A glass conveying device with positioning and steering components
By introducing a positioning and steering assembly into the glass conveying device, including a steering base, a telescopic positioning rod, and a self-lifting control, the problems of low positioning accuracy and uncoordinated component matching in the prior art are solved, achieving precise positioning and stable steering of the glass, and improving conveying efficiency and safety.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- ZHONGSHAN XUHUI GLASS PROD CO LTD
- Filing Date
- 2025-07-31
- Publication Date
- 2026-05-26
AI Technical Summary
Existing glass conveying devices suffer from low positioning accuracy and uncoordinated component operation during turning, leading to positional deviation, reduced conveying efficiency, and glass damage.
The glass conveying device employs a positioning and steering component, including a steering base, a telescopic positioning rod assembly, and a self-lifting control assembly. It achieves precise positioning and stable steering of the glass through a circular guide rail and a square rotary motor, with the components working in tandem to avoid interference.
It achieves precise positioning and stable steering of the glass, improves conveying efficiency and safety, reduces positional deviation and glass collision damage, and adapts to various processing layouts.
Smart Images

Figure CN224278950U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of glass processing equipment technology, and in particular to a glass conveying device with a positioning and steering component. Background Technology
[0002] In the glass production and processing, the glass conveying process is crucial. Due to the requirements of the processing flow, glass often needs to change direction during conveying to enter different processing steps. Existing glass conveying devices have several shortcomings in their steering structures: on the one hand, the positioning accuracy of the glass is low during steering, and positional deviations are prone to occur, affecting the accuracy of subsequent processing; on the other hand, the coordination between the steering component and the positioning component is not good enough, often resulting in the positioning mechanism interfering with the steering action or positioning failure after steering, leading to reduced conveying efficiency and even glass collision damage.
[0003] Therefore, there is an urgent need for a conveying device that can achieve precise positioning and stable steering of glass in order to improve the reliability of glass conveying and processing efficiency.
[0004] Therefore, the existing glass processing equipment technology field needs further improvement. Utility Model Content
[0005] The purpose of this invention is to provide a glass conveying device with a positioning and steering component, which solves the problems of low positioning accuracy and uncoordinated component cooperation in existing glass conveying devices. This invention enables precise positioning of the glass during the conveying process and automatic unlocking of the glass after steering, thereby improving conveying efficiency and safety.
[0006] To achieve the above objectives, the present invention adopts the following solution:
[0007] A glass conveying device with a positioning and steering component includes a conveying component, a steering base disposed within the conveying component, a steering transmission component disposed within the steering base, a telescopic positioning rod assembly disposed in front of the steering transmission component in the conveying direction, and a self-lifting control component disposed between the telescopic positioning rod assembly and the steering base.
[0008] Furthermore, the conveying assembly includes an input conveyor belt connected to one end of the steering base, and output conveyor belts are provided on both sides of the steering base.
[0009] Furthermore, the input conveyor belt is positioned perpendicular to the output conveyor belt.
[0010] Furthermore, the steering transmission assembly includes an annular guide rail disposed on the steering base, a rotating ring body rotatably disposed within the annular guide rail, a steering platform disposed on the upper surface of the rotating ring body, a transmission roller group disposed on the surface of the steering platform, a square rotary motor disposed on the steering base, and the output end of the square rotary motor being connected to the lower surface of the steering platform.
[0011] Furthermore, the telescopic positioning rod assembly includes two vertical guide holes disposed in front of the conveying roller group in the conveying direction. The vertical guide holes are disposed on the rotating ring body, and a lifting positioning rod is movably disposed in the vertical guide holes.
[0012] Furthermore, the self-lifting control component includes a hollow portion disposed inside the steering base, the inner wall of the hollow portion being provided with an arc-shaped guide groove, a connecting block being disposed between the two lifting positioning rods, and a drive shaft being disposed on the connecting block, the drive shaft being movably inserted into the arc-shaped guide groove.
[0013] In summary, the advantages of this utility model over the prior art are:
[0014] This invention addresses the shortcomings of existing glass processing equipment technology. Through its structural design, it offers the following advantages: precise positioning and stable steering: The telescopic positioning rod assembly precisely positions the glass, ensuring it is in the correct position during steering; the annular guide rail and square rotary motor of the steering conveyor assembly work together to achieve stable glass steering and reduce positional deviation during the steering process; good component coordination: The self-lifting control assembly automatically raises and lowers the positioning rod, linking it with the rotation of the steering conveyor assembly to avoid interference from the positioning rod during steering, while ensuring accurate positioning before and after steering, improving the overall coordination of the device; the lifting positioning rod on the steering conveyor assembly restricts the movement of the glass fed by the input conveyor belt, serving a positioning function; after the steering conveyor assembly rotates the glass, the lifting positioning rod automatically descends, contacting the glass and delivering it to the output conveyor belt; adaptable to various scenarios: The input and output conveyor belts are set perpendicularly, meeting 90-degree steering requirements, and the steering platform can rotate in both directions, suitable for different processing layouts, offering strong versatility; high degree of automation: The mechanical linkage of each component achieves continuous positioning, steering, and conveying actions, reducing manual intervention and improving the efficiency and safety of glass conveying. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the structure of this utility model;
[0016] Figure 2 This is the right view of the present invention;
[0017] Figure 3 This is the front view of the present invention;
[0018] Figure 4 This is a perspective view of the present utility model;
[0019] Figure 5 This is a schematic diagram of the internal structure of this utility model. Detailed Implementation
[0020] 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.
[0021] Please see Figures 1-5 This utility model provides a glass conveying device with a positioning and steering assembly, including a conveying assembly 1, a steering base 2 disposed within the conveying assembly 1, a steering transmission assembly 3 disposed within the steering base 2, a telescopic positioning rod assembly 4 disposed in front of the steering transmission assembly 3 in the conveying direction, and a self-lifting control assembly 5 disposed between the telescopic positioning rod assembly 4 and the steering base 2. The conveying assembly 1 is used for conveying glass. When the glass reaches the steering base 2, the steering transmission assembly 3 turns the glass; the telescopic positioning rod assembly 4 positions and restricts the glass; and the self-lifting control assembly 5 controls the lifting and lowering of the telescopic positioning rod assembly 4, so that the positioning and steering actions are coordinated, and the overall device completes the functions of glass conveying, positioning, and steering.
[0022] The conveying assembly 1 of this invention includes an input conveyor belt 101 connected to one end of the steering base 2, and output conveyor belts 102 arranged on both sides of the steering base 2. In the conveying assembly 1, the input conveyor belt 101 conveys the glass to the steering conveying assembly 3 of the steering base 2, and the glass after steering is conveyed to the next stage through the output conveyor belts 102 on both sides of the steering base 2, realizing the connection between the input and output of the glass.
[0023] The input conveyor belt 101 of this invention is arranged perpendicular to the output conveyor belt 102. The perpendicular arrangement of the input conveyor belt 101 to the output conveyor belt 102 allows the glass to be turned from the input direction to the vertical output direction after being turned by the turning conveyor assembly 3, thus meeting the conveying requirement of a 90-degree turn.
[0024] The steering and conveying assembly 3 of this invention includes an annular guide rail 301 mounted on the steering base 2. A rotating ring 302 is rotatably mounted within the annular guide rail 301. A steering platform 303 is mounted on the upper surface of the rotating ring 302. A conveying roller assembly 304 is mounted on the surface of the steering platform 303. A square rotary motor 305 is mounted on the steering base 2, and the output end of the square rotary motor 305 is connected to the lower surface of the steering platform 303. In the steering and conveying assembly 3, the square rotary motor 305 drives the steering platform 303 and the rotating ring 302 to rotate along the annular guide rail 301. The conveying roller assembly 304 on the steering platform 303 receives the glass and, after steering, transports it to the output conveyor belt 102, thus realizing the steering and conveying of the glass.
[0025] The telescopic positioning rod assembly 4 of this utility model includes two vertical guide holes 401 disposed in front of the conveying roller group 304 in the conveying direction. The vertical guide holes 401 are disposed on the rotating ring 302. A lifting positioning rod 402 is movably disposed within the vertical guide holes 401. The lifting positioning rod 402 is used to restrict the glass conveyed from the input conveyor belt 101, restricting the glass from continuing to move forward, and facilitating subsequent turning. In the telescopic positioning rod assembly 4, the lifting positioning rod 402 moves up and down within the vertical guide holes 401. When the glass is conveyed from the input conveyor belt 101 to the turning platform 303, the lifting positioning rod 402 rises to block the glass from continuing to move forward, positioning the glass and ensuring accurate turning position.
[0026] The self-lifting control assembly 5 of this utility model includes a hollow portion 501 disposed inside the steering base 2. An arc-shaped guide groove 502 is provided on the inner wall of the hollow portion 501. A connecting block 503 is disposed between the two lifting positioning rods 402. A drive shaft 504 is disposed on the connecting block 503 and movably inserts into the arc-shaped guide groove 502. In the self-lifting control assembly 5, when the rotating ring 302 rotates with the steering platform 303, the connecting block 503 drives the drive shaft 504 to slide within the arc-shaped guide groove 502. Utilizing the trajectory change of the arc-shaped guide groove 502, the lifting positioning rods 402 are driven to automatically rise and fall along the vertical guide hole 401, achieving a linkage between positioning and steering actions. After the steering platform 303 completes a 90° turn, the telescopic positioning rod assembly 4 automatically descends. At this time, the glass is conveyed from one side to the output conveyor belt 102.
[0027] The foregoing has shown and described the basic principles and main features of this utility model, as well as its advantages. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.
Claims
1. A glass conveying device with a positioning and steering component, comprising a conveying component (1), characterized in that: A steering base (2) is provided inside the conveying component (1), a steering conveying component (3) is provided inside the steering base (2), a telescopic positioning rod component (4) is provided in front of the conveying direction of the steering conveying component (3), and a self-lifting control component (5) is provided between the telescopic positioning rod component (4) and the steering base (2).
2. The glass conveying device with a positioning and steering component according to claim 1, characterized in that: The conveying component (1) includes an input conveyor belt (101) connected to one end of the steering base (2), and output conveyor belts (102) are provided on both sides of the steering base (2).
3. The glass conveying device with a positioning and steering component according to claim 2, wherein: The input conveyor belt (101) is arranged perpendicular to the output conveyor belt (102).
4. A glass conveying device with a positioning and steering component according to claim 3, characterized in that: The steering conveying component (3) includes an annular guide rail (301) provided on the steering base (2), a rotating ring body (302) is rotatably arranged inside the annular guide rail (301), a steering platform (303) is provided on the upper surface of the rotating ring body (302), a conveying roller group (304) is provided on the surface of the steering platform (303), a forward and reverse rotation motor (305) is provided on the steering base (2), and the output end of the forward and reverse rotation motor (305) is connected to the lower surface of the steering platform (303).
5. The glass conveying device with a positioning and steering component according to claim 4, wherein: The telescopic positioning rod component (4) includes two vertical guide holes (401) provided in front of the conveying direction of the conveying roller group (304), the vertical guide holes (401) are provided on the rotating ring body (302), and lifting positioning rods (402) are arranged to move up and down inside the vertical guide holes (401).
6. The glass conveying device with a positioning and steering component according to claim 5, wherein: The self-lifting control component (5) includes a hollow part (501) provided inside the steering base (2), an arc-shaped guide groove (502) is provided on the inner wall of the hollow part (501), a connecting block (503) is provided between the two lifting positioning rods (402), a driving shaft (504) is provided on the connecting block (503), and the driving shaft (504) is movably inserted into the arc-shaped guide groove (502).