Drying device discharging structure for hollow glass production
Through the combination of roller conveyor and lifting, driving and stacking components, the automatic cutting of hollow glass is achieved, solving high-intensity labor and safety hazards caused by manual operation, and improving production efficiency and safety.
Patent Information
- Application Number
- CN202510817619.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-18
- Publication Date
- 2025-08-15
AI Technical Summary
The discharge process in the production of hollow glass mainly relies on manual operations, resulting in high-intensity coordinated operations, serious physical consumption of workers, and high-temperature scalds and dust hazards.
The roller conveyor is used to combine lift, drive and stack components, and drive and stack the hollow glass is driven by hydraulic cylinders and motors, and the safety and stability are ensured using suction cups and clamps.
Automatic cutting of insulated glass is achieved, reducing labor intensity, improving safety, avoiding high-temperature scalds and dust hazards, and improving production efficiency.
Smart Images

Figure CN120482729A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of polishing of conveying and blanking equipment, in particular to a blanking structure of a drying device used for producing insulating glass. Background Art
[0002] Insulating glass (IG) is a new building material that offers excellent thermal and sound insulation, is aesthetically pleasing, and reduces building weight. It is made of two (or three) sheets of glass bonded to an aluminum alloy frame containing a desiccant using a high-strength, airtight composite adhesive, resulting in high-performance sound and heat insulation. On traditional IG production lines, dried glass sheets are transferred via conveyors to the unloading area and neatly stacked for subsequent assembly and sealing. However, the unloading process in the current glass processing industry is still primarily manual, requiring two operators to closely collaborate to grasp, transfer, and stack the glass sheets. This operating model has significant technical limitations. First, the manual handling process requires continuous, high-intensity collaborative work, resulting in significant physical strain on workers. More importantly, operators spend extended periods of time working in the high-temperature drying equipment exit area, exposing them to the risk of burns and respiratory health hazards from constant exposure to process dust. These process flaws not only impact production efficiency but also pose significant occupational health and safety risks. Summary of the Invention
[0003] The main purpose of the present invention is to provide a material discharge structure of a drying device for producing insulating glass, which can effectively solve the problems in the background technology.
[0004] To achieve the above object, the technical solution adopted by the present invention is:
[0005] A drying device unloading structure for insulating glass production includes a roller conveyor, a glass placement rack is placed on one side of the roller conveyor, and insulating glass is placed on both the roller conveyor and the glass placement rack. A slide is rotatably installed on the side of the roller conveyor shell close to the glass placement rack. A lifting assembly is provided on the lower side of the roller conveyor shell, a driving assembly is provided on the upper side of the lifting assembly, and a stacking assembly is provided on the lifting assembly near the rear side. The lifting assembly includes a mounting frame fixedly mounted on the lower end of the roller conveyor shell, and two groups of No. 1 hydraulic cylinder, the upper ends of the telescopic rods of the two groups of No. 1 hydraulic cylinders are fixedly installed with partitions, and several groups of movable frames are set on the upper ends of the partitions, and connecting rods are fixedly set between the several groups of movable frames at positions close to the glass placement rack. Upper connecting shafts are fixedly set at the lower ends of the several groups of movable frames close to the side of the partitions, and lower connecting shafts are fixedly set at positions corresponding to the several groups of upper connecting shafts at one end of the partitions. Two groups of fixed shafts are fixed on the lower side of the same end of the partitions, and No. 2 hydraulic cylinders are rotatably set on the two groups of fixed shafts, and rings are fixed on the upper sides of the telescopic rods of the two groups of No. 2 hydraulic cylinders.
[0006] Preferably, the driving assembly includes five groups of No. 1 bearing seats fixedly arranged at the upper end of a group of movable frames spaced apart from each other, the inner sides of the five groups of No. 1 bearing seats are all rotatably provided with No. 1 circular shafts, a driving wheel is fixedly provided at the middle position of the No. 1 circular shaft, a No. 1 synchronous wheel is fixedly provided on the outer side of the No. 1 circular shaft near the front and rear sides of the driving wheel, a plurality of groups of grooves are provided on the outer side of the driving wheel, a suction cup is fixedly provided on the inner side of the plurality of groups of grooves, an anti-slip strip is provided on the outer side of the driving wheel, a No. 2 circular shaft is rotatably provided on the inner side of the No. 1 synchronous wheel near the edges on both sides, and the No. 1 synchronous wheel A No. 3 round shaft is rotatably provided on the inner side near the position between the two groups of driving wheels. Two groups of No. 2 synchronous wheels are fixedly provided on the outer sides of the No. 2 and No. 3 round shafts. Two groups of synchronous belts are sleeved on the outer sides of the No. 1 and No. 2 synchronous wheels corresponding to the front and rear sides of the No. 1, No. 2 and No. 3 round shafts. Five groups of No. 2 bearing seats are fixedly provided on the upper ends of each of the other groups of movable frames. Auxiliary wheels are rotatably provided on the inner sides of the five groups of No. 2 bearing seats. Transmission rods are fixed between the No. 2 round shafts of the several groups. A No. 1 motor is fixedly installed at the position corresponding to the transmission rod at the front end of the movable frame.
[0007] Preferably, the stacking assembly includes a No. 2 motor fixedly arranged at the front end of the movable frame near the side of the No. 1 motor, a rotating rod is fixedly arranged at the rear end of the rotating shaft of the No. 2 motor, and push rods are fixedly arranged at the outer side of the rotating rod corresponding to the rear end of the movable frame, and several groups of limit plates are fixedly arranged at the rear end of the movable frame near the lower side of the push rod, a slide groove is provided on the inner side of the push rod, a slider is slidingly provided on the inner side of the slide groove, a block is fixedly provided on the upper end of one side of the slider, a square groove is provided on the inner side of the slider, and five groups of rollers are rotatably provided on the inner side of the square groove.
[0008] Preferably, the position of the insulating glass on the glass placement rack is tilted, several groups of the movable frames correspond to the positions of the gaps between the conveying rollers of the roller conveyor, and the upper connecting shaft and the lower connecting shaft are rotatably arranged together.
[0009] Preferably, the No. 2 hydraulic cylinder is arranged at an angle, and the collar is sleeved on the outside of the connecting rod.
[0010] Preferably, the number of the No. 1 bearing seat and the No. 2 bearing seat is two in a group, and the driving wheels and the auxiliary wheels are arranged in an alternating manner.
[0011] Preferably, the upper side of the suction cup partially extends beyond the inner side of the groove, and the rotating shaft of the No. 1 motor is fixedly connected to the transmission rod.
[0012] Preferably, the rotating rod passes through the inner side of several groups of movable frames, the push rod is tilted, one side of the push rod rests on the limiting piece, the block is adapted to the thickness of the insulating glass, and the surface of the block is arc-shaped.
[0013] Compared with the prior art, the present invention has the following beneficial effects:
[0014] 1. Use the roller conveyor to transport the insulating glass to the upper position of the lifting assembly, and then start the two sets of No. 1 hydraulic cylinders to lift the partition frame, movable frame and drive assembly upward, pass through the gap between the conveying rollers of the roller conveyor, and the driving assembly will lift the insulating glass on the upper side and leave the upper side of the roller conveyor. Cooperate with the driving assembly to transport it to one side. When one side of the insulating glass is moved to the glass placement rack, start the No. 2 hydraulic cylinder to pull the collar and the connected connecting rod to rotate along the lower connecting shaft to complete a small rotation, and cooperate with the stacking assembly to perform stacking.
[0015] 2. When driving the insulating glass, first start the No. 1 motor to drive the transmission rod and the connected No. 2 circular shaft to rotate together, and the rotating No. 2 circular shaft drives the sleeved synchronous belt to rotate, thereby driving the connected No. 1 synchronous wheel and driving wheel to rotate, and the rotating driving wheel cooperates with the auxiliary wheel to transport the insulating glass to the glass placement rack position until it contacts the glass placement rack or the placed insulating glass and stops. When the lifting component pulls several groups of movable frames to rotate and tilt, several groups of suction cups are set to adsorb the surface of the insulating glass to avoid direct slipping and easy bumping at one end, thereby improving safety during the placement process, and avoiding the slipping of the auxiliary wheel when the insulating glass surface is too slippery and is easily transported to one side, so that the transportation work can be more effective.
[0016] 3. Then start the No. 2 motor to drive the rotating rod and several groups of push rods to rotate toward one side of the glass placement rack. When the lifting assembly tilts the movable frame, the slider will slide along the slide toward the glass placement rack, and the block will be buckled at the end of the insulating glass facing the roller conveyor. As the push rod continues to rotate, the insulating glass is pushed against the glass placement rack for placement. As the placement rotation slider slides in the slide accordingly, the block is always buckled at one end of the insulating glass until the two groups of insulating glass overlap or overlap with the glass placement rack plate. The block on the curved surface is pushed out and the restriction is automatically released to complete the stacking of the insulating glass, solving the problems of uncoordinated manual handling, large labor force and safety. When stacking the next group of insulating glass, the push rod rests on the limit piece and the slider will automatically slide to the other end to facilitate subsequent work. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 This is a schematic diagram of the overall structure of a drying device for hollow glass production according to the present invention;
[0018] Figure 2 Schematic diagram of the insulating glass placement structure of the drying device for insulating glass production of the present invention
[0019] Figure 3 This is a bottom view schematic diagram of a blanking structure of a drying device for producing insulating glass according to the present invention;
[0020] Figure 4 This is a partial structural schematic diagram of a material discharge structure of a drying device for producing insulating glass according to the present invention;
[0021] Figure 5 The present invention is a drying device for hollow glass production material feeding structure Figure 3 Side view structural diagram;
[0022] Figure 6 The present invention is a drying device for hollow glass production material feeding structure Figure 3 Rear view structure diagram;
[0023] Figure 7 This is a schematic diagram of the partial structure of the driving component of the blanking structure of the drying device for insulating glass production of the present invention. Figure 1 ;
[0024] Figure 8 The present invention is a drying device for hollow glass production material structure Figure 7 A schematic diagram of the enlarged structure of the middle B part;
[0025] Figure 9 This is a schematic diagram of the partial structure of the driving component of the blanking structure of the drying device for insulating glass production of the present invention. Figure 2 ;
[0026] Figure 10 The present invention is a drying device for hollow glass production material structure Figure 5 A schematic diagram of the enlarged structure of the middle part A;
[0027] Figure 11 This is a schematic diagram of the partially expanded structure of the stacking components of the blanking structure of a drying device for producing insulating glass according to the present invention.
[0028] Figure: 1, roller conveyor; 2, glass placement rack; 3, insulating glass; 4, slide; 5, lifting assembly; 51, mounting frame; 52, No. 1 hydraulic cylinder; 53, partition frame; 54, movable frame; 55, connecting rod; 56, upper connecting shaft; 57, lower connecting shaft; 58, fixed shaft; 59, No. 2 hydraulic cylinder; 510, collar; 6, driving assembly; 61, No. 1 bearing seat; 62, No. 1 circular shaft; 63, driving wheel; 64, No. 1 synchronous wheel; 6 5. Groove; 66. Suction cup; 67. Anti-slip strip; 68. Round shaft No. 2; 69. Round shaft No. 3; 610. Synchronous pulley No. 2; 611. Synchronous belt; 612. Bearing seat No. 2; 613. Auxiliary wheel; 614. Transmission rod; 615. Motor No. 1; 7. Stacking assembly; 71. Motor No. 2; 72. Rotating rod; 73. Push rod; 74. Limiting plate; 75. Slide groove; 76. Slider; 77. Block; 78. Square groove; 79. Roller. DETAILED DESCRIPTION
[0029] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments.
[0030] In the description of the present invention, it should be understood that the terms "upper", "lower", "front", "back", "left", "right", "top", "bottom", "inside", "outside", etc., indicating directions or positional relationships, are relative relationships of directions or positions, and are only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific direction, be constructed and operated in a specific direction, and therefore cannot be understood as limiting the present invention.
[0031] See also Figures 1-11 , an embodiment provided by the present invention: a drying device unloading structure for insulating glass production, comprising a roller conveyor 1, a glass placement rack 2 is placed on one side of the roller conveyor 1, insulating glass 3 is placed on both the roller conveyor 1 and the glass placement rack 2, a slide 4 is rotatably installed on the side of the roller conveyor 1 shell close to the glass placement rack 2, a lifting component 5 is provided on the lower side of the roller conveyor 1 shell, a driving component 6 is provided on the upper side of the lifting component 5, a stacking component 7 is provided on the lifting component 5 near the rear side, the lifting component 5 includes a mounting frame 51 fixedly mounted on the lower end of the roller conveyor 1 shell, and two sets of No. 1 liquid are fixedly mounted on the lower end of the mounting frame 51 Pressure cylinder 52, two groups of No. 1 hydraulic cylinders 52 are fixedly installed with a partition 53 on the upper end of the telescopic rod, and several groups of movable frames 54 are set on the upper end of the partition 53. Connecting rods 55 are fixedly set between the several groups of movable frames 54 near the side of the glass placement rack 2, and upper connecting shafts 56 are fixedly set on the lower ends of the several groups of movable frames 54 near the side of the partition 53. Lower connecting shafts 57 are fixedly set at the positions corresponding to the several groups of upper connecting shafts 56 at one end of the partition 53. Two groups of fixed shafts 58 are fixed on the lower side of the same end of the partition 53, and No. 2 hydraulic cylinders 59 are rotatably set on the two groups of fixed shafts 58. Rings 510 are fixed on the upper sides of the telescopic rods of the two groups of No. 2 hydraulic cylinders 59.
[0032] The position for placing the insulating glass 3 on the glass placement rack 2 is set at an angle, and several groups of movable frames 54 correspond to the positions of the gaps between the conveying rollers of the roller conveyor 1. The upper connecting shaft 56 and the lower connecting shaft 57 are rotated together, the No. 2 hydraulic cylinder 59 is set at an angle, and the ring 510 is sleeved on the outside of the connecting rod 55.
[0033] The insulating glass 3 is transported to the upper position of the lifting assembly 5 by the roller conveyor 1, and then the two groups of No. 1 hydraulic cylinders 52 are started to lift the partition frame 53, the movable frame 54 and the driving assembly 6 upward, and pass through the gap between the conveying rollers of the roller conveyor 1. The driving assembly 6 lifts the insulating glass 3 on the upper side and leaves the upper side of the roller conveyor 1, and cooperates with the driving assembly 6 to transport it to one side. When one side of the insulating glass 3 is moved to the glass placement rack 2, the No. 2 hydraulic cylinder 59 is started to pull the ring 510 and the connected connecting rod 55 to rotate along the lower connecting shaft 57 to complete a small rotation, and cooperate with the stacking assembly 7 to perform stacking.
[0034] The driving assembly 6 includes five groups of No. 1 bearing seats 61 fixedly arranged at the upper end of a group of movable frames 54 spaced apart from each other. The inner sides of the five groups of No. 1 bearing seats 61 are all rotatably provided with No. 1 circular shafts 62. A driving wheel 63 is fixedly provided in the middle position of the No. 1 circular shaft 62. A No. 1 synchronous wheel 64 is fixedly provided on the outer side of the No. 1 circular shaft 62 near the front and rear sides of the driving wheel 63. Several groups of grooves 65 are provided on the outer side of the driving wheel 63. Suction cups 66 are fixedly provided on the inner sides of the several groups of grooves 65. Anti-slip strips 67 are provided on the outer side of the driving wheel 63. A No. 2 circular shaft 68 is rotatably provided on the inner side of the No. 1 synchronous wheel 64 near the two groups of driving wheels 63. A No. 3 round shaft 69 is rotatably set in between, two groups of No. 2 synchronous wheels 610 are fixedly set on the outside of the No. 2 round shaft 68 and the No. 3 round shaft 69, and two groups of synchronous belts 611 are sleeved on the outside of the No. 1 synchronous wheel 64 and the No. 2 synchronous wheel 610 corresponding to the front and rear sides of the No. 1 round shaft 62, the No. 2 round shaft 68 and the No. 3 round shaft 69. Five groups of No. 2 bearing seats 612 are fixedly set on the upper end of each of the other groups in the several groups of movable frames 54, and auxiliary wheels 613 are rotatably set on the inside of the five groups of No. 2 bearing seats 612. A transmission rod 614 is fixedly set between the several groups of No. 2 round shafts 68, and a No. 1 motor 615 is fixedly installed at the position corresponding to the transmission rod 614 at the front end of the movable frame 54.
[0035] The number of bearing seats No. 1 61 and No. 2 612 is two in a group, the driving wheel 63 and the auxiliary wheel 613 are arranged in an interlaced manner, the upper side of the suction cup 66 partially extends beyond the inner side of the groove 65, and the rotating shaft of the No. 1 motor 615 is fixedly connected to the transmission rod 614.
[0036] When driving the insulating glass 3, first start the No. 1 motor 615 to drive the transmission rod 614 and the connected No. 2 circular shaft 68 to rotate together, and the rotating No. 2 circular shaft 68 drives the sleeved synchronous belt 611 to rotate, thereby driving the connected No. 1 synchronous wheel 64 and the driving wheel 63 to rotate, and the rotating driving wheel 63 cooperates with the auxiliary wheel 613 to transport the insulating glass 3 to the position of the glass placement rack 2 (the transporting distance can be determined by installing a distance sensor of the prior art), until it contacts the glass placement rack 2 or the placed insulating glass 3 and stops. When the lifting assembly 5 pulls the several groups of movable frames 54 to rotate and tilt, the several groups of suction cups 66 provided adsorb the surface of the insulating glass 3 to avoid direct slipping and causing one end to easily bump, thereby improving safety during the placement process, and avoiding the slipping phenomenon of the auxiliary wheel 613 when the surface of the insulating glass 3 is too slippery and is easily transported to one side, so that the transportation work can be more efficient.
[0037] The stacking assembly 7 includes a No. 2 motor 71 fixedly arranged at the front end of the movable frame 54 near the side of the No. 1 motor 615, a rotating rod 72 is fixedly arranged at the rear end of the rotating shaft of the No. 2 motor 71, and a push rod 73 is fixedly arranged on the outer side of the rotating rod 72 corresponding to the rear end of the movable frame 54. Several groups of groups of movable frames 54 are fixedly provided with limiting plates 74 at the rear end near the lower side of the push rod 73, a slide groove 75 is provided on the inner side of the push rod 73, a slider 76 is slidingly provided on the inner side of the slide groove 75, a block 77 is fixedly provided on the upper end of one side of the slider 76, a square groove 78 is provided on the inner side of the slider 76, and five groups of rollers 79 are rotatably provided on the inner side of the square groove 78.
[0038] The rotating rod 72 passes through the inner side of the plurality of movable frames 54 . The push rod 73 is tilted, with one side of the push rod 73 resting on the limit piece 74 . The block 77 is adapted to the thickness of the insulating glass 3 , and the surface of the block 77 is arc-shaped.
[0039] When the second motor 71 is started, the rotating rod 72 and several groups of push rods 73 are rotated toward one side of the glass placement rack 2. Since the lifting assembly 5 tilts the movable frame 54, the slider 76 will slide along the slide groove 75 toward the glass placement rack 2, and the block 77 will be buckled on the end of the insulating glass 3 facing the roller conveyor 1. As the push rod 73 continues to rotate, the insulating glass 3 is pushed against the glass placement rack 2 for placement. As the rotating slider 76 slides in the slide groove 75 accordingly, the block 77 is always buckled on one end of the insulating glass 3 until the two groups of insulating glasses 3 overlap or overlap with the glass placement rack 2 board surface, the block 77 on the curved surface is pushed out, automatically releasing its restriction, completing the work of stacking the insulating glasses 3, solving the problems of uncoordinated manual handling, large labor and safety issues, and when stacking the next group of insulating glasses 3, the push rod 73 rests on the limit plate 74, and the slider 76 will automatically slide to the other end, facilitating subsequent work.
[0040] Working principle: When in use, the insulating glass 3 is transported to the upper side of the lifting assembly 5 by the roller conveyor 1, and then the two groups of No. 1 hydraulic cylinders 52 are started to lift the spacer 53, the movable frame 54 and the driving assembly 6 upward, passing through the gap between the conveying rollers of the roller conveyor 1, and the driving assembly 6 lifts the insulating glass 3 on the upper side and leaves the upper side of the roller conveyor 1, and cooperates with the driving assembly 6 to transport it to one side. When one side of the insulating glass 3 is moved to the glass placement rack 2, the No. 2 hydraulic cylinder 59 is started to pull the ring 510 and the connected connecting rod 55 to rotate along the lower connecting shaft 57 to complete a small rotation work, and cooperate with the stacking In addition, when driving the insulating glass 3, the No. 1 motor 615 is first started to drive the transmission rod 614 and the connected No. 2 circular shaft 68 to rotate together, and the rotating No. 2 circular shaft 68 drives the sleeved synchronous belt 611 to rotate, thereby driving the connected No. 1 synchronous wheel 64 and the driving wheel 63 to rotate, and the rotating driving wheel 63 cooperates with the auxiliary wheel 613 to transport the insulating glass 3 to the position of the glass placement rack 2 (the transport distance can be determined by installing a distance sensor of the existing technology), until it stops when it contacts the glass placement rack 2 or the placed insulating glass 3, and cooperates with the lifting assembly 5 to pull several groups of movable frames 5 When rotating and tilting, the plurality of suction cups 66 are arranged to adsorb the surface of the insulating glass 3 to prevent it from sliding directly and causing one end to be easily bumped, thereby improving safety during the placement process and preventing the auxiliary wheel 613 from slipping when the insulating glass 3 is too slippery and is easily transported to one side, so that the transportation work can be carried out more effectively; finally, by starting the second motor 71, the rotating rod 72 and the plurality of push rods 73 are driven to rotate toward one side of the glass placement rack 2. When the lifting assembly 5 tilts the movable frame 54, the slider 76 will slide along the slide groove 75 toward the glass placement rack 2, and the block 77 will buckle on the insulating glass 3 toward the roller At one end of the conveyor 1, as the push rod 73 continues to rotate, the insulating glass 3 is pushed to be placed on the glass placement rack 2, and as the placement rotating slider 76 slides in the slide groove 75 accordingly, the block 77 is always buckled on one end of the insulating glass 3 until the two groups of insulating glasses 3 overlap or overlap with the plate surface of the glass placement rack 2, the block 77 on the curved surface is pushed out, and the restriction on it is automatically released, completing the work of stacking the insulating glasses 3, solving the problems of uncoordinated manual handling, large labor and safety issues, and when stacking the next group of insulating glasses 3, the push rod 73 rests on the limit plate 74, and the slider 76 automatically slides to the other end, facilitating subsequent work.
[0041] The electrical components in the present invention are existing structures in the field, and the usage and connection methods are common knowledge in the field. Their working principles are already well-known technologies, and the models are selected according to actual use, so they will not be explained in detail.
[0042] While 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 these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.
Claims
1. A drying device unloading structure for insulating glass production, comprising a roller conveyor (1), characterized in that: A glass placement rack (2) is placed on one side of the roller conveyor (1), and hollow glass (3) is placed on both the roller conveyor (1) and the glass placement rack (2). A slide (4) is rotatably mounted on the side of the roller conveyor (1) housing close to the glass placement rack (2). A lifting assembly (5) is provided on the lower side of the roller conveyor (1) housing, a driving assembly (6) is provided on the upper side of the lifting assembly (5), and a stacking assembly (7) is provided on the lifting assembly (5) near the rear side. The lifting assembly (5) includes a mounting frame (51) fixedly mounted on the lower end of the roller conveyor (1) housing, and two groups of No. 1 hydraulic cylinders (52) are fixedly mounted on the lower end of the mounting frame (51). The two groups of No. 1 hydraulic cylinders (52) have telescopic rods. A partition frame (53) is fixedly installed at the upper end, and a plurality of groups of movable frames (54) are provided at the upper end of the partition frame (53). Connecting rods (55) are fixedly provided between the plurality of groups of movable frames (54) at positions close to the glass placement frame (2). Upper connecting shafts (56) are fixedly provided at the lower ends of the plurality of groups of movable frames (54) close to the side of the partition frame (53). Lower connecting shafts (57) are fixedly provided at positions corresponding to the plurality of groups of upper connecting shafts (56) at one end of the partition frame (53). Two groups of fixed shafts (58) are fixedly provided at the lower side of the same end of the partition frame (53). No. 2 hydraulic cylinders (59) are rotatably provided on the two groups of fixed shafts (58). Rings (510) are fixedly provided on the upper sides of the telescopic rods of the two groups of No. 2 hydraulic cylinders (59).
2. The blanking structure of a drying device for insulating glass production according to claim 1, characterized in that: The driving assembly (6) comprises five groups of No. 1 bearing seats (61) fixedly arranged at the upper end of a group of movable frames (54) spaced apart from each other, the inner sides of the five groups of No. 1 bearing seats (61) are all rotatably provided with No. 1 circular shafts (62), a driving wheel (63) is fixedly provided at the middle position of the No. 1 circular shaft (62), a No. 1 synchronous wheel (64) is fixedly provided on the outer side of the No. 1 circular shaft (62) close to the front and rear sides of the driving wheel (63), a plurality of groups of grooves (65) are opened on the outer side of the driving wheel (63), a suction cup (66) is fixedly provided on the inner side of the plurality of groups of grooves (65), an anti-slip strip (67) is provided on the outer side of the driving wheel (63), a No. 2 circular shaft (68) is rotatably provided on the inner side of the No. 1 synchronous wheel (64) close to the two groups of driving wheels, and a No. 2 circular shaft (68) is fixedly provided on the inner side of the No. 1 synchronous wheel (64) close to the two groups of driving wheels. A third round shaft (69) is rotatably provided between the positions of the second round shaft (68) and the third round shaft (69), two groups of second synchronous wheels (610) are fixedly provided on the outside of the second round shaft (68) and the third round shaft (69), two groups of synchronous belts (611) are sleeved on the outside of the first synchronous wheel (64) and the second synchronous wheel (610) corresponding to the front and rear sides of the first round shaft (62), the second round shaft (68) and the third round shaft (69), and five groups of second bearing seats (612) are fixedly provided on the upper ends of each group of the movable frames (54), and auxiliary wheels (613) are rotatably provided on the inner sides of the five groups of second bearing seats (612), and a transmission rod (614) is fixedly provided between the plurality of groups of second round shafts (68), and a first motor (615) is fixedly provided at the position corresponding to the transmission rod (614) at the front end of the movable frame (54).
3. The blanking structure of a drying device for insulating glass production according to claim 2, characterized in that: The stacking assembly (7) comprises a No. 2 motor (71) fixedly arranged at the front end of the movable frame (54) near the side of the No. 1 motor (615), a rotating rod (72) fixedly arranged at the rear end of the rotating shaft of the No. 2 motor (71), a push rod (73) fixedly arranged on the outer side of the rotating rod (72) corresponding to the rear end position of the movable frame (54), a plurality of groups of limit plates (74) fixedly arranged at the rear end of the movable frame (54) near the lower side of the push rod (73), a sliding groove (75) is arranged on the inner side of the push rod (73), a slider (76) is slidably arranged on the inner side of the sliding groove (75), a clamping block (77) is fixedly arranged on the upper end of one side of the slider (76), a square groove (78) is opened on the inner side of the slider (76), and five groups of rollers (79) are rotatably arranged on the inner side of the square groove (78).
4. The blanking structure of a drying device for insulating glass production according to claim 1, characterized in that: The position of the insulating glass (3) on the glass placement rack (2) is tilted, and several groups of the movable frames (54) correspond to the positions of the gaps between the conveying rollers of the roller conveyor (1), and the upper connecting shaft (56) and the lower connecting shaft (57) are rotatably arranged together.
5. The blanking structure of a drying device for insulating glass production according to claim 1, characterized in that: The second hydraulic cylinder (59) is tilted, and the collar (510) is sleeved on the outside of the connecting rod (55).
6. The material discharging structure of a drying device for producing insulating glass according to claim 2, characterized in that: The number of the No. 1 bearing seat (61) and the No. 2 bearing seat (612) is two per group, and the driving wheel (63) and the auxiliary wheel (613) are arranged in an interlaced manner.
7. The material discharging structure of a drying device for producing insulating glass according to claim 2, characterized in that: The upper side of the suction cup (66) partially exceeds the inner side of the groove (65), and the rotating shaft of the first motor (615) is fixedly connected to the transmission rod (614).
8. The material discharging structure of a drying device for producing insulating glass according to claim 3, characterized in that: The rotating rod (72) passes through the inner side of several groups of movable frames (54), the push rod (73) is tilted, one side of the push rod (73) rests on the limiting piece (74), the clamping block (77) is adapted to the thickness of the insulating glass (3), and the surface of the clamping block (77) is arc-shaped.