Energy-saving porcelain insulator glazing and sanding device and glazing and sanding process

By improving the glazing and sanding device and process for porcelain insulators, and utilizing the combined transmission of telescopic components, cams, and guide plates, the problem of poor uniformity of porcelain sand was solved, achieving uniform coverage of the porcelain insulator surface and improving glazing efficiency.

CN121223944AInactive Publication Date: 2025-12-30PINGXIANG ANYUANHONG ELECTRIC PORCELAIN MFG CO LTD
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Patent Information

Application Number
CN202511791537.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-12-01
Publication Date
2025-12-30
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

In existing technologies, for longer energy-saving porcelain insulators, the porcelain sand on the side furthest from the duct is difficult to be blown by the airflow, resulting in poor uniformity of the porcelain sand.

Method used

An energy-saving glazing and sanding device for porcelain insulators was designed. Through the combination of telescopic components, cams, hydraulic chambers and guide plates, cold air is evenly blown to all parts of the porcelain insulator. Combined with gear and chain transmission, the uniformity of the porcelain sand is further improved, and the glaze liquid is prevented from settling by the disc agitation during the glazing process.

Benefits of technology

This method achieves uniform distribution of porcelain sand on the surface of porcelain insulators, improves mechanical strength and wear resistance, and enhances glazing efficiency, ensuring uniform coverage of the glaze.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses an energy-saving porcelain insulator glazing and sanding device and a glazing and sanding process, and relates to the technical field of porcelain insulators. According to the energy-saving type porcelain insulator glazing and sanding device and the glazing and sanding process, the energy-saving type porcelain insulator glazing and sanding device comprises a treatment bin, a glaze dipping barrel and a sand blasting pipe are assembled in the treatment bin, and a telescopic piece capable of rotating and moving is assembled on the inner wall of the treatment bin. According to the energy-saving glazing and sanding device for the porcelain insulator and the glazing and sanding process, after sanding operation is completed, an air pipe is started, cold air is blown in, at the moment, a telescopic piece is in a rotating state, and a cam, a first hydraulic bin, a first stress rod, an arc-shaped rod, a first spring, a first rotating rod and a stress plate are matched, so that a first flow guide plate rotates back and forth at a certain angle; and cold air input through the air pipe is uniformly blown to each part of the energy-saving porcelain insulator in the vertical direction, so that the uniformity of porcelain sand on the surface of the energy-saving porcelain insulator is improved.
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Description

Technical Field

[0001] This invention relates to the field of porcelain insulator technology, specifically to an energy-saving porcelain insulator glazing and sanding device and glazing and sanding process. Background Technology

[0002] Porcelain insulators are widely used in power transmission and distribution systems, primarily to support wires and prevent current loss, exhibiting excellent electrical insulation properties. In the traditional manufacturing process of porcelain insulators, glazing and sanding are two key steps. Glazing improves the corrosion resistance and heat resistance of porcelain insulators, while sanding enhances their mechanical strength and wear resistance.

[0003] Chinese Patent CN116728571A, authorized and published on September 12, 2023, discloses a glazing and sanding device and process for porcelain insulators. The device includes a workbench, a fixing plate fixedly installed at the rear end of the upper surface of the workbench, an mounting plate fixedly installed at the left end of the upper surface of the workbench, a glazing mechanism at the center of the upper surface of the workbench, and a sanding mechanism on the outer side of the mounting plate.

[0004] In the aforementioned application documents, an air duct is used to blow airflow onto the energy-saving porcelain insulator after sanding, thereby removing excess porcelain sand from the surface of the energy-saving porcelain insulator. However, when using some longer energy-saving porcelain insulators, the porcelain insulators on the side furthest from the air duct are difficult to be blown by the airflow, thus affecting the uniformity of the porcelain sand on the surface of the energy-saving porcelain insulator. Summary of the Invention

[0005] To address the shortcomings of existing technologies, this invention provides an energy-saving porcelain insulator glazing and sanding device and process, solving the problems mentioned in the background section. To achieve the above objectives, this invention is implemented through the following technical solution: an energy-saving porcelain insulator glazing and sanding device, comprising: The processing chamber is equipped with an immersion glaze tank and a sandblasting pipe, and the inner wall of the processing chamber is equipped with a rotatable and movable telescopic component. An elastic clamping rod is mounted at the bottom of the telescopic component, and an air duct is installed inside the processing chamber. A cam is mounted on the outer side of the fixed end of the telescopic component. A rotating rod is rotatably connected inside the processing chamber. A transmission component for transmission is mounted between the cam and the rotating rod. A force plate and a guide plate are fixedly connected to the outer side of the rotating rod. A flow guiding assembly is mounted on the side of the air duct. An auxiliary assembly is mounted inside the glazing tank.

[0006] Preferably, the transmission component includes a hydraulic chamber first assembled inside the processing chamber. One end of the hydraulic chamber first is slidably connected to a force-bearing rod first via a piston, and the other end of the hydraulic chamber first is slidably connected to an arc-shaped rod via a piston. A spring is assembled on the side of the force-bearing rod first. Through this device, the guide plate first reciprocates at a certain angle, evenly blowing the cold air input through the air duct to various parts of the energy-saving porcelain insulator in the vertical direction, thereby improving the uniformity of the porcelain sand on the surface of the energy-saving porcelain insulator.

[0007] Preferably, the arc-shaped rod is located on the side of the force-bearing plate and is fixed to the force-bearing plate.

[0008] Preferably, the end of the spring away from the force-bearing rod is mounted on the inner wall of the hydraulic chamber.

[0009] Preferably, the flow guiding assembly includes a gear ring fixed inside the processing chamber. A rotating rod two is rotatably connected to the side of the flow guiding plate one. A gear one and a bevel gear one are fixedly connected to the outer side of the rotating rod two, and the gear one meshes with the gear ring. A bevel gear two is rotatably connected to the side of the flow guiding plate one, and the bevel gear two meshes with the bevel gear one. A sprocket one is fixedly connected to the side of the bevel gear two, and a chain is mounted on the outer side of the sprocket one. A rotating rod three is rotatably connected inside the flow guiding plate one, and a sprocket two and the flow guiding plate two are fixedly connected to the outer side of the rotating rod three. Through the arrangement of the flow guiding assembly, the flow guiding plate two can reciprocate at a certain angle, evenly blowing the cold air input through the air duct to various parts of the energy-saving porcelain insulator in the horizontal direction, further improving the uniformity of the porcelain sand on the surface of the energy-saving porcelain insulator.

[0010] Preferably, the end of the chain furthest from the first sprocket is fitted to the outer side of the second sprocket.

[0011] Preferably, there are three guide plates, which are arranged in a circular array about the rotating rod.

[0012] Preferably, the auxiliary component includes a hydraulic chamber two assembled inside the processing chamber. One end of the hydraulic chamber two is slidably connected to a force-bearing rod two via a piston, and the other end of the hydraulic chamber two is slidably connected to a transmission rod via a piston. A spring two is assembled on the side of the force-bearing rod two, and a rotating rod four is rotatably connected to the top of the transmission rod four. A disc is assembled on the top of the rotating rod four. A hydraulic chamber three communicating with the hydraulic chamber one is assembled on the side, and a gear rod is slidably connected to the side of the hydraulic chamber three via a piston. A gear two is fixedly connected to the outer side of the rotating rod four, and the gear two meshes with the gear rod. By setting up the auxiliary component, the guide plate two can reciprocate at a certain angle, evenly blowing the cold air input through the air duct to various parts of the energy-saving porcelain insulator in the horizontal direction, further improving the uniformity of the porcelain sand on the surface of the energy-saving porcelain insulator.

[0013] Preferably, the end of the second spring away from the second force-bearing rod is fitted onto the inner wall of the second hydraulic chamber.

[0014] A process for glazing and sanding energy-saving porcelain insulators includes the following steps: Step 1: Assemble the energy-saving porcelain insulator onto the elastic clamping rod, close the processing chamber, drive the telescopic component, move the porcelain insulator into the glazing tank, and perform the corresponding glazing operation. Step 2: After completing the glazing operation, use the telescopic component to remove the porcelain insulator from the glazing tank and move it to the sandblasting pipe. Step 3: Activate the sandblasting pipe and air duct to complete the corresponding sanding operation on the energy-saving porcelain insulators.

[0015] This invention provides an energy-saving device and process for glazing and sanding porcelain insulators. It offers the following advantages: (1) The glazing and sanding device and glazing and sanding process of the energy-saving porcelain insulator, after the sanding operation is completed, the air duct is activated and cold air is blown in. At this time, the telescopic part is in a rotating state. In conjunction with the cam, hydraulic chamber 1, force rod 1, arc rod, spring 1, rotating rod 1 and force plate, the guide plate 1 is rotated back and forth at a certain angle, so that the cold air input through the air duct is blown evenly to various parts of the energy-saving porcelain insulator in the vertical direction, thereby improving the uniformity of the porcelain sand on the surface of the energy-saving porcelain insulator.

[0016] (2) The glazing and sanding device and glazing and sanding process of the energy-saving porcelain insulator, when the guide plate 1 reciprocates at a certain angle, it can drive the rotating rod 2 to reciprocate together. With the help of the gear ring, gear 1, bevel gear 1, bevel gear 2, sprocket 1, chain, rotating rod 3 and sprocket 2, the guide plate 2 can reciprocate at a certain angle, and blow the cold air input through the air duct evenly to various parts of the energy-saving porcelain insulator in the horizontal direction, further improving the uniformity of the porcelain sand on the surface of the energy-saving porcelain insulator.

[0017] (3) The energy-saving porcelain insulator glazing and sanding device and glazing and sanding process, when the force rod pushes the oil in the hydraulic chamber and the force rod resets, it works with the hydraulic chamber three, the rack and gear two to make the disc reciprocate to stir the glaze in the glazing tank, thus preventing the glaze from settling; during the glazing process, the rotating cam works with the hydraulic chamber two, the force rod two, the transmission rod, the spring two and the rotating rod four to make the disc reciprocate in the vertical direction, and perform corresponding vibration operation on the glaze in the glazing tank to improve the glazing efficiency. In this way, the device can be made easier to use. Attached Figure Description

[0018] Figure 1 This is a three-dimensional structural diagram of the overall appearance of the present invention; Figure 2 This is a schematic diagram of the overall cross-sectional three-dimensional structure of the present invention; Figure 3 This is a three-dimensional structural diagram of some parts of the present invention; Figure 4 For the present invention Figure 3 Enlarged structural diagram at point A in the middle; Figure 5 This is a three-dimensional structural diagram of the flow guiding component of the present invention; Figure 6 This is a three-dimensional structural diagram of some parts of the flow guiding assembly of the present invention; Figure 7 This is a three-dimensional structural diagram of the auxiliary component of the present invention; Figure 8 This is a three-dimensional structural diagram of some parts of the auxiliary component of the present invention.

[0019] In the picture: 100. Processing chamber; 200. Glazing tank; 300. Sandblasting pipe; 400. Telescopic component; 500. Elastic clamping rod; 600. Air duct; 701. Cam; 702. Hydraulic chamber one; 703. Force-bearing rod one; 704. Arc rod; 705. Spring one; 706. Rotating rod one; 707. Force-bearing plate; 708. Guide plate one; 800. Flow guide assembly; 801. Gear ring; 802. Rotating rod two; 803. Gear one; 804. Bevel gear one; 805. Bevel gear two; 806. Sprocket one; 807. Chain; 808. Rotating rod three; 809. Sprocket two; 810. Flow guide plate two; 900. Auxiliary components; 901. Hydraulic chamber two; 902. Force-bearing rod two; 903. Transmission rod; 904. Spring two; 905. Rotating rod four; 906. Disc; 907. Hydraulic chamber three; 908. Gear rack; 909. Gear two. Detailed Implementation

[0020] To enable those skilled in the art to better understand the present application, the technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are merely some, not all, of the embodiments of the present application. All other embodiments obtained by those skilled in the art based on the embodiments of the present application without creative effort should fall within the scope of protection of the present application.

[0021] It should be noted that the terms "first," "second," etc., in the specification, claims, and accompanying drawings of this application are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be used interchangeably where appropriate for the purposes of describing embodiments of this application herein. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion; for example, a process, method, system, product, or apparatus that comprises a series of steps or units is not necessarily limited to those steps or units explicitly listed, but may include other steps or units not explicitly listed or inherent to such processes, methods, products, or apparatus.

[0022] In this application, the terms "upper," "lower," "left," "right," "front," "rear," "top," "bottom," "inner," "outer," "middle," "vertical," "horizontal," "lateral," and "longitudinal" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. These terms are primarily for the purpose of better describing this application and its embodiments, and are not intended to limit the indicated device, element, or component to having a specific orientation, or to be constructed and operated in a specific orientation.

[0023] Furthermore, in addition to indicating location or positional relationship, some of the aforementioned terms may also have other meanings. For example, the term "above" may also be used in some cases to indicate a certain dependency or connection relationship. Those skilled in the art can understand the specific meaning of these terms in this application based on the specific circumstances.

[0024] Furthermore, the terms "installation," "setup," "equipped with," "connection," "linking," and "socketing" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral structure; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium, or an internal connection between two devices, components, or parts. Those skilled in the art can understand the specific meaning of these terms in this application based on the specific circumstances.

[0025] It should be noted that, unless otherwise specified, the embodiments and features described in this application can be combined with each other. This application will now be described in detail with reference to the accompanying drawings and embodiments.

[0026] Example 1, please refer to Figures 1-4 An energy-saving porcelain insulator glazing and sanding device and glazing and sanding process, comprising: The processing chamber 100 is equipped with an immersion glaze tank 200 and a sandblasting pipe 300 inside. The inner wall of the processing chamber 100 is equipped with a rotatable and movable telescopic component 400. The elastic clamp 500 is assembled at the bottom of the telescopic component 400, and the air duct 600 is assembled inside the processing chamber 100. A cam 701 is mounted on the outer side of the fixed end of the telescopic component 400. After the sanding operation is completed, the air duct 600 is turned on to blow in cold air. At this time, the telescopic component 400 is in a rotating state. As the telescopic component 400 rotates, it drives the cam 701 mounted on its outer side to rotate.

[0027] A rotating rod 706 is rotatably connected inside the processing chamber 100. A transmission component for transmission is assembled between the cam 701 and the rotating rod 706. The transmission component includes a hydraulic chamber 702 assembled inside the processing chamber 100. One end of the hydraulic chamber 702 is slidably connected to a force-bearing rod 703 via a piston. When the protruding part of the cam 701 rotates to the force-bearing rod 703, it can compress the force-bearing rod 703, and the compressed force-bearing rod 703 can move to the side.

[0028] The other end of the hydraulic chamber 702 is slidably connected to an arc-shaped rod 704 via a piston. A spring 705 is mounted on the side of the force-bearing rod 703. The end of the spring 705 away from the force-bearing rod 703 is mounted on the inner wall of the hydraulic chamber 702. A force-bearing plate 707 and a guide plate 708 are fixedly connected to the outer side of the rotating rod 706. The arc-shaped rod 704 is located on the side of the force-bearing plate 707 and is fixed to the force-bearing plate 707. When the rotating rod 706 reciprocates, it causes the guide plate 708, which is fixedly connected to it, to reciprocate at a certain angle, evenly blowing the cold air input through the air duct 600 to various parts of the energy-saving porcelain insulator in the vertical direction, thereby improving the uniformity of the porcelain sand on the surface of the energy-saving porcelain insulator.

[0029] In use, the energy-saving porcelain insulator is mounted on the elastic clamp 500, the processing chamber 100 is closed, and the telescopic component 400 is driven to move the porcelain insulator into the glazing tank 200 for glazing. After glazing, the energy-saving porcelain insulator is moved to the sandblasting pipe 300, and the sandblasting pipe 300 is activated to sand the energy-saving porcelain insulator. After sandblasting, the air duct 600 is activated to blow in cold air. At this time, the telescopic component 400 is rotating. As the telescopic component 400 rotates, it drives the cam 701 mounted on its outer side to rotate. When the protruding part of the cam 701 rotates to the force rod 703, it can squeeze the force rod 703. The squeezed force rod 703 can then move to the side. In conjunction with the hydraulic chamber 702, which is connected to the force rod 703 by a piston, the force rod 703, as it moves towards the hydraulic chamber 702, squeezes the material originally stored in the hydraulic chamber. The oil in hydraulic chamber 702 is compressed and flows towards the side closer to the arc-shaped rod 704, causing the arc-shaped rod 704, which is slidably connected to hydraulic chamber 702 via a piston, to extend out of hydraulic chamber 702. As cam 701 continues to rotate, its protruding part moves away from the force-bearing rod 703, causing the force-bearing rod 703 to lose its restraint and reset under the action of spring 705. Similarly, the arc-shaped rod 704 resets, allowing the arc-shaped rod 704 to reciprocate. This reciprocating motion of the arc-shaped rod 704 causes the force-bearing plate 707, which is fixedly connected to it, to reciprocate at a certain angle. The reciprocating force-bearing plate 707 then causes the rotating rod 706, which is fixedly connected to it, to reciprocate. The rotating rod 706 then causes the guide plate 708, which is fixedly connected to it, to reciprocate at a certain angle, evenly blowing the cold air input through duct 600 to various parts of the energy-saving porcelain insulator in the vertical direction.

[0030] Example 2, please refer to Figures 1-6 Based on Embodiment 1, a flow guiding assembly 800 is mounted on the side of the duct 600. The flow guiding assembly 800 includes a gear ring 801 fixed inside the treatment chamber 100, and a rotating rod 802 is rotatably connected to the side of the flow guiding plate 708. When the flow guiding plate 708 reciprocates at a certain angle, it can drive the rotating rod 802 connected to it to reciprocate as well.

[0031] Gear 803 and bevel gear 804 are fixedly connected to the outer side of rotating rod 802. Gear 803 meshes with gear ring 801. Bevel gear 805 is rotatably connected to the side of guide plate 708. Bevel gear 805 meshes with bevel gear 804. Sprocket 806 is fixedly connected to the side of bevel gear 805. Chain 807 is mounted on the outer side of sprocket 806. Rotating rod 808 is rotatably connected to the inside of guide plate 708. Sprocket 809 and guide plate 810 are fixedly connected to the outer side of rotating rod 808. The end of chain 807 away from sprocket 806 is mounted on the outer side of sprocket 809. Three guide plates 810 are provided, and the three guide plates 810 are arranged in a circular array about rotating rod 808. When the rotating rod 808 reciprocates, it causes the guide plate 810, which is fixedly connected to it, to reciprocate at a certain angle, so that the cold air input through the air duct 600 is evenly blown to various parts of the energy-saving porcelain insulator in the horizontal direction, further improving the uniformity of the porcelain sand on the surface of the energy-saving porcelain insulator.

[0032] In use, based on Embodiment 1, when the guide plate 708 reciprocates at a certain angle, it drives the rotating rod 802 connected to it to reciprocate as well. This causes the rotating rod 802 to drive the gear 803 fixedly connected to it to move together. The gear 803 is simultaneously constrained by the gear ring 801 meshing with it, causing the gear 803 to reciprocate during its movement. This causes the rotating rod 802 to reciprocate, and the rotating rod 802 in this reciprocating state drives the bevel gear 804 fixedly connected to it to rotate, thus causing the bevel gear 804 to drive... The bevel gear 805 meshing with it rotates, and the bevel gear 805 in a reciprocating state drives the sprocket 806 fixedly connected to it to rotate. In conjunction with the chain 807 mounted on the outside of the sprocket 806, the sprocket 809 connected to the sprocket 806 via the chain 807 reciprocates at a certain angle. The sprocket 809 in a reciprocating state drives the rotating rod 808 fixedly connected to it to reciprocate, and the rotating rod 808 drives the guide plate 810 fixedly connected to it to reciprocate at a certain angle, so that the cold air input through the air duct 600 is evenly blown to various parts of the energy-saving porcelain insulator in the horizontal direction.

[0033] Example 3, please refer to Figures 1-8Based on Embodiments 1 and 2, an auxiliary component 900 is installed inside the glazing tank 200. The auxiliary component 900 includes a hydraulic chamber 2 901 installed inside the processing chamber 100. One end of the hydraulic chamber 2 901 is slidably connected to a force-bearing rod 2 902 via a piston. During the glazing process, the cam 701, which rotates with the telescopic component 400, intermittently compresses the force-bearing rod 2 902.

[0034] The other end of the hydraulic chamber 2 901 is slidably connected to a transmission rod 903 via a piston. A spring 2 904 is mounted on the side of the force-bearing rod 2 902, with the end of the spring 2 904 away from the force-bearing rod 2 902 mounted on the inner wall of the hydraulic chamber 2 901. A rotating rod 4 905 is rotatably connected to the top of the transmission rod 903, and a disc 906 is mounted on the top of the rotating rod 4 905. When the transmission rod 903 reciprocates, the rotating rod 4 905 drives the disc 906 to reciprocate vertically, thereby agitating the glaze liquid in the glaze dipping tank 200 and improving the glaze dipping efficiency.

[0035] Hydraulic chamber 1 702 is equipped with hydraulic chamber 3 907 connected to it on its side. When the force rod 1 703 pushes the oil in hydraulic chamber 1 702, some of the oil flows into hydraulic chamber 3 907 connected to hydraulic chamber 1 702, squeezing the oil originally stored in hydraulic chamber 3 907.

[0036] A gear 908 is slidably connected to the side of the hydraulic chamber 3 907 via a piston. A gear 909 is fixedly connected to the outer side of the rotating rod 4 905, and the gear 909 meshes with the gear 908. When the rotating rod 4 905 reciprocates, it drives the disk 906 fixedly connected to it to reciprocate at a certain angle, reciprocating and agitating the glaze in the glaze dipping tank 200, thus preventing the glaze from settling. This makes the device easier to use.

[0037] In use, based on Embodiments 1 and 2, when the force-bearing rod 703 pushes the oil in the hydraulic chamber 702, some of the oil flows into the hydraulic chamber 907, which is connected to the hydraulic chamber 702. This squeezes the oil originally stored in the hydraulic chamber 907, causing the oil to flow towards the side closer to the rack 908. This causes the rack 908, which is slidably connected to the hydraulic chamber 907 via a piston, to extend out of the hydraulic chamber 907. The rack 908 then drives the gear 909, which meshes with it, to rotate at a certain angle. When the force-bearing rod 703 resets, the gear 909 rotates in the opposite direction to reset. This allows the gear 909 to reciprocate, driving the rotating rod 905, which is fixedly connected to it, to rotate. The disc 906, which is fixedly connected to it, reciprocates at a certain angle to agitate the glaze in the glaze tank 200, thus preventing the glaze from settling. During the glazing process, the cam 701, which rotates with the telescopic component 400, intermittently squeezes the force rod 902. This, along with the hydraulic chamber 901, which is slidably connected to the force rod 902 via a piston, and the spring 904 mounted on the side of the force rod 902, causes the transmission rod 903, which is slidably connected to the hydraulic chamber 901 via a piston, to reciprocate vertically. The transmission rod 903, in its reciprocating motion, drives the disc 906 to reciprocate vertically via the rotating rod 905, thereby agitating the glaze in the glaze tank 200 and improving the glazing efficiency.

[0038] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.

Claims

1. An energy-saving porcelain insulator glazing and sanding device, characterized in that, Include: Processing warehouse, the inner part of the processing warehouse is respectively equipped with glaze dipping barrel and sand blasting pipe, the inner wall of the processing warehouse is equipped with a retractable member which can rotate and move; Elastic clamping rod, the elastic clamping rod is equipped at the bottom of the retractable member, the inside of the processing warehouse is equipped with an air pipe; The fixed end of the retractable member is equipped with a cam, the inside of the processing warehouse is rotatably connected with a rotating rod one, the cam and the rotating rod one are equipped with a transmission member for transmission, the outer side of the rotating rod one is respectively fixedly connected with a force plate and a guide plate one, the side of the air pipe is equipped with a guide assembly, the inside of the glaze dipping barrel is equipped with an auxiliary assembly.

2. The energy-saving porcelain insulator glazing and sanding device according to claim 1, characterized in that: The transmission member includes a hydraulic chamber one equipped in the inside of the processing warehouse, one end of the hydraulic chamber one is slidably connected with a force rod one by setting a piston, the other end of the hydraulic chamber one is slidably connected with an arc-shaped rod by setting a piston, the side of the force rod one is equipped with a spring one.

3. The energy-saving porcelain insulator glazing and sanding device according to claim 2, characterized in that: The arc-shaped rod is located at the side of the force plate and is in a fixed state with the force plate.

4. The energy-saving porcelain insulator glazing and sanding device according to claim 2, characterized in that: The end of the spring one away from the force rod one is equipped on the inner wall of the hydraulic chamber one.

5. The energy-saving porcelain insulator glazing and sanding device according to claim 2, characterized in that: The guide assembly includes a gear ring fixed in the inside of the processing warehouse, the side of the guide plate one is rotatably connected with a rotating rod two, the outer side of the rotating rod two is respectively fixedly connected with a gear one and a bevel gear one, the gear one is engaged with the gear ring, the side of the guide plate one is rotatably connected with a bevel gear two, the bevel gear two is engaged with the bevel gear one, the side of the bevel gear two is fixedly connected with a chain wheel one, the outer side of the chain wheel one is equipped with a chain, the inside of the guide plate one is rotatably connected with a rotating rod three, the outer side of the rotating rod three is respectively fixedly connected with a chain wheel two and a guide plate two.

6. The energy-saving porcelain insulator glazing and sanding device according to claim 5, characterized in that: The end of the chain away from the chain wheel one is equipped at the outer side of the chain wheel two.

7. The energy-saving porcelain insulator glazing and sanding device according to claim 5, characterized in that: The guide plate two is provided with three, the three guide plate two is arranged in a circumferential array about the rotating rod three.

8. The energy-saving porcelain insulator glazing and sanding device according to claim 5, characterized in that: The auxiliary assembly includes a hydraulic chamber two equipped in the inside of the processing warehouse, one end of the hydraulic chamber two is slidably connected with a force rod two by setting a piston, the other end of the hydraulic chamber two is slidably connected with a transmission rod by setting a piston, the side of the force rod two is equipped with a spring two, the top of the transmission rod is rotatably connected with a rotating rod four, the top of the rotating rod four is equipped with a disc, the side of the hydraulic chamber one is equipped with a hydraulic chamber three in communication therewith, the side of the hydraulic chamber three is slidably connected with a toothed rod by setting a piston, the outer side of the rotating rod four is fixedly connected with a gear two, the gear two is engaged with the toothed rod.

9. The energy-saving porcelain insulator glazing and sanding device according to claim 8, characterized in that: The end of the spring two away from the force rod two is equipped on the inner wall of the hydraulic chamber two.

10. The energy-saving glazing and sanding process for porcelain insulators according to any one of claims 1 to 9, characterized in that, Include the following steps: Step one, assemble the energy-saving porcelain insulator on the elastic clamping rod, close the processing warehouse, drive the retractable member, move the porcelain insulator into the glaze dipping barrel, and perform the corresponding glazing operation; Step two, after completing the glazing operation, take out the porcelain insulator from the glaze dipping barrel through the retractable member, and move the porcelain insulator to the sand blasting pipe; Step three, enable the sand blasting pipe and the air pipe, and complete the corresponding sanding operation on the energy-saving porcelain insulator.

Citation Information

Patent Citations

  • Porcelain insulator glazing and sanding device and glazing and sanding process

    CN116728571A