A rapid cooling multi-umbrella type glass insulator casting mold

By combining rotary conveyor and flow equalization and cooling modules, the problems of slow forming speed and shape defects caused by poor glass melt fluidity are solved, enabling rapid and efficient production of multi-umbrella glass insulators.

CN122370097APending Publication Date: 2026-07-10JIANGXI QUANXIN ELECTRIC CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
JIANGXI QUANXIN ELECTRIC CO LTD
Filing Date
2026-05-15
Publication Date
2026-07-10

AI Technical Summary

Technical Problem

The poor fluidity of molten glass during the processing of multi-umbrella glass insulators leads to slow forming speed or shape defects.

Method used

Continuous pouring is carried out by rotating a gyroscope, combined with a flow equalization module and a cooling module. The flow equalization module promotes uniform flow of molten glass in the mold cavity through a vibration motor, while the cooling module shortens the molding time by using flowing coolant.

Benefits of technology

This technology enables rapid prototyping and high-quality production of glass insulators, improves the fluidity and cooling efficiency of molten glass, and shortens the molding time.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention belongs to the field of glass insulator processing technology, specifically a rapid-cooling multi-umbrella glass insulator casting mold. Addressing the issue of slow molding speed or shape defects caused by poor fluidity of molten glass, the following solution is proposed: a rotary table with a support frame on one side and multiple circumferentially spaced mounting seats fixedly connected to the upper side of the table. Each mounting seat has a flipping seat on the side away from the rotary table, and a base plate is mounted above each flipping seat. This invention discloses a rapid-cooling multi-umbrella glass insulator casting mold that uses a rotary table to sequentially and cyclically transport the bottom molds from multiple mounting seats to the casting position for continuous casting. The use of a flow equalization module improves the flow of molten glass during casting, ensuring the quality of the multi-umbrella glass insulators after casting. The cooling module rapidly cools the cast product, shortening the molding time.
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Description

Technical Field

[0001] This invention relates to the field of glass insulator processing technology, and in particular to a rapid cooling multi-umbrella type glass insulator casting mold. Background Technology

[0002] Insulators are devices used to support and insulate conductors. They are generally made of glass or porcelain. Glass insulators are widely used because they have the characteristics of self-breaking at zero value and easy maintenance. Multi-umbrella glass insulators refer to glass insulators with multiple umbrella-shaped structures, mainly including double-umbrella and triple-umbrella types. Their processing involves extruding molten glass into a mold.

[0003] Because the overall fluidity of molten glass is poor, it tends to accumulate in some areas after entering the mold, failing to fill the mold's pouring cavity evenly. This results in slow molding speeds and even shape defects. Summary of the Invention

[0004] This invention discloses a rapid cooling multi-umbrella glass insulator casting mold, which aims to solve the technical problem in the prior art where poor fluidity of molten glass leads to slow molding speed or shape defects.

[0005] This invention proposes a rapid cooling multi-umbrella glass insulator casting mold, comprising a rotary table, a support frame on one side of the rotary table, and multiple circumferentially equidistant mounting seats fixedly connected to the upper side of the rotary table. Each mounting seat has a flipping seat on the side away from the rotary table, a base plate above each flipping seat, a bottom mold fixedly connected to the upper side of the base plate, and a flow equalization module below each base plate. A platform is fixedly connected to the support frame, and two symmetrical clamping arms are provided on the platform. A mold sleeve is provided at the front end of each clamping arm, and a cooling module is provided inside each mold sleeve. Synchronization auxiliary components are provided on the mold sleeve and the bottom mold. The flow equalization module includes a vibration motor; The cooling module includes a cooling cavity, which is located inside the mold sleeve; The synchronization auxiliary component includes a frame plate and multiple synchronization rods. The frame plate is fixedly connected to the outside of the mold sleeve. The bottom plate has four symmetrical through holes in pairs, and the multiple synchronization rods are movably connected in the through holes of the bottom plate.

[0006] Equipped with a rotary table, upright frame, mounting base, tilting base, base plate, bottom mold, flow equalization module, cooling module, and synchronous auxiliary components, the device uses a rotary table to transport the bottom molds from multiple mounting bases to the pouring position in a sequential manner for pouring operations, thus achieving continuous pouring operations. The flow equalization module can improve the flow effect of the molten glass during pouring, ensuring the quality of the multi-umbrella glass insulators after pouring. The cooling module can quickly cool down the molded products after pouring, shortening the molding time.

[0007] In a preferred embodiment, the flow equalization module further includes an attachment block located on the lower side of the base plate. The vibration motor is fixedly connected to the attachment block. Two symmetrical circular holes are opened on the attachment block, and a sliding shaft is movably connected inside each circular hole. The two ends of the two sliding shafts are fixedly connected to the inner walls of the two sides of the flipping seat, respectively. Two symmetrical return springs are movably connected to the outside of the two sliding shafts, and the two ends of the return springs are fixedly connected to the inner walls of the attachment block and the flipping seat, respectively. The flipping seat is movably connected to the mounting base, and a flipping motor is fixedly connected to the mounting base. The output end of the flipping motor is connected to a rotating shaft through a coupling, and the other end of the rotating shaft is fixedly connected to the flipping seat.

[0008] By incorporating a flow equalization module, the flow equalization module can induce high-frequency lateral vibration of the base plate during the pouring process, thereby enabling the molten glass poured into the base mold and mold sleeve to flow rapidly within the mold cavity, improving the uniformity of the molten glass within the mold cavity.

[0009] In a preferred embodiment, both outer sides of the two mold sleeves are fixedly connected to a movable bracket, and both movable brackets are movably connected to a front plate. Multiple retaining springs are fixedly connected to one side of each front plate, and the other ends of the retaining springs are fixedly connected to the outer wall of the mold sleeve on the same side. The platform has two symmetrical rotating holes, and vertical shafts are movably connected inside each of the two rotating holes. One end of each of the two clamping arms has a mounting hole, and the two vertical shafts are fixedly connected within the mounting holes of the two clamping arms. The other ends of the two clamping arms are fixedly connected to the front plate on the same side. Gears are fixedly connected to the lower ends of both vertical shafts, and the two gears mesh with each other via tooth grooves. An adjusting motor is fixedly connected to the platform, and the output end of the adjusting motor is connected to a short shaft via a coupling. The other end of the short shaft is fixedly connected to one of the vertical shafts.

[0010] The mold sleeve, clamping arm, and retaining spring are provided. The mold sleeve and clamping arm are movably connected. The retaining spring can meet the lateral movement requirements of the mold sleeve while ensuring a stable connection between the clamping arm and the mold sleeve. That is, when the mold sleeve moves laterally, the retaining spring will compress or stretch according to the direction of movement of the mold sleeve.

[0011] In a preferred embodiment, the cooling module further includes an inlet pipe and an outlet pipe, both of which are connected to the cooling chamber. The inlet of the inlet pipe is located at the top, and the outlet of the outlet pipe is located at the bottom. Each of the frame plates is fixedly connected to a vertical block, and each vertical block is fixedly connected to two double-connector connectors. The other end of the inlet pipe is fixedly connected to one double-connector connector, and the other end of the outlet pipe is fixedly connected to the other double-connector connector.

[0012] By incorporating a cooling module, the cooling module utilizes the coolant within the cooling chamber to cool the molded glass insulator. The use of flowing coolant shortens the cooling time and further improves the cooling effect of the molded glass insulator.

[0013] In a preferred embodiment, the synchronization auxiliary component further includes four synchronization holes, which are symmetrically distributed in pairs on the two frame plates. Two symmetrical lifting plates are provided below each of the base plates. The upper side of the lifting plates is fixedly connected to the lower ends of the two synchronization rods above. Hydraulic cylinders are fixedly connected to both sides of the base plate, and the telescopic ends of the hydraulic cylinders are fixedly connected to the lifting plates on the same side.

[0014] By incorporating a synchronization auxiliary component, which uses a synchronization rod on the lifting plate inserted into the synchronization hole of the frame plate for fixation, the two mold sleeves can always maintain a sealed assembly with the bottom mold during subsequent vibration of the bottom plate. This prevents the bottom mold from vibrating and causing incomplete sealing of the casting cavity, thus avoiding finished product quality problems.

[0015] In a preferred embodiment, a suspension is provided between the upright frame and the rotary table, and the height of the suspension is higher than that of the mold sleeve; a casting pipe is provided inside the suspension, and a top plate is fixedly connected to the lower end of the suspension. The top plate is located directly above the front base plate of the platform, and multiple circumferentially spaced contact pads are provided on the outside of the top plate. Each of the contact pads is fixedly connected to the top plate with a buffer spring.

[0016] With the top platen, contact pads, and buffer springs installed, the bottom mold and the two mold sleeves vibrate laterally during the pouring process. Under the action of the contact pads and buffer springs, the pouring cavity can be kept in a better closed state, avoiding direct interference from the external environment.

[0017] As can be seen from the above, the rapid cooling multi-umbrella glass insulator casting mold provided by the present invention uses a rotary conveyor to sequentially transport the bottom molds on multiple mounting seats to the casting position for casting operations, thereby realizing continuous casting operations. The flow equalization module can improve the flow effect of the glass melt during casting, ensuring the quality of the multi-umbrella glass insulator after casting. The cooling module can rapidly cool down the molded product after casting, shortening the molding time. Attached Figure Description

[0018] Figure 1 This is a schematic diagram of the overall structure of a rapid cooling multi-umbrella glass insulator casting mold proposed in this invention; Figure 2 This is a partial structural diagram of a rapid cooling multi-umbrella glass insulator casting mold proposed in this invention; Figure 3 This is a schematic diagram of the positional structure of the bottom mold and mold sleeve of a rapid cooling multi-umbrella glass insulator casting mold proposed in this invention. Figure 4 This is a schematic diagram of the uniform flow module structure of a rapid cooling multi-umbrella glass insulator casting mold proposed in this invention; Figure 5 This is a schematic diagram of the flipping seat structure of a rapid cooling multi-umbrella glass insulator casting mold proposed in this invention; Figure 6 This is a schematic cross-sectional view of the mold sleeve structure of a rapid cooling multi-umbrella glass insulator casting mold proposed in this invention. Figure 7 This is a schematic diagram of the cooling module structure of a rapid cooling multi-umbrella glass insulator casting mold proposed in this invention.

[0019] In the diagram: 1. Spinning plate; 2. Stand; 3. Mounting base; 4. Tilting base; 5. Base plate; 6. Bottom mold; 7. Flow equalization module; 701. Vibration motor; 702. Attachment block; 703. Sliding shaft; 704. Return spring; 8. Platform; 9. Clamping arm; 10. Mold sleeve; 11. Cooling module; 1101. Cooling chamber; 1102. Liquid inlet pipe; 1103. Liquid outlet pipe; 1104. Stand block; 1105. Double-pass 12. Connector; 13. Tilting motor; 14. Adjustable frame; 15. Front plate; 16. Fixing spring; 17. Vertical shaft; 18. Gear; 19. Adjusting motor; 10. Synchronization auxiliary assembly; 1901. Frame plate; 1902. Synchronization rod; 1903. Synchronization hole; 1904. Lifting plate; 1905. Hydraulic cylinder; 20. Suspension; 21. Top plate; 22. Casting pipe; 23. Contact pad; 24. Buffer spring. Detailed Implementation

[0020] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.

[0021] The rapid cooling multi-umbrella glass insulator casting mold disclosed in this invention is mainly used in scenarios where the poor fluidity of molten glass leads to slow molding speed or shape defects.

[0022] Reference Figure 1-7A rapid cooling multi-umbrella glass insulator casting mold includes a rotary table 1, a support frame 2 on one side of the rotary table 1, and multiple circumferentially spaced mounting seats 3 connected to the upper side of the rotary table 1 by bolts. Each mounting seat 3 has a flipping seat 4 on the side away from the rotary table 1. Each flipping seat 4 has a base plate 5 on top of it, and a bottom mold 6 is connected to the upper side of the base plate 5 by bolts. Each bottom mold 6 has a flow equalization module 7 below it. A platform 8 is connected to the support frame 2 by bolts. Two symmetrical clamping arms 9 are provided on the platform 8. Each clamping arm 9 has a mold sleeve 10 at its front end, and a cooling module 11 is provided inside the mold sleeve 10. Synchronization auxiliary components 19 are provided on the mold sleeve 10 and the bottom mold 6. The flow equalization module 7 includes a vibration motor 701; The cooling module 11 includes a cooling cavity 1101, which is located inside the mold sleeve 10; The synchronization auxiliary component 19 includes a frame plate 1901 and multiple synchronization rods 1902. The frame plate 1901 is located outside the mold sleeve 10 and is connected by bolts. The base plate 5 has four symmetrical through holes in pairs. The multiple synchronization rods 1902 are slidably connected in the through holes of the base plate 5.

[0023] In specific application scenarios, the device uses a rotating conveyor 1 to sequentially transport the bottom molds 6 on multiple mounting seats 3 to the pouring position for pouring operations, thus achieving continuous pouring operations. The flow equalization module 7 can improve the flow effect of the molten glass during pouring, ensuring the quality of the multi-umbrella glass insulators after pouring. The cooling module 11 can quickly cool down the molded products after pouring, shortening the molding time.

[0024] Reference Figure 4 and Figure 5 In a preferred embodiment, the flow equalization module 7 further includes an attachment block 702, which is located on the lower side of the base plate 5. The vibration motor 701 is connected to the attachment block 702 by bolts. The attachment block 702 has two symmetrical circular holes, and a sliding shaft 703 is slidably connected inside each of the circular holes. The two ends of the two sliding shafts 703 are respectively connected to the inner walls of the two sides of the flipping seat 4 by bolts. Two symmetrical return springs 704 are sleeved on the outside of the two sliding shafts 703. The two ends of the return springs 704 are respectively connected to the inner walls of the attachment block 702 and the flipping seat 4 by bolts. The flipping seat 4 is rotatably connected to the mounting base 3 by bearings, and a flipping motor 12 is bolted to the mounting base 3. The output end of the flipping motor 12 is connected to a rotating shaft through a coupling, and the other end of the rotating shaft is bolted to the flipping seat 4.

[0025] Specifically, during the pouring process, after the vibration motor 701 is started, it drives the attached block 702 to vibrate. Under the limiting action of the reset spring 704, the base plate 5 as a whole undergoes high-frequency lateral vibration. In specific application scenarios, the flow equalization module 7 is suitable for auxiliary links in the casting process. That is, the flow equalization module 7 can cause the base plate 5 to vibrate laterally at high frequency during the casting process, so that the glass melt poured into the bottom mold 6 and the mold sleeve 10 flows rapidly in the mold cavity, improving the uniformity of the melt in the mold cavity.

[0026] Reference Figure 3 and Figure 6 In a preferred embodiment, the outer sides of both mold sleeves 10 are bolted to a movable frame 13, and a front plate 14 is slidably connected to each of the two movable frames 13. Multiple retaining springs 15 are bolted to one side of each front plate 14, and the other ends of the multiple retaining springs 15 are bolted to the outer wall of the mold sleeve 10 on the same side. The base 8 has two symmetrical rotating holes, and vertical shafts 16 are rotatably connected to the interior of each rotating hole via bearings. One end of each of the two clamping arms 9 has a mounting hole, and the two vertical shafts 16 are bolted into the mounting holes of the two clamping arms 9. The other ends of the two clamping arms 9 are bolted to the front plate 14 on the same side. The lower ends of the two vertical shafts 16 are bolted to gears 17, which mesh with each other via tooth grooves. An adjusting motor 18 is bolted to the base 8, and the output end of the adjusting motor 18 is connected to a short shaft via a coupling. The other end of the short shaft is bolted to one of the vertical shafts 16.

[0027] Specifically, when the clamping arm 9 flips: the starting adjustment motor 18 drives a vertical shaft 16 to rotate, and under the pull of two meshing gears 17, the two vertical shafts 16 rotate synchronously in opposite directions, and the two clamping arms 9 move closer or further apart synchronously. The mold sleeve 10 and the clamping arm 9 are connected by a movable connection. The retaining spring 15 can meet the lateral movement requirements of the mold sleeve 10 while ensuring a stable connection between the clamping arm 9 and the mold sleeve 10. That is, when the mold sleeve 10 moves laterally, the retaining spring 15 will be compressed or stretched according to the movement direction of the mold sleeve 10.

[0028] Reference Figure 2 , Figure 6 and Figure 7 In a preferred embodiment, the cooling module 11 further includes an inlet pipe 1102 and an outlet pipe 1103. Both the inlet pipe 1102 and the outlet pipe 1103 are connected to the cooling chamber 1101. The inlet of the inlet pipe 1102 is located at the top, and the inlet of the outlet pipe 1103 is located at the bottom. Each frame plate 1901 is bolted with a stand block 1104. Each stand block 1104 is bolted with two double-connector joints 1105. The other end of the inlet pipe 1102 is bolted to one double-connector joint 1105, and the other end of the outlet pipe 1103 is bolted to the other double-connector joint 1105.

[0029] Specifically, the double-ended connector 1105 connected to the inlet pipe 1102 is connected to the external water supply pipe, and the double-ended connector 1105 connected to the outlet pipe 1103 is connected to the external drain pipe. When the cooling module 11 is started: initially, the cooling chamber 1101 is filled with coolant. After the pouring is completed, the external coolant enters from the inlet pipe 1102, and the coolant in the cooling chamber 1101 is discharged from the outlet pipe 1103. The liquid flow rates of the two are the same, so the flowing coolant is used to quickly cool the formed glass insulator. In specific application scenarios, the cooling module 11 is suitable for the cooling process of glass insulators after casting. That is, the cooling module 11 uses the coolant in the cooling chamber 1101 to cool the formed glass insulator. The use of flowing coolant shortens the cooling time and further improves the cooling effect of the formed glass insulator.

[0030] Reference Figure 2 , Figure 5 and Figure 6 In a preferred embodiment, the synchronization auxiliary component 19 further includes four synchronization holes 1903, which are symmetrically distributed in pairs on the two frame plates 1901. Two symmetrical lifting plates 1904 are provided below the base plate 5. The upper side of the lifting plate 1904 is bolted to the lower end of the two synchronization rods 1902 above it. Hydraulic cylinders 1905 are bolted to both sides of the base plate 5. The telescopic end of the hydraulic cylinder 1905 is bolted to the lifting plate 1904 on the same side.

[0031] Specifically, after the bottom mold 6 and the two mold sleeves 10 are assembled, the hydraulic cylinder 1905 retracts and drives the lifting plate 1904 to move closer to the bottom plate 5. The synchronizing rod 1902 slides in the through hole of the bottom plate 5 and inserts into the synchronizing hole 1903 of the frame plate 1901, so as to realize the synchronous fixation of the bottom plate 5 and the two frame plates 1901. In specific application scenarios, the synchronization auxiliary component 19 is suitable for fixing the base plate 5 and the two frame plates 1901 before pouring. That is, the synchronization auxiliary component 19 uses the synchronization rod 1902 on the lifting plate 1904 to be inserted into the synchronization hole 1903 of the frame plate 1901 to achieve fixation. This ensures that during the subsequent vibration of the base plate 5, the two mold sleeves 10 can always maintain a sealed assembly with the bottom mold 6, avoiding the bottom mold 6 from vibrating and causing incomplete sealing of the pouring cavity, thus resulting in finished product quality problems.

[0032] Reference Figure 3 , Figure 6 and Figure 7In a preferred embodiment, a suspension 20 is provided between the upright frame 2 and the rotary table 1, and the height of the suspension 20 is higher than that of the mold sleeve 10; a casting pipe 22 is provided inside the suspension 20, and a top plate 21 is bolted to the lower end of the suspension 20. The top plate 21 is located directly above the base plate 5 in front of the platform 8, and a plurality of circumferentially spaced contact pads 23 are provided on the outside of the top plate 21. Each of the contact pads 23 and the top plate 21 is bolted to a buffer spring 24.

[0033] Specifically, when the bottom mold 6 and the two mold sleeves 10 are assembled, the pouring pipe 22 is located between the two mold sleeves 10 (there is a gap between the pouring pipe 22 and the two mold sleeves 10), and the top plate 21 is located in the upper groove of the two mold sleeves 10. During the pouring process, the bottom mold 6 and the two mold sleeves 10 vibrate laterally. Under the action of the touch pad 23 and the buffer spring 24, the pouring cavity can be in a better closed state, avoiding direct interference from the external environment to the pouring cavity.

[0034] Working principle: The rotating disc 1 transports a mounting base 3 to the front of the upright frame 2. The two clamping arms 9 rotate synchronously and move closer together, so that the bottom mold 6 and the two mold sleeves 10 are combined and formed (the starting adjustment motor 18 drives a vertical shaft 16 to rotate. Under the pull of two meshing gears 17, the two vertical shafts 16 rotate synchronously in opposite directions, and the two clamping arms 9 move closer or further apart synchronously). After the synchronous auxiliary component 19 is started, the bottom plate 5 and the two mold sleeves 10 are fixed in place (after the bottom mold 6 and the two mold sleeves 10 are combined and installed, the hydraulic cylinder 1905 retracts and drives the lifting plate 1904 to move closer to the bottom plate 5. The synchronous rod 1902 slides in the through hole of the bottom plate 5 and inserts into the synchronous hole 1903 of the frame plate 1901 to achieve synchronous fixation of the bottom plate 5 and the two frame plates 1901). Then the pouring operation is performed. During the casting process, the flow equalization module 7 starts to assist in the casting operation (during the casting process, the vibration motor 701 starts and drives the auxiliary block 702 to vibrate. Under the limiting action of the return spring 704, the base plate 5 as a whole undergoes high-frequency horizontal vibration). After the casting is completed, the cooling module 11 starts to perform rapid cooling (initially, the cooling chamber 1101 is filled with coolant. After the casting is completed, the external coolant enters from the inlet pipe 1102, and the coolant in the cooling chamber 1101 is discharged from the outlet pipe 1103. The liquid flow rates of the two are the same, so the flowing coolant is used to quickly cool the formed glass insulator). After completion, the synchronous auxiliary component 19 is reset, the two clamping arms 9 are reset for initial demolding, and then the rotary table 1 rotates to remove the mounting seat 3 in front of the upright 2 and flip the bottom plate 5 for complete demolding.

[0035] 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. A rapid cooling multi-umbrella type glass insulator casting mold, comprising a rotating disk (1), characterized in that, A stand (2) is provided on one side of the rotary disc (1), and a plurality of circumferentially spaced mounting seats (3) are fixedly connected to the upper side of the rotary disc (1). A flipping seat (4) is provided on the side of the mounting seat (3) away from the rotary disc (1). A base plate (5) is provided above the flipping seat (4), and a bottom mold (6) is fixedly connected to the upper side of the base plate (5). A flow equalization module (7) is provided below the base plate (5). A platform (8) is fixedly connected to the stand (2), and two symmetrical clamping arms (9) are provided on the platform (8). A mold sleeve (10) is provided at the front end of each of the two clamping arms (9), and a cooling module (11) is provided inside the mold sleeve (10). A synchronous auxiliary component (19) is provided on the mold sleeve (10) and the bottom mold (6). The uniform flow module (7) includes a vibration motor (701); The cooling module (11) includes a cooling cavity (1101), which is located inside the sleeve (10); The synchronization auxiliary component (19) includes a frame plate (1901) and multiple synchronization rods (1902). The frame plate (1901) is fixedly connected to the outside of the mold sleeve (10). The bottom plate (5) has four symmetrical through holes. The multiple synchronization rods (1902) are movably connected in the through holes of the bottom plate (5).

2. The rapid cooling multi-umbrella glass insulator casting mold according to claim 1, characterized in that, The flow equalization module (7) also includes an attachment block (702), which is located on the lower side of the base plate (5). The vibration motor (701) is fixedly connected to the attachment block (702). Two symmetrical circular holes are opened on the attachment block (702). Sliding shafts (703) are movably connected inside the circular holes. The two ends of the two sliding shafts (703) are fixedly connected to the inner walls of the two sides of the flipping seat (4). Two symmetrical return springs (704) are movably connected to the outside of the two sliding shafts (703). The two ends of the return springs (704) are fixedly connected to the inner walls of the attachment block (702) and the flipping seat (4).

3. The rapid cooling multi-umbrella type glass insulator casting mold according to claim 2, characterized in that, The flipping seat (4) is movably connected to the mounting seat (3), and a flipping motor (12) is fixedly connected to the mounting seat (3). The output end of the flipping motor (12) is connected to a rotating shaft through a coupling, and the other end of the rotating shaft is fixedly connected to the flipping seat (4).

4. The rapid cooling multi-umbrella glass insulator casting mold according to claim 1, characterized in that, Both of the two mold sleeves (10) are fixedly connected to the outer side of a movable frame (13), and both movable frames (13) are movably connected to a front plate (14). A plurality of retaining springs (15) are fixedly connected to one side of the front plate (14), and the other end of the plurality of retaining springs (15) is fixedly connected to the outer wall of the mold sleeve (10) on the same side.

5. The rapid cooling multi-umbrella glass insulator casting mold according to claim 4, characterized in that, The base (8) has two symmetrical rotating holes, and vertical shafts (16) are movably connected inside the two rotating holes. One end of each of the two clamping arms (9) has a mounting hole. The two vertical shafts (16) are fixedly connected in the mounting holes of the two clamping arms (9), and the other end of the two clamping arms (9) is fixedly connected to the front plate (14) on the same side.

6. The rapid cooling multi-umbrella glass insulator casting mold according to claim 5, characterized in that, The lower ends of the two vertical shafts (16) are fixedly connected to gears (17), the two gears (17) mesh with each other through tooth grooves, and an adjustment motor (18) is fixedly connected on the base (8). The output end of the adjustment motor (18) is connected to a short shaft through a coupling, and the other end of the short shaft is fixedly connected to one of the vertical shafts (16).

7. The rapid cooling multi-umbrella type glass insulator casting mold according to claim 1, characterized in that, The cooling module (11) also includes an inlet pipe (1102) and an outlet pipe (1103). Both the inlet pipe (1102) and the outlet pipe (1103) are connected to the cooling chamber (1101). The inlet of the inlet pipe (1102) is located at the top, and the inlet of the outlet pipe (1103) is located at the bottom. Each frame plate (1901) is fixedly connected with a stand block (1104). Each stand block (1104) is fixedly connected with two double-connector joints (1105). The other end of the inlet pipe (1102) is fixedly connected to one double-connector joint (1105), and the other end of the outlet pipe (1103) is fixedly connected to the other double-connector joint (1105).

8. A rapid cooling multi-umbrella glass insulator casting mold according to claim 7, characterized in that, The synchronization auxiliary component (19) also includes four synchronization holes (1903). The four synchronization holes (1903) are located on two frame plates (1901) and are symmetrically distributed in pairs. Two symmetrical lifting plates (1904) are provided below the bottom plate (5). The upper side of the lifting plate (1904) is fixedly connected to the lower end of the two synchronization rods (1902) above. Hydraulic cylinders (1905) are fixedly connected to both sides of the bottom plate (5). The telescopic end of the hydraulic cylinder (1905) is fixedly connected to the lifting plate (1904) on the same side.

9. A rapid cooling multi-umbrella type glass insulator casting mold according to claim 1, characterized in that, A suspension (20) is provided between the upright (2) and the rotary table (1), and the height of the suspension (20) is higher than that of the mold sleeve (10).

10. A rapid cooling multi-umbrella type glass insulator casting mold according to claim 9, characterized in that, The suspension (20) is provided with a casting pipe (22) inside. The lower end of the suspension (20) is fixedly connected to a top plate (21). The top plate (21) is located directly above the base plate (5) in front of the platform (8). The top plate (21) is provided with multiple circumferentially spaced contact pads (23) on its outside. Each contact pad (23) is fixedly connected to the top plate (21) with a buffer spring (24).