Glass processing overturning support
By designing a glass processing flipping bracket, the glass can be transported and flipped in two directions using a rotating shaft and a vertical conveying mechanism, which solves the problem of limited equipment layout and improves work efficiency and stability.
Patent Information
- Application Number
- CN202421665351.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-15
- Publication Date
- 2025-11-07
- Estimated Expiration
- 2034-07-15
AI Technical Summary
Existing glass processing equipment cannot be arranged in an L-shape due to space limitations, resulting in an unreasonable equipment layout and affecting work efficiency.
Design a glass processing flipping support, including a rotating frame, a rotating shaft, longitudinal and transverse conveying mechanisms, and a glass adsorption mechanism, to realize the conveying and flipping of glass in two vertical directions. The rotating shaft is used to change the conveying direction, and vacuum adsorption is combined to prevent the glass from slipping.
It enables efficient relocation of the glass deep processing production line within a limited space, improving equipment layout flexibility and work efficiency, and ensuring the stability of the glass flipping process.
Smart Images

Figure CN223521755U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to glass processing equipment field especially relates to a glass processing turnover support. BACKGROUND
[0002] Some glasses need to be deep-processed on the surface after forming, and need to use turnover equipment to turn over the glass. The existing turnover equipment and the front and rear glass deep-processing equipment are located on the same straight line, which has simple structure and high working efficiency, but some workshops cannot arrange the front and rear glass deep-processing equipment and the turnover equipment on the same straight line due to the limited length of the site, so a turnover equipment capable of arranging the front and rear glass deep-processing equipment according to L type with the turnover equipment as the turning point needs to be designed. SUMMARY
[0003] The utility model discloses a glass processing turnover support which overcomes the above problems in the prior art.
[0004] To achieve the above technical purposes and effects, the utility model discloses the following technical scheme:
[0005] A glass processing turnover support, comprising a rotating shaft frame, a rotating shaft is installed on the rotating shaft frame, a driven synchronous pulley is installed in the middle part of the rotating shaft, and a mounting block is fixedly connected to the first end of the rotating shaft. The bottom of the mounting block is fixedly connected with a longitudinal conveying mechanism for conveying glass onto the glass processing turnover support, the top of the mounting block is fixedly connected with a transverse conveying mechanism for outputting glass from the glass processing turnover support, the conveying direction of the transverse conveying mechanism is perpendicular to the conveying direction of the longitudinal conveying mechanism, and a group of glass suction mechanisms for sucking glass are installed on the longitudinal conveying mechanism and the transverse conveying mechanism respectively.
[0006] The rotating shaft frame comprises a bottom frame in the shape of a Chinese character, two support frames in the shape of a Chinese character are welded to the top of the bottom frame and are parallel to each other, an axle bearing mounting ring is welded to the top of each support frame, a ball bearing is installed in each axle bearing mounting ring, and the rotating shaft is installed in the inner ring of the two ball bearings.
[0007] The longitudinal conveying mechanism comprises a first cross beam, a plurality of first longitudinal beams parallel to each other, one side of the first cross beam is fixedly connected to the first ends of the plurality of first longitudinal beams, a group of first conveying belts is installed on each first longitudinal beam, a first motor frame is fixedly connected between the two first longitudinal beams in the middle, a first double-head motor is installed on the first motor frame, the motor shafts at both ends of the first double-head motor are respectively connected to the drive shafts of the adjacent first conveying belts through couplings, and the drive shafts of the first conveying belts are connected to the drive shafts of the adjacent first conveying belts.
[0008] The transverse conveying mechanism comprises a second cross beam, two second longitudinal beams parallel to each other, and a plurality of third cross beams parallel to each other, the second cross beam is fixed to the first ends of the second longitudinal beams, the third cross beams are fixed to the bottom ends of the second longitudinal beams, the bottom end of each third cross beam is provided with a group of second conveying belts, a second motor frame is fixed between the two third cross beams in the middle, a second double-head motor is installed on the second motor frame, the motor shafts at the two ends of the second double-head motor are respectively connected with the driving shafts of the adjacent second conveying belts through couplings, and the driving shafts of the second conveying belts are connected with the driving shafts of the adjacent second conveying belts.
[0009] The glass adsorption mechanism comprises a plurality of channel steels, a U-shaped telescopic cylinder frame, a work-shaped frame, a plurality of square tubes, and a telescopic cylinder, the channel steels are welded between the adjacent first longitudinal beams or third cross beams, the telescopic cylinder frame is welded to the bottom ends of the two adjacent first longitudinal beams or the top ends of the two adjacent third cross beams, the telescopic cylinder is installed in the telescopic cylinder frame, the work-shaped frame is installed at the end of the piston rod of the telescopic cylinder, the back surface of each square tube is vertically fixed with two guide rods, guide holes are formed in the channel steels, the guide rods are connected with the work-shaped frame after penetrating through the guide holes, and vacuum suction cups are installed on the front surface of the square tube.
[0010] The tail of the rotating shaft is provided with a counterweight.
[0011] The glass processing turnover support provided with the longitudinal conveying mechanism and the transverse conveying mechanism which are perpendicular to each other, realizes the input and output of glass from two perpendicular directions, changes the direction of the glass deep processing production line, rotates the longitudinal conveying mechanism and the transverse conveying mechanism to realize the up-down exchange of the longitudinal conveying mechanism and the transverse conveying mechanism, thereby realizing the turnover of glass, and utilizes the glass adsorption mechanism to adsorb glass to prevent the glass from slipping during the turnover process. BRIEF DESCRIPTION OF DRAWINGS
[0012] The drawings described herein are used to provide further understanding of the utility model and constitute a part of the application, the illustrative embodiments of the utility model and the description thereof are used to explain the utility model, and do not constitute improper limitation on the utility model. In the drawings:
[0013] Figure 1 is a structural schematic view of the glass processing turnover support in the utility model from a first perspective;
[0014] Figure 2 is a structural schematic view of the glass processing turnover support in the utility model from a second perspective;
[0015] Figure 3 is a structural schematic view of the rotating shaft frame, the rotating shaft, the driven synchronous pulley and the mounting block combination in the utility model;
[0016] Figure 4 is a structure schematic view of the longitudinal conveying mechanism and the glass adsorption mechanism combined in the utility model;
[0017] Figure 5 is a structure schematic view of the longitudinal conveying mechanism in the utility model;
[0018] Figure 6 is a structure schematic view of the horizontal conveying mechanism and the glass adsorption mechanism combined in the utility model;
[0019] Figure 7 is a structure schematic view of the horizontal conveying mechanism in the utility model;
[0020] Figure 8 is a structure schematic view of the glass adsorption mechanism in the utility model;
[0021] The figure mark explanation: pivot frame 1, bottom frame 11, support frame 12, bearing mounting ring 13, ball bearing 14, pivot 2, driven synchronous pulley 3, mounting block 4, longitudinal conveying mechanism 5, first cross beam 51, first vertical beam 52, first conveying belt 53, first motor frame 54, first double-head motor 55, horizontal conveying mechanism 6, second cross beam 61, second vertical beam 62, third cross beam 63, second conveying belt 64, second motor frame 65, second double-head motor 66, glass adsorption mechanism 7, channel steel 71, telescopic cylinder frame 72, H-shaped frame 73, square tube 74, telescopic cylinder 75, guide rod 76, vacuum chuck 77, counterweight 8. DETAILED DESCRIPTION
[0022] The utility model will be described in detail below in combination with the embodiments and with reference to the drawings.
[0023] As Figures 1 to 8 shown, a glass processing turnover support, including pivot frame 1, install a pivot 2 on pivot frame 1;Pivot frame 1 includes the bottom frame 11 of "mouth" character, and the top of bottom frame 11 is welded with two "well" character-shaped support frames 12 that are parallel to each other, and each support frame 12 is welded with a bearing mounting ring 13 on the top, and each bearing mounting ring 13 is installed with a ball bearing 14, and the pivot 2 is installed in the inner ring of two ball bearings 14.
[0024] The middle part of pivot 2 is installed with driven synchronous pulley 3, and one side of pivot frame 1 is installed with servo motor, and the motor shaft of servo motor is installed with driving synchronous pulley, and driven synchronous pulley 3 is drivenly connected with driving synchronous pulley through synchronous belt.
[0025] The first end of the rotating shaft 2 is fixedly connected with a mounting block 4, the bottom of the mounting block 4 is fixedly connected with a longitudinal conveying mechanism 5 for conveying glass to a glass processing turnover support, the top of the mounting block 4 is fixedly connected with a transverse conveying mechanism 6 for outputting glass from the glass processing turnover support, the conveying direction of the transverse conveying mechanism 6 is perpendicular to the conveying direction of the longitudinal conveying mechanism 5, and a group of glass suction mechanisms 7 for sucking glass are respectively arranged on the longitudinal conveying mechanism 5 and the transverse conveying mechanism 6.
[0026] The longitudinal conveying mechanism 5 comprises a first cross beam 51 and a plurality of first longitudinal beams 52 parallel to each other, one side of the first cross beam 51 is fixedly connected with the first ends of the plurality of first longitudinal beams 52, a group of first conveying belts 53 are arranged on each first longitudinal beam 52, a first motor frame 54 is fixedly connected between the two first longitudinal beams 52 in the middle, a first double-head motor 55 is arranged on the first motor frame 54, the motor shafts at the two ends of the first double-head motor 55 are respectively connected with the drive shafts of the adjacent first conveying belts 53 through couplings, and the drive shaft of the first conveying belt 53 is connected with the drive shaft of the adjacent first conveying belt 53.
[0027] The transverse conveying mechanism 6 comprises a second cross beam 61, two second longitudinal beams 62 parallel to each other and a plurality of third cross beams 63 parallel to each other, the second cross beam 61 is fixedly connected with the first ends of the second longitudinal beams 62, the third cross beams 63 are fixedly connected with the bottom ends of the second longitudinal beams 62, a group of second conveying belts 64 are arranged on the bottom end of each third cross beam 63, a second motor frame 65 is fixedly connected between the two third cross beams 63 in the middle, a second double-head motor 66 is arranged on the second motor frame 65, the motor shafts at the two ends of the second double-head motor 66 are respectively connected with the drive shafts of the adjacent second conveying belts 64 through couplings, and the drive shaft of the second conveying belt 64 is connected with the drive shaft of the adjacent second conveying belt 64.
[0028] The glass suction mechanism 7 comprises a plurality of channel steels 71, a U-shaped telescopic cylinder frame 72, a work-shaped frame 73, a plurality of square tubes 74 and a telescopic cylinder 75, the telescopic cylinder 75 is arranged in the telescopic cylinder frame 72, the work-shaped frame 73 is arranged at the end of the piston rod of the telescopic cylinder 75, two guide rods 76 are fixedly connected with the back surface of each square tube 74 perpendicularly, guide holes are formed in the channel steels 71, the guide rods 76 are connected with the work-shaped frame 73 after penetrating through the guide holes, and vacuum suction cups 77 are arranged on the front surface of the square tube 74.
[0029] The glass suction mechanism 7 arranged on the longitudinal conveying mechanism 5 is welded between the adjacent first longitudinal beams 52, and the telescopic cylinder frame 72 is welded at the bottom ends of the two adjacent first longitudinal beams 52 in the middle.
[0030] The glass suction mechanism 7 arranged on the transverse conveying mechanism 6 is welded between the adjacent third cross beams 63, and the telescopic cylinder frame 72 is welded at the top ends of the two adjacent third cross beams 63 in the middle.
[0031] The first conveying belt 53 and the second conveying belt 64 are both belt conveyors.
[0032] In order to balance the weight of the shaft frame 1, a counterweight 8 is installed at the tail of the shaft 2.
[0033] The working principle is that, in the initial state of the glass processing turnover support, the longitudinal conveying mechanism is located below the transverse conveying mechanism; when it is needed to convey the glass to the glass processing turnover support, the longitudinal conveying mechanism conveys the glass to the direction of the mounting block until the glass is completely conveyed to the longitudinal conveying mechanism; then the two telescopic cylinders are simultaneously elongated, so that the vacuum suction cups of the two groups of glass suction mechanisms respectively suck the glass from the front and back surfaces of the glass; the shaft is rotated by 180° to make the longitudinal conveying mechanism turn over to the upper side of the transverse conveying mechanism, the vacuum suction cups are in the vacuum state, and the two telescopic cylinders are simultaneously retracted, so that the glass falls to the transverse glass conveying mechanism, and the transverse glass conveying mechanism works to output the glass from the glass processing turnover support.
[0034] The basic principle, main features and advantages of the present application are shown and described above. It should be understood by those skilled in the art that the present application is not limited by the above embodiments, and the above embodiments and descriptions in the specification are only to illustrate the principle of the present application. Without departing from the spirit and scope of the present application, various changes and improvements can be made to the present application, and these changes and improvements all fall within the scope of the present application.
Claims
1. A glass processing inversion stand, characterized by: The application relates to a glass conveying device, which comprises a rotating shaft frame, a rotating shaft installed on the rotating shaft frame, a driven synchronous pulley installed on the middle part of the rotating shaft, and a mounting block fixedly connected to the head end of the rotating shaft; a longitudinal conveying mechanism for conveying glass to a glass processing turnover support is fixedly connected to the bottom of the mounting block; a transverse conveying mechanism for outputting glass from the glass processing turnover support is fixedly connected to the top of the mounting block; the conveying direction of the longitudinal conveying mechanism is perpendicular to the conveying direction of the transverse conveying mechanism; a set of glass adsorption mechanisms for adsorbing glass are respectively installed on the longitudinal conveying mechanism and the transverse conveying mechanism.
2. The glass processing inversion stand of claim 1, wherein: The rotating shaft frame comprises a bottom frame in the shape of a Chinese character "kou", two parallel support frames in the shape of an inverted Chinese character "jing" welded to the top end of the bottom frame, a bearing mounting ring welded to the top of each support frame, a ball bearing installed in each bearing mounting ring, and the rotating shaft installed in the inner ring of the two ball bearings.
3. The glass processing inversion stand of claim 1, wherein: The longitudinal conveying mechanism comprises a first cross beam, a plurality of parallel first longitudinal beams, a first motor frame fixedly connected to one side of the first cross beam and the head end of the plurality of first longitudinal beams, a set of first conveying belts installed on each first longitudinal beam, and a first double-head motor installed on the first motor frame; the motor shafts at the two ends of the first double-head motor are respectively connected to the driving shafts of the adjacent first conveying belts through couplings; and the driving shafts of the first conveying belts are connected to the driving shafts of the adjacent first conveying belts.
4. The glass processing inversion stand of claim 1, wherein: The transverse conveying mechanism comprises a second cross beam, two parallel second longitudinal beams, a plurality of parallel third cross beams, a second motor frame fixedly connected to the head end of the second longitudinal beams and the second cross beam, a set of second conveying belts installed on the bottom end of each third cross beam, and a second double-head motor installed on the second motor frame; the motor shafts at the two ends of the second double-head motor are respectively connected to the driving shafts of the adjacent second conveying belts through couplings; and the driving shafts of the second conveying belts are connected to the driving shafts of the adjacent second conveying belts.
5. The glass processing inversion stand of claim 3 or 4, wherein: The glass adsorption mechanism comprises a plurality of channel steels, a U-shaped telescopic cylinder frame, a work-shaped frame, a plurality of square tubes, and a telescopic cylinder; the channel steels are welded between adjacent first longitudinal beams or third cross beams; the telescopic cylinder frame is welded to the bottom end of the two adjacent first longitudinal beams or the top end of the two adjacent third cross beams; the telescopic cylinder is installed in the telescopic cylinder frame; the work-shaped frame is installed at the end of the piston rod of the telescopic cylinder; two guide rods are perpendicularly fixed to the back of each square tube; guide holes are formed in the channel steels; the guide rods are connected to the work-shaped frame after penetrating through the guide holes; and vacuum suction cups are installed on the front of the square tubes.
6. The glass processing inversion stand of claim 1, wherein: A counterweight is installed at the tail of the rotating shaft.