Tempered glass production cooling device with intelligent control function
By adopting intelligent control and step-type wind cooling system in the tempered glass production cooling device, the problem of large wind resistance and uneven cooling on both sides is solved, and the quality of the glass surface and the stability of transmission is achieved.
Patent Information
- Application Number
- CN202310484848.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-04-26
- Publication Date
- 2025-05-16
- Estimated Expiration
- 2043-04-26
AI Technical Summary
The existing tempered glass production cooling devices have problems such as large wind resistance, uneven cooling on the upper and lower sides, and unstable arc conveying, resulting in poor quality of the glass surface and unstable movement.
A cooling device with intelligent control function is designed, adopting a stepped wind cooling system and an adjustable exhaust gas barrier, combined with infrared sensors and motor drive systems to achieve stable transmission and uniform cooling of tempered glass.
By reducing wind resistance, uniform cooling of the glass surfaces on both sides of the upper and lower sides is achieved, and the quality of the glass surface is improved. At the same time, through intelligent control and adjustment mechanism, the curved glass is transmitted stably to avoid deviation and slide.
Smart Images

Figure CN116444139B_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of tempered glass production equipment, in particular to a tempered glass production cooling device with an intelligent control function. Background Art
[0002] Tempered glass is actually a kind of prestressed glass. In order to improve the strength of the glass, chemical or physical methods are usually used to form compressive stress on the glass surface. When the glass is subjected to external force, the surface stress is first offset, thereby improving the bearing capacity and enhancing the glass's own resistance to wind pressure, cold and heat, impact, etc. In the process of tempered glass production and manufacturing, tempered glass is made by heating high-quality float glass to a point close to the softening point, and then rapidly cooling the glass surface so that the compressive stress is distributed on the glass surface, while the tensile stress is in the center layer. Because of the strong and equal compressive stress, the tensile stress generated by the external pressure is offset by the strong compressive stress of the glass, thereby increasing the safety of the glass. Therefore, cooling devices used in the production of tempered glass are born accordingly. With the continuous development of science and technology, the development trend of cooling devices in the production of tempered glass is increasingly tending towards diversification.
[0003] After searching, the patent number is CN110422996B, and the name is the invention patent of the cooling device for tempered glass production, which includes a frame, a row of conveyor rollers rotatably connected to the frame, a driving mechanism for driving the conveyor rollers to rotate, a plurality of cooling units arranged along the feeding direction of the conveyor rollers, and a docking mechanism located at the feeding end of the conveyor rollers and docking with the conveyor rollers. Through research and analysis, it is found that although it has the advantages of effectively improving the surface flatness of tempered glass and better product quality, it still has the following disadvantages to a certain extent, such as:
[0004] The existing cooling device for tempered glass production uses a large number of rotating rollers and pulleys that are densely arranged, which blocks a large amount of wind from the bottom, causing the upper and lower sides of the tempered glass to be cooled differently. The quality of the lower glass surface is worse than that of the upper glass surface. At the same time, the curved surface transmission method makes the tempered glass unstable and prone to deviation and slippage.
[0005] The existing cooling device for tempered glass production drives the air grilles on the upper and lower sides to adjust the distance between the cooling device and the tempered glass by means of transmission between chains, sprockets and motors. Since the chain is not fixed, when the air grille blows air, the chain is easily driven to shake by the wind, and then the air grille is driven to shake, which leads to unstable air outlet and uneven wind distribution. Summary of the invention
[0006] The object of the present invention is to provide a tempered glass production cooling device with intelligent control function to solve the problems raised in the background technology.
[0007] To achieve the above object, the present invention provides the following technical solution: a tempered glass production cooling device with intelligent control function, comprising a frame, a motion mechanism is arranged on the inner side of the frame, an air cooling mechanism is fixedly connected to the frame, an adjustment mechanism is arranged between the air cooling mechanism and the frame, a control component is fixedly connected to the outer side of the frame, the motion mechanism is used to convey high-temperature glass, and the air cooling mechanism is used to perform step-by-step cooling on the high-temperature glass;
[0008] The motion mechanism includes a first motor, a first rotating shaft, a rotating wheel, a transmission chain, a bearing plate, a gear and a second rotating shaft. The outer wall of the frame is fixedly connected to the first motor, and the first motor is transmission-connected to the first rotating shaft on a side close to the frame. The first rotating shaft passes through one side wall of the frame, and the other end of the first rotating shaft is rotationally connected to the inner wall of the frame. The axial outer side of the first rotating shaft is fixedly connected to the rotating wheel, and the axial outer side of the rotating wheel is transmission-connected to the transmission chain. The rotating wheel is provided with a groove corresponding to the transmission chain, and the transmission chain is fixedly connected to evenly distributed rectangular blocks.
[0009] The high-temperature formed tempered glass is transported to the upper side of the carrying plate through an external transport device. At this time, the tempered glass is directly below the infrared sensor. Since the infrared sensor is electrically connected to the first motor, the infrared sensor controls the first motor to start after detecting the tempered glass. The first motor drives the first rotating shaft to rotate. The first rotating shaft drives the rotating wheel fixedly connected thereto to move synchronously while rotating. At the same time, the transmission chain, the carrying plate and the gear are driven to rotate in a circular manner, thereby driving the high-temperature glass on the carrying plate to be transported from the gear side to the rotating wheel side.
[0010] Furthermore, the air cooling mechanism includes a compressor, a connecting pipe and a wind power component. The compressor is fixedly connected to the upper side of the frame, one side of the compressor is connected to a connecting pipe, and the side of the connecting pipe away from the compressor is connected to the wind power component. The compressor, connecting pipe and wind power component are symmetrically arranged above and below the moving mechanism, and the compressor, connecting pipe and wind power component are fixedly connected to the frame on the lower side through a long strip block.
[0011] Furthermore, the wind power component includes a rectangular wind tube, a fixed air duct, a moving air duct, an exhaust grille and an inlet pipe, the side of the connecting pipe away from the compressor is connected to the rectangular wind tube, the side of the rectangular wind tube close to the moving mechanism is connected to the fixed air duct, the inner side of the fixed air duct is slidably connected to the moving air duct, and the side of the moving air duct close to the moving mechanism is connected to the exhaust grille.
[0012] The compressor is started, and the wind generated by the compressor is blown into the rectangular wind tube through the connecting pipe. Then, the wind in the rectangular wind tube is discharged outward from the exhaust grille through the fixed wind tube and the moving wind tube to contact the high-temperature tempered glass, thereby achieving the purpose of cooling the high-temperature tempered glass. Since a number of wind power components are provided, and the adjacent rectangular wind tubes are connected through the introduction pipe, the diameter of the introduction pipe decreases stepwise from the compressor side to the connecting pipe side, so that during the process of transporting the high-temperature tempered glass from the gear side to the rotating wheel side, the wind force it contacts increases stepwise, thereby achieving the purpose of stepwise cooling of the tempered glass;
[0013] Furthermore, the adjustment mechanism includes a mounting plate, a second motor, a threaded rod and a connecting plate, the mounting plate is fixedly connected to the upper side of the frame, the second motor is fixedly connected to the lower side of the mounting plate, and the threaded rod is transmission-connected to the lower side of the second motor.
[0014] When the distance between the exhaust grilles and the tempered glass on both sides needs to be adjusted, the second motor is started, and the second motor drives the threaded rod to rotate forward or reverse, thereby synchronously driving the connecting plates on both sides to move closer or farther away. Since the connecting plates and the exhaust grilles are fixedly connected, the exhaust grilles move synchronously with them, thereby achieving the purpose of adjusting the distance between the exhaust grilles and the tempered glass;
[0015] Furthermore, the control component includes a fixed plate, an infrared sensor and a controller. The outer side of the frame is fixedly connected to the fixed plate, the lower side of the fixed plate is fixedly connected to the infrared sensor, the outer side of the frame and the lower side of the infrared sensor are fixedly connected to the controller, the infrared sensor is electrically connected to the first motor, and the controller is electrically connected to the compressor.
[0016] Since the controller is electrically connected to the compressor, the staff can adjust the compressor operating frequency through the controller as needed, thereby controlling the air output of the compressor;
[0017] Furthermore, a plurality of the rectangular air ducts are provided and evenly distributed, and adjacent rectangular air ducts are connected by introduction pipes, and the diameter of the introduction pipes decreases in a step-like manner from the compressor to the connecting pipe.
[0018] Furthermore, the threaded rod is provided with two threaded sections with opposite threads, the axial outer sides of the threaded sections are threadedly connected with a connecting plate, the connecting plate is provided with reverse threads corresponding to the threaded sections, and the connecting plate is fixedly connected to the exhaust grille.
[0019] Furthermore, a supporting plate is fixedly connected to one side of the rectangular block away from the transmission chain, a rectangular through groove is provided on the supporting plate, a gear is arranged on the inner side of the other end of the transmission chain, the gear and the transmission chain are meshingly connected, a second rotating shaft is fixedly connected to the axial inner side of the gear, and the second rotating shaft is rotatably connected to the inner wall of the frame.
[0020] Furthermore, an arc-shaped groove corresponding to the transmission chain is formed on the gear, the rotating wheel and the gear are symmetrically arranged about the second rotating axis, and the transmission chain is always in a taut state.
[0021] Compared with the prior art, the present invention provides a tempered glass production cooling device with intelligent control function, which has the following beneficial effects:
[0022] 1. The present invention makes the wind force blowing toward the lower glass surface less obstructed by the cooperation among the bearing plate, the first motor, the first rotating shaft, the infrared sensor, the rotating wheel, the transmission chain, the gear and the air cooling mechanism, changes the existing cooling device for tempered glass production by densely arranging a large number of rotating rollers and pulleys, solves the problem that the upper and lower sides of the tempered glass are cooled differently, the quality of the lower glass surface is poorer than that of the upper glass surface, and the tempered glass is unstable in movement due to the arc transmission method, and is prone to deviation and sliding. At the same time, the first motor can be detected and started, and the function of intelligent control is provided.
[0023] 2. The present invention uses the coordination between the compressor, the connecting pipe, the rectangular air duct, the fixed air duct, the moving air duct, the exhaust grille, the inlet pipe and the controller, so that the purpose of step-by-step cooling of the tempered glass can be achieved with only a few compressors. At the same time, the air volume can be freely and overall controlled according to demand, which changes the existing device using several independent compressors, solves the problem of high equipment cost, and has the function of intelligent control.
[0024] 3. The present invention achieves the purpose of adjusting the distance between the exhaust grille and the tempered glass through the cooperation between the second motor, the threaded rod and the connecting plate, which changes the existing device that drives the upper and lower air outlet grilles to move through the transmission between the chain, the sprocket and the motor to adjust the distance between them and the tempered glass. It solves the problem that when the chain is not fixed and the air outlet grille is blown, the chain is easily driven by the wind to shake, and then the air outlet grille is driven to shake, which leads to unstable air outlet and uneven wind force distribution, thereby improving the quality of tempered glass. BRIEF DESCRIPTION OF THE DRAWINGS
[0025] Figure 1 This is a schematic diagram of the front three-dimensional structure of the present invention;
[0026] Figure 2It is a three-dimensional structural schematic diagram of the control component of the present invention;
[0027] Figure 3 It is a three-dimensional structural schematic diagram of the air cooling mechanism of the present invention;
[0028] Figure 4 It is a schematic diagram of the three-dimensional structure of the wind power assembly of the present invention;
[0029] Figure 5 It is a three-dimensional structural schematic diagram of the motion mechanism of the present invention;
[0030] Figure 6 For the present invention Figure 1 The enlarged schematic diagram of point A in the middle;
[0031] Figure 7 For the present invention Figure 5 The enlarged schematic diagram of point B in the middle;
[0032] Figure 8 For the present invention Figure 5 Enlarged schematic diagram of point C in the middle.
[0033] In the figure: 1. frame; 2. moving mechanism; 21. first motor; 22. first rotating shaft; 23. rotating wheel; 24. transmission chain; 25. bearing plate; 26. gear; 27. second rotating shaft; 3. air cooling mechanism; 31. compressor; 32. connecting pipe; 33. wind power component; 331. rectangular air duct; 332. fixed air duct; 333. moving air duct; 334. exhaust grille; 335. inlet pipe; 4. adjustment mechanism; 41. mounting plate; 42. second motor; 43. threaded rod; 44. connecting plate; 5. control component; 51. fixed plate; 52. infrared sensor; 53. controller. DETAILED DESCRIPTION
[0034] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention. Example
[0035] See also Figure 1-Figure 8 , a tempered glass production cooling device with intelligent control function, comprising a frame 1, a moving mechanism 2 is arranged on the inner side of the frame 1, an air cooling mechanism 3 is fixedly connected to the frame 1, an adjustment mechanism 4 is arranged between the air cooling mechanism 3 and the frame 1, a control component 5 is fixedly connected to the outer side of the frame 1, the moving mechanism 2 is used to convey high-temperature glass, and the air cooling mechanism 3 is used to perform step-by-step cooling on the high-temperature glass;
[0036] The motion mechanism 2 includes a first motor 21, a first rotating shaft 22, a rotating wheel 23, a transmission chain 24, a bearing plate 25, a gear 26 and a second rotating shaft 27. The first motor 21 is fixedly connected to the outer wall of the frame 1, and the first motor 21 is transmission-connected to the first rotating shaft 22 on the side close to the frame 1. The first rotating shaft 22 passes through one side wall of the frame 1, and the other end of the first rotating shaft 22 is rotationally connected to the inner wall of the frame 1. The first rotating shaft 22 is fixedly connected to the axial outer side of the first rotating shaft 22, and the rotating wheel 23 is transmission-connected to the axial outer side of the transmission chain 24. The rotating wheel 23 is provided with a groove corresponding to the transmission chain 24, and the upper part of the transmission chain 24 is fixedly connected with evenly distributed rectangular blocks.
[0037] The high-temperature formed tempered glass is transported to the upper side of the carrying plate 25 through an external transport device. At this time, the tempered glass is directly below the infrared sensor 52. Since the infrared sensor 52 is electrically connected to the first motor 21, the infrared sensor 52 controls the first motor 21 to start after detecting the tempered glass. The first motor 21 drives the first rotating shaft 22 to rotate. The first rotating shaft 22 drives the rotating wheel 23 fixedly connected thereto to move synchronously while rotating. At the same time, it drives the transmission chain 24, the carrying plate 25 and the gear 26 to rotate in a circular manner, thereby driving the high-temperature glass on the carrying plate 25 to be transported from the gear 26 side to the rotating wheel 23 side.
[0038] Furthermore, the air cooling mechanism 3 includes a compressor 31, a connecting pipe 32 and a wind power component 33. The compressor 31 is fixedly connected to the upper side of the frame 1, one side of the compressor 31 is connected to the connecting pipe 32, and the side of the connecting pipe 32 away from the compressor 31 is connected to the wind power component 33. The compressor 31, the connecting pipe 32 and the wind power component 33 are symmetrically arranged up and down about the moving mechanism 2, and the lower compressor 31, the connecting pipe 32 and the wind power component 33 are fixedly connected to the frame 1 through a long strip.
[0039] Furthermore, the wind power component 33 includes a rectangular air cylinder 331, a fixed air duct 332, a moving air duct 333, an exhaust grille 334 and an inlet pipe 335. The side of the connecting pipe 32 away from the compressor 31 is connected to the rectangular air cylinder 331, the side of the rectangular air cylinder 331 close to the moving mechanism 2 is connected to the fixed air duct 332, the inner side of the fixed air duct 332 is slidably connected to the moving air duct 333, and the side of the moving air duct 333 close to the moving mechanism 2 is connected to the exhaust grille 334.
[0040] The compressor 31 is started, and the wind generated by the compressor 31 is blown into the rectangular wind tube 331 through the connecting pipe 32. Then, the wind in the rectangular wind tube 331 is discharged outward from the exhaust grille 334 through the fixed wind tube 332 and the moving wind tube 333 to contact the high-temperature tempered glass, thereby achieving the purpose of cooling the high-temperature tempered glass. Since a plurality of wind power components 33 are provided, and adjacent rectangular wind tubes 331 are connected through the introduction pipe 335, the diameter of the introduction pipe 335 decreases in a step-by-step manner from the compressor 31 side to the connecting pipe 32 side, so that during the process of transporting the high-temperature tempered glass from the gear 26 side to the rotating wheel 23 side, the wind force it contacts increases in a step-by-step manner, thereby achieving the purpose of step-by-step cooling of the tempered glass;
[0041] Furthermore, the adjustment mechanism 4 includes a mounting plate 41, a second motor 42, a threaded rod 43 and a connecting plate 44. The mounting plate 41 is fixedly connected to the upper side of the frame 1, the second motor 42 is fixedly connected to the lower side of the mounting plate 41, and the threaded rod 43 is transmission-connected to the lower side of the second motor 42.
[0042] When the distance between the exhaust grilles 334 on both sides and the tempered glass needs to be adjusted, the second motor 42 is started, and the second motor 42 drives the threaded rod 43 to rotate forward or reverse, thereby synchronously driving the connecting plates 44 on both sides to move closer or farther away. Since the connecting plates 44 and the exhaust grilles 334 are fixedly connected, the exhaust grilles 334 move synchronously with them, thereby achieving the purpose of adjusting the distance between the exhaust grilles 334 and the tempered glass;
[0043] Furthermore, the control component 5 includes a fixed plate 51, an infrared sensor 52 and a controller 53. The fixed plate 51 is fixedly connected to the outer side of the frame 1, the infrared sensor 52 is fixedly connected to the lower side of the fixed plate 51, and the controller 53 is fixedly connected to the outer side of the frame 1 and to the lower side of the infrared sensor 52. The infrared sensor 52 is electrically connected to the first motor 21, and the controller 53 is electrically connected to the compressor 31.
[0044] Since the controller 53 is electrically connected to the compressor 31, the staff can adjust the operating frequency of the compressor 31 through the controller 53 as needed, thereby controlling the air output of the compressor 31;
[0045] Furthermore, a plurality of rectangular air ducts 331 are provided and evenly distributed, and adjacent rectangular air ducts 331 are connected by introduction pipes 335 , and the diameter of the introduction pipes 335 decreases in a step-like manner from the compressor 31 to the connecting pipe 32 .
[0046] Furthermore, the threaded rod 43 is provided with two threaded sections with opposite threads, the axial outer sides of the threaded sections are threadedly connected with a connecting plate 44, the connecting plate 44 is provided with reverse threads corresponding to the threaded sections, and the connecting plate 44 is fixedly connected to the exhaust grille 334.
[0047] Furthermore, a supporting plate 25 is fixedly connected to one side of the rectangular block away from the transmission chain 24, and a rectangular through groove is opened on the supporting plate 25. A gear 26 is arranged on the inner side of the other end of the transmission chain 24, and the gear 26 is meshingly connected to the transmission chain 24. A second rotating shaft 27 is fixedly connected to the axial inner side of the gear 26, and the second rotating shaft 27 is rotatably connected to the inner wall of the frame 1.
[0048] Furthermore, an arc-shaped groove corresponding to the transmission chain 24 is formed on the gear 26 , and the rotating wheel 23 and the gear 26 are symmetrically arranged about the second rotating shaft 27 , and the transmission chain 24 is always in a taut state.
[0049] The specific usage and function of this embodiment are as follows:
[0050] When in use, the high-temperature formed tempered glass is first transported to the upper side of the carrying plate 25 through an external transport device. At this time, the tempered glass is directly below the infrared sensor 52. Since the infrared sensor 52 is electrically connected to the first motor 21, the infrared sensor 52 controls the first motor 21 to start after detecting the tempered glass. The first motor 21 drives the first rotating shaft 22 to rotate. The first rotating shaft 22 drives the rotating wheel 23 fixedly connected thereto to move synchronously while rotating. At the same time, it drives the transmission chain 24, the carrying plate 25 and the gear 26 to rotate in a circular manner, thereby driving the high-temperature glass on the carrying plate 25 to be transported from the gear 26 side to the rotating wheel 23 side.
[0051] At this time, the compressor 31 is started, and the wind generated by the compressor 31 is blown into the rectangular wind tube 331 through the connecting pipe 32. Then, the wind in the rectangular wind tube 331 is discharged outward from the exhaust grille 334 through the fixed wind tube 332 and the moving wind tube 333 to contact the high-temperature tempered glass, thereby achieving the purpose of cooling the high-temperature tempered glass. Since a plurality of wind power components 33 are provided, and adjacent rectangular wind tubes 331 are connected through the introduction pipe 335, the diameter of the introduction pipe 335 decreases in a step-by-step manner from the compressor 31 side to the connecting pipe 32 side, so that during the process of transporting the high-temperature tempered glass from the gear 26 side to the rotating wheel 23 side, the wind force it contacts increases in a step-by-step manner, thereby achieving the purpose of step-by-step cooling of the tempered glass.
[0052] When the distance between the exhaust grilles 334 on both sides and the tempered glass needs to be adjusted, the second motor 42 is started, and the second motor 42 drives the threaded rod 43 to rotate forward or reverse, thereby synchronously driving the connecting plates 44 on both sides to move closer or farther away. Since the connecting plates 44 and the exhaust grilles 334 are fixedly connected, the exhaust grilles 334 move synchronously with them, thereby achieving the purpose of adjusting the distance between the exhaust grilles 334 and the tempered glass;
[0053] Since the controller 53 is electrically connected to the compressor 31 , the staff can adjust the operating frequency of the compressor 31 through the controller 53 as needed, thereby controlling the air output of the compressor 31 .
[0054] Although embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions and variations may be made to the embodiments without departing from the principles and spirit of the present invention, and that the scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A tempered glass production cooling device with intelligent control function, comprising a frame (1), characterized in that: A moving mechanism (2) is arranged on the inner side of the frame (1); an air cooling mechanism (3) is also fixedly connected to the frame (1); an adjusting mechanism (4) is arranged between the air cooling mechanism (3) and the frame (1); a control component (5) is fixedly connected to the outer side of the frame (1); the moving mechanism (2) is used to transport high-temperature glass; and the air cooling mechanism (3) is used to perform step-by-step cooling on the high-temperature glass; The motion mechanism (2) comprises a first motor (21), a first rotating shaft (22), a rotating wheel (23), a transmission chain (24), a bearing plate (25), a gear (26) and a second rotating shaft (27); the first motor (21) is fixedly connected to the outer wall of the frame (1); the first motor (21) is transmission-connected to the first rotating shaft (22) on a side close to the frame (1); the first rotating shaft (22) passes through a side wall of the frame (1); the other end of the first rotating shaft (22) is rotationally connected to the inner wall of the frame (1); the rotating wheel (23) is fixedly connected to the axial outer side of the first rotating shaft (22); the transmission chain (24) is transmission-connected to the axial outer side of the rotating wheel (23); a groove corresponding to the transmission chain (24) is provided on the rotating wheel (23); and evenly distributed rectangular blocks are fixedly connected to the transmission chain (24); The air cooling mechanism (3) comprises a compressor (31), a connecting pipe (32) and a wind power assembly (33); the compressor (31) is fixedly connected to the upper side of the frame (1); one side of the compressor (31) is connected to the connecting pipe (32); the side of the connecting pipe (32) away from the compressor (31) is connected to the wind power assembly (33); the compressor (31), the connecting pipe (32) and the wind power assembly (33) are symmetrically arranged up and down with respect to the motion mechanism (2); the compressor (31), the connecting pipe (32) and the wind power assembly (33) are fixedly connected to the frame (1) at the lower side via a long strip; The wind power component (33) comprises a rectangular air cylinder (331), a fixed air duct (332), a moving air duct (333), an exhaust grille (334) and an inlet pipe (335); a side of the connecting pipe (32) away from the compressor (31) is connected to the rectangular air cylinder (331); a side of the rectangular air cylinder (331) close to the moving mechanism (2) is connected to the fixed air duct (332); the inner side of the fixed air duct (332) is slidably connected to the moving air duct (333); a side of the moving air duct (333) close to the moving mechanism (2) is connected to the exhaust grille (334); and the diameter of the inlet pipe (335) decreases in a stepwise manner from the compressor (31) to the connecting pipe (32).
2. The tempered glass production cooling device with intelligent control function according to claim 1 is characterized in that: The adjusting mechanism (4) comprises a mounting plate (41), a second motor (42), a threaded rod (43) and a connecting plate (44); the mounting plate (41) is fixedly connected to the upper side of the frame (1); the second motor (42) is fixedly connected to the lower side of the mounting plate (41); and the threaded rod (43) is drivingly connected to the lower side of the second motor (42); The control assembly (5) comprises a fixing plate (51), an infrared sensor (52) and a controller (53); the fixing plate (51) is fixedly connected to the outside of the frame (1); the infrared sensor (52) is fixedly connected to the bottom of the fixing plate (51); the controller (53) is fixedly connected to the outside of the frame (1) and to the bottom of the infrared sensor (52); the infrared sensor (52) is electrically connected to the first motor (21); and the controller (53) is electrically connected to the compressor (31); Through the cooperation between the bearing plate (25), the first motor (21), the first rotating shaft (22), the infrared sensor (52), the rotating wheel (23), the transmission chain (24), the gear (26) and the air cooling mechanism (3), the wind force blowing toward the lower glass surface is less obstructed.
3. The tempered glass production cooling device with intelligent control function according to claim 1 is characterized in that: A plurality of rectangular air ducts (331) are provided and evenly distributed, and an introduction pipe (335) is connected between adjacent rectangular air ducts (331).
4. The tempered glass production cooling device with intelligent control function according to claim 2 is characterized in that: The threaded rod (43) is provided with two threaded sections with opposite threads, the axial outer sides of the threaded sections are threadedly connected to a connecting plate (44), the connecting plate (44) is provided with reverse threads corresponding to the threaded sections, and the connecting plate (44) is fixedly connected to the exhaust grille (334).
5. The tempered glass production cooling device with intelligent control function according to claim 1 is characterized in that: A bearing plate (25) is fixedly connected to one side of the rectangular block away from the transmission chain (24), and a rectangular through slot is provided on the bearing plate (25). A gear (26) is provided on the inner side of the other end of the transmission chain (24), and the gear (26) is meshingly connected to the transmission chain (24). A second rotating shaft (27) is fixedly connected to the axial inner side of the gear (26), and the second rotating shaft (27) is rotatably connected to the inner side wall of the frame (1).
6. The tempered glass production cooling device with intelligent control function according to claim 1, characterized in that: The gear (26) is provided with an arc-shaped groove corresponding to the transmission chain (24); the rotating wheel (23) and the gear (26) are symmetrically arranged about the second rotating shaft (27); and the transmission chain (24) is always in a taut state.
Citation Information
Patent Citations
Cooling device for tempered glass production
CN110422996B
Cooling device used for toughened glass production
CN110422996A
Glass cargo airplane
CN207242957U
Cooling device for coated glass production
CN216687922U