Cooling device for production and processing of glass fiber insulating sleeve
Through the cooling device integrating fan and water pump, rapid water impact cooling and air-drying of glass fiber insulated casing is achieved, which solves the problem of independent blow-drying after water cooling, improves production efficiency and product quality, and reduces labor costs.
Patent Information
- Application Number
- CN202422395071.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-30
- Publication Date
- 2025-08-05
- Estimated Expiration
- 2034-09-30
AI Technical Summary
During the production process of existing fiberglass insulated casing, the water cooling system needs to be blow-dried equipment or air-dried naturally after it is cooled, which increases the production cycle, which can easily cause water stains to affect the appearance quality and reduce durability. The equipment occupies a large space, is complex in operation, and has high labor costs.
A cooling device integrating fan and water pump is designed to air-dry after cooling by water impact, and the annular hollow plate and air outlet are used to achieve all-round rapid blow-drying, combining with the filter port to reuse water resources to simplify the operation process.
It realizes fast and efficient water impact cooling and air-drying treatment, reduces water stain generation, improves production efficiency, reduces labor costs, and improves product appearance quality and durability.
Smart Images

Figure CN223186830U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of production and processing of insulating sleeves, and in particular to a cooling device for production and processing of glass fiber insulating sleeves. Background Art
[0002] Glass fiber casing is mainly used as an insulation material for electrical appliances. KB heat-shrinkable busbar protection casing is made of high-quality polymer and environmentally friendly flame retardants. It is expanded by radiation cross-linking after molding. It is widely used to protect busbars in switch cabinets and outdoor busbars. It prevents short-circuit faults caused by small animals such as mice and snakes, prevents corrosion of busbars by chemicals such as acids, alkalis, and salts, and prevents maintenance personnel from accidentally entering live areas and causing accidental injuries. It adapts to the development trend of miniaturization of switch cabinets and solves the interphase insulation problem of bus ducts. In the production and processing of glass fiber insulation casing, cooling and drying are two crucial links.
[0003] Regarding the above-mentioned related technologies, the inventors believe that the cooling devices widely used in the market are mostly water cooling systems, which quickly cool the high-temperature formed glass fiber sleeves by spraying or immersion to prevent them from deformation or damage. However, this traditional cooling method usually requires independent drying equipment or natural air drying to remove residual moisture on the sleeve surface. This process not only increases the production cycle, but also easily causes water stains on the sleeve surface due to prolonged moisture, affecting the appearance quality. In some cases, residual moisture can even accelerate the aging of the internal materials of the sleeve, reducing the durability of the product.
[0004] In addition, existing cooling and drying equipment often takes up a large space and is complex to operate, requiring frequent manual switching between different equipment, which reduces production efficiency and increases labor costs.
[0005] The above information disclosed in this background technology is only used to increase the understanding of the background technology of this application. Therefore, it may contain information that does not constitute the prior art known to ordinary technicians in this field. Utility Model Content
[0006] To address this issue, water cooling systems are widely used in the market. High-temperature molded fiberglass casings are rapidly cooled by spraying or immersion to prevent deformation or damage. However, this traditional cooling method typically requires separate drying equipment or natural air drying to remove residual moisture from the casing surface. This process not only increases production cycle time but can also easily cause water stains on the casing surface due to prolonged moisture, affecting the appearance quality. In some cases, residual moisture can even accelerate the aging of the casing's internal materials, reducing product durability.
[0007] In addition, existing cooling and drying equipment often takes up a large space and is complicated to operate, requiring manual frequent switching of different equipment, which reduces production efficiency and increases labor costs. The present application provides a cooling device for the production and processing of glass fiber insulation sleeves.
[0008] The present application provides a cooling device for producing and processing glass fiber insulation sleeves, which adopts the following technical solutions:
[0009] A cooling device for the production and processing of glass fiber insulating sleeves includes a processing table, a fan is installed on the upper end of the processing table, a water pump is installed on the upper end of the processing table, a second electric telescopic rod is installed on the upper end of the processing table, the upper end of the second electric telescopic rod is fixedly connected to a placement plate, a plurality of limiting holes are evenly spaced on the upper end of the placement plate, and the plurality of limiting holes are used to place glass fiber insulating sleeves. The upper end of the processing table is provided with a cooling mechanism for the production and processing of insulating sleeves.
[0010] Preferably, the cooling mechanism includes an annular hollow plate fixedly connected to the upper end of the processing table, and a plurality of air outlets are arranged around the inner side of the annular hollow plate at equal intervals, and the plurality of air outlets are all connected to the interior of the annular hollow plate.
[0011] Preferably, the air outlet end of the fan is connected to an air outlet pipe, the other end of the air outlet pipe is connected to the interior of the annular hollow plate, and the water outlet end of the water pump is connected to a water outlet pipe, the other end of the water outlet pipe is connected to the interior of the annular hollow plate.
[0012] Preferably, the air outlet end of the fan and the water outlet end of the water pump are both equipped with a one-way valve for ensuring one-way flow of the fluid, a water trough is opened in the processing table, and a processing cavity is provided in the annular hollow plate. The processing cavity is connected to the interior of the water trough through multiple connecting holes, and filter ports are provided on the multiple connecting holes.
[0013] Preferably, a display panel is provided on the front side of the processing table, a control switch is installed on the front side of the processing table, the water pump and the fan are both connected to the control switch signal, and the water pump is connected to the inside of the water tank through a suction pipe.
[0014] Preferably, a plurality of first electric telescopic rods are symmetrically mounted on the lower end of the processing table, and the lower ends of the plurality of first electric telescopic rods are all provided with anti-slip pads.
[0015] In summary, this application has the following beneficial technical effects:
[0016] After the water shock cooling is completed, the water pump is turned off and the fan is started. Finally, multiple air outlets can discharge air to quickly dry the surface of the glass fiber insulation sleeve. There is no need to wait for a long time for the water to drain, which further improves the overall processing efficiency. The cooled sleeve is dried in an all-round and efficient manner to reduce water stains.
[0017] Place multiple fiberglass insulating sleeves into the corresponding limit holes, and then start the water pump through the control switch. After the water pump is started, the water at the bottom of the water tank will be sucked into the water pump, and then discharged into the annular hollow plate through the outlet pipe, and finally discharged from multiple air outlets to impact the surface of the fiberglass insulating sleeve, thereby performing water impact cleaning and cooling on the surface of the fiberglass insulating sleeve. Multiple fiberglass insulating sleeves can be processed at one time, which improves the efficiency of cleaning and cooling. In this process, the water body can be reused through the setting of multiple filter ports, ensuring the full utilization of water resources. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 It is a schematic diagram of the overall structure of the embodiment of the application;
[0019] Figure 2 It is an embodiment of the application Figure 1 A magnified view of point A;
[0020] Figure 3 It is a schematic diagram of the internal structure of the embodiment of the application.
[0021] Explanation of the accompanying symbols: 1. Processing table; 2. Fan; 3. Annular hollow plate; 4. Air outlet; 5. Processing chamber; 6. Water pump; 7. Water outlet pipe; 8. Air outlet pipe; 9. First electric telescopic rod; 10. Anti-slip pad; 11. Control switch; 12. Display panel; 13. Connecting hole; 14. Placement plate; 15. Limiting hole; 16. Filter port; 17. Water suction pipe. DETAILED DESCRIPTION
[0022] The following is combined with Figure 1-3 This application is described in further detail.
[0023] The present application discloses a cooling device for producing and processing glass fiber insulation sleeves. Figure 1-3 A cooling device for the production and processing of glass fiber insulating sleeves includes a processing table 1, a fan 2 is installed on the upper end of the processing table 1, a water pump 6 is installed on the upper end of the processing table 1, a second electric telescopic rod is installed on the upper end of the processing table 1, and a placement plate 14 is fixedly connected to the upper end of the second electric telescopic rod. A plurality of limiting holes 15 are evenly spaced at the upper end of the placement plate 14. The plurality of limiting holes 15 are all used to place glass fiber insulating sleeves. A cooling mechanism for the production and processing of insulating sleeves is provided on the upper end of the processing table 1.
[0024] After the water shock cooling is completed, the water pump 6 is turned off and the fan 2 is started. Finally, multiple air outlets 4 can discharge air flow to quickly dry the surface of the glass fiber insulation sleeve. There is no need to wait for a long time for the drainage process, which further improves the overall processing efficiency and performs a full-scale and efficient drying process on the cooled sleeve to reduce water stains.
[0025] Reference Figure 1-3 The cooling mechanism includes an annular hollow plate 3 fixedly connected to the upper end of the processing table 1, and a plurality of air outlets 4 are arranged at equal intervals around the inner side of the annular hollow plate 3. The multiple air outlets 4 are all connected to the interior of the annular hollow plate 3. The air outlet end of the fan 2 is connected to the air outlet pipe 8, and the other end of the air outlet pipe 8 is connected to the interior of the annular hollow plate 3. The water outlet end of the water pump 6 is connected to the water outlet pipe 7, and the other end of the water outlet pipe 7 is connected to the interior of the annular hollow plate 3. The air outlet end of the fan 2 and the water outlet end of the water pump 6 are both equipped with a one-way valve to ensure one-way flow of the fluid. A water tank is provided in the processing table 1, and a processing chamber 5 is provided in the annular hollow plate 3. The processing chamber 5 is connected to the interior of the water tank through a plurality of connecting holes 13, and the plurality of connecting holes 13 are each provided with a filter port 16.
[0026] Reference Figure 1-3 A display panel 12 is provided on the front side of the processing table 1, and a control switch 11 is installed on the front side of the processing table 1. The water pump 6 and the fan 2 are both connected to the control switch 11 signal, and the water pump 6 is connected to the inside of the water tank through the water suction pipe 17;
[0027] Put multiple glass fiber insulation sleeves into the corresponding limit holes 15, and then start the water pump 6 through the control switch 11. After the water pump 6 is started, the water at the bottom of the water tank will be sucked into the water pump 6, and then discharged into the annular hollow plate 3 through the outlet pipe 7, and finally discharged from the multiple air outlets 4 to impact the surface of the glass fiber insulation sleeve, so that the surface of the glass fiber insulation sleeve is cleaned and cooled by water impact. In addition, multiple glass fiber insulation sleeves can be processed at one time, which improves the efficiency of cleaning and cooling. In this process, the water body can be reused through the setting of multiple filter ports 16, ensuring the full utilization of water resources.
[0028] Reference Figure 1 A plurality of first electric telescopic rods 9 are symmetrically installed at the lower end of the processing table 1 , and an anti-slip pad 10 is provided at the lower end of the plurality of first electric telescopic rods 9 .
[0029] The implementation principle of a cooling device for producing and processing glass fiber insulation sleeves in the embodiment of the present application is as follows: first, multiple glass fiber insulation sleeves are placed in the corresponding limiting holes 15, and then the water pump 6 is started by the control switch 11. After the water pump 6 is started, the water at the bottom of the water tank is sucked into the water pump 6, and then discharged into the annular hollow plate 3 through the outlet pipe 7, and finally discharged from the multiple air outlets 4 to impact the surface of the glass fiber insulation sleeve, thereby performing water impact cleaning and cooling on the surface of the glass fiber insulation sleeve. In addition, multiple glass fiber insulation sleeves can be processed at one time, thereby improving the efficiency of cleaning and cooling. In this process, the water body can be reused through the provision of multiple filter ports 16, thereby ensuring the full utilization of water resources.
[0030] After the water shock cooling is completed, the water pump 6 is turned off and the fan 2 is started. Finally, the multiple air outlets 4 can discharge air to quickly dry the surface of the glass fiber insulation sleeve without waiting for a long time for the drainage process, further improving the overall processing efficiency, and performing a comprehensive and efficient drying process on the cooled sleeve to reduce water stains.
[0031] When the saw blade needs to be taken out after cleaning, it is only necessary to start the second electric telescopic rod. After the second electric telescopic rod is started, it will drive the placement plate 14 to move upward. The upward movement of the placement plate 14 will drive the glass fiber insulation sleeve to move upward, which is convenient for the user to take out and convenient for the user's operation.
[0032] Finally, a few points should be explained: First, in the description of this application, it should be noted that, unless otherwise specified or limited, the terms "mounted," "connected," and "connected" should be understood in a broad sense, and may refer to mechanical or electrical connections, internal communication between two components, or direct connection. "Up," "down," "left," and "right" are only used to indicate relative positional relationships. When the absolute positions of the objects being described change, the relative positional relationships may also change.
[0033] Secondly: The drawings of the embodiments disclosed in this utility model only involve structures related to the embodiments disclosed in this utility model. Other structures can refer to common designs. In the absence of conflicts, the same embodiment and different embodiments of the utility model can be combined with each other.
[0034] Finally: The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.
[0035] The above are all preferred embodiments of the present application, and are not intended to limit the scope of protection of the present application. Therefore, any equivalent changes made based on the structure, shape, and principle of the present application should be included in the scope of protection of the present application.
Claims
1. A cooling device for producing and processing glass fiber insulation sleeves, comprising a processing table (1), characterized in that: A fan (2) is installed at the upper end of the processing table (1), a water pump (6) is installed at the upper end of the processing table (1), a second electric telescopic rod is installed at the upper end of the processing table (1), the upper end of the second electric telescopic rod is fixedly connected to a placement plate (14), a plurality of limiting holes (15) are arranged at equal intervals on the upper end of the placement plate (14), and the plurality of limiting holes (15) are all used to place glass fiber insulation sleeves. A cooling mechanism for the production and processing of insulation sleeves is provided at the upper end of the processing table (1).
2. A cooling device for producing and processing glass fiber insulation sleeves according to claim 1, characterized in that: The cooling mechanism comprises an annular hollow plate (3) fixedly connected to the upper end of the processing table (1), a plurality of air outlets (4) are arranged around the inner side of the annular hollow plate (3) at equal intervals, and the plurality of air outlets (4) are all connected to the interior of the annular hollow plate (3).
3. A cooling device for producing and processing glass fiber insulation sleeves according to claim 2, characterized in that: The air outlet end of the fan (2) is connected to an air outlet pipe (8), the other end of which is connected to the interior of the annular hollow plate (3); the water outlet end of the water pump (6) is connected to a water outlet pipe (7), the other end of which is connected to the interior of the annular hollow plate (3).
4. A cooling device for producing and processing glass fiber insulation sleeves according to claim 3, characterized in that: The air outlet end of the fan (2) and the water outlet end of the water pump (6) are both equipped with one-way valves for ensuring one-way flow of fluid. A water trough is provided in the processing table (1). A processing cavity (5) is provided in the annular hollow plate (3). The processing cavity (5) is connected to the interior of the water trough through a plurality of connecting holes (13). A filter port (16) is provided on each of the plurality of connecting holes (13).
5. A cooling device for producing and processing glass fiber insulation sleeves according to claim 4, characterized in that: A display panel (12) is provided on the front side of the processing table (1), a control switch (11) is installed on the front side of the processing table (1), the water pump (6) and the fan (2) are both connected to the control switch (11) by signal, and the water pump (6) is connected to the interior of the water tank through a water suction pipe (17).
6. A cooling device for producing and processing glass fiber insulation sleeves according to claim 5, characterized in that: A plurality of first electric telescopic rods (9) are symmetrically mounted on the lower end of the processing table (1), and anti-slip pads (10) are provided at the lower ends of the plurality of first electric telescopic rods (9).