Glaze Polishing Device for High Thermal Conductivity Ceramic Processing

Through the lifting and lowering mechanism combined with the limiting assembly, the full-dimensional polishing of high-thermal conductivity ceramics is achieved, solving the problem that existing devices cannot be polished in all directions, and improving polishing efficiency and flexibility.

CN119458108BActive Publication Date: 2025-07-18FUJIAN PROVINCE JINJIANGCHENGDA CERAMICS FACTORY
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Patent Information

Application Number
CN202411558855.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-02-02
Publication Date
2025-07-18
Estimated Expiration
2044-02-02

AI Technical Summary

Technical Problem

The existing glaze polishing device for ceramic processing cannot achieve full-range polishing. Different polishing heads need to be replaced according to the appearance of the ceramic, and the fixing method is single.

Method used

A glazed polishing device for processing high-thermal ceramics including a lifting mechanism, a rotating mechanism and an installation mechanism is designed to achieve multi-angle polishing of the ceramics through a moving component, a limiting component and a rotating mechanism, and to quickly replace the matte blocks.

Benefits of technology

It realizes all-round polishing of ceramic surfaces, adapts to polishing needs at different heights and locations, and is convenient to replace matte blocks, improving polishing efficiency and flexibility.

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Abstract

The present invention relates to the technical field of ceramic processing, and discloses a glaze polishing device for high thermal conductivity ceramic processing, including a base. On the side close to each other of the front and rear two support columns, a lifting mechanism is fixedly connected. A rotating mechanism is arranged on the lifting mechanism, and an installation mechanism is arranged at the bottom of the rotating mechanism; the lifting mechanism includes a moving component and a limiting component. The limiting component is arranged on the moving component. The moving component includes a first T-shaped groove, which is opened inside the side close to each other of the left and right two support columns. Four first T-shaped blocks are slidably connected inside the four first T-shaped grooves. One side of the first T-shaped block is fixedly connected with a connecting block. On the side far away from each other of the rear two connecting blocks, a first motor is fixedly connected. On the other side of the first motor, a first rotating shaft is fixedly connected. The surface of the first rotating shaft is fixedly connected with a first gear. In the present invention, by setting the moving component, under the operation of the moving component, polishing can be carried out on ceramics at different heights.
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Description

Technical Field

[0001] The present invention relates to the technical field of ceramic processing, and specifically relates to a glaze polishing device for high thermal conductivity ceramic processing. Background Art

[0002] Thermal conductive ceramic materials mainly include beryllium oxide, aluminum nitride, silicon carbide, silicon nitride, alumina, polycrystalline diamond ceramics, etc. Among them, alumina ceramics are inexpensive, have high strength, stable chemical properties, good thermal stability, and strong insulation, and are one of the most thoroughly studied and widely used ceramic materials in the industry.

[0003] For example, a glaze polishing device for ceramic processing with the patent number CN213917678U includes a base and a polishing head. An inner part of the middle of the base is provided with a first motor cavity. A first reduction motor is fixedly installed at the bottom of the first motor cavity. An output end of the first reduction motor is fixedly connected with one end of a first rotating rod. The other end of the first rotating rod passes through the top end of the base and is fixedly connected with a rotating disk.

[0004] In view of the above description, the applicant believes that the following problems exist:

[0005] During use, when polishing the surface of the ceramic in this technical solution, only the ceramic can be clamped and fixed in position. At the same time, during the process of polishing the ceramic, only the polishing head is used for polishing. The ceramic has an arc-shaped appearance. Directly using the polishing head cannot polish the surface of the ceramic in all directions. At this time, different polishing heads need to be replaced according to different ceramic appearances. Summary of the Invention

[0006] The purpose of the present invention is to provide a glaze polishing device for high thermal conductivity ceramic processing to solve the problems raised in the above background art.

[0007] To solve the above technical problems, the present invention provides the following technical solution: A glaze polishing device for high thermal conductivity ceramic processing includes a base. Four sides of the top of the base are fixedly connected with support columns. A placement table is fixedly connected to the center of the top of the base. Lifting mechanisms are fixedly connected to the closer sides of the front and rear support columns. A rotating mechanism is arranged on the lifting mechanism. An installation mechanism is arranged at the bottom of the rotating mechanism;

[0008] The lifting mechanism includes a moving component and a limiting component. The limiting component is arranged on the moving component;

[0009] The moving component includes a first T-shaped groove which is formed inside the inner sides of the left and right support columns close to each other. Four first T-shaped blocks are slidably connected inside the four first T-shaped grooves. One side of each first T-shaped block is fixedly connected to a connecting block. First motors are fixedly connected to the outer sides of the rear two connecting blocks away from each other. The other side of each first motor is fixedly connected to a first rotating shaft. A first gear is fixedly connected to the surface of the first rotating shaft. Tooth rows are fixedly connected to the inner sides of the front and rear support columns close to each other. A first pulley is fixedly connected to the surface of the first rotating shaft. A belt is drivingly connected to the surface of the first pulley. A second pulley is drivingly connected to the inside of the front surface of the belt. A second rotating shaft is fixedly connected to the center of the second pulley. A second gear is fixedly connected to the surface of the second rotating shaft. A third gear is meshingly connected to the front surface of the second gear. The third gear and the front first rotating shaft are fixedly connected to the surface. Limit blocks are fixedly connected to the upper and lower ends of the outer sides of the two support columns away from each other. A sliding rod is fixedly connected between the two limit blocks. A sliding block is slidably connected to the surface of the sliding rod. A limiting plate is fixedly connected to the side of the sliding block away from the support column. The limiting plate, the second rotating shaft and the two first rotating shafts are rotationally connected.

[0010] According to the above technical solution, the number of the second gears and the third gears is four and they are grouped in pairs. The number of the second pulleys and the first pulleys is two. The second gears and the third gears are arranged on the sides of the second pulleys and the first pulleys away from the support columns. When the second gears and the third gears are meshingly connected, the front first rotating shaft and the rear first rotating shaft can rotate in opposite directions.

[0011] According to the above technical solution, the number of the first gears and the tooth rows is four and they are grouped in pairs. The four tooth rows and the four first gears are meshingly connected.

[0012] According to the above technical solution, the limiting component includes hinge blocks which are fixedly connected to the front and rear sides of the limiting plate. Card slots are densely formed inside the outer sides of the front and rear support columns away from each other. The other side of each hinge block is hinged to a locking block. A clamping block is fixedly connected to the side of the locking block close to the support column. The card slots and the clamping blocks are clamped.

[0013] According to the above technical solution, the rotating mechanism includes a connecting plate, the connecting plate is fixedly connected between the left and right connecting blocks, the number of the connecting plates is two, a ring is fixedly connected between the two connecting plates, an annular sliding groove is formed at the top of the ring, both the front and rear sides inside the annular sliding groove are slidably connected with annular sliders, the tops of the two annular sliders are fixedly connected with a fixing plate, the front and rear sides of the top of the fixing plate are both fixedly connected with a second motor, the bottoms of the two second motors are fixedly connected with a rotating rod, the surface of the rotating rod is fixedly connected with a fourth gear, the inner wall of the ring is fixedly connected with an annular tooth row, the lower sides of the two rotating rods are rotatably connected with a fixing block, the bottom of the fixing block is fixedly connected with a fixing seat, and the bottom of the fixing seat is fixedly connected with a long plate.

[0014] According to the above technical solution, the number of the fourth gears is two, the annular tooth row is meshed with the two fourth gears, the two fourth gears are both arranged on the tops of the two fixing blocks, when the fourth gear is meshed with the annular tooth row, the fourth gear can rotate around the annular tooth row in a circular motion.

[0015] According to the above technical solution, the installation mechanism includes slots, the number of the slots is four, the four slots are all formed in the left and right sides inside the two long plates, four slot plates are inserted into the four slots, the number of the slot plates is four and they are grouped in pairs, the bottoms of the left and right two slot plates are fixedly connected with a mounting plate, the mounting plate is arranged at the bottom of the long plate, the annular abrasive blocks are fixedly connected to the closer sides of the front and rear two mounting plates, a second T-shaped groove is formed at the top of the long plate, electric push rods are fixedly connected to both the left and right sides of the fixing seat, the other sides of the electric push rods are fixedly connected with a mounting block, the bottom of the mounting block is fixedly connected with a second T-shaped block, the second T-shaped block is slidably connected with the second T-shaped groove, the other side of the mounting block is fixedly connected with an insertion block, and a long groove is formed in each slot plate.

[0016] According to the above technical solution, both the top and bottom of the four slots are set to be open, and the second T-shaped groove is arranged between the two slots.

[0017] According to the above technical solution, both the left and right sides of the long groove are set to be open, the long groove is inserted with the insertion block, when the insertion block is inserted into the long groove, the slot plate can be fixedly inserted into the slot.

[0018] Compared with the prior art, the beneficial effects achieved by the present invention are:

[0019] In the present invention, by providing a moving component, when the moving component operates, the first motor can drive the first rotating shaft to rotate within the limiting plate. At this time, when the first rotating shaft drives the first pulley to rotate, and the first pulley is in belt transmission connection with the belt, the belt can drive the second pulley to rotate. The second pulley drives the second rotating shaft to rotate within the limiting plate. At this time, the second rotating shaft rotates in the same direction as the first rotating shaft at the rear side. When the second rotating shaft rotates, it can also drive the second gear to rotate. Since the second gear is meshed with the third gear, when the third gear rotates, it can drive the first rotating shaft at the front side to rotate. At this time, the two first rotating shafts at the front and rear can rotate in opposite directions. When the first gear is meshed with the tooth row, the first gear can move to the same side. When the first gear moves, the first gear drives the first rotating shaft, the first rotating shaft drives the first motor, and the first motor drives the connecting block, so that ceramics can be polished at different heights.

[0020] In the present invention, by providing a limiting component, when the limiting component operates, the locking block is toggled, so that the locking block rotates on one side of the hinge block until the locking block and the hinge block are in a folded state. At this time, the locking block can also drive the clamping block to be clamped in the clamping groove, so that the position and height of the annular abrasive block can be limited when polishing a certain part of the ceramic.

[0021] In the present invention, by providing a rotating mechanism, when the rotating mechanism operates, the second motor drives the rotating rod to rotate, and the rotating rod drives the fourth gear to rotate. Since the fourth gear is meshed with the annular tooth row, the fourth gear can rotate around the annular tooth row in a circular motion. When the rotating rod moves, it can also drive the fixed block, the fixed block drives the fixed seat, and the fixed seat drives the long board, so that the annular abrasive block can polish different positions on the surface of the heat-conducting ceramic.

[0022] In the present invention, by providing an installation mechanism, when the installation mechanism operates, under the operation of the electric push rod, it can drive the installation block, and the installation block drives the second T-shaped block to slide in the second T-shaped groove. At this time, the installation block can drive the insertion block to move out of the long groove. At this time, the installation plate can be directly pulled, so that the installation plate drives the groove plate to move out of the insertion slot, and the annular abrasive block can be directly replaced. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] The drawings are used to provide a further understanding of the present invention and constitute a part of the specification. They are used together with the embodiments of the present invention to explain the present invention and do not constitute a limitation to the present invention. In the drawings:

[0024] Figure 1 is the overall front structural schematic diagram of the present invention;

[0025] Figure 2 is the structural schematic diagram of the moving component of the present invention;

[0026] Figure 3 is the present inventionFigure 2 Schematic diagram of the enlarged structure at position A

[0027] Figure 4 Schematic diagram of the structure of the limit component of the present invention

[0028] Figure 5 is the present invention Figure 4 Schematic diagram of the enlarged structure at position B

[0029] Figure 6 Schematic diagram of the structure of the rotating mechanism of the present invention

[0030] Figure 7 Schematic diagram of the structure of the installation mechanism of the present invention

[0031] In the figure: 1, base; 2, placing table; 3, support column; 4, lifting mechanism; 41, moving component; 411, first T-shaped groove; 412, first T-shaped block; 413, connecting block; 414, first rotating shaft; 415, tooth row; 416, first motor; 417, first gear; 418, second rotating shaft; 419, first pulley; 4101, belt; 4102, limiting plate; 4103, second gear; 4104, third gear; 4105, limiting block; 4106, sliding rod; 4107, sliding block; 4108, second pulley; 42, limit component; 421, hinge block; 422, locking block; 423, clamping groove; 424, clamping block; 5, rotating mechanism; 51, annular slider; 52, annular sliding groove; 53, annular tooth row; 54, fixing plate; 55, second motor; 56, rotating rod; 57, fourth gear; 58, fixing block; 59, ring; 501, long plate; 502, fixing seat; 503, connecting plate; 6, installation mechanism; 61, annular abrasive block; 62, second T-shaped groove; 63, installation plate; 64, slot; 65, long slot; 66, groove plate; 67, second T-shaped block; 68, electric push rod; 69, installation block; 601, inserting block. Specific embodiments

[0032] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0033] The present invention provides the following technical solutions:

[0034] Embodiment 1

[0035] Combined with Figures 1 to 5A glaze polishing device for high thermal conductivity ceramic processing includes a base 1, support columns 3 are fixedly connected to the top of the base 1, a placing table 2 is fixedly connected to the center of the top of the base 1, and a lifting mechanism 4 is fixedly connected to the side close to the front and rear support columns 3. A rotating mechanism 5 is arranged on the lifting mechanism 4, and a mounting mechanism 6 is arranged at the bottom of the rotating mechanism 5;

[0036] The lifting mechanism 4 includes a moving component 41 and a limiting component 42. The limiting component 42 is arranged on the moving component 41. The moving component 41 includes a first T-slot 411. The first T-slot 411 is opened inside the side close to the left and right support columns 3. The four first T-slots 411 are slidably connected with the first T-block 412 inside. The first T-block 412 is fixedly connected with a connecting block 413 on one side. The two rear connecting blocks 413 are fixedly connected with the first motor 416 on the side away from each other. The first motor 416 is fixedly connected with a first rotating shaft 414 on the other side. The surface of the first rotating shaft 414 is fixedly connected with a first gear. 417, the front and rear support columns 3 are fixedly connected to the side close to each other with a tooth row 415, the surface of the first rotating shaft 414 is fixedly connected to the first pulley 419, the surface of the first pulley 419 is connected to the belt 4101, the front of the belt 4101 is connected to the second pulley 4108, the second pulley 4108 is fixedly connected to the second rotating shaft 418 at the axis, the second rotating shaft 418 is fixedly connected to the second gear 4103, the front of the second gear 4103 is meshed with the third gear 4104, the third gear 4104 is fixedly connected to the surface of the first rotating shaft 414 in front, the left and right support columns 417 are fixedly connected to the first pulley 419, the first pulley 419 is connected to the belt 4101, the front of the belt 4101 is connected to the second pulley 4108, the second rotating shaft 418 is fixedly connected to the second gear 4103, the front of the second gear 4103 is meshed with the third gear 4104, the third gear 4104 is fixedly connected to the surface of the first rotating shaft 414 in front, and the left and right support columns 417 are fixedly connected to the first pulley 419, the first pulley 419 is connected to the belt 4101, and the second pulley 4108 is connected to the second rotating shaft 418. The upper and lower ends of the side away from the support column 3 are fixedly connected to the limiting blocks 4105, a sliding rod 4106 is fixedly connected between the two limiting blocks 4105, and a sliding block 4107 is slidably connected to the surface of the sliding rod 4106, and the sliding block 4107 is fixedly connected to the limiting plate 4102 on the side away from the support column 3. The limiting plate 4102, the second rotating shaft 418 and the two first rotating shafts 414 are rotatably connected, the second gear 4103 and the third gear 4104 are four in number and are grouped in pairs, the second pulley 4108 and the first pulley 419 are two in number, and the second gear 4103 and the third gear 4104 are It is arranged on the side of the second pulley 4108 and the first pulley 419 away from the support column 3, the number of the first gear 417 and the tooth row 415 are both four, and they are grouped in pairs. The four tooth rows 415 and the four first gears 417 are meshed and connected, and the limiting assembly 42 includes a hinge block 421, and the hinge block 421 is fixedly connected to the front and rear sides of the limiting plate 4102. The inside of the side away from the front and rear support columns 3 is densely provided with card grooves 423, and the other side of the hinge block 421 is hinged with a locking block 422, and the locking block 422 is fixedly connected with a card block 424 close to the support column 3, and the card groove 423 and the card block 424 are clamped.

[0037] Further, by setting the moving component 41, when the moving component 41 operates, the first motor 416 can drive the first rotating shaft 414 to rotate within the limiting plate 4102. At this time, when the first rotating shaft 414 drives the first pulley 419 to rotate, and the first pulley 419 is in transmission connection with the belt 4101, the belt 4101 can drive the second pulley 4108 to rotate. The second pulley 4108 drives the second rotating shaft 418 to rotate within the limiting plate 4102. At this time, the second rotating shaft 418 rotates in the same direction as the first rotating shaft 414 at the rear side. When the second rotating shaft 418 rotates, it can also drive the second gear 4103 to rotate. Since the second gear 4103 is meshed and connected with the third gear 4104, when the third gear 4104 rotates, it can drive the first rotating shaft 414 at the front side to rotate. At this time, the two first rotating shafts 414 at the front and rear can rotate in opposite directions. When the first gear 417 is meshed and connected with the tooth row 415, the first gear 417 can move in the same side direction. When the first gear 417 moves, the first gear 417 drives the first rotating shaft 414, the first rotating shaft 414 drives the first motor 416, and the first motor 416 drives the connecting block 413, which can polish ceramics at different heights. By setting the limiting component 42, when the limiting component 42 operates, it toggles the locking block 422, causing the locking block 422 to rotate on one side of the hinge block 421 until the locking block 422 and the hinge block 421 are in a folded state. At this time, the locking block 422 can also drive the clamping block 424 to be clamped in the clamping groove 423, enabling the position height of the annular abrasive block 61 to be limited when polishing a certain part of the ceramic.

[0038] Embodiment 2

[0039] Refer to Figures 1 - 6 and, on the basis of Embodiment 1, further obtain that the rotating mechanism 5 includes a connecting plate 503, the connecting plate 503 is fixedly connected between the left and right two connecting blocks 413. The number of the connecting plates 503 is two. A circular ring 59 is fixedly connected between the two connecting plates 503. An annular sliding groove 52 is formed at the top of the circular ring 59. Both the front and rear sides inside the annular sliding groove 52 are slidably connected with annular sliders 51. The tops of the two annular sliders 51 are fixedly connected with a fixing plate 54. Both the front and rear sides of the top of the fixing plate 54 are fixedly connected with second motors 55. The bottoms of the two second motors 55 are fixedly connected with a rotating rod 56. The surface of the rotating rod 56 is fixedly connected with a fourth gear 57. The inner wall of the circular ring 59 is fixedly connected with an annular tooth row 53. The lower sides of the two rotating rods 56 are rotatably connected with fixing blocks 58. The bottoms of the fixing blocks 58 are fixedly connected with a fixing seat 502. The bottom of the fixing seat 502 is fixedly connected with a long plate 501. The number of the fourth gears 57 is two. The annular tooth row 53 is meshed and connected with the two fourth gears 57. Both of the two fourth gears 57 are arranged on the tops of the two fixing blocks 58.

[0040] Further, by setting the rotating mechanism 5, when the rotating mechanism 5 operates, the second motor 55 drives the rotating rod 56 to rotate, and the rotating rod 56 drives the fourth gear 57 to rotate. Since the fourth gear 57 is meshed with the annular tooth row 53, the fourth gear 57 can rotate around the annular tooth row 53 in a circular motion. When the rotating rod 56 moves, it can also drive the fixed block 58, the fixed block 58 drives the fixed seat 502, and the fixed seat 502 drives the long plate 501, so that the annular abrasive block 61 can polish different positions on the surface of the heat-conducting ceramic.

[0041] Embodiment 3

[0042] Refer to Figures 1 - 7 , and on the basis of Embodiment 1, the installation mechanism 6 is further obtained. The installation mechanism 6 includes a slot 64. The number of slots 64 is four, and the four slots 64 are all opened on the left and right sides inside the two long plates 501. A slot plate 66 is inserted into the four slots 64. The number of slot plates 66 is four and they are grouped in pairs. The bottom of the left and right two slot plates 66 is fixedly connected with an installation plate 63. The installation plate 63 is arranged at the bottom of the long plate 501. The annular abrasive block 61 is fixedly connected to the side where the front and rear two installation plates 63 are close to each other. A second T-shaped groove 62 is opened at the top of the long plate 501. Electric push rods 68 are fixedly connected to both the left and right sides of the fixed seat 502. The other side of the electric push rod 68 is fixedly connected with an installation block 69. The bottom of the installation block 69 is fixedly connected with a second T-shaped block 67. The second T-shaped block 67 is slidably connected with the second T-shaped groove 62. The other side of the installation block 69 is fixedly connected with an insertion block 601. A long groove 65 is opened inside each slot plate 66. The top and bottom of the four slots 64 are both set to be open. The second T-shaped groove 62 is arranged between the two slots 64. Both the left and right sides of the long groove 65 are set to be open. The long groove 65 is inserted with the insertion block 601.

[0043] Further, by setting the installation mechanism 6, when the installation mechanism 6 operates, when the electric push rod 68 operates, it can drive the installation block 69. The installation block 69 drives the second T-shaped block 67 to slide in the second T-shaped groove 62. At this time, the installation block 69 can drive the insertion block 601 to move out of the long groove 65. At this time, the installation plate 63 can be directly pulled, so that the installation plate 63 drives the slot plate 66 to move out of the slot 64, and the annular abrasive block 61 can be directly replaced.

[0044] In the actual operation process, when this device is in use and it is necessary to polish different positions on the upper and lower surfaces of the heat-conducting ceramic, the heat-conducting ceramic is placed on the placing table 2 at this time. When the first motor 416 is started, the first motor 416 can drive the first rotating shaft 414 to rotate within the limiting plate 4102. When the first rotating shaft 414 drives the first pulley 419 to rotate, when the first pulley 419 is in transmission connection with the belt 4101, the belt 4101 can drive the second pulley 4108 to rotate. At this time, the first pulley 419 and the second pulley 4108 rotate in the same direction. The second pulley 4108 drives the second rotating shaft 418 to rotate within the limiting plate 4102. At this time, the second rotating shaft 418 rotates in the same direction as the first rotating shaft 414 at the rear side. When the second rotating shaft 418 rotates, it can also drive the second gear 4103 to rotate. Since the second gear 4103 is meshed with the third gear 4104, the second gear 4103 and the third gear 4104 rotate in opposite directions. When the third gear 4104 rotates, it can drive the first rotating shaft 414 at the front side to rotate. At this time, the two first rotating shafts 414 at the front and rear can rotate in opposite directions. When the two first rotating shafts 414 rotate, the two first rotating shafts 414 can drive the two first gears 417 to rotate. Since the first gear 417 is meshed with the tooth row 415, the two first gears 417 at the front and rear can move on the two tooth rows 415 to the same side. When the first gear 417 moves, the first gear 417 drives the first rotating shaft 414, the first rotating shaft 414 drives the limiting plate 4102 to move. At this time, the limiting plate 4102 can also drive the sliding block 4107 to slide on the surface of the sliding rod 4106. At the same time, the movement of the first rotating shaft 414 can also drive the first motor 416, the first motor 416 drives the connecting block 413, and the connecting block 413 drives the first T-shaped block 412 to slide in the first T-shaped groove 411. When it is necessary to limit and fix the position of the connecting block 413, the locking block 422 can be toggled so that the locking block 422 rotates on one side of the hinge block 421 until the locking block 422 and the hinge block 421 are in a folded state. At this time, the locking block 422 can also drive the clamping block 424 to be clamped in the clamping groove 423;

[0045] When polishing different positions on the surface of the heat-conducting ceramic, the second motor 55 can be started at this time. When the second motor 55 operates, it can drive the rotating rod 56 to rotate, and the rotating rod 56 can also drive the fourth gear 57 to rotate. Since the fourth gear 57 is meshed with the annular tooth row 53, the fourth gear 57 can rotate around the annular tooth row 53 in a circular motion. When the fourth gear 57 rotates, it can drive the rotating rod 56, the rotating rod 56 drives the fixing plate 54, and the fixing plate 54 drives the annular slider 51 to slide in the annular chute 52. At the same time, when the rotating rod 56 moves, it can also drive the fixing block 58, the fixing block 58 drives the fixing seat 502, and the fixing seat 502 drives the long plate 501, so that the annular grinding block 61 can polish different positions on the surface of the heat-conducting ceramic;

[0046] When the outer diameters of the heat-conducting ceramics are inconsistent, the annular grinding block 61 needs to be replaced. At this time, the electric push rod 68 can be started. When the electric push rod 68 operates, it can drive the mounting block 69, and the mounting block 69 drives the second T-shaped block 67 to slide in the second T-shaped groove 62. At this time, the mounting block 69 can drive the plug 601 to move out of the long groove 65. At this time, the mounting plate 63 can be directly pulled, so that the mounting plate 63 drives the groove plate 66 to move out of the slot 64, and the annular grinding block 61 can be directly replaced.

[0047] It should be noted that in this article, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the term "comprising", "including" or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements not only includes those elements, but also includes other elements not expressly listed, or elements inherent to such process, method, article or device.

[0048] Finally, it should be noted that the above are only preferred embodiments of the present invention and are not used to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements for some of the technical features. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.

Claims

1. A glaze polishing device for high - thermal - conductivity ceramic processing, comprising a base (1), characterized in that: Around the top of the base (1), support columns (3) are fixedly connected. At the center of the top of the base (1), a placement table (2) is fixedly connected. On the closer sides of the front and rear support columns (3), a lifting mechanism (4) is fixedly connected. A rotating mechanism (5) is arranged on the lifting mechanism (4), and an installation mechanism (6) is arranged at the bottom of the rotating mechanism (5). The lifting mechanism (4) includes a moving component (41) and a limiting component (42), and the limiting component (42) is arranged on the moving component (41). The moving component (41) includes a first T-shaped groove (411). The first T-shaped groove (411) is opened inside the closer sides of the left and right support columns (3). Inside the four first T-shaped grooves (411), a first T-shaped block (412) is slidably connected. On one side of the first T-shaped block (412), a connecting block (413) is fixedly connected. On the farther sides of the rear two connecting blocks (413), a first motor (416) is fixedly connected. On the other side of the first motor (416), a first rotating shaft (414) is fixedly connected. On the surface of the first rotating shaft (414), a first gear (417) is fixedly connected. On the closer sides of the front and rear support columns (3), a tooth row (415) is fixedly connected. On the surface of the first rotating shaft (414), a first pulley (419) is fixedly connected. The surface of the first pulley (419) is drivingly connected with a belt (4101). Inside the front of the belt (4101), a second pulley (4108) is drivingly connected. At the axis center of the second pulley (4108), a second rotating shaft (418) is fixedly connected. On the surface of the second rotating shaft (418), a second gear (4103) is fixedly connected. The second gear (4103) is meshingly connected with a third gear (4104) on the front side. The third gear (4104) is fixedly connected to the surface of the front first rotating shaft (414). At the upper and lower ends of the farther sides of the left and right support columns (3), a limiting block (4105) is fixedly connected. Between the two limiting blocks (4105), a sliding rod (4106) is fixedly connected. On the surface of the sliding rod (4106), a sliding block (4107) is slidably connected. On the side of the sliding block (4107) away from the support column (3), a limiting plate (4102) is fixedly connected. The limiting plate (4102), the second rotating shaft (418), and the two first rotating shafts (414) are rotationally connected. The number of the second gears (4103) and the third gears (4104) is four and they are grouped in pairs. The number of the second pulleys (4108) and the first pulleys (419) is two. The second gears (4103) and the third gears (4104) are arranged on the side of the second pulleys (4108) and the first pulleys (419) away from the support columns (3). The number of the first gears (417) and the tooth rows (415) is four and they are grouped in pairs. The four tooth rows (415) and the four first gears (417) are meshingly connected. The limiting component (42) includes a hinge block (421), the hinge block (421) is fixedly connected to the front and rear sides of the limiting plate (4102), card slots (423) are densely formed inside the inner sides of the two support columns (3) away from each other, a locking block (422) is hinged to the other side of the hinge block (421), a clamping block (424) is fixedly connected to the side of the locking block (422) close to the support column (3), and the card slot (423) and the clamping block (424) are clamped together; The rotating mechanism (5) includes a connecting plate (503), the connecting plate (503) is fixedly connected between the two left and right connecting blocks (413), the number of the connecting plates (503) is two, a ring (59) is fixedly connected between the two connecting plates (503), an annular sliding groove (52) is formed at the top of the ring (59), annular sliding blocks (51) are slidably connected to the front and rear sides inside the annular sliding groove (52), a fixing plate (54) is fixedly connected to the tops of the two annular sliding blocks (51), second motors (55) are fixedly connected to the front and rear sides of the top of the fixing plate (54), a rotating rod (56) is fixedly connected to the bottom of the two second motors (55), a fourth gear (57) is fixedly connected to the surface of the rotating rod (56), an annular tooth row (53) is fixedly connected to the inner wall of the ring (59), the lower sides of the two rotating rods (56) are rotatably connected to a fixing block (58), a fixing seat (502) is fixedly connected to the bottom of the fixing block (58), and a long plate (501) is fixedly connected to the bottom of the fixing seat (502); The installation mechanism (6) includes slots (64), the number of the slots (64) is four, the four slots (64) are all formed in the left and right sides inside the two long plates (501), a slot plate (66) is inserted into the four slots (64), the number of the slot plates (66) is four and they are grouped in pairs, mounting plates (63) are fixedly connected to the bottoms of the two left and right slot plates (66), the mounting plates (63) are arranged at the bottoms of the long plates (501), annular abrasive blocks (61) are fixedly connected to the sides of the two front and rear mounting plates (63) close to each other, a second T-shaped groove (62) is formed at the top of the long plate (501), electric push rods (68) are fixedly connected to the left and right sides of the fixing seat (502), a mounting block (69) is fixedly connected to the other side of the electric push rod (68), a second T-shaped block (67) is fixedly connected to the bottom of the mounting block (69), the second T-shaped block (67) is slidably connected to the second T-shaped groove (62), an inserting block (601) is fixedly connected to the other side of the mounting block (69), and a long groove (65) is formed inside each slot plate (66).

2. The glaze polishing device for high - thermal - conductivity ceramic processing according to claim 1, wherein: The number of the fourth gears (57) is two, the annular tooth row (53) is meshed with the two fourth gears (57), and the two fourth gears (57) are both arranged on the tops of the two fixing blocks (58).

Citation Information

Patent Citations

  • Glaze polishing device for ceramic processing

    CN213917678U

  • Grinding head suitable for ceramic polishing

    CN216802995U

  • Polishing machine for ceramic machining

    CN218082096U