of the pressure block, a counterweight plate is slidably installed in the cleaning frame, a reciprocating rod is installed on one side of the counterweight plate, one end of the reciprocating rod is movable through the cleaning frame, a cleaning brush is installed on one end of the reciprocating rod, and a return spring is installed on the surface of one end of the reciprocating rod close to the counterweight plate, and both ends of the return spring are respectively fixed to one side of the counterweight plate and one side of the inner wall of the cleaning frame.
[0019] Preferably, a filtering unit is provided on the washing table, and the filtering unit includes a sewage pump. The sewage pump is installed on the top of the washing table, and the sewage pump is connected to the sewage suction pipe through a conduit. One side of the sewage pump is connected to the filtering bin through a conduit, and one side of the filtering bin is connected to a second hose.
[0020] Preferably, the top plate is provided with a grinding and lubrication unit, which includes a liquid storage tank, a pressure pump and an arc-shaped nozzle. The liquid storage tank is installed on the top of the top plate, and the pressure pump is installed on the bottom of the top plate. The liquid storage tank is connected to the second hose and the pressure pump respectively, and the arc-shaped nozzle is connected and installed on one side of the pressure pump. The arc-shaped nozzle sprays solution to the grinding position on the surface of the ceramic body for cooling and lubrication.
[0021] Compared with the prior art, the present invention has the following beneficial effects:
[0022] 1. First, place the fired ceramic body into multiple sets of non-slip rubber blocks to fix it, then drive the telescopic arm to extend, and the moving end of the telescopic arm drives the mounting arm and the top plate close to the top surface of the ceramic body, so that the arc-shaped block is close to the outer edge of the ceramic body. At this time, the positioning block and the reciprocating block are located on the top surface of the ceramic body. The annular plate will block the removed burrs during the burr removal process to prevent them from scattering to the external operating plane. At this time, the annular guide rail is driven, and the annular guide rail drives the lifting platform to rotate. During the rotation of the lifting platform, the mounting arm rotates accordingly, and the scraper at the bottom of the reciprocating block rotates and scrapes along the top surface of the ceramic body, thereby removing the hard burrs on the top surface of the ceramic body;
[0023] 2. While the scraper is rotating and scraping, the reciprocating block will move from one end of the positioning plate to the other end of the positioning plate in a rotating centrifugal state. However, a first magnetic plate is installed on the positioning plate, and the second magnetic plate on the reciprocating block has the same magnetic properties as the adjacent first magnetic plate. When the second magnetic plate contacts the first magnetic plate, due to the same magnetic properties of the two, the magnetic force will cause the reciprocating block to move away from the first magnetic plate. At the same time, a counterweight ball is placed in the strip block at the top of the reciprocating block. When the moving direction of the reciprocating block changes, the counterweight ball also changes its rolling direction, causing the reciprocating block to move toward the other set of first magnetic plate areas, and reciprocate in sequence, so that the reciprocating block moves back and forth, which increases the scraping area of the scraper at the bottom of the reciprocating block, thereby further improving the hard burr removal effect on the top surface of the ceramic body;
[0024] 3. The sewage suction pipe will descend along with the cleaning platform before burrs are removed, and the sewage suction pipe will be inserted into the fired ceramic body. At this time, since the pressing block in the counterweight block is in the storage state, the pressing block will be inserted into the fired ceramic body along with the sewage suction pipe. The spray bin and the first nozzle on the sewage suction pipe will spray from the inner wall of the ceramic body near the top opening area of the ceramic body. At the same time, the cleaning platform and the lifting platform part rotate along the annular guide rail, thereby rotating and spraying the inner wall of the fired ceramic body, thereby improving the preparation effect of the ceramic body.
[0025] 4. When the spray tank is filled with the supernatant liquid from the sedimentation tank through the booster pump and the liquid extraction pipe, the liquid in the spray tank will be discharged outward through the first nozzle and the first hose. The first hose will inject the liquid into the liquid separation tank. As the liquid in the liquid separation tank is continuously injected and filled, the weight of the liquid separation tank increases rapidly. At the same time, as the sewage suction pipe rotates, the counterweight plate in the cleaning frame on one side of the pressure block will squeeze the reset spring under the action of centrifugal force and make the cleaning brush expand outward. When the counterweight plate is close to the far end of the cleaning frame and the liquid separation tank is full, the weight of the cleaning frame increases rapidly. When the weight of the pressing block area exceeds the torsion of the torsion spring, the liquid separation bin and the pressing block will fall from the receiving groove until they reach a state perpendicular to the receiving groove. At this time, the cleaning liquid will be sprayed through the second nozzle on one side of the liquid separation bin, thereby effectively flushing the area that cannot be sprayed by the first nozzle. At the same time, the counterweight plate at the bottom of the pressing block will remain in a downward pressure state. At this time, the cleaning brush contacts the bottom of the inner wall of the ceramic blank, and the cleaning brush rotates and cleans as the sewage suction pipe rotates, thereby cooperating with the first nozzle and the second nozzle to improve the cleaning effect of the inner wall of the ceramic blank;
[0026] 5. When the mounting arm approaches the ceramic body, the curved plate on the mounting arm will gradually fit the surface of the ceramic body. Since the rough surface of the ceramic body hardens during the firing process and needs to be polished, the polishing sand layer on the curved plate will fit the rough surface area of the ceramic body and rotate with the rotation of the mounting arm, thereby rotating and polishing the rough surface area, thereby improving the manufacturing effect of the ceramic body;
[0027] 6. When the cleaning brush rotates, it will stir the cleaning liquid flowing into the bottom of the ceramic body to form a vortex. The vortex will cause the water flow to continuously impact and clean the inner wall of the ceramic body, further increasing the cleaning intensity of the inner wall of the ceramic body. The sewage suction pipe will continuously suck out the sewage in the center of the vortex water flow. The sewage passes through the sewage pump and enters the filter bin for filtration and separation. The filtered clear liquid in the filter bin will be injected into the liquid storage bin through the second hose. The pressure pump will spray this part of the clear liquid through the arc nozzle to the top of the polishing sand layer. The cooling liquid will flow down from the contact area between the polishing sand layer and the surface of the ceramic body, and return to the sedimentation tank along the support platform. The sedimentation tank will precipitate this part of the liquid to separate the solid and liquid, thereby improving the reuse effect of water resources. When the cooling liquid flows down from the contact area between the polishing sand layer and the surface of the ceramic body, it will cool the surface of the ceramic body, which is convenient for discharging dust generated during the grinding process and avoiding excessive local drying of the surface of the ceramic body and causing cracking. BRIEF DESCRIPTION OF THE DRAWINGS
[0028] FIG1 is an overall schematic diagram of the device of the present invention;
[0029] FIG2 is a partial schematic diagram of the support platform in the present invention;
[0030] FIG3 is a schematic diagram of the mounting arm portion of the present invention;
[0031] FIG4 is a partial schematic diagram of a positioning block in the present invention;
[0032] FIG5 is a schematic diagram of a reciprocating block portion of the present invention;
[0033] FIG6 is a partial schematic diagram of the first hose in the present invention;
[0034] FIG7 is a schematic diagram of the structure of the receiving tank portion of the present invention;
[0035] FIG8 is a schematic diagram of a cleaning frame portion of the present invention;
[0036] FIG9 is a partial schematic diagram of the booster pump and the liquid spraying bin wheel in the present invention.
[0037] In the figure: 1. sedimentation tank; 11. annular guide rail; 2. support platform; 21. anti-slip rubber block; 3. lifting platform; 31. lifting slot; 32. screw; 33. limit slide; 34. drive motor; 35. lifting plate; 36. telescopic arm; 4. cleaning table; 41. sewage pump; 42. filter chamber; 43. second hose; 5. mounting arm; 51. mounting column; 52. curved plate; 53. polishing sand layer; 54. top plate; 541. curved block; 542. jet hole; 55. jet pump; 551. air supply pipe; 56. positioning block; 561. connecting rod; 562. positioning plate; 563. first magnetic plate; 57. annular enclosure; 58. reciprocating block; 5 81. Scraper; 582. Stop block; 5821. Strip groove; 583. Strip block; 584. Second magnetic plate; 585. Placement groove; 586. Counterweight ball; 59. Liquid storage tank; 591. Pressure pump; 592. Arc nozzle; 6. Suction pipe; 61. Liquid spray tank; 611. First nozzle; 62. Booster pump; 621. Liquid extraction pipe; 622. First hose; 63. Counterweight block; 631. Storage tank; 632. Rotating rod; 633. Torsion spring; 634. Pressing block; 635. Liquid separation tank; 636. Second nozzle; 64. Liquid inlet pipe; 7. Cleaning rack; 71. Cleaning brush; 72. Reciprocating rod; 73. Counterweight plate; 74. Return spring.
[0038] DETAILED DESCRIPTION
[0039] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0040] Please refer to Figures 1-9. The present invention provides a technical solution:
[0041] Embodiment 1: A ceramic body processing device: includes a sedimentation tank 1, a support platform 2, a lifting platform 3 and a cleaning platform 4, an annular guide rail 11 is installed on the outside of the sedimentation tank 1, the lifting platform 3 is installed on the moving end of the annular guide rail 11, the support platform 2 is placed on the bottom of the sedimentation tank 1, and an anti-slip rubber block 21 is installed on the top of the support platform 2. The anti-slip rubber block 21 is used to place and support the ceramic body. A telescopic arm 36 is installed on the side of the lifting platform 3 close to the support platform 2, and a lifting groove 31 is opened on the surface of the lifting platform 3. A screw 32 and a limiting slide 33 are installed in the lifting groove 31. A drive motor 34 is installed on the top of the lifting platform 3, and a lifting plate 35 is sleeved on the surface of the screw 32 and the limiting slide 33. The output end of the drive motor 34 is connected to the top of the screw 32, and the lifting plate 35 is fixed to one side of the cleaning platform 4;
[0042] In this embodiment, the fired ceramic body is first placed in multiple sets of anti-slip rubber blocks to fix it, and then the operator starts the drive motor 34 so that the drive motor 34 drives the screw 32 to rotate. When the screw 32 rotates, it drives the lifting plate 35 threadedly connected thereto to perform lifting and calibration. When the lifting plate 35 is driven down, the cleaning table 4 will follow it down until the sewage suction pipe 6 at the bottom of the cleaning table 4 is inserted into the bottom of the fired ceramic body, and then the drive motor 34 is stopped.
[0043] A filtering unit is provided on the cleaning table 4, and the filtering unit includes a sewage pump 41. The sewage pump 41 is installed on the top of the cleaning table 4. The sewage pump 41 is connected to the sewage suction pipe 6 through a conduit. One side of the sewage pump 41 is connected to the filter bin 42 through a conduit, and one side of the filter bin 42 is connected to a second hose 43.
[0044] In this embodiment, the sewage suction pipe 6 will continuously suck out the sewage in the center area of the vortex water flow. The sewage passes through the sewage pump 41 and enters the filter tank 42 for filtration and separation. The filtered clear liquid in the filter tank 42 will be injected into the liquid storage tank 59 through the second hose 43, and the liquid storage tank 59 will reuse this part of the clear liquid.
[0045] The burr removal unit on the top of the ceramic green body is arranged on the side of the lifting platform 3 close to the anti-slip rubber block 21, and is used to remove burrs from the top of the ceramic green body to make the top surface of the ceramic green body smooth and ensure the sealing effect between the ceramic green body cover and the top of the ceramic green body;
[0046] The burr removal unit on the top of the ceramic blank includes a mounting arm 5, a top plate 54, a jet pump 55, a positioning block 56 and an annular surrounding plate 57. The mounting arm 5 is installed on one side of the telescopic arm 36, and the top plate 54 is installed on the top of the mounting arm 5. An arc-shaped clamping block 541 is installed at the end of the top plate 54 away from the mounting arm 5. The arc-shaped clamping block 541 slides and fits with the end edge of the ceramic blank. The positioning block 56 is installed on the top of the arc-shaped clamping block 541, and the annular surrounding plate 57 is installed on both sides of the arc-shaped clamping block 541. The jet pump 55 is installed on the top of the top plate 54. A positioning plate 562 is provided at the bottom of the positioning block 56 through a connecting rod 561. A reciprocating block 58 is slidably installed on the positioning plate 562. A scraper 581 is arranged at intervals at the bottom of the reciprocating block 58, and a first magnetic plate 563 is installed at both ends of the positioning plate 562.
[0047] Stoppers 582 are installed on both sides of the top of the reciprocating block 58. The bottom of the stoppers 582 is slidably fitted with the top of the positioning plate 562, so that the reciprocating block 58 can slide on the positioning plate 562. The stoppers 582 are provided with strip grooves 5821. A strip block 583 is slidably installed in an adjacent strip groove 5821. A placement groove 585 is provided on the top surface of the strip block 583. A counterweight ball 586 is rolled in the placement groove 585. Second magnetic plates 584 are installed on both sides of the stoppers 582. The adjacent first magnetic plates 563 and the second magnetic plates 584 have the same magnetic properties.
[0048] In this embodiment, two groups of second magnetic plates 584 are respectively provided on both sides of the stopper 582. The two groups of second magnetic plates 584 have opposite magnetic properties. Each group of second magnetic plates 584 is provided with two second magnetic plates 584. Two groups of first magnetic plates 563 are installed at both ends of the positioning plate 562. The two groups of first magnetic plates 563 have opposite magnetic properties. The opposite first magnetic plates 563 and the second magnetic plates 584 have the same magnetic properties.
[0049] When the scraper 581 rotates and scrapes, the reciprocating block 58 moves from one end of the positioning plate 562 to the other end of the positioning plate 562 in a rotating centrifugal state. Both ends of the positioning plate 562 are installed with a first magnetic plate 563. The second magnetic plate 584 on the reciprocating block 58 has the same magnetic property as the adjacent first magnetic plate 563. When the second magnetic plate and the first magnetic plate come into contact with each other, due to the same magnetic property of the two, the magnetic force will cause the reciprocating block 58 to move away from the first magnetic plate 563. At the same time, a counterweight ball 586 is placed in the bar block 583 at the top of the reciprocating block 58. When the moving direction of the reciprocating block 58 changes, the counterweight ball 586 also changes its rolling direction, causing the reciprocating block 58 to move toward the area of another set of first magnetic plates 563, and reciprocate in sequence, so that the reciprocating block 58 reciprocates, so that the scraping area of the scraper 581 at the bottom of the reciprocating block 58 is increased, thereby further improving the hard burr removal effect on the top surface of the ceramic body.
[0050] The magnetism of the first magnetic plate 563 is stronger than that of the second magnetic plate 584. At the same time, the magnetism of the first magnetic plate 563 close to the arc-shaped block 541 in the two groups of first magnetic plates 563 is stronger than that of the other group of first magnetic plates 563. This allows the reciprocating block 58 to better resist the centrifugal force and move back and forth under the action of the like-charge repulsion of this first magnetic plate 563. The first magnetic plate 563 with weaker magnetism can use the action of centrifugal force to push the reciprocating block 58 to move back and forth.
[0051] An air jet unit is provided on one side of the arc-shaped clamping block 541. The air jet unit includes an air supply pipe 551. The air supply pipe 551 is installed on one end of the air jet pump 55. An air jet hole 542 is opened on the side of the arc-shaped clamping block 541 near the positioning block 56. The air supply pipe 551 is connected to the air jet hole 542. The air ejected obliquely from the air jet hole 542 will blow away the burrs and debris removed from the top of the ceramic body and make them fall into the ceramic body tank.
[0052] In this embodiment, the jet hole 542 is obliquely opened inside the arc-shaped block 541, so that the gas injected by the air supply pipe 551 forms an oblique jet after passing through the jet hole 542 and blows toward the top surface of the ceramic body. Since the annular plate 57 will enclose the removed burrs during the burr removal process, it will not be scattered to the external operating plane. At this time, the gas ejected obliquely from the jet hole 542 allows the scraped burr debris to fall into the ceramic body tank, which causes the burr debris to mix with the cleaning liquid. Subsequently, the sewage can be extracted through the sewage suction pipe 6 to collect the burr debris in a centralized manner.
[0053] The ceramic body surface grinding unit is arranged at the bottom of the burr removal unit on the top of the ceramic body, and is used to grind the rough surface generated on the surface of the ceramic body during the firing process to make the surface of the ceramic body smooth;
[0054] The ceramic body surface polishing unit includes a mounting column 51 , which is mounted on the side of the mounting arm 5 away from the telescopic arm 36 . An arc plate 52 is provided on the mounting column 51 , and a polishing sand layer 53 is installed on the side of the arc plate 52 away from the mounting column 51 .
[0055] There is a grinding and lubrication unit on the top plate 54. The grinding and lubrication unit includes a liquid storage tank 59, a pressure pump 591 and an arc-shaped nozzle 592. The liquid storage tank 59 is installed on the top of the top plate 54, and the pressure pump 591 is installed on the bottom of the top plate 54. The liquid storage tank 59 is connected to the second hose 43 and the pressure pump 591 respectively. The arc-shaped nozzle 592 is connected and installed on one side of the pressure pump 591. The arc-shaped nozzle 592 sprays solution to the grinding position on the surface of the ceramic body for cooling and lubrication.
[0056] In this embodiment, when the mounting arm 5 approaches the ceramic blank, the arc-shaped plate 52 on the mounting arm 5 will gradually fit onto the surface of the ceramic blank. Since the rough surface of the ceramic blank hardens during the firing process and needs to be polished, the polishing sand layer 53 on the arc-shaped plate 52 will fit onto the rough surface area of the ceramic blank and rotate with the rotation of the mounting arm 5, thereby performing rotational polishing on the rough surface area, thereby improving the manufacturing effect of the ceramic blank. The sewage suction pipe 6 will continuously suck out the sewage in the center area of the vortex water flow. The sewage passes through the sewage pump 41 and enters the filter tank 42 for filtration and separation. The filtered clear liquid in the filter tank 42 will be injected into the liquid storage tank 59 through the second hose 43. The pressure pump 591 will spray this part of the clear liquid onto the surface of the ceramic blank on the top of the polishing sand layer 53 through the arc-shaped nozzle 592. When the cooling liquid flows down from the contact area between the polishing sand layer 53 and the ceramic blank surface, it will cool the surface of the ceramic blank, which is convenient for discharging dust generated during the polishing process and at the same time avoids excessive local drying of the ceramic blank surface causing cracking.
[0057] The inner wall cleaning unit of the ceramic blank is arranged at the bottom of the cleaning platform 4. When the ceramic blank is cleaned, the inner wall cleaning unit of the ceramic blank is inserted into the interior of the ceramic blank, thereby performing an annular spray cleaning on the inner wall of the ceramic blank to reduce the adhesion of impurities on the inner wall of the ceramic blank;
[0058] The inner wall cleaning unit of the ceramic blank includes a sewage suction pipe 6, a liquid spraying tank 61, a counterweight block 63 and a liquid inlet pipe 64. The sewage suction pipe 6 is arranged at the bottom of the cleaning table 4, and the liquid spraying tank 61 is sleeved on the surface of the sewage suction pipe 6 close to the cleaning table 4. A booster pump 62 is installed on the top of the liquid spraying tank 61, and the booster pump 62 is connected to a liquid extraction pipe 621. One end of the liquid extraction pipe 621 is inserted into the sedimentation tank 1. A first nozzle 611 is arranged at intervals on the surface of the liquid spraying tank 61, and a first hose 622 is arranged at the bottom of the liquid spraying tank 61. The liquid inlet pipe 64 is connected and installed at the bottom of the sewage suction pipe 6, and the counterweight block 63 is sleeved on the surface of the sewage suction pipe 6 away from the cleaning table 4.
[0059] In this embodiment, the sewage suction pipe 6 will follow the cleaning table 4 to descend before the burr removal step, and the sewage suction pipe 6 will be inserted into the interior of the fired ceramic body. At this time, since the pressing block 634 in the counterweight block 63 is in the storage state, when the pressing block 634 is in the storage state, the pressing block 634 is in a vertical state, and when the pressing block 634 is in the expanded state, the pressing block 634 is in a horizontal state;
[0060] The pressing block 634 will be inserted into the interior of the fired ceramic blank along with the sewage suction pipe 6. The liquid spray tank 61 and the first nozzle 611 on the sewage suction pipe 6 will spray from the inner wall of the ceramic blank near the top opening area of the ceramic blank. At the same time, the cleaning platform 4 and the lifting platform 3 part follow the rotation of the annular guide rail 11, thereby rotating and spraying the inner wall of the fired ceramic blank, thereby improving the preparation effect of the ceramic blank. However, the surface of the ceramic blank is arranged in multiple arc sections, which makes the liquid flowing out of the first nozzle 611 flow directly down from the bending point of the inner wall of the ceramic blank, affecting the flushing effect of the first nozzle 611 on the inner wall of the ceramic blank. Therefore, the second nozzle 636 set can effectively flush the area below the bending point of the inner wall of the ceramic blank.
[0061] Example 2:
[0062] This embodiment is based on the first embodiment. In this embodiment, it is considered that the first nozzle 611 will spray from the inner wall of the ceramic blank close to the top opening area of the ceramic blank, and at the same time, the cleaning platform 4 and the lifting platform 3 partially rotate following the annular guide rail 11, thereby rotating and spraying the inner wall of the fired ceramic blank. However, the surface of the ceramic blank is arranged in multiple arc sections, which makes the liquid flowing out of the first nozzle 611 flow directly down from the bending point of the inner wall of the ceramic blank, affecting the flushing effect of the first nozzle 611 on the inner wall of the ceramic blank. Therefore, by providing an expansion unit, the expansion unit can expand the subsequent spraying structure, and can effectively flush the area below the bending point of the inner wall of the ceramic blank;
[0063] A storage groove 631 is provided on the surface of the counterweight block 63, and an expansion unit is provided in the storage groove 631. The expansion unit includes a rotating rod 632, which is fixedly installed inside the storage groove 631. A pressure block 634 is rotatably sleeved on the rotating rod 632, and torsion springs 633 are sleeved at both ends of the rotating rod 632. The two ends of the torsion spring 633 are respectively fixed to one side of the pressure block 634 and one side of the inner wall of the storage groove 631. A liquid separation tank 635 is provided at the top of the pressure block 634, and the liquid separation tank 635 is connected to the liquid spray tank 61 through the first hose 622. The top of the liquid separation tank 635 is connected to the second nozzle 636.
[0064] A cleaning frame 7 is provided on one side of the pressure block 634, and a counterweight plate 73 is slidably installed in the cleaning frame 7. A reciprocating rod 72 is installed on one side of the counterweight plate 73. One end of the reciprocating rod 72 is movable through the cleaning frame 7, and a cleaning brush 71 is installed at one end of the reciprocating rod 72. A return spring 74 is installed on the surface of one end of the reciprocating rod 72 close to the counterweight plate 73, and both ends of the return spring 74 are respectively fixed to one side of the counterweight plate 73 and one side of the inner wall of the cleaning frame 7.
[0065] In this embodiment, when the liquid spraying tank 61 is filled with the upper clear liquid of the sedimentation tank 1 through the booster pump 62 and the liquid suction pipe 621, the liquid spraying tank 61 will output the liquid outward through the first nozzle 611 and the first hose 622, and the first hose 622 will inject the liquid into the liquid separation tank 635. As the liquid in the liquid separation tank 635 is continuously injected and filled, the weight of the liquid separation tank 635 increases rapidly. At the same time, as the sewage suction pipe 6 rotates, the counterweight plate 73 in the cleaning frame 7 on one side of the pressure block 634 will squeeze the reset spring 74 under the action of centrifugal force and make the cleaning brush 71 expand outward. When the counterweight plate 73 continues to approach the far end of the cleaning frame 7 and the liquid separation tank 635 is full, the pressure block The weight of the top area of 634 completely exceeds the torsion of the torsion spring 633. At this time, the pressure block 634 rotates, and the liquid separation chamber 635 and the pressure block 634 fall from the receiving groove 631 until they reach a state perpendicular to the receiving groove 631. At this time, the cleaning liquid is sprayed from one side of the liquid separation chamber 635 through the second nozzle 636, thereby effectively washing the area that the first nozzle 611 cannot spray. At the same time, the counterweight plate 73 at the bottom of the pressure block 634 remains in a downward pressure state. At this time, the cleaning brush 71 contacts the bottom of the inner wall of the ceramic blank. The cleaning brush 71 rotates and cleans as the sewage suction pipe 6 rotates, thereby cooperating with the first nozzle 611 and the second nozzle 636 to improve the cleaning effect of the inner wall of the ceramic blank.
[0066] Since the structure of the pressure block 634 area is in the expanded state, the sewage suction pipe 6 cannot be removed from the ceramic body by lifting. At this time, the liquid extraction pipe 621 is removed from the sedimentation tank 1, and the booster pump 62 is controlled to draw in external gas, so that the cleaning liquid inside the liquid separation chamber 635 and the liquid spray chamber 61 is emptied. When the liquid in the liquid separation chamber 635 is emptied, the weight in the liquid separation chamber 635 decreases, and the torsion spring 633 gradually returns to its initial state. The pressure block 634 will return to the vertical state under the action of the torsion spring 633. When the pressure block 634 rotates and resets, the counterweight plate 73 also gradually leaves the horizontal state. When the counterweight plate 73 returns to the vertical state, the cleaning brush 71 is re-integrated into the side close to the cleaning frame 7 under the action of the reset spring 74. At this time, the storage of the pressure block 634 area structure is completed and it can be taken out by lifting the sewage suction pipe 6.
[0067] Working principle: When using this device, first, the fired ceramic body is placed in multiple sets of anti-slip rubber blocks to fix it. Then the operator starts the drive motor 34, so that the drive motor 34 drives the screw 32 to rotate. When the screw 32 rotates, it drives the lifting plate 35 threadedly connected thereto to perform lifting and calibration. When the lifting plate 35 is driven to descend, the cleaning table 4 will follow it and descend until the sewage suction pipe 6 at the bottom of the cleaning table 4 is inserted into the bottom of the fired ceramic body.
[0068] The moving end of the telescopic arm 36 drives the mounting arm 5 and the top plate 54 close to the top surface of the ceramic body, so that the arc-shaped clamping block 541 is close to the outer edge of the ceramic body. At this time, the positioning block 56 and the reciprocating block 58 are located on the top surface of the ceramic body. The annular plate 57 will block the removed burrs during the burr removal process to prevent them from scattering to the external operating plane. At this time, the annular guide rail 11 is driven, and the annular guide rail 11 drives the lifting platform 3 to rotate. During the rotation of the lifting platform 3, the mounting arm 5 rotates accordingly, and the scraper 581 at the bottom of the reciprocating block 58 rotates and scrapes along the top surface of the ceramic body, thereby removing the hard burrs on the top surface of the ceramic body.
[0069] When the scraper 581 rotates and scrapes, the reciprocating block 58 moves from one end of the positioning plate 562 to the other end of the positioning plate 562 in a rotating centrifugal state. Both ends of the positioning plate 562 are installed with a first magnetic plate 563. The second magnetic plate 584 on the reciprocating block 58 has the same magnetic property as the adjacent first magnetic plate 563. When the second magnetic plate and the first magnetic plate come into contact with each other, due to the same magnetic property of the two, the magnetic force will cause the reciprocating block 58 to move away from the first magnetic plate 563. At the same time, a counterweight ball 586 is placed in the bar block 583 at the top of the reciprocating block 58. When the moving direction of the reciprocating block 58 changes, the counterweight ball 586 also changes its rolling direction, causing the reciprocating block 58 to move toward the area of another set of first magnetic plates 563, and reciprocate in sequence, so that the reciprocating block 58 reciprocates, so that the scraping area of the scraper 581 at the bottom of the reciprocating block 58 is increased, thereby further improving the hard burr removal effect on the top surface of the ceramic body.
[0070] The first magnetic plate 563 has a stronger magnetic property than the second magnetic plate 584. Furthermore, the first magnetic plate 563 on the side of the arc-shaped clamping block 541 in the two sets of first magnetic plates 563 has a stronger magnetic property than the other set of first magnetic plates 563. This allows the reciprocating block 58 to better resist the centrifugal force under the repulsion of like-charged magnets on the first magnetic plate 563 and to reciprocate. The first magnetic plate 563 with a weaker magnetic property can use the centrifugal force to push the reciprocating block 58 to reciprocate.
[0071] When the mounting arm 5 is close to the ceramic body, the arc-shaped plate 52 on the mounting arm 5 will gradually fit on the surface of the ceramic body. Since the rough surface of the ceramic body hardens during the firing process and needs to be polished, the polishing sand layer 53 on the arc-shaped plate 52 will fit on the rough surface area of the ceramic body and rotate with the rotation of the mounting arm 5, thereby rotating and polishing the rough surface area, thereby improving the manufacturing effect of the ceramic body. The sewage suction pipe 6 will continuously suck out the sewage in the center area of the vortex water flow. The sewage passes through the sewage pump 41 and enters the filter bin 42 for filtration and separation. The filtered clear liquid in the filter bin 42 will be injected into the liquid storage bin 59 through the second hose 43. The pressure pump 591 will spray this part of the clear liquid onto the surface of the ceramic body on the top of the polishing sand layer 53 through the arc-shaped nozzle 592. When the cooling liquid flows down from the contact area between the polishing sand layer 53 and the ceramic body surface, it will cool the surface of the ceramic body, which is convenient for discharging dust generated during the polishing process and at the same time avoids excessive local drying of the ceramic body surface causing cracking;
[0072] The sewage suction pipe 6 will descend along with the cleaning table 4 before the burr removal step, and the sewage suction pipe 6 will be inserted into the interior of the fired ceramic body. At this time, since the pressing block 634 in the counterweight block 63 is in the storage state, when the pressing block 634 is in the storage state, the pressing block 634 is in a vertical state, and when the pressing block 634 is in the expanded state, the pressing block 634 is in a horizontal state;
[0073] The pressing block 634 will be inserted into the fired ceramic body together with the sewage suction pipe 6, and the liquid spraying bin 61 and the first nozzle 611 on the sewage suction pipe 6 will spray from the inner wall of the ceramic body near the top opening area of the ceramic body. At the same time, the cleaning platform 4 and the lifting platform 3 part rotate along the annular guide rail 11, thereby rotating and spraying the inner wall of the fired ceramic body, thereby improving the preparation effect of the ceramic body. However, the surface of the ceramic body is arranged in multiple arc sections, which makes the liquid flowing out of the first nozzle 611 flow directly down from the bending point of the inner wall of the ceramic body, affecting the flushing effect of the first nozzle 611 on the inner wall of the ceramic body. Therefore, the second nozzle 636 can be provided to effectively flush the area below the bending point of the inner wall of the ceramic body.
[0074] When the spray tank 61 is filled with the upper clear liquid of the sedimentation tank 1 through the booster pump 62 and the suction pipe 621, the spray tank 61 will output the liquid outward through the first nozzle 611 and the first hose 622, and the first hose 622 will inject the liquid into the liquid separation tank 635. As the liquid in the liquid separation tank 635 is continuously injected and filled, the weight of the liquid separation tank 635 increases rapidly. At the same time, as the sewage suction pipe 6 rotates, the counterweight plate 73 in the cleaning frame 7 on one side of the pressure block 634 will squeeze the return spring 74 under the action of centrifugal force and make the cleaning brush 71 expand outward. When the counterweight plate 73 continues to approach the far end of the cleaning frame 7 and the liquid separation tank 635 is fully loaded, the weight of the top area of the pressure block 634 completely exceeds the torsion of the torsion spring 633. At this time, the pressure block 634 rotates, and the liquid separation tank 635 and the pressure block 634 will fall from the receiving tank 631 until it reaches a state perpendicular to the receiving tank 631. At this time, the second nozzle 636 will spray the cleaning liquid on one side of the liquid separation chamber 635, thereby effectively flushing the area that the first nozzle 611 cannot spray. At the same time, the counterweight plate 73 at the bottom of the pressing block 634 will remain in a downward pressure state. At this time, the cleaning brush 71 contacts the bottom of the inner wall of the ceramic blank. The cleaning brush 71 rotates and cleans as the sewage suction pipe 6 rotates, thereby cooperating with the first nozzle 611 and the second nozzle 636 to improve the cleaning effect of the inner wall of the ceramic blank. The cooling liquid will flow down from the contact area between the polishing sand layer 53 and the surface of the ceramic blank, and return to the sedimentation tank along the support platform 2. The sedimentation tank will precipitate this part of the liquid to separate the solid and liquid, thereby improving the reuse effect of water resources;
[0075] Since the structure of the pressure block 634 area is in the expanded state, the sewage suction pipe 6 cannot be removed from the ceramic body by lifting. At this time, the liquid extraction pipe 621 is removed from the sedimentation tank 1, and the booster pump 62 is controlled to draw in external gas, so that the cleaning liquid inside the liquid separation chamber 635 and the liquid spray chamber 61 is emptied. When the liquid in the liquid separation chamber 635 is emptied, the weight in the liquid separation chamber 635 decreases, and the torsion spring 633 gradually returns to its initial state. The pressure block 634 will return to the vertical state under the action of the torsion spring 633. When the pressure block 634 rotates and resets, the counterweight plate 73 also gradually leaves the horizontal state. When the counterweight plate 73 returns to the vertical state, the cleaning brush 71 is re-integrated into the side close to the cleaning frame 7 under the action of the reset spring 74. At this time, the storage of the pressure block 634 area structure is completed and it can be taken out by lifting the sewage suction pipe 6.
[0076] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.
Claims
1. A ceramic body processing device, characterized in that: The invention comprises a sedimentation tank (1), a support platform (2), a lifting platform (3) and a cleaning platform (4), wherein an annular guide rail (11) is installed outside the sedimentation tank (1), the lifting platform (3) is installed on the movable end of the annular guide rail (11), the support platform (2) is placed on the bottom of the sedimentation tank (1), an anti-slip rubber block (21) is installed on the top of the support platform (2), and the anti-slip rubber block (21) is used to place and support the ceramic blank, and the lifting platform (3) is close to the support platform (2). A telescopic arm (36) is installed on the side, a lifting groove (31) is opened on the surface of the lifting platform (3), a screw rod (32) and a limit slide rod (33) are installed in the lifting groove (31), a driving motor (34) is installed on the top of the lifting platform (3), a lifting plate (35) is sleeved on the surface of the screw rod (32) and the limit slide rod (33), the output end of the driving motor (34) is connected to the top of the screw rod (32), and the lifting plate (35) is fixed to one side of the cleaning platform (4); A burr removal unit on the top of the ceramic body, the burr removal unit on the top of the ceramic body being arranged on a side of the lifting platform (3) close to the anti-slip rubber block (21) and being used to remove burrs from the top of the ceramic body, so that the surface of the top of the ceramic body is smooth, thereby ensuring a sealing effect between the ceramic body cover and the top of the ceramic body; A ceramic body surface grinding unit, which is arranged at the bottom of the ceramic body top burr removal unit and is used to grind the rough surface generated during the firing process of the ceramic body surface to make the ceramic body surface smooth; A ceramic blank inner wall cleaning unit is arranged at the bottom of the cleaning platform (4). When the ceramic blank is cleaned, the ceramic blank inner wall cleaning unit is inserted into the interior of the ceramic blank, thereby performing annular spray cleaning on the inner wall of the ceramic blank to reduce the adhesion of impurities on the inner wall of the ceramic blank.
2. A ceramic body processing device according to claim 1, characterized in that: The ceramic body top burr removal unit comprises a mounting arm (5), a top plate (54), an air jet pump (55), a positioning block (56) and an annular enclosure (57), wherein the mounting arm (5) is mounted on one side of the telescopic arm (36), the top plate (54) is mounted on the top of the mounting arm (5), an arc-shaped clamping block (541) is mounted on one end of the top plate (54) away from the mounting arm (5), the arc-shaped clamping block (541) is slidably fitted with the end edge of the ceramic body, and the positioning block (56) is mounted At the top of the arc-shaped clamping block (541), the annular enclosure plate (57) is installed on both sides of the arc-shaped clamping block (541), the jet pump (55) is installed on the top of the top plate (54), a positioning plate (562) is provided at the bottom of the positioning block (56) through a connecting rod (561), a reciprocating block (58) is slidably installed on the positioning plate (562), a scraper plate (581) is arranged at intervals at the bottom of the reciprocating block (58), and first magnetic plates (563) are installed at both ends of the positioning plate (562).
3. A ceramic body processing device according to claim 2, characterized in that: The ceramic body surface grinding unit comprises a mounting column (51), the mounting column (51) being mounted on a side of the mounting arm (5) away from the telescopic arm (36), an arc-shaped plate (52) being provided on the mounting column (51), and a polishing sand layer (53) being mounted on a side of the arc-shaped plate (52) away from the mounting column (51).
4. A ceramic body processing device according to claim 3, characterized in that: The ceramic blank inner wall cleaning unit comprises a sewage suction pipe (6), a liquid spraying bin (61), a counterweight (63) and a liquid inlet pipe (64); the sewage suction pipe (6) is arranged at the bottom of the cleaning table (4); the liquid spraying bin (61) is sleeved on the surface of the sewage suction pipe (6) close to one end of the cleaning table (4); a booster pump (62) is installed on the top of the liquid spraying bin (61); a liquid extraction pipe (621) is connected to the booster pump (62); one end of the liquid extraction pipe (621) is inserted into the sedimentation tank (1); a first nozzle (611) is arranged at intervals on the surface of the liquid spraying bin (61); a first hose (622) is arranged at the bottom of the liquid spraying bin (61); the liquid inlet pipe (64) is connected and installed at the bottom of the sewage suction pipe (6); and the counterweight (63) is sleeved on the surface of the sewage suction pipe (6) away from the cleaning table (4).
5. A ceramic body processing device according to claim 4, characterized in that: Stop blocks (582) are installed on both sides of the top of the reciprocating block (58); the bottom of the stop block (582) is slidably fitted with the top of the positioning plate (562), so that the reciprocating block (58) can slide on the positioning plate (562); a strip groove (5821) is provided on the stop block (582); a strip block (583) is slidably installed in an adjacent strip groove (5821); a placement groove (585) is provided on the top surface of the strip block (583); a counterweight ball (586) is rollingly arranged in the placement groove (585); second magnetic plates (584) are installed on both sides of the stop block (582); and the adjacent first magnetic plates (563) and second magnetic plates (584) have the same magnetic properties.
6. A ceramic body processing device according to claim 2, characterized in that: An air jet unit is provided on one side of the arc-shaped clamping block (541), and the air jet unit comprises an air supply pipe (551). The air supply pipe (551) is installed at one end of the air jet pump (55). An air jet hole (542) is provided on one side of the arc-shaped clamping block (541) close to the positioning block (56). The air supply pipe (551) is connected to the air jet hole (542). The gas jetted obliquely from the air jet hole (542) blows away the burrs and debris removed from the top of the ceramic blank and causes them to fall into the ceramic blank tank.
7. A ceramic body processing device according to claim 4, characterized in that: A storage groove (631) is provided on the surface of the counterweight block (63), and an unfolding unit is arranged in the storage groove (631). The unfolding unit comprises a rotating rod (632), and the rotating rod (632) is fixedly installed inside the storage groove (631). A pressure block (634) is rotatably sleeved on the rotating rod (632), and torsion springs (633) are sleeved on both ends of the rotating rod (632). The two ends of the torsion spring (633) are respectively fixed to one side of the pressure block (634) and one side of the inner wall of the storage groove (631). A liquid separation chamber (635) is arranged at the top end of the pressure block (634), and the liquid separation chamber (635) is connected to the liquid spray chamber (61) through the first hose (622). The top end of the liquid separation chamber (635) is connected and a second spray head (636) is installed.
8. A ceramic body processing device according to claim 7, characterized in that: A cleaning frame (7) is provided on one side of the pressure block (634), a counterweight plate (73) is slidably mounted in the cleaning frame (7), a reciprocating rod (72) is mounted on one side of the counterweight plate (73), one end of the reciprocating rod (72) movably passes through the cleaning frame (7), a cleaning brush (71) is mounted on one end of the reciprocating rod (72), a return spring (74) is mounted on the surface of one end of the reciprocating rod (72) close to the counterweight plate (73), and two ends of the return spring (74) are respectively fixed to one side of the counterweight plate (73) and one side of the inner wall of the cleaning frame (7).
9. A ceramic body processing device according to claim 7, characterized in that: The cleaning table (4) is provided with a filtering unit, the filtering unit comprising a sewage pump (41), the sewage pump (41) being installed on the top of the cleaning table (4), the sewage pump (41) being connected to the sewage suction pipe (6) via a conduit, one side of the sewage pump (41) being connected to a filtering chamber (42) via a conduit, and one side of the filtering chamber (42) being connected to a second hose (43).
10. A ceramic body processing device according to claim 9, characterized in that: The top plate (54) is provided with a polishing lubrication unit, the polishing lubrication unit comprising a liquid storage tank (59), a pressure pump (591) and an arc-shaped nozzle (592); the liquid storage tank (59) is installed on the top of the top plate (54); the pressure pump (591) is installed on the bottom of the top plate (54); the liquid storage tank (59) is connected to the second hose (43) and the pressure pump (591) respectively; the arc-shaped nozzle (592) is connected and installed on one side of the pressure pump (591); the arc-shaped nozzle (592) sprays a solution to a polishing position on the surface of the ceramic body for cooling and lubrication.
Citation Information
Patent Citations
Fire-fighting evacuation ceramic lamp forming process and equipment thereof
CN115534064A
Blank scraping device for ceramic production
CN116277427A
Optical functional ceramic cleaning device
CN210080186U
Grinding support rims of plates - involves grinding belt moving over support table
DE4130244C1
Apparatus for dry footing and sanding ceramic pieces and method of using same
US20060068687A1
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