Cooling device for processing and forming touch screen glass

Through the cooperation of air cooling and refrigeration mechanism, the heat exchange technology of air flow and coolant tank is adopted to solve the problem of uneven heat on both sides of the touch screen glass, achieving uniform cooling and efficient production.

CN120488622AInactive Publication Date: 2025-08-15SHENZHEN JIAZHONG ELECTRONICS CO LTD
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Patent Information

Application Number
CN202510814671.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-18
Publication Date
2025-08-15
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing touch screen glass processing device can only spray water on one side, resulting in uneven heat on both sides, and excessive temperature difference between the inside and outside, which can easily cause temporary stress and cause rupture.

Method used

The air cooling mechanism and the refrigeration mechanism are used in combination. The air flow is generated by the air compressor to air-cool both sides of the touch screen glass at the same time, and heat is exchanged through the coolant tank. The coolant is agitated with the servo motor and the spoiler to ensure uniform cooling.

Benefits of technology

The continuous and uniform cooling of the touch screen glass is achieved, the risk of rupture is avoided, and the practicality and cooling efficiency of the device are improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a cooling device for touch screen glass processing and forming, and relates to the technical field of touch screen glass processing. The cooling device for touch screen glass processing and forming comprises a bottom plate, a refrigerating mechanism, a material jacking mechanism, a feeding and discharging mechanism, a collecting mechanism and an air cooling mechanism, a support is integrally formed at the top of the bottom plate, and the air cooling mechanism is arranged on the support and comprises a cooling box, a U-shaped pipe, a flow divider, a flow guide plate and a supporting block. According to the cooling device for touch screen glass processing and forming, the air cooling mechanism and the refrigerating mechanism are used in cooperation, the air compressor generates air flow, and air cooling is conducted on the two faces of touch screen glass in all the cooling boxes at the same time in sequence; and after being cooled by a group of touch screen glass, the air flow is heated and exchanges heat with the cooling liquid in the cooling liquid tank to ensure low temperature, and the cooling liquid after heat exchange can be continuously refrigerated, so that the continuous and uniform cooling effect of the touch screen glass is realized.
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Description

Technical Field

[0001] The present invention relates to the technical field of touch screen glass processing, and in particular to a cooling device for processing and forming touch screen glass. Background Art

[0002] Chinese patent document CN218296337U discloses a cooling device for touch screen glass processing and forming, including a support frame, a cooling mechanism and a filtering mechanism are provided on the left side of the support frame, the cooling mechanism includes a water pump, the water outlet of the water pump is connected to a first water pipe, the top of the first water pipe is connected to a cold row, the water outlet of the cold row is connected to a second water pipe, the serpentine pipe is arranged in the inner cavity of the support frame, the water outlet of the second water pipe passes through the left side of the support frame and is connected to the serpentine pipe, the bottom of the serpentine pipe is evenly connected to a nozzle, the outer side wall of the serpentine pipe is evenly sleeved with a hook, the top of the hook is arranged on the top of the inner cavity of the support frame, the filtering mechanism is located at the rear side of the water pump and cooperates with the water pump, and the hot air in the support frame is extracted by the exhaust fan to improve the cooling effect on the touch screen glass.

[0003] However, the above device can only spray water to cool one side of the touch screen glass, resulting in uneven heating of the two sides of the touch screen glass. In addition, direct water spraying will cause a large temperature difference between the inside and outside of the touch screen glass, which can easily induce temporary stress and cause cracks. Therefore, we propose a cooling device for touch screen glass processing and forming. Summary of the Invention

[0004] The object of the present invention is to provide a cooling device for processing and forming touch screen glass, which can solve the problem that some existing devices easily cause the touch screen glass to break.

[0005] To achieve the above-mentioned purpose, the present invention provides the following technical solution: a cooling device for processing and forming touch screen glass, comprising:

[0006] A bottom plate, a top portion of which is integrally provided with a bracket;

[0007] A refrigeration mechanism is provided on the top of the base plate and is used to ensure the cooling effect of the device;

[0008] A lifting mechanism is provided on the bracket and is used to assist in unloading the touch screen glass;

[0009] The loading and unloading mechanism is arranged on the top of the bottom plate and is used to realize the loading and unloading of the touch screen glass;

[0010] A collecting mechanism is provided on the top of the bottom plate and is used to collect the touch screen glass;

[0011] An air cooling mechanism is arranged on a bracket. The air cooling mechanism includes a cooling box, a U-shaped tube, a diverter, a guide plate and a support block. At least two groups of cooling boxes are arranged directly above the bracket and are distributed in a straight line. A group of U-shaped tubes are fixedly installed between adjacent cooling boxes. Both ends of each group of U-shaped tubes are communicated with the interior of the connected cooling box. A diverter is fixedly installed on the inner wall of one side of each group of cooling boxes. At least two groups of guide plates are fixedly installed on the front and rear inner walls of each group of cooling boxes. A group of support blocks is fixedly installed between the bottom of the first and last groups of cooling boxes and the top of the bracket.

[0012] Preferably, the air cooling mechanism also includes an air compressor, a filter box, an air inlet pipe and an air outlet pipe. The air compressor is fixedly installed on the top of the bracket, and the filter box is also fixedly installed on the top of the bracket. The air inlet pipe is fixedly installed between the filter box and the adjacent cooling box. The output end of the air compressor is connected to the interior of the filter box, and the two ends of the air inlet pipe are respectively connected to the interior of the filter box and the interior of the corresponding cooling box. The air outlet pipe connected to the interior of the filter box is fixedly installed on the cooling box at the end.

[0013] Preferably, the refrigeration mechanism includes a coolant tank, support columns, metal sheets, semiconductor refrigeration sheets and a radiator. The coolant tank is arranged directly above the base plate, and at least two groups of support columns are fixedly installed between the bottom of the coolant tank and the top of the base plate. The rear side of the coolant tank is penetrated by at least two groups of through grooves, and a group of metal sheets is fixedly installed in each group of through grooves. A group of semiconductor refrigeration sheets is fixedly installed on the outer surface of the rear side of each group of metal sheets, and a group of radiators is fixedly installed on the outer surface of the rear side of each group of semiconductor refrigeration sheets. Each group of U-shaped tubes is fixedly penetrated through the front part of the coolant tank and is arranged inside the coolant tank.

[0014] Preferably, the ejecting mechanism includes a first electric push rod, a connecting plate and an ejecting rod, two groups of first electric push rods are fixedly installed on the inner top of the bracket, a connecting plate is provided directly above the bracket, the free ends of the two groups of first electric push rods pass through the bracket and are fixedly connected to the bottom of the connecting plate, and the top of the connecting plate is fixedly installed with an equal number of ejecting rods to the cooling box, and each group of ejecting rods is movable through the bottom of the corresponding cooling box and flush with the inner bottom of the corresponding cooling box.

[0015] Preferably, the loading and unloading mechanism includes a rectangular frame, a fixed column, a metal slide, a second electric push rod, a U-shaped piece, a third electric push rod and a clamping piece. A rectangular frame is arranged directly above the base plate, and at least two groups of fixed columns are fixedly installed between the bottom of the rectangular frame and the top of the base plate. A metal slide is slidably installed between the inner walls on both sides of the rectangular frame, and at least two groups of second electric push rods are fixedly installed on the top of the metal slide. The free end of each group of second electric push rods passes through the metal slide and is fixedly installed with a group of U-shaped pieces. A group of third electric push rods is fixedly installed on the rear outer surface of each group of U-shaped pieces. The free end of each group of third electric push rods passes through the corresponding U-shaped piece and extends between the front and rear inner walls of the corresponding U-shaped piece and is fixedly installed with a group of clamping pieces.

[0016] Preferably, the collection mechanism includes a fixed plate, a fourth electric push rod, a placement box, a collection box, a partition and a limit plate. The fixed plate is fixedly installed on the top of the bottom plate, the fourth electric push rod is fixedly installed on the rear outer surface of the fixed plate, the free end of the fourth electric push rod passes through the fixed plate and is fixedly installed with the placement box, a collection box is placed in the placement box and is attached to its inner wall, and at least two groups of partitions and limit plates are fixedly installed on the inner top of the collection box.

[0017] Preferably, a slot is provided through the top of the filter box, and a filter plate is placed in the slot and fits the inner wall of the filter box.

[0018] Preferably, a servo motor is fixedly mounted on the outer surface of one side of the coolant tank, a rotating shaft is rotatably mounted between the inner walls of both sides of the coolant tank, the rotating shaft of the servo motor is transmission-connected to the rotating shaft, and at least two groups of spoilers are fixedly mounted on the outer surface of the rotating shaft.

[0019] Preferably, a group of mounting grooves are provided on the top of each group of cooling boxes, and a group of sealing rings are fixedly installed in each group of mounting grooves.

[0020] Preferably, a group of grooves are respectively formed on the front and rear inner walls of the rectangular frame, and a group of magnets are fixedly installed in each of the two groups of grooves.

[0021] Compared with the prior art, the present invention has the following beneficial effects:

[0022] (1) The cooling device for processing and forming touch screen glass, through the coordinated use of the air cooling mechanism 3 and the refrigeration mechanism 4, the air compressor 36 generates air flow, and air cools the two sides of the touch screen glass in each cooling box 31 in turn. After the air flow passes through a group of touch screen glasses and heats up, it will exchange heat with the coolant in the coolant tank 41 to ensure low temperature. The coolant after heat exchange can also be continuously cooled, achieving a continuous and uniform cooling effect on the touch screen glass. This solves the problem that some existing devices can only spray water to cool one side of the touch screen glass, resulting in uneven heating of the two sides of the touch screen glass, and that direct water spraying causes a large temperature difference between the inside and outside of the touch screen glass, which is easy to cause temporary stress and cracking, thereby improving the practicality of the device.

[0023] (2) The cooling device for processing and forming touch screen glass is used in conjunction with the ejecting mechanism 5, the loading and unloading mechanism 6 and the collecting mechanism 7. While the touch screen glass is cooling, the staff prepares the material on the loading and unloading mechanism 6. After the touch screen glass is cooled, the ejecting mechanism 5 automatically ejects each touch screen glass. The loading and unloading mechanism 6 takes away the touch screen glass to collect the unloaded material. At the same time, the prepared touch screen glass is loaded. The loading and unloading are carried out simultaneously, which improves the cooling efficiency of the device, ensures the use effect of the device, and is conducive to the promotion and use of the device.

[0024] (3) The cooling device for processing and forming the touch screen glass can filter the air sucked in by the air compressor 36 through the filter plate 8, thereby ensuring the cleanliness of the airflow for cooling the touch screen glass and avoiding contamination of the touch screen glass. At the same time, under the action of the servo motor 9, the rotating shaft 10 and the spoiler 11, the coolant is continuously stirred during the cooling process to avoid uneven coolant temperature affecting the overall heat exchange effect. BRIEF DESCRIPTION OF THE DRAWINGS

[0025] The present invention will be further described below with reference to the accompanying drawings and embodiments:

[0026] Figure 1 It is a front perspective view of the present invention;

[0027] Figure 2 It is a partial front perspective view of the present invention;

[0028] Figure 3 A front perspective sectional view of one set of cooling boxes and some of the associated components thereof according to the present invention;

[0029] Figure 4 It is a partial rear perspective view of the present invention;

[0030] Figure 5 for Figure 4 A magnified view of the structure at point A;

[0031] Figure 6It is a partial front perspective sectional view of the present invention;

[0032] Figure 7 It is a bottom perspective view of the loading and unloading mechanism of the present invention;

[0033] Figure 8 It is a rear perspective view of the bottom plate and the collecting mechanism thereon of the present invention.

[0034] Reference numerals: 1, bottom plate; 2, bracket; 3, air cooling mechanism; 31, cooling box; 32, U-shaped tube; 33, diverter; 34, guide plate; 35, support block; 36, air compressor; 37, filter box; 38, air inlet pipe; 39, air outlet pipe; 4, refrigeration mechanism; 41, coolant tank; 42, support column; 43, metal sheet; 44, semiconductor refrigeration plate; 45, radiator; 5, lifting mechanism; 51, first electric push rod; 52, connecting plate; 53 , ejector rod; 6, loading and unloading mechanism; 61, rectangular frame; 62, fixed column; 63, metal slide; 64, second electric push rod; 65, U-shaped piece; 66, third electric push rod; 67, clamping piece; 7, collecting mechanism; 71, fixed plate; 72, fourth electric push rod; 73, placement box; 74, collection box; 75, partition; 76, limit plate; 8, filter plate; 9, servo motor; 10, rotating shaft; 11, spoiler; 12, sealing ring; 13, magnet. DETAILED DESCRIPTION

[0035] See also Figure 1-8 The present invention provides a technical solution: a cooling device for processing and forming touch screen glass, comprising a base plate 1, a refrigeration mechanism 4, a feeding mechanism 5, a loading and unloading mechanism 6, a collecting mechanism 7 and an air cooling mechanism 3. The top of the base plate 1 is integrally provided with a bracket 2. The refrigeration mechanism 4 is provided on the top of the base plate 1. The refrigeration mechanism 4 is used to ensure the cooling effect of the device. The feeding mechanism 5 is provided on the bracket 2. The feeding mechanism 5 is used to assist in unloading the touch screen glass. The loading and unloading mechanism 6 is provided on the top of the base plate 1. The loading and unloading mechanism 6 is used to realize loading and unloading of the touch screen glass. The collecting mechanism 7 is provided on the top of the base plate 1. The collecting mechanism 7 is used to collect the touch screen glass.

[0036] The air cooling mechanism 3 is arranged on the bracket 2, and the air cooling mechanism 3 includes a cooling box 31, a U-shaped tube 32, a diverter 33, a guide plate 34 and a support block 35. At least two groups of cooling boxes 31 are arranged directly above the bracket 2 and are distributed in a straight line. A group of U-shaped tubes 32 are fixedly installed between adjacent cooling boxes 31, and both ends of each group of U-shaped tubes 32 are communicated with the interior of the connected cooling box 31. A diverter 33 is fixedly installed on the inner wall of one side of each group of cooling boxes 31, and at least two groups of guide plates 34 are fixedly installed on the front and rear inner walls of each group of cooling boxes 31. A group of support blocks 35 are fixedly installed between the bottom of the first and last groups of cooling boxes 31 and the top of the bracket 2.

[0037] The air cooling mechanism 3 also includes an air compressor 36, a filter box 37, an air inlet pipe 38 and an air outlet pipe 39. The air compressor 36 is fixedly installed on the top of the bracket 2. The filter box 37 is also fixedly installed on the top of the bracket 2. An air inlet pipe 38 is fixedly installed between the filter box 37 and the adjacent cooling box 31. The output end of the air compressor 36 is communicated with the interior of the filter box 37. The two ends of the air inlet pipe 38 are respectively communicated with the interior of the filter box 37 and the interior of the corresponding cooling box 31. The cooling box 31 at the end is fixedly installed with an air outlet pipe 39 communicated with its interior. A slot is opened through the top of the filter box 37. A filter plate 8 that fits the inner wall of the filter box 37 is placed in the slot. A group of mounting slots are opened on the top of each group of cooling boxes 31. A set of sealing rings 12 is fixedly installed in each set of mounting grooves. Through the coordinated use of the air cooling mechanism 3 and the refrigeration mechanism 4, the air compressor 36 generates airflow, which cools both sides of the touch screen glass in each cooling box 31 in turn. After the airflow cools a group of touch screen glasses and heats up, it exchanges heat with the coolant in the coolant tank 41 to ensure a low temperature. The coolant after heat exchange can also be continuously cooled, achieving a continuous and uniform cooling effect on the touch screen glass. This solves the problem that some existing devices can only spray water to cool one side of the touch screen glass, resulting in uneven heating on both sides of the touch screen glass, and that direct water spraying causes a large temperature difference between the inside and outside of the touch screen glass, which can easily induce temporary stress and cause cracks. The practicality of the device is improved.

[0038] The refrigeration mechanism 4 includes a coolant tank 41, support columns 42, metal sheets 43, semiconductor cooling sheets 44 and a radiator 45. The coolant tank 41 is provided directly above the base plate 1. At least two groups of support columns 42 are fixedly installed between the bottom of the coolant tank 41 and the top of the base plate 1. The rear side of the coolant tank 41 is provided with at least two groups of through grooves, each of which is fixedly installed with a group of metal sheets 43. The outer surface of the rear side of each group of metal sheets 43 is fixedly installed with a group of semiconductor cooling sheets 44. The outer surface of the rear side of each group of semiconductor cooling sheets 44 is fixedly installed with a group of radiators 45. Each group of U-shaped tubes 32 is fixedly passed through the front side of the coolant tank 41. The cooling element 42 is arranged inside the coolant tank 41, and a servo motor 9 is fixedly installed on the outer surface of one side of the coolant tank 41. A rotating shaft 10 is rotatably installed between the inner walls of the coolant tank 41 on both sides. The rotating shaft of the servo motor 9 is transmission-connected to the rotating shaft 10. At least two groups of spoilers 11 are fixedly installed on the outer surface of the rotating shaft 10. The air inhaled by the air compressor 36 can be filtered through the filter plate 8 to ensure the cleanliness of the airflow for cooling the touch screen glass and avoid contamination of the touch screen glass. At the same time, under the action of the servo motor 9, the rotating shaft 10 and the spoiler 11, the coolant is continuously stirred during the cooling process to avoid uneven coolant temperature affecting the overall heat exchange effect.

[0039] The ejecting mechanism 5 includes a first electric push rod 51, a connecting plate 52 and an ejecting rod 53. Two groups of first electric push rods 51 are fixedly installed on the inner top of the bracket 2. A connecting plate 52 is provided directly above the bracket 2. The free ends of the two groups of first electric push rods 51 pass through the bracket 2 and are fixedly connected to the bottom of the connecting plate 52. The top of the connecting plate 52 is fixedly installed with an equal number of ejecting rods 53 to the cooling box 31. Each group of ejecting rods 53 is movable through the bottom of the corresponding cooling box 31 and is flush with the inner bottom of the corresponding cooling box 31.

[0040] The loading and unloading mechanism 6 includes a rectangular frame 61, a fixed column 62, a metal slide 63, a second electric push rod 64, a U-shaped piece 65, a third electric push rod 66 and a clamping piece 67. A rectangular frame 61 is provided directly above the base plate 1. At least two groups of fixed columns 62 are fixedly installed between the bottom of the rectangular frame 61 and the top of the base plate 1. A metal slide 63 is slidably installed between the inner walls of both sides of the rectangular frame 61. At least two groups of second electric push rods 64 are fixedly installed on the top of the metal slide 63. The free end of each group of second electric push rods 64 passes through the metal slide 63 and is fixedly installed with a group of U-shaped pieces 65. A group of third electric push rods 66 is fixedly installed on the rear outer surface of each group of U-shaped pieces 65. The free end of each group of third electric push rods 66 passes through the corresponding U-shaped piece 65 and extends between the front and rear inner walls of the corresponding U-shaped piece 65 and is fixedly installed with a group of clamping pieces 67. A group of grooves are opened on the front and rear inner walls of the rectangular frame 61, and a group of magnets 13 are fixedly installed in the two groups of grooves.

[0041] The collecting mechanism 7 includes a fixing plate 71, a fourth electric push rod 72, a placement box 73, a collection box 74, a partition 75 and a limit plate 76. The top of the bottom plate 1 is fixedly installed with a fixing plate 71, and the rear outer surface of the fixing plate 71 is fixedly installed with a fourth electric push rod 72. The free end of the fourth electric push rod 72 passes through the fixing plate 71 and is fixedly installed with a placement box 73. A collection box 74 that fits the inner wall is placed in the placement box 73. At least two groups of partitions 75 and limit plates 76 are fixedly installed on the inner top of the collection box 74. Through the coordinated use of the ejecting mechanism 5, the loading and unloading mechanism 6 and the collecting mechanism 7, while the touch screen glass is cooling, the staff prepares the material on the loading and unloading mechanism 6. After the touch screen glass is cooled, the ejecting mechanism 5 automatically ejects each touch screen glass. While the loading and unloading mechanism 6 takes away the touch screen glass to realize the collection of the material, the prepared touch screen glass is then loaded. The loading and unloading are carried out simultaneously, which improves the cooling efficiency of the device, ensures the use effect of the device, and is conducive to the promotion and use of the device.

[0042] Working principle: First, insert the touch screen glass directly into the mounting slot on each cooling box 31, and slide the metal slide plate 63 backward to attract the magnet 13 on the rear side to start cooling. Then, the air compressor 36, semiconductor cooling plate 44, radiator 45 and servo motor 9 are controlled to start. The air compressor 36 generates airflow into the filter box 37, which is filtered by the filter plate 8 and enters the first cooling box 31 through the air inlet pipe 38. In this cooling box 31, the air is diverted by the diverter 33 and guided by the guide plate 34 to cool both sides of the touch screen glass. The airflow heats up through heat exchange, then enters the first U-shaped tube 32, exchanges heat with the coolant and cools down again, and then enters the next cooling box 31, and repeats this process until it is finally discharged through the air outlet 39. The semiconductor refrigeration sheet 44 cools the coolant through the metal sheet 43 and discharges the heat through the radiator 45. The servo motor 9 drives the spoiler 11 on the rotating shaft 10 to rotate to stir the coolant. During the cooling process of each touch screen glass, the staff loads the material on the loading and unloading mechanism 6, that is, controls the free end of each third electric push rod 66 located at the rear side to move, bringing The clamping pieces 67 are moved to clamp the touch screen glass. When the touch screen glass in the cooling box 31 is cooled, the air compressor 36 is stopped, and the free end of the first electric push rod 51 is extended to drive the ejecting rods 53 on the connecting plate 52 to move upward and eject the touch screen glass. Then, the free end of each second electric push rod 64 on the front side is extended to drive the corresponding U-shaped piece 65 to move downward, and clamp each cooled touch screen glass according to the above method. Then, the ejecting mechanism 5 is reset, and the metal slide plate 63 slides forward and is aligned with the front side. The magnet 13 is attracted, and the cooled touch screen glasses are located directly above the collection box 74. The touch screen glasses located on the rear side are located directly above the cooling boxes 31 and are lowered and inserted into the cooling boxes 31 according to the above method to realize loading and continue cooling. The touch screen glasses located on the front side are also lowered and inserted into the corresponding partitions 75 to realize collection. Then, the free end of the fourth electric push rod 72 will extend a distance to facilitate the next batch of touch screen glasses to be inserted between the corresponding partitions 75. After the collection box 74 is full, it can be taken out directly.

[0043] The embodiments of the present invention are described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Various changes can be made within the scope of knowledge possessed by ordinary technicians in the technical field without departing from the scope of the present invention.

Claims

1. A cooling device for touch screen glass processing and forming, characterized in that: include: A bottom plate (1) having a bracket (2) integrally formed on the top thereof; A refrigeration mechanism (4) is arranged on the top of the base plate (1), and the refrigeration mechanism (4) is used to ensure the cooling effect of the device; A feeding mechanism (5) is provided on the bracket (2), and the feeding mechanism (5) is used to assist in unloading the touch screen glass; A loading and unloading mechanism (6) is arranged on the top of the base plate (1), and the loading and unloading mechanism (6) is used to realize loading and unloading of the touch screen glass; A collecting mechanism (7) is arranged on the top of the bottom plate (1), and the collecting mechanism (7) is used to collect the touch screen glass; An air cooling mechanism (3) is provided on a bracket (2). The air cooling mechanism (3) comprises a cooling box (31), a U-shaped tube (32), a flow divider (33), a flow guide plate (34) and a support block (35). At least two groups of cooling boxes (31) are provided directly above the bracket (2) and are distributed in a straight line. A group of U-shaped tubes (32) is fixedly installed between adjacent cooling boxes (31). Both ends of each group of U-shaped tubes (32) are communicated with the interior of the connected cooling box (31). A flow divider (33) is fixedly installed on the inner wall of one side of each group of cooling boxes (31). At least two groups of flow guide plates (34) are fixedly installed on the front and rear inner walls of each group of cooling boxes (31). A group of support blocks (35) is fixedly installed between the bottoms of the first and last groups of cooling boxes (31) and the top of the bracket (2).

2. The cooling device for touch screen glass processing and forming according to claim 1, characterized in that: The air cooling mechanism (3) further comprises an air compressor (36), a filter box (37), an air inlet pipe (38) and an air outlet pipe (39); the air compressor (36) is fixedly mounted on the top of the bracket (2); the filter box (37) is also fixedly mounted on the top of the bracket (2); an air inlet pipe (38) is fixedly mounted between the filter box (37) and its adjacent cooling box (31); the output end of the air compressor (36) is communicated with the interior of the filter box (37); the two ends of the air inlet pipe (38) are respectively communicated with the interior of the filter box (37) and the interior of the corresponding cooling box (31); and the cooling box (31) at the end is fixedly mounted with an air outlet pipe (39) which is communicated with the interior thereof.

3. The cooling device for touch screen glass processing and forming according to claim 2, characterized in that: The refrigeration mechanism (4) comprises a cooling liquid tank (41), a support column (42), a metal sheet (43), a semiconductor cooling sheet (44) and a radiator (45). The cooling liquid tank (41) is arranged directly above the base plate (1). At least two groups of support columns (42) are fixedly installed between the bottom of the cooling liquid tank (41) and the top of the base plate (1). At least two groups of through grooves are opened through the rear side of the cooling liquid tank (41). A group of metal sheets (43) is fixedly installed in each group of through grooves. A group of semiconductor cooling sheets (44) is fixedly installed on the rear outer surface of each group of metal sheets (43). A group of radiators (45) is fixedly installed on the rear outer surface of each group of semiconductor cooling sheets (44). Each group of U-shaped tubes (32) is fixedly passed through the front part of the cooling liquid tank (41) and is arranged inside the cooling liquid tank (41).

4. The cooling device for touch screen glass processing and forming according to claim 3, characterized in that: The ejection mechanism (5) comprises a first electric push rod (51), a connecting plate (52) and an ejection rod (53); two groups of first electric push rods (51) are fixedly installed on the inner top of the bracket (2); a connecting plate (52) is provided just above the bracket (2); the free ends of the two groups of first electric push rods (51) pass through the bracket (2) and are fixedly connected to the bottom of the connecting plate (52); the top of the connecting plate (52) is fixedly installed with an equal number of ejection rods (53) to the number of cooling boxes (31); each group of ejection rods (53) movably passes through the bottom of the corresponding cooling box (31) and is flush with the inner bottom of the corresponding cooling box (31).

5. The cooling device for touch screen glass processing and forming according to claim 4, characterized in that: The loading and unloading mechanism (6) comprises a rectangular frame (61), a fixed column (62), a metal slide plate (63), a second electric push rod (64), a U-shaped plate (65), a third electric push rod (66) and a clamping plate (67). A rectangular frame (61) is provided just above the bottom plate (1). At least two groups of fixed columns (62) are fixedly installed between the bottom of the rectangular frame (61) and the top of the bottom plate (1). A metal slide plate (63) is slidably installed between the inner walls of both sides of the rectangular frame (61). The metal slide plate (63) 3) is fixedly installed with at least two groups of second electric push rods (64), the free end of each group of second electric push rods (64) passes through the metal slide plate (63) and is fixedly installed with a group of U-shaped pieces (65), the rear outer surface of each group of U-shaped pieces (65) is fixedly installed with a group of third electric push rods (66), the free end of each group of third electric push rods (66) passes through the corresponding U-shaped piece (65) and extends to between the front and rear inner walls of the corresponding U-shaped piece (65) and is fixedly installed with a group of clips (67).

6. The cooling device for touch screen glass processing and forming according to claim 5, characterized in that: The collecting mechanism (7) comprises a fixed plate (71), a fourth electric push rod (72), a placement box (73), a collection box (74), a partition (75) and a limit plate (76); the top of the bottom plate (1) is fixedly mounted with the fixed plate (71); the rear outer surface of the fixed plate (71) is fixedly mounted with the fourth electric push rod (72); the free end of the fourth electric push rod (72) passes through the fixed plate (71) and is fixedly mounted with the placement box (73); a collection box (74) is placed in the placement box (73) and is attached to the inner wall thereof; at least two groups of partitions (75) and limit plates (76) are fixedly mounted on the inner top of the collection box (74).

7. The cooling device for touch screen glass processing and forming according to claim 6, characterized in that: A slot is provided through the top of the filter box (37), and a filter plate (8) is placed in the slot and fits the inner wall of the filter box (37).

8. The cooling device for touch screen glass processing and forming according to claim 7, characterized in that: A servo motor (9) is fixedly mounted on the outer surface of one side of the coolant tank (41), a rotating shaft (10) is rotatably mounted between the inner walls of both sides of the coolant tank (41), the rotating shaft of the servo motor (9) is transmission-connected to the rotating shaft (10), and at least two groups of spoilers (11) are fixedly mounted on the outer surface of the rotating shaft (10).

9. The cooling device for touch screen glass processing and forming according to claim 8, characterized in that: A group of mounting grooves is provided on the top of each group of cooling boxes (31), and a group of sealing rings (12) is fixedly installed in each group of mounting grooves.

10. The cooling device for touch screen glass processing and forming according to claim 9, characterized in that: A group of grooves are respectively formed on the front and rear inner walls of the rectangular frame (61), and a group of magnets (13) are fixedly installed in the two groups of grooves.

Citation Information

Patent Citations

  • Cooling device for processing and forming touch screen glass

    CN218296337U