Glaze pouring machine for processing cylindrical head porcelain insulator
By designing a glaze paint machine for cylindrical insulator processing with heating and multi-directional stirring functions, the problem of uneven glaze layer distribution during the glaze paint process of porcelain insulators is solved, and uniform mixing of glaze liquid and improving product performance are achieved.
Patent Information
- Application Number
- CN202510632735.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-16
- Publication Date
- 2025-06-27
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
In the prior art, the glaze layer is unevenly distributed due to uneven mixing of the glaze liquid during the glaze coating process, which affects product performance.
A glaze paint machine for processing cylindrical head porcelain insulators is designed, using a rotating shaft to drive the stirring block for stirring, and the glaze liquid is heated through a heating tube, combined with the cooperation of the threaded sleeve, connecting rod and sleeve, the up and down movement of the stirring plate is achieved and the stirring range is expanded. At the same time, by flipping the assembly and breaking the assembly, flipping and breaking the precipitated particles in the storage tank, ensuring uniform mixing of the glaze liquid.
Through heating and multi-directional stirring, the mixing effect of the glaze liquid is significantly improved, ensuring the uniform distribution of the glaze layer on the porcelain insulator, and improving product performance.
Smart Images

Figure CN120221201A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of cylindrical head porcelain insulator processing, and specifically provides a glaze spraying machine for processing cylindrical head porcelain insulators. Background Art
[0002] An insulator is a special insulating control component that plays an important role in overhead transmission lines. In the early years, insulators were mostly used on telegraph poles. Gradually, many disc-shaped insulators are hung at one end of the high-voltage wire connection tower of high-type high-voltage electricity. It is used to increase the creepage distance and is usually made of glass or ceramic, which is called an insulator. The insulator should not fail due to various mechanical and electrical stresses caused by changes in environmental and electrical load conditions. Otherwise, the insulator will not play a significant role and will damage the service and operation life of the entire line. When the insulator is produced and processed, it needs to be subjected to glaze spraying treatment.
[0003] According to a disclosed glaze spraying machine for processing rod-shaped post porcelain insulators (Publication No.: CN218069498U), the above application includes a cabinet body. A protective cover is fixedly installed on the top of the cabinet body, and an electric slide rail is arranged at the rear side inside the protective cover. An installation plate is arranged on the electric slide rail, and a rotating motor is fixedly installed on the back of the installation plate. A positioning plate is arranged at the output end of the rotating motor, and a support rod is arranged on the front surface of the positioning plate. An electric push rod is arranged on the top of the protective cover, and a spray head is arranged at the output end of the electric push rod. A collection box is arranged on the front side of the electric slide rail. Drying nozzles are arranged above both sides inside the protective cover, and pipelines are arranged on the drying nozzles. A storage tank is arranged inside the cabinet body, and a water pump is arranged above the storage tank. A dryer is arranged on one side of the water pump, and a PLC controller is arranged on the other side of the water pump; and this device can stir and mix the glaze liquid in the storage tank by starting the stirring motor to drive the stirring rod to rotate.
[0004] When the glaze spraying machine stirs the glaze liquid in the storage tank through the stirring rod, the stirring of this device is only a single rotation and agitation through the stirring rod. However, when the glaze liquid is placed for a long time, it may cause the solid particles in the glaze liquid to agglomerate. By using the stirring rod alone for stirring, the stirring range is limited, and the agglomerated solid particles cannot be evenly mixed with the glaze liquid. When performing the glaze spraying operation on the porcelain insulator, it will cause the glaze layer to be unevenly distributed on the insulator, affecting the performance of the product. Summary of the Invention
[0005] Aiming at the deficiencies of the prior art, the present invention provides a glaze spraying machine for processing cylindrical head porcelain insulators, which solves the problems raised in the above background art.
[0006] To achieve the above objectives, the present invention is realized through the following technical solutions: A glaze spraying machine for processing cylindrical head ceramic insulators, comprising a cabinet body. A positioning component is arranged inside the cabinet body. A storage tank is placed on the inner wall of the cabinet body. A pump body is detachably installed on the side wall of the cabinet body. One end of the pump body is fixed with a connecting pipe, and the other end of the pump body is fixed with a pipeline. The end of the connecting pipe away from the pump body is fixed on the outer wall of the storage tank. The end of the pipeline away from the pump body is fixed with a spray head. By starting the pump body, the glaze liquid in the storage tank can be sucked out from the connecting pipe and sprayed out from the spray head through the pipeline, so as to perform glaze spraying operation on the cylindrical head ceramic insulators. The spray head is detachably installed on the inner wall of the cabinet body. A motor is fixed on the top of the storage tank. The output end of the motor is fixed with a rotating shaft. Stirring blocks are fixed on the outer wall of the rotating shaft. By starting the motor, the rotating shaft can be rotated, thereby driving the stirring blocks to rotate in the storage tank to stir and mix the glaze liquid in the storage tank. A mixing component for fully mixing the caked glaze liquid in the storage tank is arranged on the storage tank, and also includes a turning component and a dispersing component for turning the bottom sediment; wherein, the mixing component includes a heating pipe, a sleeve, a threaded sleeve, a guiding block, a connecting rod, a stirring plate, a rotating column, a rotating plate, an arc-shaped groove, a pressing block, a connecting block and a connecting spring; The heating pipe is fixed inside the storage tank. The outer wall of the rotating shaft is fitted with a sleeve. The stirring block penetrates through the sleeve and the penetration part is fitted. A reciprocating thread groove is formed on the outer wall of the top of the rotating shaft. The threaded sleeve is externally threaded to the reciprocating thread groove. The guiding block is fixed on the inner wall of the storage tank. The threaded sleeve is slidably installed on the outer wall of the guiding block. The connecting rod is fixed on the top of the sleeve. The top of the connecting rod is slidably connected to the bottom of the threaded sleeve. When the stirring block rotates, the stirring block can drive the sleeve to rotate, thereby driving the stirring plate to rotate. And when the rotating shaft rotates, the reciprocating thread groove on the rotating shaft can drive the threaded sleeve to move up and down back and forth, thereby enabling the connecting rod to drive the sleeve and the stirring plate to move up and down back and forth.
[0007] According to the above technical solution, a rotating column penetrates through the stirring block and the penetration part is fitted. An arc-shaped groove is formed on the outer wall of the rotating column. A pressing block is fixed on the inner wall of the stirring block. The end of the pressing block is fitted with the inner wall of the arc-shaped groove. A rotating plate is fixed on the outer wall of the rotating column.
[0008] According to the above technical solution, the top of the rotating column is rotatably connected to the bottom of the connecting block. The connecting block penetrates the outer wall of the sleeve, and the penetration part is in fit. A connecting spring is fixed to the bottom of the connecting block, and the bottom of the connecting spring is fixed to the top of the stirring block. When the sleeve moves downward, it will cause the inner side of the sleeve to squeeze the top of the connecting block, so that the rotating column moves downward in the stirring block, and the inner wall of the arc-shaped groove will be squeezed against the outer wall of the end of the extrusion block, enabling the rotating column to rotate. When the rotating column rotates, it will cause the rotating plate to rotate, thereby being able to spread the glaze liquid in the middle position outward.
[0009] According to the above technical solution, the turning assembly includes a fixed sleeve, a steel wire rope, a transmission spring, a sleeve rod, a knocking block, a rolling wheel, a connecting rod and a turning plate; the fixed sleeve is fixed to the outer wall of the rotating shaft, and the sleeve rod is slidably installed on the inner wall of the fixed sleeve. A steel wire rope is fixed to the outer wall of the sleeve rod, and the end of the steel wire rope away from the sleeve rod is fixed to the bottom of the sleeve.
[0010] According to the above technical solution, a transmission spring is fixed to one end of the sleeve rod, and a knocking block is fixed to the other end of the sleeve rod. The side of the transmission spring away from the sleeve rod is fixed to the inner wall of the fixed sleeve. When the sleeve moves downward, it will cause the steel wire rope to become slack. Because the transmission spring is in a compressed state, the sleeve rod will move towards the outer wall of the sleeve, enabling the knocking block to knock on the inner wall of the storage tank.
[0011] According to the above technical solution, a connecting rod is fixed to the side wall of the fixed sleeve, and a rolling wheel is slidably installed at the end of the connecting rod away from the fixed sleeve. The bottom of the rolling wheel is in fit with the bottom of the inner wall of the storage tank. There are two groups of rolling wheels, and the two groups of rolling wheels are symmetrically arranged with the center line in the vertical direction of the rotating shaft as the axis of symmetry. A turning plate is fixed to the side wall of the rolling wheel. When the rotating shaft rotates, it can drive the fixed sleeve and the sleeve rod to rotate, so that the rolling wheel rotates on the bottom of the inner wall of the storage tank. Due to the friction force, when the rolling wheel rotates on the inner wall of the storage tank, it can drive the rolling wheel to rotate self - rotatably, driving the turning plate to rotate, and turning up the fixed particles precipitated at the bottom of the storage tank.
[0012] According to the above technical solution, the dispersing assembly includes a moving block, a dispersing block, a round block, a return spring, a disc and a chute. The moving block penetrates through the rolling wheel, and the penetration part is in sliding connection. A return spring is fixed to the side wall of the rolling wheel, and the side of the return spring away from the rolling wheel is fixed to a disc. The side wall of the disc is in fit with the side wall of the knocking block.
[0013] According to the above technical solution, a dispersing block is rotatably installed on the side wall of the turning plate. A sliding groove is formed on the side of the dispersing block close to the turning plate. A round block is fixed on the side wall of the moving block, and the outer wall of the round block fits with the inner wall of the sliding groove. When the knocking block moves back and forth, the disc can be squeezed. Through the moving block, the round block can be driven to move back and forth in the sliding groove of the dispersing block, so that the dispersing block can swing on the turning plate.
[0014] The present invention provides a glaze spraying machine for processing cylindrical head ceramic insulators. It has the following beneficial effects:
[0015] (1) In the present invention, when the rotating shaft rotates to drive the stirring block to stir, the heating tube is started to heat the glaze liquid in the storage tank through the heating tube, which can improve the mixing effect. And through the cooperation of the threaded sleeve, the connecting rod and the sleeve, the sleeve can drive the stirring plate to move up and down, increasing the stirring range and making the stirring effect better; when the sleeve moves downward, through the cooperation of the connecting block, the connecting spring, the extrusion block and the arc-shaped groove, the rotating column can drive the rotating plate to rotate at the middle position of the storage tank, enabling the glaze liquid in the middle of the storage tank to spread outwards, so that the glaze liquid in the storage tank can be evenly heated by the heating tube, further improving the mixing effect.
[0016] (2) In the present invention, when the sleeve moves up and down back and forth, through the cooperation of the steel rope, the sleeve rod, the transmission spring and the fixed sleeve, the knocking block can knock the inner wall of the storage tank back and forth, so that the solid particles in the glaze liquid attached to the inner wall of the storage tank can be knocked off, preventing a large amount of solid particles from adhering to the inner wall of the storage tank. When heating the glaze liquid in the storage tank, a heat insulation layer will be formed, hindering the heat from being transferred from the heating tube to the glaze liquid, resulting in a reduction in the heat conduction efficiency and a decrease in the heating and mixing efficiency of the glaze liquid; and when the rotating shaft drives the fixed sleeve to rotate, through the cooperation of the rolling wheel and the connecting rod, the turning plate can turn the sediment particles at the bottom of the inner wall of the storage tank, turning the sediment particles at the bottom upwards, so as to make the mixing effect of the glaze liquid better.
[0017] (3) In the present invention, when the turning plate is turning, through the back-and-forth movement of the knocking block, through the cooperation of the disc, the return spring, the moving block and the round block, the round block can move back and forth in the sliding groove formed on the side wall of the dispersing block, so that the dispersing block can swing back and forth on the side wall of the turning plate, enabling the dispersing block to break up the sediment particles agglomerated by the turning of the turning plate, further facilitating the subsequent mixing operation of the glaze liquid. Description of the Drawings
[0018] Figure 1 It is a schematic diagram of the overall structure of the present invention;
[0019] Figure 2 It is a schematic diagram of a structure of the overall present invention;
[0020] Figure 3 Schematic cross-sectional structure diagram of the storage tank of the present invention;
[0021] Figure 4 Schematic structure diagram inside the storage tank of the present invention;
[0022] Figure 5 Schematic diagram of partial structure inside the storage tank of the present invention;
[0023] Figure 6 Schematic diagram of partial structure of the mixing component of the present invention;
[0024] Figure 7 Schematic diagram of partial structure of the turning component and the dispersing component of the present invention;
[0025] Figure 8 Schematic structure diagram of the dispersing component of the present invention.
[0026] In the figure: 1, cabinet body; 2, positioning component; 3, storage tank; 4, pump body; 5, connecting pipe; 6, pipeline; 7, nozzle; 8, motor; 9, rotating shaft; 10, stirring block; 11, heating pipe; 12, threaded sleeve; 13, guiding block; 14, connecting rod; 15, sleeve; 16, stirring plate; 17, rotating column; 18, connecting block; 19, connecting spring; 20, rotating plate; 21, arc groove; 22, extrusion block; 231, fixed sleeve; 232, steel wire rope; 233, sleeve rod; 234, transmission spring; 235, knocking block; 236, connecting rod; 237, rolling wheel; 238, turning plate; 241, moving block; 242, disc; 243, return spring; 244, dispersing block; 245, sliding groove; 246, round block. Detailed implementation manners
[0027] 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 making creative efforts belong to the protection scope of the present invention.
[0028] Please refer to Figures 1 - 8, an embodiment of the present invention is: a glaze spraying machine for processing cylindrical head ceramic insulators, including a cabinet body 1. Inside the cabinet body 1, a positioning component 2 is provided. The positioning component 2 includes a support plate, a driving motor, a rotating rod, and a fixing column. The support plate is fixed inside the cabinet body 1. A driving motor is fixed on the side wall of the support plate. The output end of the driving motor is fixed with a rotating rod, and a fixing column is fixed on the outer wall of the rotating rod. When glazing the cylindrical head ceramic insulator, fix the cylindrical head ceramic insulator on the fixing column, and by starting the driving motor, the rotating rod drives the fixing column and the cylindrical head ceramic insulator to rotate for comprehensive glazing operation. A storage tank 3 is placed on the inner wall of the cabinet body 1. A pump body 4 is detachably installed on the side wall of the cabinet body 1. One end of the pump body 4 is fixed with a connecting pipe 5, and the other end of the pump body 4 is fixed with a pipeline 6. The end of the connecting pipe 5 away from the pump body 4 is fixed on the outer wall of the storage tank 3. The end of the pipeline 6 away from the pump body 4 is fixed with a spray head 7, and the spray head 7 is detachably installed on the inner wall of the cabinet body 1. A motor 8 is fixed on the top of the storage tank 3. The output end of the motor 8 is fixed with a rotating shaft 9, and a stirring block 10 is fixed on the outer wall of the rotating shaft 9. A mixing component is provided on the storage tank 3 to fully mix the agglomerated glaze liquid in the storage tank 3; wherein, the mixing component includes a heating pipe 11, a sleeve 15, a threaded sleeve 12, a guiding block 13, a connecting rod 14, a stirring plate 16, a rotating column 17, a rotating plate 20, an arc-shaped groove 21, an extrusion block 22, a connecting block 18, and a connecting spring 19; the heating pipe 11 is fixed inside the storage tank 3. The outer wall of the rotating shaft 9 is attached to the sleeve 15. The stirring block 10 penetrates through the sleeve 15, and the penetration part is in contact. A reciprocating thread groove is opened on the top outer wall of the rotating shaft 9. The threaded sleeve 12 is externally threaded to the reciprocating thread groove. The guiding block 13 is fixed on the inner wall of the storage tank 3. The threaded sleeve 12 is slidably installed on the outer wall of the guiding block 13. The top of the sleeve 15 is fixed with the connecting rod 14, and the top of the connecting rod 14 is slidably connected to the bottom of the threaded sleeve 12. The rotating column 17 penetrates through the stirring block 10, and the penetration part is in contact. An arc-shaped groove 21 is opened on the outer wall of the rotating column 17. The inner wall of the stirring block 10 is fixed with the extrusion block 22, and the end of the extrusion block 22 is in contact with the inner wall of the arc-shaped groove 21. The outer wall of the rotating column 17 is fixed with the rotating plate 20. The top of the rotating column 17 is rotatably connected to the bottom of the connecting block 18. The connecting block 18 penetrates through the outer wall of the sleeve 15, and the penetration part is in contact. The bottom of the connecting block 18 is fixed with the connecting spring 19, and the bottom of the connecting spring 19 is fixed on the top of the stirring block 10.
[0029] Since a reciprocating thread groove is opened on the top outer wall of the rotating shaft 9, and when the rotating shaft 9 rotates, through the guiding of the guiding block 13 to the threaded sleeve 12, the threaded sleeve 12 can move back and forth in the reciprocating thread groove on the rotating shaft 9. Thus, through the cooperation of the connecting rod 14 and the sleeve 15, the stirring plate 16 can move back and forth inside the storage tank 3, improving the stirring range and making the stirring effect better.
[0030] Since the outer wall of the rotating column 17 is provided with an arc-shaped groove 21, when the sleeve 15 moves downward to squeeze the connecting block 18, the connecting block 18 will move closer to the stirring block 10, so that the arc-shaped groove 21 will move on the extrusion block 22. Due to the extrusion force on the arc-shaped groove 21, it can make the rotating column 17 drive the rotating plate 20 to rotate, enabling the glaze liquid in the middle of the storage tank 3 to spread outward, so that the glaze liquid in the storage tank 3 can be evenly heated by the heating pipe 11, further improving the mixing effect.
[0031] When this embodiment works: When glazing operation is required, first start the motor 8 to make the rotating shaft 9 rotate, and the rotating shaft 9 drives the stirring block 10 to rotate to stir and mix the glaze liquid in the storage tank 3. While stirring, start the heating pipe 11 to heat the glaze liquid in the storage tank 3, making the mixing effect better and the efficiency faster. And when the rotating shaft 9 rotates, the stirring block 10 will squeeze the sleeve 15 to rotate, so that the sleeve 15 can drive the stirring plate 16 to rotate. When the reciprocating thread groove on the outer wall of the rotating shaft 9 rotates, it can drive the thread sleeve 12 to move up and down. Since the sleeve 15 rotates, the connecting rod 14 will make a circular motion at the bottom of the thread sleeve 12. When the thread sleeve 12 moves downward, it can push the connecting rod 14 downward, making the sleeve 15 drive the stirring plate 16 to move downward. When the reciprocating thread groove drives the thread sleeve 12 to move upward, the connecting rod 14 will drive the sleeve 15 to move upward, so that the stirring plate 16 can move upward. When the rotating shaft 9 rotates, it can make the stirring plate 16 move back and forth in the storage tank 3, improving the stirring range of the glaze liquid; when the sleeve 15 moves downward, when the inner side of the sleeve 15 moves to contact the top of the connecting block 18, when the sleeve 15 continues to move downward, it will squeeze the connecting block 18, making the connecting block 18 move closer to the stirring block 10, compressing the connecting spring 19. When the connecting block 18 moves downward, it can drive the rotating column 17 to move downward, so that the arc-shaped groove 21 will move in the extrusion block 22. Due to the extrusion force exerted by the extrusion block 22 on the arc-shaped groove 21, the arc-shaped groove 21 will move along the track on the extrusion block 22, so that the rotating column 17 rotates at the bottom of the connecting block 18, driving the rotating plate 20 to rotate. When the sleeve 15 moves upward, the inner side of the sleeve 15 will not squeeze the connecting block 18. Since the connecting spring 19 is in a compressed state, it can drive the connecting block 18 and the rotating column 17 to return to their original positions upward. And when the rotating plate 20 rotates in the middle of the storage tank 3, the glaze liquid in the middle of the storage tank 3 spreads outward, so that the glaze liquid in the storage tank 3 can be evenly heated by the heating pipe 11;
[0032] After the glaze liquid is mixed well, fix the cylindrical porcelain insulator on the fixed column. By starting the pump body 4, the mixed glaze liquid in the storage tank 3 can be sucked out, and through the pipeline 6, the glaze liquid is sprayed out from the nozzle 7, so that the glaze spraying operation can be carried out.
[0033] Please refer to Figures 1 - 8 , on the basis of the above embodiment, in another embodiment of the present invention, it further includes a turning component and a dispersing component for turning the bottom sediment. The turning component includes a fixed sleeve 231, a steel wire rope 232, a transmission spring 234, a sleeve rod 233, a knocking block 235, a rolling wheel 237, a connecting rod 236 and a turning plate 238; the fixed sleeve 231 is fixed on the outer wall of the rotating shaft 9, the inner wall of the fixed sleeve 231 is slidably installed with the sleeve rod 233, the outer wall of the sleeve rod 233 is fixed with the steel wire rope 232, and one end of the steel wire rope 232 away from the sleeve rod 233 is fixed at the bottom of the sleeve 15. One end of the sleeve rod 233 is fixed with the transmission spring 234, the other end of the sleeve rod 233 is fixed with the knocking block 235, the side of the transmission spring 234 away from the sleeve rod 233 is fixed on the inner wall of the fixed sleeve 231, the side wall of the fixed sleeve 231 is fixed with the connecting rod 236, and the end of the connecting rod 236 away from the fixed sleeve 231 is slidably installed with the rolling wheel 237. The bottom of the rolling wheel 237 is attached to the inner wall bottom of the storage tank 3. There are two groups of rolling wheels 237, and the two groups of rolling wheels 237 are symmetrically arranged with the central axis in the vertical direction of the rotating shaft 9 as the axis of symmetry. The side wall of the rolling wheel 237 is fixed with the turning plate 238.
[0034] There are two groups of knocking blocks 235, and the two groups of knocking blocks 235 are symmetrically arranged with the central axis in the vertical direction of the rotating shaft 9 as the axis of symmetry. By setting the two groups of knocking blocks 235, the inner wall of the storage tank 3 can be knocked back and forth, so that the solid particles attached to the inner wall of the storage tank 3 can be knocked off, preventing a large amount of solid particles in the glaze liquid from adhering to the inner wall of the storage tank 3. When the glaze liquid in the storage tank 3 is heated, a heat insulation layer will be formed, hindering the heat from being transferred from the heating pipe 11 to the glaze liquid, resulting in a reduction in the heat conduction efficiency and a reduction in the mixing efficiency of the glaze liquid.
[0035] By moving the rolling wheel 237 at the inner wall bottom of the storage tank 3, the rolling wheel 237 can rotate due to the friction force, and the rolling wheel 237 drives the turning plate 238 to rotate on the inner wall of the storage tank 3, turning the sediment particles at the bottom upwards, so that the mixing effect of the glaze liquid can be better.
[0036] The disassembling component includes a moving block 241, a disassembling block 244, a circular block 246, a return spring 243, a disc 242 and a chute 245. The moving block 241 passes through the rolling wheel 237, and the passing part is in sliding connection. The side wall of the rolling wheel 237 is fixed with the return spring 243. The side of the return spring 243 away from the rolling wheel 237 is fixed with the disc 242. The side wall of the disc 242 is attached to the side wall of the knocking block 235. The disassembling block 244 is rotatably installed on the side wall of the turning plate 238. A chute 245 is opened on the side of the disassembling block 244 close to the turning plate 238. The side wall of the moving block 241 is fixed with the circular block 246. The outer wall of the circular block 246 is attached to the inner wall of the chute 245.
[0037] Multiple groups of disassembling blocks 244 are provided and are arranged in a linear array on the side wall of the turning plate 238. Through the swinging of the disassembling blocks 244, the disassembling blocks 244 can disassemble the precipitated particles agglomerated by turning up the turning plate 238, further facilitating the subsequent mixing operation of the glaze liquid.
[0038] When this embodiment works: when the sleeve 15 moves downward, the steel rope 232 can be relaxed. Since the transmission spring 234 is in a compressed state, the transmission spring 234 can drive the sleeve rod 233 to move out of the fixed sleeve 231, so that the knocking block 235 can knock on the inner wall of the storage tank 3. When the sleeve 15 moves upward, the sleeve 15 can pull the steel rope 232, so that the steel rope 232 pulls the sleeve rod 233 to move into the fixed sleeve 231, compressing the transmission spring 234 and making the knocking block 235 away from the inner wall of the storage tank 3 for the next knocking operation. By the knocking block 235 knocking on the inner wall of the storage tank 3 back and forth, the fixed particles attached to the inner wall of the storage tank 3 can be knocked off. When the rotating shaft 9 rotates, it can drive the fixed sleeve 231 to rotate. Through the connecting rod 236, the rolling wheel 237 can be driven to move along the bottom of the inner wall of the storage tank 3. And because the rolling wheel 237 is subject to friction, the rolling wheel 237 can rotate on its own axis on the connecting rod 236. When the rolling wheel 237 rotates on its own axis, the turning plate 238 can rotate at the bottom of the inner wall of the storage tank 3, so that the fixed particles precipitated at the bottom of the inner wall of the storage tank 3 can be turned upward.
[0039] When the sleeve rod 233 drives the knocking block 235 to move away from the rotating shaft 9, the knocking block 235 will no longer squeeze the disc 242. Since the return spring 243 is in a compressed state, the return spring 243 will drive the disc 242 away from the rotating shaft 9, causing the disc 242 to drive the moving block 241 to move on the turning plate 238. When the moving block 241 moves, the round block 246 on the moving block 241 can squeeze the inner wall of the chute 245 of the dispersing block 244, enabling the dispersing block 244 to swing towards the rolling wheel 237 on the turning plate 238. Moreover, when the sleeve rod 233 drives the knocking block 235 to approach the rotating shaft 9, the knocking block 235 will squeeze the disc 242, causing the disc 242 to approach the rolling wheel 237 and compressing the return spring 243. When the disc 242 approaches the rotating shaft 9, the moving block 241 can drive the round block 246 to approach the rotating shaft 9, causing the dispersing block 244 to swing towards the rotating shaft 9. Through the back-and-forth swinging of the dispersing block 244, the dispersing block 244 can disperse the fixed particles that have caked up the turning plate 238.
[0040] Although the embodiments of the present invention have been shown and described, it will be understood by those of ordinary skill in the art that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A glazing machine for cylindrical head porcelain insulator processing, comprising a cabinet (1), characterized in that: A positioning assembly (2) is arranged inside the cabinet (1); a storage tank (3) is placed on the inner wall of the cabinet (1); a pump body (4) is detachably mounted on the side wall of the cabinet (1); a connecting pipe (5) is fixed to one end of the pump body (4); a pipe (6) is fixed to the other end of the pump body (4); an end of the connecting pipe (5) away from the pump body (4) is fixed to the outer wall of the storage tank (3); a nozzle (7) is fixed to the end of the pipe (6) away from the pump body (4); the nozzle (7) is detachably mounted on the inner wall of the cabinet (1); a motor (8) is fixed to the top of the storage tank (3); a rotating shaft (9) is fixed to the output end of the motor (8); a stirring block (10) is fixed to the outer wall of the rotating shaft (9); a mixing assembly for fully mixing the glaze liquid that has agglomerated in the storage tank (3) is arranged on the storage tank (3); and the storage tank (3) also includes a turning assembly and a breaking assembly for turning over the sediment at the bottom; The mixing assembly comprises a heating tube (11), a sleeve (15), a threaded sleeve (12), a guide block (13), a connecting rod (14), a stirring plate (16), a rotating column (17), a rotating plate (20), an arc groove (21), an extrusion block (22), a connecting block (18) and a connecting spring (19); the heating tube (11) is fixed on the inner side of the storage tank (3); the outer wall of the rotating shaft (9) is fitted with the sleeve (15); the stirring block (10) penetrates the sleeve (15) and the penetration part is fitted; a reciprocating thread groove is formed on the top outer wall of the rotating shaft (9); the outer thread of the reciprocating thread groove is connected with the threaded sleeve (12); the inner wall of the storage tank (3) is fixed with a guide block (13); the threaded sleeve (12) is slidably mounted on the outer wall of the guide block (13); the top of the sleeve (15) is fixed with a connecting rod (14); the top of the connecting rod (14) is slidably connected with the bottom of the threaded sleeve (12).
2. A glazing machine for cylindrical head porcelain insulator processing according to claim 1, characterized in that: A rotating column (17) passes through the stirring block (10), and the penetration portion is in close contact with each other. An arc-shaped groove (21) is provided on the outer wall of the rotating column (17). An extrusion block (22) is fixed to the inner wall of the stirring block (10), and the end of the extrusion block (22) is in close contact with the inner wall of the arc-shaped groove (21). A rotating plate (20) is fixed to the outer wall of the rotating column (17).
3. A glazing machine for cylindrical head porcelain insulator processing according to claim 2, characterized in that: The top of the rotating column (17) is rotatably connected to the bottom of the connecting block (18); the connecting block (18) penetrates the outer wall of the sleeve (15) and fits in the penetration portion; a connecting spring (19) is fixed to the bottom of the connecting block (18); and the bottom of the connecting spring (19) is fixed to the top of the stirring block (10).
4. The glazing machine for cylindrical head porcelain insulator processing according to claim 1, characterized in that: The flip assembly comprises a fixed sleeve (231), a steel rope (232), a transmission spring (234), a sleeve rod (233), a knocking block (235), a rolling wheel (237), a connecting rod (236) and a flip plate (238); the fixed sleeve (231) is fixed to the outer wall of the rotating shaft (9), the sleeve rod (233) is slidably mounted on the inner wall of the fixed sleeve (231), the outer wall of the sleeve rod (233) is fixed with a steel rope (232), and one end of the steel rope (232) away from the sleeve rod (233) is fixed to the bottom of the sleeve (15).
5. The glazing machine for cylindrical head porcelain insulator processing according to claim 4, characterized in that: A transmission spring (234) is fixed to one end of the sleeve rod (233), a knocking block (235) is fixed to the other end of the sleeve rod (233), and a side of the transmission spring (234) away from the sleeve rod (233) is fixed to the inner wall of the fixed sleeve (231).
6. The glazing machine for cylindrical head porcelain insulator processing according to claim 4, characterized in that: A connecting rod (236) is fixed to the side wall of the fixing sleeve (231); a rolling wheel (237) is slidably mounted on one end of the connecting rod (236) away from the fixing sleeve (231); the bottom of the rolling wheel (237) is in contact with the bottom of the inner wall of the storage tank (3); two groups of rolling wheels (237) are provided, and the two groups of rolling wheels (237) are symmetrically arranged with the center line of the rotating shaft (9) in the vertical direction as the symmetry axis; a flip plate (238) is fixed to the side wall of the rolling wheel (237).
7. The glazing machine for cylindrical head porcelain insulator processing according to claim 6, characterized in that: The scattering assembly comprises a moving block (241), a scattering block (244), a round block (246), a return spring (243), a disc (242) and a slide groove (245); the moving block (241) penetrates the rolling wheel (237) and is slidably connected at the penetration point; the side wall of the rolling wheel (237) is fixed with a return spring (243); a side of the return spring (243) away from the rolling wheel (237) is fixed with a disc (242); and the side wall of the disc (242) is in contact with the side wall of the knocking block (235).
8. The glazing machine for cylindrical head porcelain insulator processing according to claim 7, characterized in that: A scattering block (244) is rotatably mounted on the side wall of the flip plate (238), and a sliding groove (245) is provided on a side of the scattering block (244) close to the flip plate (238). A round block (246) is fixed to the side wall of the moving block (241), and the outer wall of the round block (246) is in contact with the inner wall of the sliding groove (245).
Citation Information
Patent Citations
Glaze pouring machine for processing rod-shaped pillar porcelain insulator
CN218069498U