Automatic reversing conveying device for glass products
By using the main reversing gear to drive the outer peripheral transmission chain to drive the deflector plate and L-shaped partition plate, the problem of decreased stability and discontinuous steering caused by wear in traditional reversing devices is solved, realizing smooth reversing and precise conveying of glass products and reducing the risk of damage.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-31
- Publication Date
- 2026-03-03
AI Technical Summary
Traditional reversing devices suffer from decreased stability due to long-term use and wear, affecting the conveying accuracy of glass products. Furthermore, the inconsistent turning can easily lead to collisions or misalignment damage to glass products.
The main reversing gear drives the outer peripheral transmission chain to drive the shift plate and L-shaped partition along the outer contour of the reversing shell. The L-shaped partition uses a concave transition surface to separate the glass products from the X-axis direction and push them to the Y-axis direction. The combination of mechanical structure and control system ensures a smooth transition.
It improves the stability and precision of the glass product reversing process, avoids violent impacts or deviations of glass products during the reversing process, and reduces the risk of damage.
Smart Images

Figure CN223962879U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of glassware production equipment, and in particular to an automatic reversing conveyor for glass products. Background Technology
[0002] Reversing devices for glass products play a crucial role in modern glass production, particularly in automated production lines and high-efficiency processing. With the continuous development of glass manufacturing processes, especially in high-speed production environments, glass products need to frequently change direction to adapt to different processing, inspection, packaging, or storage requirements. Reversing devices precisely control the orientation and position of glass products, ensuring their smooth flow within the production line while effectively reducing damage caused by misalignment or collisions. Through intelligent control systems, these devices not only improve production efficiency but also reduce manual intervention, lower production costs, and ensure product consistency and quality. Especially in complex processing flows, the application of reversing devices optimizes production layout and enhances the overall automation level and reliability of the production line.
[0003] However, existing equipment often encounters the following problems during use:
[0004] Traditional reversing mechanisms suffer from decreased stability due to prolonged use and wear, which in turn affects the conveying accuracy of glass products. Furthermore, the steering of traditional reversing mechanisms is rather abrupt, resulting in an inconsistent and unnatural steering transmission. Since glass products are highly fragile, traditional reversing mechanisms can cause the glass to collide or become misaligned during the steering process, leading to damage. Utility Model Content
[0005] The main objective of this invention is to provide an automatic reversing conveying device for glass products, effectively solving the problem mentioned in the background art where existing traditional reversing devices suffer from decreased stability due to long-term use and wear, thus affecting the conveying accuracy of glass products. This invention is designed to use a main reversing gear to drive an outer peripheral transmission chain, which in turn drives a deflector plate and an L-shaped partition plate along the outer contour of the reversing housing. The L-shaped partition plate, through a concave transition surface, separates the glass products input in the X-axis direction and pushes them to the output port in the Y-axis direction.
[0006] To achieve the above objectives, the technical solution adopted by this utility model is as follows:
[0007] An automatic reversing conveyor for glass products includes:
[0008] The reversing housing has an X-axis input port and a Y-axis output port at its two ends. The reversing housing includes a main housing, a right-angle rotating shaft section, and a concave transition surface. The right-angle rotating shaft section is located on the outside of the reversing housing, while the concave transition surface is located on the inside of the main housing.
[0009] A reversing motor, which is fixedly installed at the bottom end of the reversing housing;
[0010] A rotating shaft, one end of which is connected to the output end of the reversing motor, and the other end of which extends into the inside of the turning end of the reversing housing;
[0011] The main reversing gear is fixedly sleeved on the shaft body of the rotating shaft;
[0012] The outer peripheral drive chain is provided in multiple sets, which are arranged longitudinally and surround the outer contour of the reversing housing. One set of the outer peripheral drive chain meshes with the main reversing gear.
[0013] Multiple sets of levers are evenly and equidistantly installed on the pins, and the multiple sets of levers are synchronously driven with the outer peripheral transmission chain.
[0014] Also includes:
[0015] Pins, through which multiple sets of the outer peripheral drive chains are interconnected;
[0016] An outer contour shell is fitted around the outer periphery of the commutator shell, and a gap is left between the outer contour and the commutator shell. One end of the multiple sets of levers is inserted into the gap between the outer contour and the commutator shell.
[0017] The L-shaped partitions are arranged in a one-to-one correspondence with the number of the levers. One end of each L-shaped partition is fixedly connected to the lever. When the reversing motor is started, the main reversing gear drives the outer peripheral transmission chain to drive the lever and the L-shaped partitions along the outer contour of the reversing shell. The L-shaped partitions separate the glass products input in the X-axis direction and push them to the output port in the Y-axis direction through the concave transition surface.
[0018] Also includes:
[0019] Two driven rotating shafts are provided, and the two driven rotating shafts are movably inserted through the X-axis and Y-axis output ports at both ends of the reversing housing;
[0020] A transmission gear, which corresponds to the driven shaft, is sleeved on the shaft body of the driven shaft and meshes with the outer peripheral transmission chain.
[0021] The outer peripheral transmission chain forms a closed transmission path through the transmission gears set at both ends of the reversing housing.
[0022] The pins are fixed between the links of the outer peripheral drive chain at equal intervals.
[0023] The concave transition surface of the reversing shell is an arc-shaped curved surface, and its radius of curvature is adapted to the transmission trajectory of the L-shaped partition.
[0024] The transmission gear passes through the outer contour shell, and the outer peripheral transmission chain is sleeved on the outer contour shell.
[0025] Compared with the prior art, the beneficial effects of this utility model are as follows: This utility model is designed to drive the outer peripheral transmission chain via the main reversing gear, which in turn drives the shift plate and L-shaped partition along the outer contour of the reversing housing. The L-shaped partition, through its concave transition surface, separates the glass products input in the X-axis direction and pushes them to the output port in the Y-axis direction. Through the mechanical structure and control system (such as the L-shaped partition and shift plate), it is ensured that the glass products are blocked by the partition during the reversing process, while the arc-shaped concave transition surface ensures a smooth transition, avoiding any violent impact or displacement and reducing the risk of damage. Attached Figure Description
[0026] The accompanying drawings are provided to further understand the present invention and form part of the specification. They are used together with the specific embodiments of the present invention to explain the present invention, but do not constitute a limitation thereof.
[0027] Figure 1 This is a schematic diagram of the overall shape of the present utility model.
[0028] Figure 2 This is a top view of the present invention.
[0029] Figure 3 This is a schematic diagram of the back of the present invention.
[0030] The following are the labels in the diagram: 1. Reversing housing; 101. Main housing; 102. Right-angle shaft section; 103. Concave transition surface; 2. Reversing motor; 3. Shaft rod; 4. Main reversing gear; 5. Outer peripheral transmission chain; 6. Multiple sets of levers; 7. Pin; 8. Outer contour housing; 9. L-shaped partition; 10. Driven shaft rod; 11. Transmission gear. Detailed Implementation
[0031] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0032] In the description of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "set," "connected," and "linked" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art will understand the specific meaning of the above terms in this utility model according to the specific circumstances.
[0033] like Figure 1-3 As shown, this utility model provides an automatic reversing conveying device for glass products, which includes: a reversing shell 1, a main shell 101, a right-angle rotating shaft section 102, a concave transition surface 103, a reversing motor 2, a rotating shaft rod 3, a main reversing gear 4, an outer peripheral transmission chain 5, and multiple sets of levers 6.
[0034] The reversing housing 1 has an X-axis input port and a Y-axis output port at both ends. The reversing housing 1 includes a main housing 101, a right-angle rotating shaft section 102, and a concave transition surface 103. The right-angle rotating shaft section 102 is located on the outer side of the reversing housing 1, while the concave transition surface 103 is located on the inner side of the main housing 101. The concave transition surface 103 of the reversing housing 1 is an arc-shaped curved surface, and its radius of curvature is adapted to the transmission trajectory of the L-shaped partition 9. The design of the right-angle rotating shaft section 102 and the concave transition surface 103 takes into account the precise control and guidance of the glass products, ensuring that the glass products do not misalign or impact when changing direction. The curvature of the arc-shaped transition surface is adapted to the transmission trajectory of the L-shaped partition 9, allowing the glass products to smoothly transition from one direction to another. The reversing housing 1 is the core component of the device, bearing and guiding all mechanical transmission structures. Its exterior has a specific contour, and its interior has a concave transition surface 103, which is an arc-shaped surface with a radius of curvature that matches the transmission trajectory of the L-shaped partition 9. This design is to ensure that the glass products can be smoothly separated and accurately transported from the X-axis direction to the Y-axis direction during the reversal process.
[0035] In this invention, the reversing motor 2 is fixedly installed at the bottom end of the reversing housing 1. One end of the rotating shaft 3 is connected to the output end of the reversing motor 2, and the other end of the rotating shaft 3 extends into the inside of the turning end of the reversing housing 1. The main reversing gear 4 is fixedly sleeved on the shaft 3. The reversing motor 2 provides power, and the rotating shaft 3 transmits this power to the main reversing gear 4. In terms of design, one end of the rotating shaft 3 is connected to the output end of the reversing motor 2, and the other end extends into the inside of the turning end of the reversing housing 1, thus effectively driving the movement of the outer peripheral transmission chain 5. The rotational power is transmitted through the main reversing gear 4 to drive the outer peripheral transmission chain 5, thereby driving the deflector and L-shaped partition 9 to transport glass products.
[0036] In this invention, multiple sets of peripheral transmission chains 5 are arranged longitudinally around the outer contour of the reversing housing 1. One set of peripheral transmission chains 5 meshes with the main reversing gear 4. The peripheral transmission chains 5 form a closed transmission path through the transmission gears 11 at both ends of the reversing housing 1. Multiple sets of levers 6 are evenly and equidistantly installed on the pins 7, and the levers 6 are synchronously driven with the peripheral transmission chains 5. The peripheral transmission chains 5 are designed to connect the various transmission components, ensuring that power is transmitted from the reversing motor 2 to the levers, ultimately driving the glass product to change direction. The longitudinal arrangement of multiple sets of peripheral transmission chains 5 around the outer contour of the reversing housing 1 ensures a smooth and stable transmission process, enabling the entire reversing system to work in a coordinated manner.
[0037] In this invention, multiple sets of peripheral transmission chains 5 are interconnected by pins 7. The pins 7 are fixed between the links of the peripheral transmission chains 5 at equal intervals, connecting different sets of peripheral transmission chains 5 together to ensure coordinated movement of the entire transmission system. Through this design, the movement of the peripheral transmission chains 5 can drive multiple sets of levers 6 to move synchronously, thereby achieving smooth transmission. Pins 7 are fixed between the links of the outer peripheral transmission chain 5 at equal intervals. The outer contour shell 8 is sleeved on the outer periphery of the reversing shell 1, and there is a gap between the outer contour and the reversing shell 1. One end of multiple sets of levers 6 is inserted into the gap between the outer contour and the reversing shell 1. The number of L-shaped partitions 9 corresponds one-to-one with the number of levers. One end of each L-shaped partition 9 is fixedly connected to the lever. When the reversing motor 2 starts, the main reversing gear 4 drives the outer peripheral transmission chain 5 to drive the levers and L-shaped partitions 9 along the outer contour of the reversing shell 1. The L-shaped partitions 9 separate the glass products input in the X-axis direction and push them to the output port in the Y-axis direction through the concave transition surface 103.
[0038] In this invention, the function of the turntable and the L-shaped partition 9 is to separate the conveyed glass products and push them to a new direction. The turntable is mounted on the outer peripheral drive chain 5 and moves synchronously with the chain, while the L-shaped partition 9 corresponds one-to-one with the turntable and is fixed on the turntable. In this way, when the turntable runs along the outer peripheral drive chain 5, the L-shaped partition 9 will be driven together, pushing the glass products to the target direction along a predetermined trajectory through the concave transition surface 103 of the reversing shell 1, ensuring that the glass products pass smoothly through the corner and are safely conveyed.
[0039] In this invention, two driven shafts 10 are provided, which movably pass through the X-axis and Y-axis output ports at both ends of the reversing housing 1. A transmission gear 11 corresponds to each driven shaft 10, is sleeved on the shaft body of the driven shaft 10, and meshes with the outer peripheral transmission chain 5. The transmission gear 11 passes through the outer contour housing 8, and the outer peripheral transmission chain 5 is sleeved on the outer contour housing 8. The arrangement of the driven shafts 10 and the engagement of the transmission gears 11 ensure the stable operation of the outer peripheral transmission chain 5. The engagement of the transmission gears 11 and the driven shafts 10, as well as the design of the driven shafts 10 passing through both ends of the reversing housing 1, allows the gears at both ends to work synchronously, thereby ensuring the stability and transmission accuracy of the entire system.
[0040] It should be noted that, in the case of the automatic reversing conveyor for glass products designed in this utility model, when the glass products being conveyed in the X-axis direction need to be reversed and conveyed to the Y-axis direction conveyor, the reversing motor 2 is started. The output end of the reversing motor 2 rotates, driving the rotating shaft 3 at the output end. The rotating shaft 3 rotates, driving the main reversing gear 4 on the shaft body. The reversing gear rotates and passes through a set of peripheral transmission chains 5 meshing with it. The set of peripheral transmission chains 5 drives other peripheral transmission chains 5 together around the outer contour of the reversing shell 1 through multiple sets of pins 7 on the chain body. During the transmission process, the transmission gears 11 at the other two ends of the reversing shell 1 are also driven to rotate due to the rotation of the peripheral transmission chains 5, thereby ensuring the stable transmission of the peripheral transmission chains 5. The peripheral drive chain 5 drives multiple sets of levers 6 mounted on the pin 7. The levers drive around the outer contour of the reversing shell 1, and the L-shaped partitions 9 connected to the levers are driven together. When the glass products are transported to the concave transition surface 103 of the reversing shell 1, the L-shaped partitions 9 driven in the direction of the transition surface will separate and push the transported glass products one by one, and change direction from one end of the reversing shell 1 to the other end of the reversing shell 1 in the vertical direction along the direction of the transition surface to complete the reversal.
[0041] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations may be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. An automatic reversing conveying device for glass products, characterized in that, include: The reversing housing (1) has an X-axis input port and a Y-axis output port at its two ends. The reversing housing (1) includes a main housing (101), a right-angle rotating shaft section (102), and a concave transition surface (103). The right-angle rotating shaft section (102) is located on the outside of the reversing housing (1), while the concave transition surface (103) is located on the inside of the main housing (101). A reversing motor (2) is fixedly installed at the bottom end of the reversing housing (1); A rotating shaft (3) has one end connected to the output end of the reversing motor (2) and the other end extending into the inside of the turning end of the reversing housing (1). Main reversing gear (4), the main reversing gear (4) is fixedly sleeved on the shaft body of the rotating shaft (3); The peripheral transmission chain (5) is provided in multiple sets, and the multiple sets of peripheral transmission chains (5) are arranged longitudinally. The peripheral transmission chains (5) are arranged around the outer contour of the reversing shell (1), and one set of peripheral transmission chains (5) meshes with the main reversing gear (4). Multiple sets of levers (6) are evenly and equidistantly installed on the pins (7), and the multiple sets of levers (6) are synchronously driven with the outer peripheral transmission chain (5).
2. The automatic reversing conveyor for glass products according to claim 1, characterized in that, Also includes: Pins (7) are used to connect multiple sets of peripheral transmission chains (5) to each other. Outer contour shell (8), the outer contour shell (8) is sleeved on the outer periphery of the reversing shell (1), and the outer contour and the reversing shell (1) are spaced apart, and one end of the multiple sets of levers (6) is inserted into the space between the outer contour and the reversing shell (1); L-shaped partitions (9), the number of L-shaped partitions (9) corresponds one-to-one with the number of the dial plates. One end of each L-shaped partition (9) is fixedly connected to the dial plate. When the reversing motor (2) is started, the main reversing gear (4) drives the outer peripheral transmission chain (5) to drive the dial plate and the L-shaped partitions (9) along the outer contour of the reversing shell (1). The L-shaped partitions (9) separate the glass products input in the X-axis direction and push them to the Y-axis output port through the concave transition surface (103).
3. The automatic reversing conveyor for glass products according to claim 1, characterized in that, Also includes: Driven rotating shaft (10), two driven rotating shafts (10) are provided, and the two driven rotating shafts (10) are movably inserted through the X-axis and Y-axis output ports at both ends of the reversing housing (1); The transmission gear (11) corresponds to the driven shaft (10), the transmission gear (11) is sleeved on the shaft of the driven shaft (10) and the transmission gear (11) meshes with the outer peripheral transmission chain (5).
4. The automatic reversing conveyor for glass products according to claim 1, characterized in that, The outer peripheral transmission chain (5) forms a closed transmission path through the transmission gears (11) set at both ends of the reversing housing (1).
5. An automatic reversing conveying device for glass products according to claim 1 or 2, characterized in that, The pins (7) are fixed between the links of the outer peripheral transmission chain (5) at equal intervals.
6. The automatic reversing conveyor for glass products according to claim 1, characterized in that, The concave transition surface (103) of the reversing shell (1) is an arc-shaped curved surface, and its radius of curvature is adapted to the transmission trajectory of the L-shaped partition (9).
7. The automatic reversing conveyor for glass products according to claim 3, characterized in that, The transmission gear (11) passes through the outer contour shell (8), and the outer peripheral transmission chain (5) is sleeved on the outer contour shell (8).