Flat glass bottle right-angle turning mechanism
By designing the right-angle turning mechanism of the guide plate and the guide unit for flat glass bottles, the problem of glass bottles tipping over during the turning process is solved, and a stable and smooth transmission effect is achieved.
Patent Information
- Application Number
- CN202422722881.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-08
- Publication Date
- 2025-10-03
- Estimated Expiration
- 2034-11-08
AI Technical Summary
In the prior art, flat glass bottles are prone to tipping over during right-angle turns, resulting in unstable transportation.
A right-angle turning mechanism for flat glass bottles, including a guide plate and a guide unit, was designed. The turning area, composed of a transmission channel and pulleys between the guide plate and the guide unit, ensured that the long side of the glass bottle was aligned with the transmission direction during the turning process, thus preventing it from tipping over.
It achieves stable transmission of flat glass bottles during the turning process, avoids tipping, and ensures smooth and fluent transmission.
Smart Images

Figure CN223408807U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of glass bottle transmission, in particular to a right-angle turning mechanism for flat glass bottles. Background Art
[0002] Glass bottles come in a variety of shapes, including round, oval, flat, special-shaped bottles and other shapes. In the manufacturing process of glass bottles, after being formed on a glass bottle forming machine, the glass bottles need to be transported to a designated location through a conveying device.
[0003] In the prior art, when a turning transmission device composed of two mutually perpendicular belt conveyor lines transmits flat glass bottles, after the flat glass bottles are transmitted from the first belt line to the second belt line, the flat glass bottles are turned sideways, and the flat glass bottles change from having their longer sides aligned with the transmission direction to having their shorter sides aligned with the transmission direction. When the shorter sides are aligned with the transmission direction, if the glass bottles are slightly tilted during the transmission process, their center of gravity will be biased toward the outside of the glass bottles. At this time, the flat glass bottles are very likely to fall over. Therefore, a right-angle turning mechanism for flat glass bottles is proposed to solve the above problem. Utility Model Content
[0004] In view of the deficiencies in the prior art, the utility model provides a right-angle turning mechanism for a flat glass bottle, which has the advantages of not tipping over during turning, and solves the problem of tipping over during turning.
[0005] To achieve the above-mentioned purpose, the utility model provides the following technical solutions: a flat glass bottle right-angle turning mechanism, comprising a first conveyor belt, a second conveyor belt, a guide plate and a guide unit;
[0006] The first conveyor belt is vertically arranged on the side of the second conveyor belt, and the guide plate is arranged above the first conveyor belt and the second conveyor belt along the transmission direction thereof. The guide unit is arranged above the first conveyor belt and the second conveyor belt corresponding to the guide plate. A transmission channel is formed between the guide plate and the guide unit, and a turning area is formed in the transmission channel. The guide unit includes a connecting frame group, and a pulley is provided on the connecting frame group. Part of the outer circumference of the pulley extends into the turning area. The guide plate includes an arc plate, and the arc plate is arranged in the turning area corresponding to the connecting frame group.
[0007] Furthermore, the turning area includes a transmission channel located at the connection between the first transmission belt and the second transmission belt and a portion of the transmission channel extending toward the first transmission belt and the second transmission belt.
[0008] Furthermore, a first outer plate is fixed to the side of the arc plate facing the first conveyor belt direction, and the first outer plate is located above the first conveyor belt. A second outer plate is fixed to the side of the arc plate facing the second conveyor belt direction, and the second outer plate is located above the second conveyor belt.
[0009] Furthermore, the connecting frame group is arranged in an arc shape in the turning area, and the connecting frame group includes a first connecting frame, a second connecting frame and a third connecting frame. The first connecting frame is arranged parallel to the first outer plate, the second connecting frame is arranged parallel to the second outer plate, and the third connecting frame is fixed between the first connecting frame and the second connecting frame corresponding to the arc plate.
[0010] Furthermore, the first connecting frame is provided with a first inner plate along the transmission direction of the first conveyor belt, and the first inner plate is horizontal with the first outer plate, and the second connecting frame is provided with a second inner plate along the transmission direction of the second conveyor belt, and the second inner plate is horizontal with the second outer plate.
[0011] Furthermore, the distance between the first outer plate and the first inner plate is equal to the distance between the first outer plate and the pulley corresponding to the first connecting frame, the distance between the second outer plate and the second inner plate is equal to the distance between the second outer plate and the pulley corresponding to the second connecting frame, and the distance between the arc plate and the pulley corresponding to the third connecting frame is greater than the distance between the first outer plate and the pulley corresponding to the first connecting frame, and is also greater than the distance between the second outer plate and the pulley corresponding to the second connecting frame.
[0012] Furthermore, the first connecting frame, the second connecting frame and the third connecting frame are all hollow inside and rectangular parallelepiped with the side facing the transmission channel missing.
[0013] Furthermore, a plurality of connecting rods are fixed to the top and bottom surfaces of the first connecting frame, the second connecting frame and the third connecting frame through nuts, and the pulleys are rotatably connected to the connecting rods.
[0014] Furthermore, the connecting rods are arranged in three groups and are evenly spaced and distributed on the first connecting frame, the second connecting frame and the third connecting frame.
[0015] Furthermore, flat bottles are placed along the transmission channels of the first conveyor belt and the third conveyor belt.
[0016] Compared with the existing technology, the technical solution of this application has the following beneficial effects:
[0017] 1. This flat glass bottle right-angle turning mechanism, through the guide plate and guide unit, can form a turning transmission channel on the first conveyor belt and the second conveyor belt. The arc plate, connecting frame assembly and pulley are used to achieve the turning, so that the long side of the flat bottle body is always consistent with the transmission direction, so as to prevent the glass bottle from tipping over after completing the turn.
[0018] 2. The right-angle turning mechanism for the flat glass bottle, under the action of the pulley, can make the flat bottle body turn more smoothly and fluently in the turning area. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 This is a schematic diagram of the structure of the utility model;
[0020] Figure 2 This is a schematic diagram of the right side structure of the first transmission belt in the present utility model;
[0021] Figure 3 This is a left-side structural diagram of the first conveyor belt in the present invention;
[0022] Figure 4 For this utility model Figure 3 A magnified schematic diagram of the structure in the middle.
[0023] In the figure: 1 first conveyor belt, 2 second conveyor belt, 3 guide plate, 310 arc plate, 320 first outer plate, 330 second outer plate, 4 guide unit, 410 connecting frame group, 411 first connecting frame, 412 second connecting frame, 413 third connecting frame, 420 first inner plate, 430 second inner plate, 440 connecting rod, 450 pulley, 5 transmission channel, 510 turning area, 6 flat bottle body, 610 long side, 620 short side. DETAILED DESCRIPTION
[0024] 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 embodiments described 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 making creative efforts are within the scope of protection of the present invention.
[0025] Example 1:
[0026] See also Figure 1-4In this embodiment, a right-angle turning mechanism for flat glass bottles includes a first conveyor belt 1, a second conveyor belt 2, a guide plate 3 and a guide unit 4; the first conveyor belt 1 is vertically arranged on the side of the second conveyor belt 2, the guide plate 3 is arranged above the first conveyor belt 1 and the second conveyor belt 2 along the transmission direction, the guide unit 4 is arranged above the first conveyor belt 1 and the second conveyor belt 2 corresponding to the guide plate 3, a transmission channel 5 is formed between the guide plate 3 and the guide unit 4, and a turning area 510 is formed in the transmission channel 5, the guide unit 4 includes a connecting frame group 410, a pulley 450 is provided on the connecting frame group 410, and part of the outer circumference of the pulley 450 extends into the turning area 510, the guide plate 3 includes an arc plate 310, and the arc plate 310 is arranged in the turning area 510 corresponding to the connecting frame group 410.
[0027] When in use, the glass bottle is placed in the transmission channel 5 on the first conveyor belt 1, and the long side 610 of the glass bottle faces the transmission direction of the first conveyor belt 1 downward. The glass bottle moves in the transmission channel 5 under the transmission of the first conveyor belt 1. When the glass bottle enters the turning area 510, it will contact the pulley 450 on the connecting frame group 410. When the glass bottle moves from the first conveyor belt 1 to the second conveyor belt 2, the pulley 450 and the arc plate 310 on the connecting frame can restrict the glass bottle, so that after the glass bottle moves to the second conveyor belt 2, the long side 610 of the glass bottle is consistent with the transmission direction of the second conveyor belt 2 and is transmitted by the second conveyor belt 2, and the glass bottle realizes a 90-degree turn. During the transmission process, the pulley 450 and the arc plate 310 on the connecting frame cooperate to avoid the problem that the short side 620 of the glass bottle is consistent with the transmission direction of the second conveyor belt 2 after the glass bottle moves to the second conveyor belt 2, and the glass bottle is easily tipped over when being transmitted on the second conveyor belt 2.
[0028] Example 2:
[0029] The basic content of Example 1 is different in that:
[0030] See also Figure 1-3In this embodiment, a first outer plate 320 is fixed to the side of the arc plate 310 facing the first conveyor belt 1, and the first outer plate 320 is located above the first conveyor belt 1. A second outer plate 330 is fixed to the side of the arc plate 310 facing the second conveyor belt 2, and the second outer plate 330 is located above the second conveyor belt 2. The connecting frame group 410 is arranged in an arc shape in the turning area 510. The connecting frame group 410 includes a first connecting frame 411, a second connecting frame 412 and a third connecting frame 413. The first connecting frame 411 is arranged parallel to the first outer plate 320, and the second connecting frame 412 is arranged parallel to the second outer plate 330. The third connecting frame 413 is fixed between the first connecting frame 411 and the second connecting frame 412 corresponding to the arc plate 310. The first connecting frame 411 is provided with a first inner plate 420 along the transmission direction of the first conveyor belt 1. The first inner plate 420 is horizontal with the first outer plate 320, and the second connecting frame 412 is provided with a second inner plate 430 along the transmission direction of the second conveyor belt 2, and the second inner plate 430 is horizontal with the second outer plate 330, the distance between the first outer plate 320 and the first inner plate 420 is equal to the distance between the first outer plate 320 and the pulley 450 corresponding to the first connecting frame 411, the distance between the second outer plate 330 and the second inner plate 430 is equal to the distance between the second outer plate 330 and the pulley 450 corresponding to the second connecting frame 412, and the distance between the arc plate 310 and the pulley 450 on the corresponding third connecting frame 413 is greater than the distance between the first outer plate 320 and the pulley 450 corresponding to the first connecting frame 411, and is also greater than the distance between the second outer plate 330 and the pulley 450 corresponding to the second connecting frame 412.
[0031] During application, when the glass bottle is being transported, the glass bottle first enters the transport channel 5 formed by the first outer plate 320 and the first inner plate 420, and then after the glass bottle moves to its side and contacts the pulley 450 on the first connecting frame 411, the glass bottle enters the turning area 510. When the glass bottle moves onto the second conveyor belt 2, its side contacts the pulley 450 on the third connecting frame 413 under the action of the second conveyor belt 2 and begins to turn. During the turning process, the second conveyor belt 2 in transmission will also cause the front and rear ends of the glass bottle to slide on the arc plate 310. With the transmission of the second conveyor belt 2, the glass bottle gradually completes the rotation and completes the final 90-degree rotation when the side of the glass bottle contacts the pulley 450 on the second connecting frame 412. The glass bottle also enters the transport channel 5 formed by the second outer plate 330 and the second inner plate 430 under the transmission of the second conveyor belt 2.
[0032] Example 3:
[0033] The basic content of Example 2 is different in that:
[0034] See also Figure 4In this embodiment, the first connecting frame 411, the second connecting frame 412 and the third connecting frame 413 are all rectangular parallelepipeds with a hollow interior and a missing side facing the transmission channel 5. The top and bottom surfaces of the first connecting frame 411, the second connecting frame 412 and the third connecting frame 413 are fixed with a plurality of connecting rods 440 by nuts, and the pulley 450 is rotatably connected to the connecting rods 440. The plurality of connecting rods 440 are divided into three groups and are evenly spaced and distributed on the first connecting frame 411, the second connecting frame 412 and the third connecting frame 413.
[0035] When in use, the glass bottle contacts the pulley 450 on the first conveyor belt 1 and the second conveyor belt 2, and the pulley 450 rolls. When the glass bottle travels in the turning area 510, the pulley 450 can make the glass bottle turn more smoothly and fluently.
[0036] Example 4:
[0037] The basic content of Example 1 is different in that:
[0038] See also Figure 1 The turning area 510 in this embodiment includes a transmission channel 5 located at the connection between the first conveyor belt 1 and the second conveyor belt 2 and a portion of the transmission channel 5 extending toward the first conveyor belt 1 and the second conveyor belt 2. Flat bottles 6 are placed along the transmission channel 5 on the first conveyor belt 1 and the third conveyor belt.
[0039] During use, the long side 610 of the flat bottle 6 is placed into the transport channel 5 along the transport direction.
[0040] Although the 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 present invention.
Claims
1. A flat glass bottle right-angle turning mechanism, characterized by: It comprises a first conveyor belt (1), a second conveyor belt (2), a guide plate (3) and a guide unit (4); The first conveyor belt (1) is vertically arranged on the side of the second conveyor belt (2), the guide plate (3) is arranged above the first conveyor belt (1) and the second conveyor belt (2) along the transmission direction of the first conveyor belt (1) and the second conveyor belt (2), the guide unit (4) is arranged above the first conveyor belt (1) and the second conveyor belt (2) corresponding to the guide plate (3), a transmission channel (5) is formed between the guide plate (3) and the guide unit (4), a turning area (510) is formed in the transmission channel (5), the guide unit (4) includes a connecting frame group (410), a pulley (450) is arranged on the connecting frame group (410), and part of the outer peripheral surface of the pulley (450) extends into the turning area (510), the guide plate (3) includes an arc plate (310), and the arc plate (310) is arranged in the turning area (510) corresponding to the connecting frame group (410).
2. A flat glass bottle right-angle turning mechanism according to claim 1, characterized in that: The turning area (510) comprises a transmission channel (5) located at the connection between the first transmission belt (1) and the second transmission belt (2) and a portion of the transmission channel (5) extending in the direction of the first transmission belt (1) and the second transmission belt (2).
3. The flat glass bottle right-angle turning mechanism according to claim 1, characterized in that: A first outer plate (320) is fixed to the side of the circular arc plate (310) facing the first conveyor belt (1), and the first outer plate (320) is located above the first conveyor belt (1). A second outer plate (330) is fixed to the side of the circular arc plate (310) facing the second conveyor belt (2), and the second outer plate (330) is located above the second conveyor belt (2).
4. A flat glass bottle right-angle turning mechanism according to claim 3, characterized in that: The connecting frame group (410) is arranged in an arc shape in the turning area (510), and the connecting frame group (410) includes a first connecting frame (411), a second connecting frame (412) and a third connecting frame (413). The first connecting frame (411) is arranged parallel to the first outer plate (320), the second connecting frame (412) is arranged parallel to the second outer plate (330), and the third connecting frame (413) is fixed between the first connecting frame (411) and the second connecting frame (412) corresponding to the arc plate (310).
5. A flat glass bottle right-angle turning mechanism according to claim 4, characterized in that: The first connecting frame (411) is provided with a first inner plate (420) along the transmission direction of the first conveyor belt (1), and the first inner plate (420) is horizontal with the first outer plate (320); the second connecting frame (412) is provided with a second inner plate (430) along the transmission direction of the second conveyor belt (2), and the second inner plate (430) is horizontal with the second outer plate (330).
6. A flat glass bottle right-angle turning mechanism according to claim 5, characterized in that: The distance between the first outer plate (320) and the first inner plate (420) is equal to the distance between the first outer plate (320) and the pulley (450) corresponding to the first connecting frame (411); the distance between the second outer plate (330) and the second inner plate (430) is equal to the distance between the second outer plate (330) and the pulley (450) corresponding to the second connecting frame (412); the distance between the arc plate (310) and the pulley (450) corresponding to the third connecting frame (413) is greater than the distance between the first outer plate (320) and the pulley (450) corresponding to the first connecting frame (411), and is also greater than the distance between the second outer plate (330) and the pulley (450) corresponding to the second connecting frame (412).
7. The flat glass bottle right-angle turning mechanism according to claim 5, characterized in that: The first connecting frame (411), the second connecting frame (412) and the third connecting frame (413) are all rectangular parallelepipeds with hollow interiors and missing sides facing the transmission channel (5).
8. The flat glass bottle right-angle turning mechanism according to claim 7, characterized in that: The top and bottom surfaces of the first connecting frame (411), the second connecting frame (412) and the third connecting frame (413) are fixed with a plurality of connecting rods (440) through nuts, and the pulleys (450) are rotatably connected to the connecting rods (440).
9. The flat glass bottle right-angle turning mechanism according to claim 8, characterized in that: The plurality of connecting rods (440) are in three groups and are distributed at equal intervals on the first connecting frame (411), the second connecting frame (412) and the third connecting frame (413).
10. The flat glass bottle right-angle turning mechanism according to claim 1, characterized in that: Flat bottles (6) are placed along the transmission channel (5) on the first conveyor belt (1) and the third conveyor belt.