Glass cutting waste recycling equipment

By designing glass cutting waste recycling equipment with crushing and screening components, the problems of inconsistent glass waste particle size and dust and noise pollution during processing have been solved. This has enabled efficient classification and pure recycling of glass particles, improving the equipment's operating efficiency and safety.

CN224156914UActive Publication Date: 2026-04-24RUIJIN RUIFU TEMPERED GLASS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
RUIJIN RUIFU TEMPERED GLASS CO LTD
Filing Date
2025-03-26
Publication Date
2026-04-24

AI Technical Summary

Technical Problem

Waste generated during glass cutting has varying particle sizes and is difficult to reuse. Furthermore, the processing of such waste can easily generate dust and noise pollution, threatening the environment and the health of operators.

Method used

Design a glass cutting waste recycling device, including a crushing component and a screening component. The crushing roller tears the glass waste and screens it into different particle sizes. Combined with a dust collector to capture dust and a shock-absorbing seat to reduce noise, the device ensures the purity of glass particles and the stability of the equipment.

Benefits of technology

It achieves efficient sorting and pure reuse of glass particles, reduces dust and noise pollution, improves equipment operating efficiency and safety, and lowers maintenance costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to waste recycling equipment, and provides the glass cutting waste recycling equipment which comprises a shell, a transmission belt I, a side plate, a shell and the like, side plates are arranged on the front side and the rear side of the upper portion in the shell, a first conveying belt is arranged between the side plates, a shell is fixedly arranged on the upper right portion of the inner side of the shell, a receiving opening is formed in the upper portion of the shell, a discharging opening is formed in the lower portion of the shell, and the receiving opening of the shell is located in the space below the right portion of the first conveying belt. The screening part is connected below the crushing part, glass particles with different particle sizes after crushing are classified, the screening part can separate the glass particles with different particle sizes, the follow-up treatment process is simplified, the whole process is completed in a relatively closed space, dust leakage and noise pollution are effectively reduced, and the production efficiency is improved. External impurities are prevented from being mixed in, and the purity and the quality consistency of the glass particles are ensured.
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Description

Technical Field

[0001] This utility model relates to a waste recycling device, and more particularly to a glass cutting waste recycling device. Background Technology

[0002] In the glass processing industry, a large amount of waste is generated during the cutting process. This waste is usually disposed of as waste, which not only wastes resources but also increases the production costs and environmental burden on enterprises. Traditional glass cutting processes lack effective means of recycling the scraps and debris generated.

[0003] Due to its unique physical and chemical properties, such as high hardness, fragility, and difficulty in separation, glass waste is relatively complex to recycle. Existing glass waste recycling methods on the market often rely on centralized collection followed by crushing, washing, and other processes. The crushed glass particles are of varying sizes and cannot be directly reused. Moreover, the process can easily generate secondary pollution, such as dust and noise, posing a certain threat to the environment and the health of operators. Utility Model Content

[0004] In order to overcome the shortcomings of existing technologies, which result in glass particles of varying sizes after centralized collection and crushing of glass waste, making direct reuse impossible and easily generating secondary pollution such as dust and noise during processing, posing a certain threat to the environment and the health of operators, the technical problem of this utility model is to provide a glass cutting waste recycling device that separates glass particles of different sizes after crushing, reducing noise and dust.

[0005] A glass cutting waste recycling device includes a shell, a first conveyor belt, side plates, an outer shell, crushing rollers, gears, a motor, a material frame, a screen, a vibration module, a discharge pipe, a discharge hopper, and a second conveyor belt. Side plates are located on both the front and rear sides of the upper part of the shell, with the first conveyor belt positioned between the side plates. The outer shell is fixedly located on the upper right side of the shell, with a receiving opening at the top and a discharge opening at the bottom. The receiving opening is located in the space below the right side of the first conveyor belt. Three crushing rollers are rotatably mounted on the upper part of the outer shell, with their rear ends extending backward through the outer shell. Each crushing roller has teeth on its rear end. The crushing roller has two adjacent gears meshing with each other. A motor is connected to one of the crushing rollers, which drives the crushing roller to rotate. A material frame is provided on the lower right side of the inner side of the shell. A vibration module is provided on one side of the material frame. The lower part of the shell extends into the upper inner space of the material frame. Two screens are arranged at intervals from top to bottom inside the material frame. Two discharge notches are provided on the side of the material frame away from the vibration module. The positions of the two discharge notches correspond one-to-one with the positions of the screens. A discharge pipe is provided at one of the discharge notches, and a discharge hopper is provided at the other notch. A discharge notch is provided at the lower part of the material frame. A conveyor belt is provided in the lower part of the shell.

[0006] To further explain, it also includes a hopper. The hopper is located on the right side of the side plate. The hopper forms a feeding channel between the side plate and the right side of the conveyor belt. The lower part of the hopper is connected to the upper part of the outer shell. The material passing through the hopper will fall downward into the outer shell.

[0007] To further explain, it also includes a vibrator, which is installed on one side of the hopper.

[0008] To further explain, it also includes a base and shock-absorbing springs. Several shock-absorbing springs are provided at the bottom of the housing, and the other end of the shock-absorbing springs is connected to the base.

[0009] To further explain, it also includes a dust collector, which is located between the upper right sides of the side plate and is situated in the space above the hopper.

[0010] The beneficial effects of this utility model are as follows:

[0011] This invention classifies glass particles of different sizes after crushing by connecting a screening component below the crushing component. The screening component can separate glass particles of different sizes, simplifying the subsequent processing procedures. Moreover, the entire process is completed in a relatively enclosed space, which effectively reduces dust leakage and noise pollution, and also prevents external impurities from mixing in, ensuring the purity and quality consistency of the glass particles.

[0012] This invention features a dust collector on the crushing component, which effectively captures and filters dust and fine particles generated during the crushing process. It efficiently collects and processes dust, preventing it from spreading into the air, while reducing dust accumulation inside the equipment. This also reduces the frequency of equipment maintenance and cleaning costs, further improving the operating efficiency and service life of the equipment.

[0013] This invention effectively absorbs and mitigates vibrations and impacts generated during equipment operation by installing a vibration damping seat at the bottom of the equipment. This design significantly reduces vibration transmission from the equipment to the installation foundation, reduces noise pollution, and improves the stability and reliability of equipment operation. Attached Figure Description

[0014] Figure 1 This is a three-dimensional structural diagram of the present invention.

[0015] Figure 2 This is a three-dimensional structural diagram of the present invention with the shell concealed.

[0016] Figure 3 This is a three-dimensional structural diagram of the conveyor belt, side plate, and outer shell of this utility model.

[0017] Figure 4 This is a three-dimensional structural diagram of the crushing component and the feeding hopper of this utility model.

[0018] Figure 5 This is a three-dimensional structural diagram of the screening component of this utility model.

[0019] The markings in the attached diagram are as follows: 1: shell, 2: conveyor belt one, 21: side plate, 3: outer shell, 4: crushing roller, 5: gear, 51: motor, 6: hopper, 61: vibrator, 7: material frame, 71: screen, 711: vibration module, 72: discharge pipe, 73: discharge hopper, 8: conveyor belt two, 9: base, 91: shock absorption spring, 10: dust collector. Detailed Implementation

[0020] The present invention will be further described below with reference to specific embodiments. The illustrative embodiments and descriptions of the present invention are used to explain the present invention, but are not intended to limit the present invention.

[0021] Example 1

[0022] A glass cutting waste recycling device, such as Figure 1-5 As shown, it includes a housing 1, a first conveyor belt 2, a side plate 21, an outer shell 3, a crushing roller 4, a gear 5, a motor 51, a material frame 7, a screen 71, a vibration module 711, a discharge pipe 72, a discharge hopper 73, and a second conveyor belt 8;

[0023] The upper front and rear sides of the housing 1 are provided with side plates 21, and a conveyor belt 2 is provided between the side plates 21. The conveyor belt 2 is used to transport glass cutting waste from left to right to the designated position, ensuring that the waste is evenly distributed when entering the subsequent processing process, reducing accumulation and improving processing efficiency.

[0024] An outer shell 3 is fixedly installed on the upper right side of the inner side of the housing 1. The upper part of the outer shell 3 has a material receiving opening, and the lower part has a discharge port. The material receiving opening of the outer shell 3 is located in the space below the right side of the conveyor belt 2. Three crushing rollers 4 are rotatably installed in the upper part of the outer shell 3. The rear ends of each crushing roller 4 extend backward from inside the outer shell 3. Each crushing roller 4 has a gear 5 at its rear end, with adjacent gears 5 meshing with each other. A motor 51 is connected to one of the crushing rollers 4, driving the crushing roller 4 to rotate. Under the transmission of the gears 5, the middle crushing roller 4 rotates synchronously in opposite directions with the two adjacent crushing rollers 4, forming an interlaced shearing effect. This design allows the glass waste to be fully torn and pulverized during the crushing process, ensuring uniform particle size and improving crushing efficiency and quality.

[0025] A material frame 7 is located on the lower right side of the inner side of the housing 1. A vibration module 711 is located on one side of the material frame 7. The lower part of the outer shell 3 extends into the upper inner space of the material frame 7. The vibration module 711 can generate high-frequency vibration to keep the material in the material frame 7 loose, avoid blockage, and help the material to be evenly distributed. Two screens 71 are arranged at intervals from top to bottom inside the material frame 7. The screens 71 are designed to perform layered screening according to different particle size requirements. There are two discharge notches on the side of the material frame 7 away from the vibration module 711. The positions of the two discharge notches correspond one-to-one with the positions of the screens 71. One discharge notch is equipped with a discharge pipe 72 for discharging larger glass particles; the other notch is equipped with a discharge hopper 73 for discharging smaller glass particles. This layered screening design not only improves the accuracy of material classification but also simplifies the subsequent processing and reduces production costs.

[0026] The lower part of the material frame 7 is provided with a discharge notch, which facilitates the direct discharge of smaller particles that have passed through the screen 71, preventing them from re-entering the crushing system and avoiding unnecessary wear and energy consumption. The lower part of the shell 1 is provided with a second conveyor belt 8, which is used to further transport the qualified glass particles after screening to the subsequent processing or storage area, ensuring that the entire process flow is smooth and unobstructed.

[0027] First, glass cutting waste is evenly transported from left to right to the right side of the housing 1 via conveyor belt 2, and enters the crushing system through the material receiving opening of the housing 3. Driven by motor 51, three crushing rollers 4 rotate synchronously in opposite directions through the meshing of gears 5, efficiently tearing and crushing the waste to ensure uniform particle size. The crushed material falls into the material frame 7 below the housing 3. The vibration module 711 inside the material frame 7 generates high-frequency vibration, keeping the material loose and evenly distributed. The material is then screened in layers through two screens 71. Larger glass particles are discharged through the discharge pipe 72, and these glass particles will be crushed again. Smaller particles are discharged through the discharge hopper 73. These glass particles have a suitable particle size and can be directly used for subsequent recycling. The fine particles passing through the lower screen 71 are discharged directly from the discharge opening. These smaller glass particles are transported to the subsequent processing or storage area via conveyor belt 8. All these operations are completed inside the housing 1. The housing 1 separates the material from the outside environment, effectively reducing dust leakage and noise pollution, and preventing the mixing of external impurities.

[0028] Example 2

[0029] Based on Example 1, such as Figure 2-4As shown, it also includes a hopper 6. The hopper 6 is located on the right side of the side plate 21, forming a feeding channel between the side plate 21 and the right side of the conveyor belt 2, ensuring that the material can be smoothly transferred from the conveyor belt 2 to the outer shell 3 for crushing. The lower part of the hopper 6 is connected to the upper part of the outer shell 3, so that the material falls directly into the interior of the outer shell 3 when passing through the hopper 6. This design avoids material accumulation or blockage, improving feeding efficiency and stability.

[0030] like Figure 2 and Figure 4 As shown, the system also includes a vibrator 61. The vibrator 61 is located on one side of the hopper 6. By generating periodic vibrations, the vibrator 61 keeps the material in the hopper 6 in a loose state, preventing the material from clumping or getting stuck during transport, and ensuring that the material enters the crushing system uniformly and continuously. Furthermore, the vibration of the vibrator 61 reduces friction between the material and the inner wall of the hopper 6, extending the service life of the equipment.

[0031] like Figure 1 As shown, the device also includes a base 9 and damping springs 91. Several damping springs 91 are provided at the lower part of the housing 1, with the base 9 connecting to the other end of each damping spring 91. These damping springs 91 effectively absorb and mitigate vibrations and impacts generated during equipment operation, significantly reducing vibration transmission to the installation foundation, reducing noise pollution, and improving the stability and reliability of equipment operation. The base 9 not only provides stable support for the entire device but also further disperses vibration energy, ensuring long-term stable operation of the equipment.

[0032] In addition, such as Figure 2 As shown, it also includes a dust collector 10, which is located between the upper right sides of the side plate 21. The dust collector 10 is located in the space above the hopper 6. The dust collector 10 can efficiently capture and filter dust and fine particles generated during the material transmission and crushing process, preventing them from spreading into the air, thereby ensuring that the entire production process meets environmental protection standards. At the same time, the application of the dust collector 10 also improves the working environment and protects the health and safety of operators. In addition, reducing dust accumulation can also reduce the maintenance frequency and cleaning costs of the equipment, further improving the operating efficiency and service life of the equipment.

[0033] It should be understood that the above description is for illustrative purposes only and is not intended to limit the present invention. Those skilled in the art will understand that variations of the present invention will be included within the scope of the claims herein.

Claims

1. A glass cutting waste recycling device, comprising a housing (1); Its characteristics are: It also includes a first conveyor belt (2), side plates (21), outer shell (3), crushing roller (4), gear (5), motor (51), material frame (7), screen (71), vibration module (711), discharge pipe (72), discharge hopper (73) and second conveyor belt (8). Side plates (21) are provided on both the front and rear sides of the upper part of the inner shell (1). The first conveyor belt (2) is provided between the side plates (21). The outer shell (3) is fixedly provided on the upper right side of the inner shell (1). The upper part of the outer shell (3) is provided with a... The outer casing (3) has a receiving opening and a discharge port at the bottom. The receiving opening of the outer casing (3) is located in the space below the right side of the conveyor belt (2). Three crushing rollers (4) are rotatably installed in the upper part of the outer casing (3). The rear ends of the crushing rollers (4) extend out of the outer casing (3) and each crushing roller (4) is equipped with a gear (5) at the rear. Two adjacent gears (5) mesh with each other. A motor (51) is connected to one of the crushing rollers (4) and drives the crushing roller (4) to rotate through the motor (51). A material frame (7) is provided on the lower right side of the inner side of the shell (1). A vibration module (711) is provided on one side of the material frame (7). The lower part of the outer shell (3) extends into the upper inner space of the material frame (7). Two screens (71) are arranged at intervals from top to bottom inside the material frame (7). Two discharge gaps are provided on the side of the material frame (7) away from the vibration module (711). The positions of the two discharge gaps correspond one-to-one with the positions of one screen (71). A discharge pipe (72) is provided at one of the discharge gaps, and a discharge hopper (73) is provided at the other gap. A discharge gap is provided at the lower part of the material frame (7). A second conveyor belt (8) is provided in the lower part of the shell (1).

2. The glass cutting waste recycling equipment according to claim 1, characterized in that: It also includes a hopper (6). The right side of the side plate (21) is provided with a hopper (6). A feeding channel is formed between the side plate (21) and the right side of the conveyor belt (2) through the hopper (6). The lower part of the hopper (6) is connected to the upper part of the outer shell (3). The material passing through the hopper (6) will fall into the outer shell (3).

3. The glass cutting waste recycling equipment according to claim 2, characterized in that: It also includes an oscillator (61), which is provided on one side of the hopper (6).

4. The glass cutting waste recycling equipment according to claim 3, characterized in that: It also includes a base (9) and shock-absorbing springs (91). Several shock-absorbing springs (91) are provided at the lower part of the housing (1), and the other end of the shock-absorbing springs (91) is connected to the base (9).

5. A glass cutting waste recycling device according to claim 4, characterized in that: It also includes a dust collector (10), which is located between the upper right side of the side plate (21) and is situated in the space above the hopper (6).