A cooling device for processing glass fiber reinforced plastic products

CN224602098UActive Publication Date: 2026-08-07HUBEI ZHONGXIANG ZHONGXING GLASS FIBER REINFORCEDPLASTIC
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
HUBEI ZHONGXIANG ZHONGXING GLASS FIBER REINFORCEDPLASTIC
Filing Date
2025-07-23
Publication Date
2026-08-07

AI Technical Summary

Technical Problem

[0006]为解决上述往往需要耗费大量的时间来等待玻璃钢板材充分的冷却成型,冷却效率低下的同时也增大了能源的消耗的技术问题,本实用新型提供一种玻璃钢制品加工用冷却装置

Benefits of technology

[0014]通过设置翻转夹持机构,可便于对玻璃钢板进行旋转翻转降温冷却,从而使玻璃钢板的顶部与底部充分的与冷媒接触,进而达到了有效缩短降温冷却的时间,提高降温冷却效率的同时进一步降低能源消耗的目的,并且通过设置尺寸调节机构,可便于根据使用需要对不同尺寸大小的玻璃钢板进行夹持固定,从而达到了便于对不同的玻璃钢板进行正常降温冷却使用的目的。

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Abstract

The utility model provides a kind of cooling device for glass steel product processing, it is related to cooling device field, comprising: processing base and glass steel plate, the top of processing base is symmetrically provided with two air cooling mechanisms;Turnover clamping mechanism, turnover clamping mechanism includes two positioning clamps, two rotating clamps, two clamping components and rotating component, the bottom of two positioning clamps is installed on the top of processing base by two size adjusting mechanisms;By setting turnover clamping mechanism, it can be convenient to rotate and turn down cooling for glass steel plate, so that the top and bottom of glass steel plate are fully contacted with refrigerant, and the purpose of effectively shortening cooling time, improving cooling efficiency and further reducing energy consumption is achieved, and by setting size adjusting mechanism, it can be convenient to clamp and fix glass steel plate of different size according to use needs, so that the purpose of facilitating normal cooling use for different glass steel plate is achieved.
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Description

Technical Field

[0001] This utility model relates to the field of cooling devices, and in particular to a cooling device for processing fiberglass products. Background Technology

[0002] Fiberglass products are various industrial or civilian products made from fiberglass (scientific name: glass fiber reinforced plastic). Their core material is a composite of synthetic resin matrix and glass fiber reinforcement. They are formed through fiber layer stacking and resin impregnation processes. Complex structures can be customized. They are widely used in construction, chemical, transportation and other fields. Their name comes from the fact that their performance is similar to steel, but their actual composition does not contain any metal elements.

[0003] During the production and processing of related fiberglass products, such as fiberglass sheets, cooling and molding are often required. This is achieved by placing the fiberglass sheets, which are already at a high temperature, on a processing table and cooling them with air cooling by a fan or water cooling by a spray nozzle.

[0004] However, when using the above methods, the fiberglass sheets are mostly placed statically on the processing table when being cooled by air or water. This results in the bottom of the fiberglass sheet that is in contact with the processing table not being able to directly contact the refrigerant, leading to low cooling efficiency. It often takes a lot of time to wait for the fiberglass sheet to cool and solidify fully, which not only increases energy consumption but also reduces cooling efficiency.

[0005] Therefore, it is necessary to provide a cooling device for processing fiberglass products to solve the above-mentioned technical problems. Utility Model Content

[0006] To address the technical problem that often requires a significant amount of time to allow fiberglass sheets to fully cool and solidify, resulting in low cooling efficiency and increased energy consumption, this invention provides a cooling device for processing fiberglass products.

[0007] This utility model provides a cooling device for processing fiberglass products, comprising: a processing base and a fiberglass plate, wherein the fiberglass plate is located on top of the processing base, and two air-cooling mechanisms are symmetrically arranged on the top of the processing base; a flipping clamping mechanism, which includes two positioning clamps, two rotating clamps, two clamping components, and a rotating component. The bottom of the two positioning clamps is installed on the top of the processing base through two size adjustment mechanisms, one end of the two rotating clamps is installed on the side wall of the two positioning clamps through the rotating component, and the two clamping components are respectively installed on the other end of the two rotating clamps.

[0008] Preferably, the rotating assembly includes two supporting shafts, a first gear, a second motor, two fixing rods, and a second gear. The two supporting shafts are rotatably connected to the side walls of two positioning clamps, and one end of each of the two rotating clamps is fixedly connected to one end of the two supporting shafts. The other end of one of the supporting shafts is rotatably connected to the middle of the first gear by passing through the side wall of one of the positioning clamps. The side wall of the second motor is fixedly connected to the side wall of one of the positioning clamps by the two fixing rods. The second gear is fixedly connected to the output end of the second motor, and the side wall of the second gear meshes with the side wall of the first gear.

[0009] Preferably, the clamping assembly includes a lower pressure plate, a rubber pad, and two adjustment units. One end of the lower pressure plate is mounted to the other end of the rotating clamp via the two adjustment units, and the rubber pad is fixedly connected to the bottom of the lower pressure plate.

[0010] Preferably, the adjustment unit includes a threaded rod, an adjustment knob, and a lifting slider. The other end of the rotating clamp is provided with a lifting groove. The two ends of the threaded rod are rotatably connected to the two ends of the lifting groove. One end of the threaded rod is fixedly connected to the bottom of the adjustment knob by rotating through the end of the lifting groove. The middle part of the lifting slider is rotatably connected to the side wall of the threaded rod through a threaded hole. One end of the lower pressure plate is fixedly connected to one end of the lifting slider.

[0011] Preferably, the size adjustment mechanism includes a support slide rod, an adjustment slider, and a spring. The top of the processing base is provided with an adjustment groove. The two ends of the support slide rod are fixedly connected to the two ends of the adjustment groove. The bottom of the positioning clamp is slidably connected to the side wall of the support slide rod through the adjustment slider. The two ends of the spring are fixedly connected to one end of the adjustment groove and one end of the adjustment slider, respectively.

[0012] Preferably, the air-cooling mechanism includes a fixed frame, a first motor, and a fan impeller. The bottom of the fixed frame is fixedly connected to the top of the processing base, the first motor is fixedly connected to the middle of the side wall of the fixed frame, and the output end of the first motor is fixedly connected to the middle of the fan impeller by rotating through the middle of the side wall of the fixed frame.

[0013] Compared with related technologies, the cooling device for processing fiberglass products provided by this utility model has the following advantages:

[0014] By setting up a flipping clamping mechanism, the fiberglass sheet can be easily rotated and flipped for cooling, so that the top and bottom of the fiberglass sheet can fully contact the refrigerant. This effectively shortens the cooling time, improves cooling efficiency, and further reduces energy consumption. In addition, by setting up a size adjustment mechanism, fiberglass sheets of different sizes can be clamped and fixed according to usage needs, thus facilitating the normal cooling of different fiberglass sheets. Attached Figure Description

[0015] Figure 1 This is a schematic diagram of the cooling device for processing fiberglass products according to this utility model;

[0016] Figure 2 This is a structural cross-sectional view of the dimensional adjustment mechanism of the cooling device for processing fiberglass products according to this utility model;

[0017] Figure 3 This is a partial structural cross-sectional view of the flipping and clamping mechanism of the cooling device for processing fiberglass products according to this utility model;

[0018] Figure 4 This is a partial exploded view of the clamping assembly of the cooling device for processing fiberglass products according to this utility model.

[0019] The diagram shows the following components: 1. Machining base; 2. Fiberglass plate; 3. Air-cooling mechanism; 301. Fixing frame; 302. First motor; 303. Fan impeller; 4. Tilting clamping mechanism; 401. Positioning clamp; 402. Rotating clamp; 5. Clamping assembly; 501. Lower pressure plate; 502. Rubber pad; 6. Adjustment unit; 601. Lifting slide; 602. Threaded rod; 603. Adjustment knob; 604. Lifting slider; 605. Threaded hole; 7. Rotating assembly; 701. Support shaft; 702. First gear; 703. Second motor; 704. Fixing rod; 705. Second gear; 8. Size adjustment mechanism; 801. Adjustment slide; 802. Support slide; 803. Adjustment slider; 804. Spring. Detailed Implementation

[0020] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0021] Please refer to the following: Figures 1 to 4 A cooling device for processing fiberglass products includes: a processing base 1 and a fiberglass plate 2, wherein the fiberglass plate 2 is located on top of the processing base 1, and two air-cooling mechanisms 3 are symmetrically arranged on the top of the processing base 1.

[0022] The flipping clamping mechanism 4 includes two positioning clamping plates 401, two rotating clamping plates 402, two clamping components 5 and a rotating component 7. The bottom of the two positioning clamping plates 401 is mounted on the top of the processing base 1 through two size adjustment mechanisms 8. One end of the two rotating clamping plates 402 is mounted on the side wall of the two positioning clamping plates 401 through the rotating component 7. The two clamping components 5 are respectively mounted on the other end of the two rotating clamping plates 402.

[0023] The rotating assembly 7 includes two supporting shafts 701, a first gear 702, a second motor 703, two fixing rods 704, and a second gear 705. The two supporting shafts 701 are rotatably connected to the side walls of two positioning clamps 401, and one end of each of the two rotating clamps 402 is fixedly connected to one end of the two supporting shafts 701. The other end of one of the supporting shafts 701 is rotatably connected to the middle of the first gear 702 by passing through the side wall of one of the positioning clamps 401. The side wall of the second motor 703 is fixedly connected to the side wall of one of the positioning clamps 401 by the two fixing rods 704. The second gear 705 is fixedly connected to the output end of the second motor 703, and the side wall of the second gear 705 meshes with the side wall of the first gear 702.

[0024] The clamping assembly 5 includes a lower pressure plate 501, a rubber pad 502, and two adjustment units 6. One end of the lower pressure plate 501 is mounted to the other end of the rotating clamping plate 402 through the two adjustment units 6, and the rubber pad 502 is fixedly connected to the bottom of the lower pressure plate 501.

[0025] The adjustment unit 6 includes a threaded rod 602, an adjustment knob 603, and a lifting slider 604. The other end of the rotating clamp 402 is provided with a lifting groove 601. The two ends of the threaded rod 602 are rotatably connected to the two ends of the lifting groove 601, and one end of the threaded rod 602 is fixedly connected to the bottom of the adjustment knob 603 by rotating through the lifting groove 601. The middle part of the lifting slider 604 is rotatably connected to the side wall of the threaded rod 602 through a threaded hole 605. One end of the lower pressure plate 501 is fixedly connected to one end of the lifting slider 604.

[0026] The air-cooling mechanism 3 includes a fixed frame 301, a first motor 302, and a fan impeller 303. The bottom of the fixed frame 301 is fixedly connected to the top of the processing base 1. The first motor 302 is fixedly connected to the middle of the side wall of the fixed frame 301. The output end of the first motor 302 is fixedly connected to the middle of the fan impeller 303 by rotating through the middle of the side wall of the fixed frame 301.

[0027] In the specific implementation process, firstly, by rotating the adjustment knob 603, the threaded rod 602 connected to it is forced to rotate within the lifting groove 601 opened at one end of the rotating clamp 402. The rotation of the threaded rod 602 causes the lifting slider 604 connected through the threaded hole 605 to slide upwards on the threaded rod 602 under the limiting force of the lifting groove 601. The upward movement of the lifting slider 604 on the threaded rod 602 causes the connected lower pressure plate 501 to follow suit and move upwards. At this time, the fiberglass plate 2 is placed on the rotating clamp 402. Between the 02 and the lower pressure plate 501, the lower pressure plate 501 is slid down by rotating the adjusting knob 603 in the opposite direction. This sliding movement of the lower pressure plate 501, in conjunction with the rotating clamping plate 402, clamps and fixes the fiberglass plate 2. The rubber pad 502 provides elastic contact protection to the surface of the fiberglass plate 2, preventing damage. At this time, the first motor 302, supported and fixed by the fixing frame 301, is started, driving the connected fan impeller 303 to rotate. Rotation of motor 303 blows cold air onto the clamped fiberglass plate 2 for cooling. Simultaneously, the second motor 703, supported by a fixing rod 704, is activated, providing force to rotate the connected second gear 705. The rotation of the second gear 705 causes the meshing first gear 702 to rotate, which in turn causes the connected support shaft 701 to rotate against the side wall of the positioning clamp 401. The rotation of the support shaft 701, in turn, causes the connected... The rotating clamp 402 rotates under force, which in turn drives the fixed fiberglass plate 2 to rotate as well. At this time, the rotation and flipping of the fiberglass plate 2 allows the symmetrically installed fan impellers 303 to fully cool the bottom and top of the fiberglass plate 2. This facilitates the rotation and flipping of the fiberglass plate 2 for cooling, ensuring that the top and bottom of the fiberglass plate 2 are in full contact with the refrigerant, thereby effectively shortening the cooling time, improving cooling efficiency, and further reducing energy consumption.

[0028] Furthermore, the size adjustment mechanism 8 includes a support slide rod 802, an adjustment slider 803, and a spring 804. The top of the processing base 1 is provided with an adjustment groove 801. The two ends of the support slide rod 802 are fixedly connected to the two ends of the adjustment groove 801. The bottom of the positioning clamp 401 is slidably connected to the side wall of the support slide rod 802 through the adjustment slider 803. The two ends of the spring 804 are fixedly connected to one end of the adjustment groove 801 and one end of the adjustment slider 803, respectively.

[0029] It should be noted that, based on the size of the fiberglass plate 2, the manually adjustable slider 803 is supported by the support slide rod 802, allowing it to slide within the adjustment groove 801 on the top of the processing base 1. The sliding movement of the slider 803 within the adjustment groove 801 causes the connected positioning clamp 401 to move and open along with the top of the processing base 1. At this point, the fiberglass plate 2 is placed between the two positioning clamps 401, and the spring 804 provides a reaction force to cause the adjustable slider 803 to... The force rebounds and moves. By adjusting the rebound movement of the slider 803, the positioning clamp 401 connected to it can be driven to rebound and close. The rebound movement and closing of the positioning clamp 401 can drive the set rotating clamp 402 to close and clamp and position the fiberglass plate 2 laterally. Then, it can work with the lower pressure plate 501 to further clamp and fix the fiberglass plate 2. In this way, it can be used to clamp and fix fiberglass plates 2 of different sizes according to the needs of use, so as to facilitate the normal cooling and heat dissipation of different fiberglass plates 2.

[0030] The working principle of the cooling device for processing fiberglass products provided by this utility model is as follows:

[0031] In use, firstly, according to the size of the fiberglass plate 2, the manually adjustable slider 803 is supported by the support slide rod 802 and slides within the adjustment groove 801 opened on the top of the processing base 1. The sliding movement of the slider 803 within the adjustment groove 801 causes the connected positioning clamp 401 to open under pressure on the top of the processing base 1. Then, the fiberglass plate 2 is placed between the two positioning clamps 401. The spring 804 provides a reaction force, causing the slider 803 to rebound. This rebound movement of the slider 803 causes the connected positioning clamp 401 to close under pressure. Finally, the positioning clamp 401 closes under pressure. The rotating clamping plate 402 closes to laterally clamp and position the fiberglass plate 2, which, in conjunction with the lower pressure plate 501, further clamps and fixes the fiberglass plate 2. This effectively allows for the clamping and fixing of fiberglass plates 2 of different sizes according to usage needs, facilitating the normal cooling and application of different fiberglass plates 2. Next, rotating the adjusting knob 603 causes the connected threaded rod 602 to rotate within the lifting groove 601 at one end of the rotating clamping plate 402. The rotation of the threaded rod 602 causes the lifting slider 604, connected through the threaded hole 605, to slide upwards on the threaded rod 602 under the constraint of the lifting groove 601. The slider 604 slides upward on the threaded rod 602, thereby causing the connected lower pressure plate 501 to move upward as well. At this time, the fiberglass plate 2 is placed between the rotating clamp 402 and the lower pressure plate 501. Then, by rotating the adjusting knob 603 in the opposite direction, the lower pressure plate 501 is forced to slide downward. The downward movement of the lower pressure plate 501, in conjunction with the rotating clamp 402, clamps and fixes the fiberglass plate 2. The rubber pad 502 provides elastic contact protection for the surface of the fiberglass plate 2, thereby avoiding damage to the surface of the fiberglass plate 2. At this time, the first motor 302, which is supported and fixed by the fixing frame 301, is started, thereby driving the connected fan impeller 303 to rotate. The rotation of wheel 303 blows cold air onto the clamped fiberglass plate 2 for cooling. Simultaneously, the second motor 703, supported by the fixing rod 704, is activated, providing force to rotate the connected second gear 705. The rotation of the second gear 705 causes the meshing first gear 702 to rotate. The rotation of the first gear 702 causes the connected support shaft 701 to rotate against the side wall of the positioning clamp 401. The rotation of the support shaft 701 then causes the connected rotating clamp 402 to rotate, which in turn causes the clamped fiberglass plate 2 to rotate.By rotating and flipping the fiberglass plate 2, the symmetrically installed fan impellers 303 can effectively cool the bottom and top of the fiberglass plate 2. This facilitates efficient rotation and cooling of the fiberglass plate 2, ensuring full contact between the top and bottom of the plate and the refrigerant. This shortens the cooling time, improves cooling efficiency, and further reduces energy consumption.

[0032] The above description is merely an embodiment of this utility model and does not limit the patent scope of this utility model. Any equivalent structural or procedural transformations made based on the content of this utility model specification and drawings, or direct or indirect applications in other related technical fields, are similarly included within the patent protection scope of this utility model.

Claims

1. A cooling device for processing fiberglass products, characterized in that, include: The processing base and the fiberglass plate, wherein the fiberglass plate is located on top of the processing base, and two air-cooling mechanisms are symmetrically arranged on the top of the processing base; The flipping clamping mechanism includes two positioning clamps, two rotating clamps, two clamping components, and a rotating component. The bottoms of the two positioning clamps are mounted on the top of the processing base via two size adjustment mechanisms. One end of the two rotating clamps is mounted on the side wall of the two positioning clamps via the rotating component. The two clamping components are respectively mounted on the other end of the two rotating clamps.

2. The cooling device for processing fiberglass products according to claim 1, characterized in that, The rotating assembly includes two supporting shafts, a first gear, a second motor, two fixing rods, and a second gear. The two supporting shafts are rotatably connected to the side walls of two positioning clamps. One end of each of the two rotating clamps is fixedly connected to one end of the two supporting shafts. The other end of one of the supporting shafts is rotatably connected to the middle of the first gear by passing through the side wall of one of the positioning clamps. The side wall of the second motor is fixedly connected to the side wall of one of the positioning clamps by the two fixing rods. The second gear is fixedly connected to the output end of the second motor, and the side wall of the second gear meshes with the side wall of the first gear.

3. The cooling device for processing fiberglass products according to claim 1, characterized in that, The clamping assembly includes a lower pressure plate, a rubber pad, and two adjustment units. One end of the lower pressure plate is mounted to the other end of the rotating clamp via the two adjustment units, and the rubber pad is fixedly connected to the bottom of the lower pressure plate.

4. The cooling device for processing fiberglass products according to claim 3, characterized in that, The adjustment unit includes a threaded rod, an adjustment knob, and a lifting slider. The other end of the rotating clamp is provided with a lifting groove. The two ends of the threaded rod are rotatably connected to the two ends of the lifting groove. One end of the threaded rod is fixedly connected to the bottom of the adjustment knob by rotating through the end of the lifting groove. The middle part of the lifting slider is rotatably connected to the side wall of the threaded rod through a threaded hole. One end of the lower pressure plate is fixedly connected to one end of the lifting slider.

5. The cooling device for processing fiberglass products according to claim 1, characterized in that, The size adjustment mechanism includes a support slide rod, an adjustment slider, and a spring. The top of the processing base is provided with an adjustment groove. The two ends of the support slide rod are fixedly connected to the two ends of the adjustment groove. The bottom of the positioning clamp is slidably connected to the side wall of the support slide rod through the adjustment slider. The two ends of the spring are fixedly connected to one end of the adjustment groove and one end of the adjustment slider, respectively.

6. The cooling device for processing fiberglass products according to claim 1, characterized in that, The air-cooling mechanism includes a fixed frame, a first motor, and a fan impeller. The bottom of the fixed frame is fixedly connected to the top of the processing base. The first motor is fixedly connected to the middle of the side wall of the fixed frame. The output end of the first motor is fixedly connected to the middle of the fan impeller by rotating through the middle of the side wall of the fixed frame.