Material screening machine of glass crusher
The glass crushing machine employs a heating mechanism and high-speed rotation to separate glass fragments from adhesive residue, ensuring clean glass fragments for subsequent processing by melting the adhesive and utilizing centrifugal force.
Patent Information
- Application Number
- CN202421670300.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-21
- Publication Date
- 2025-07-15
- Estimated Expiration
- 2035-04-21
AI Technical Summary
During the recycling process of existing glass crushers, the glass adhesive adheres to the fragments, affecting subsequent processing.
A glass crusher material screener is designed, including a heating drum and a screening mechanism, which molten glass glue by heating the electric heating plate in the drum, and separates the glass glue from the fragments by using the high-speed rotation of the screw push material plate and the screening drum.
Effectively melt and separate glass glue from glass fragments to ensure the cleanliness of the fragments and facilitate subsequent processing.
Smart Images

Figure CN223097603U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of glass recycling, and particularly relates to a material screening machine for a glass crusher. Background Art
[0002] Glass is a transparent, airtight and non-crystalline inorganic non-metallic material with a certain hardness. It is mainly composed of silica and other oxides, and is formed by rapid cooling after high-temperature melting, with the characteristics of an amorphous body. Glass has good perspective and light transmission properties, enabling light to penetrate and propagate. It is widely used in fields such as construction, automobiles, electronics, and optical instruments. In the construction industry, glass is the main material for manufacturing windows, curtain walls, etc.; in the automotive industry, glass is used to manufacture components such as car windows and windshields; in the electronics industry, glass is used to manufacture display devices such as TV screens and computer screens.
[0003] A glass crusher is used to break the recycled glass equipment for subsequent processes. However, the glass used to manufacture windows, curtain walls, and screens is generally fixed with glass glue. After breaking these glasses, the glass glue will still adhere to the glass fragments, affecting subsequent processing. Therefore, a material screening machine for a glass crusher is proposed. Content of the Utility Model
[0004] The main purpose of the utility model is to provide a material screening machine for a glass crusher, which can effectively solve the problems mentioned in the background art.
[0005] To achieve the above purpose, the technical solution adopted by the utility model is as follows:
[0006] A material screening machine for a glass crusher includes an equipment housing. An upper feeding hopper is fixedly installed at the upper end of the equipment housing. An outlet is opened on one side of the equipment housing, and an outlet chute is arranged in the outlet. Support feet are fixedly installed at the bottom of the equipment housing. A heating mechanism is arranged inside the equipment housing. The heating mechanism includes a heating barrel fixed inside the equipment housing. A feeding notch is opened at the upper end of the heating barrel. An electric heating plate is fixedly installed at the bottom of the heating barrel. A spiral pushing plate is arranged inside the heating barrel. One end of the heating barrel is connected to a screening mechanism. The screening mechanism includes a driving shaft movably installed inside the equipment housing. One end of the driving shaft is connected to a driving motor. A cage is fixedly installed on the driving shaft. A positioning ring is fixedly installed on the cage. A screening cylinder is installed between the positioning rings, and the screening cylinder drives the glass fragments to rotate at a high speed.
[0007] Furthermore, the heating mechanism further includes an air inlet hole and a movable notch opened at one end of the heating barrel, and a positioning groove is opened at the bottom of the heating barrel.
[0008] Furthermore, an installation rack is provided inside the equipment housing, and the heating drum is fixed inside the equipment housing through the installation rack. The electric heating plate can heat the heating drum.
[0009] Furthermore, the electric heating plate is installed on the heating drum through a positioning groove. A connection port is provided on the spiral feeding plate. The spiral feeding plate is connected to the drive shaft through the connection port. The drive shaft passes through the heating drum through a movable notch. The feeding notch on the heating drum is aligned vertically with the feeding hopper.
[0010] Furthermore, the screening mechanism further includes a barrier jacket fixed to the outside of the screening cylinder. A waste opening is provided at the bottom of the barrier jacket. One end of the screening cylinder is provided with a connecting rotating ring. One end of the screening cylinder is movably installed on the heating drum through the connecting rotating ring. The heating drum is communicated with the screening cylinder.
[0011] Furthermore, bearings are provided at the edges of both ends of the drive shaft. The drive shaft is movably installed inside the equipment housing through the bearings. The drive shaft can drive the screening cylinder and the spiral feeding plate to rotate.
[0012] Furthermore, the positioning ring is fixed to the drive shaft through a cage. The screening cylinder is installed on the drive shaft through the positioning ring. The screening cylinder is movably installed inside the equipment housing through the drive shaft. A support column is provided at the bottom of the barrier jacket. The barrier jacket is fixedly installed inside the equipment housing through the support column. The barrier jacket can prevent the molten glass glue from splashing everywhere.
[0013] Compared with the prior art, the present utility model has the following beneficial effects:
[0014] 1. The broken glass can be conveyed into the heating drum through the feeding hopper. After the broken glass is conveyed into the heating drum, the power supply of the electric heating plate can be turned on to melt the glass glue on the broken glass. After the glass glue is melted, the spiral feeding plate can be driven to rotate by the drive shaft. After the spiral feeding plate rotates, the broken glass will be conveyed into the screening cylinder for screening.
[0015] 2. After the broken glass is conveyed into the screening cylinder, the screening cylinder can be driven to rotate at a high speed by the drive shaft. When the screening cylinder rotates at a high speed, it will drive the broken glass to rotate closely against the inner wall of the screening cylinder. Under the action of centrifugal force, the molten glass glue will be discharged through the small holes on the screening cylinder, realizing the separation of the glass glue from the broken glass fragments, and screening out clean broken glass fragments, which is convenient for subsequent processing. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 is a schematic diagram of the overall structure of the present utility model;
[0017] Figure 2 is a schematic diagram of the partial structure of the present utility model;
[0018] Figure 3 Schematic diagram of the heating mechanism of the present utility model;
[0019] Figure 4 Schematic diagram of the screening mechanism of the present utility model.
[0020] In the figure: 1, equipment housing; 2, feeding hopper; 3, discharge port; 4, discharge chute; 5, support feet; 6, heating mechanism; 601, heating barrel; 602, feeding notch; 603, air inlet hole; 604, movable notch; 605, spiral pushing plate; 606, positioning groove; 607, electric heating plate; 7, screening mechanism; 701, driving motor; 702, driving shaft; 703, screening cylinder; 704, barrier jacket; 705, cage; 706, positioning ring; 707, waste port; 708, connecting swivel ring. Specific embodiments
[0021] In order to make the technical means, creative features, achieved purposes and effects of the present utility model easy to understand, the present utility model will be further described below in conjunction with specific embodiments.
[0022] As Figure 1 Figure 2 As shown, a glass crusher material screening machine includes an equipment housing 1, a feeding hopper 2 is fixedly installed at the upper end of the equipment housing 1, a discharge port 3 is provided on one side of the equipment housing 1, a discharge chute 4 is arranged in the discharge port 3, support feet 5 are fixedly installed at the bottom of the equipment housing 1, a heating mechanism 6 is arranged in the equipment housing 1, the heating mechanism 6 includes a heating barrel 601 fixed in the equipment housing 1, a feeding notch 602 is opened at the upper end of the heating barrel 601, an electric heating plate 607 is fixedly installed at the bottom of the heating barrel 601, a spiral pushing plate 605 is arranged in the heating barrel 601, one end of the heating barrel 601 is connected to a screening mechanism 7, the heating mechanism 6 can heat the glass fragments to melt the glass glue on the glass fragments, and the screening mechanism 7 can quickly screen out the melted glass glue on the glass fragments to realize the separation of the glass glue and the glass fragments.
[0023] As Figure 3 As shown, the heating mechanism 6 includes a heating barrel 601 fixed in the equipment housing 1, a feeding notch 602 is opened at the upper end of the heating barrel 601, an electric heating plate 607 is fixedly installed at the bottom of the heating barrel 601, a spiral pushing plate 605 is arranged in the heating barrel 601, the heating mechanism 6 further includes an air inlet hole 603 and a movable notch 604 opened at one end of the heating barrel 601, and a positioning groove 606 is opened at the bottom of the heating barrel 601.
[0024] Specifically, the crushed glass can be conveyed into the heating cylinder 601 through the feeding hopper 2. After the crushed glass is conveyed into the heating cylinder 601, the power supply of the heating plate 607 can be turned on to melt the glass glue on the glass fragments. After the glass glue is melted, the spiral feeding plate 605 can be driven to rotate by the driving shaft 702. After the spiral feeding plate 605 rotates, the crushed glass will be conveyed into the screening cylinder 703 for screening.
[0025] As Figure 4 shown, the screening mechanism 7 includes a driving shaft 702 movably installed in the equipment housing 1. One end of the driving shaft 702 is connected to a driving motor 701. A cage 705 is fixedly installed on the driving shaft 702. A positioning ring 706 is fixedly installed on the cage 705. A screening cylinder 703 is installed between the positioning rings 706. The screening mechanism 7 further includes a barrier jacket 704 fixed on the outer side of the screening cylinder 703. A waste outlet 707 is provided at the bottom of the barrier jacket 704. One end of the screening cylinder 703 is provided with a connecting swivel 708. One end of the screening cylinder 703 is movably installed on the heating cylinder 601 through the connecting swivel 708.
[0026] Specifically, after the crushed glass is conveyed into the screening cylinder 703, the screening cylinder 703 can be driven to rotate at a high speed by the driving shaft 702. When the screening cylinder 703 rotates at a high speed, it will drive the crushed glass to rotate closely against the inner wall of the screening cylinder 703. Under the action of centrifugal force, the molten glass glue will be discharged through the small holes on the screening cylinder 703, realizing the separation of the glass glue from the glass fragments and screening out clean glass fragments for subsequent processing.
[0027] It should be noted that the present utility model is a material screening machine for a glass crusher. During actual use, glass fragments are loaded into the feeding hopper 2. The glass fragments loaded into the feeding hopper 2 will fall into the heating drum 601. After the glass fragments fall into the heating drum 601, the power supply of the heating plate 607 can be turned on to melt the glass glue on the glass fragments. Since the spiral pushing plate 605 is provided with a connection port and the spiral pushing plate 605 is connected to the driving shaft 702 through the connection port, after the glass glue on the glass fragments melts, the driving shaft 702 can drive the spiral pushing plate 605 to rotate, and the broken glass is conveyed into the screening cylinder 703. After the broken glass is conveyed into the screening cylinder 703, the driving motor 701 can drive the driving shaft 702 to rotate at a high speed. Since the positioning ring 706 is fixed on the driving shaft 702 through the cage 705 and the screening cylinder 703 is installed on the driving shaft 702 through the positioning ring 706, and the screening cylinder 703 is movably installed in the equipment housing 1 through the driving shaft 702, after the driving shaft 702 rotates at a high speed, it will drive the screening cylinder 703 to rotate at a high speed. When the screening cylinder 703 rotates at a high speed, it will drive the broken glass to rotate closely against the inner wall of the screening cylinder 703, so that the molten glass glue is discharged through the small holes on the screening cylinder 703, realizing the separation of the glass glue and the glass fragments, and screening out clean glass fragments. The screening cylinder 703 in the equipment housing 1 is inclined at a certain angle, and the screened glass fragments can slide out of the screening cylinder 703, and the glass glue discharged through the small holes on the screening cylinder 703 will be collected by the blocking jacket 704 and finally discharged through the waste outlet 707.
[0028] Finally, it should be noted that the above are only the preferred embodiments of the present utility model and are not used to limit the present utility model. Although the present utility model has been described in detail with reference to the foregoing embodiments, for those skilled in the art, they can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements for some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present utility model shall be included within the protection scope of the present utility model.
Claims
1. A glass crusher material screening machine, comprising an equipment housing (1), a feeding hopper (2) is fixedly installed at the upper end of the equipment housing (1), a discharge port (3) is provided on one side of the equipment housing (1), a discharge chute (4) is arranged in the discharge port (3), and support feet (5) are fixedly installed at the bottom of the equipment housing (1), characterized in that: Inside the device housing (1), there is a heating mechanism (6). The heating mechanism (6) includes a heating barrel (601) fixed inside the device housing (1). An inlet notch (602) is provided at the upper end of the heating barrel (601). An electric heating plate (607) is fixedly installed at the bottom of the heating barrel (601). A spiral feeding plate (605) is arranged inside the heating barrel (601). One end of the heating barrel (601) is connected to a screening mechanism (7). The screening mechanism (7) includes a drive shaft (702) movably installed inside the device housing (1). One end of the drive shaft (702) is connected to a drive motor (701). A cage (705) is fixedly installed on the drive shaft (702). A positioning ring (706) is fixedly installed on the cage (705). A screening cylinder (703) is installed between the positioning rings (706).
2. The material screening machine for a glass crusher according to claim 1, wherein: The heating mechanism (6) further includes an air inlet hole (603) and a movable notch (604) provided at one end of the heating barrel (601). A positioning groove (606) is provided at the bottom of the heating barrel (601).
3. A glass crusher material screening machine according to claim 2, characterized in that: An installation frame is provided inside the device housing (1). The heating barrel (601) is fixed inside the device housing (1) through the installation frame.
4. A glass crusher material screening machine according to claim 3, characterized in that: The electric heating plate (607) is installed on the heating barrel (601) through the positioning groove (606). A connection port is provided on the spiral feeding plate (605). The spiral feeding plate (605) is connected to the drive shaft (702) through the connection port. The drive shaft (702) passes through the heating barrel (601) through the movable notch (604). The inlet notch (602) on the heating barrel (601) is vertically aligned with the feeding hopper (2).
5. A material screening machine for a glass crusher according to claim 4, characterized in that: The screening mechanism (7) further includes a barrier outer sleeve (704) fixed on the outer side of the screening cylinder (703). A waste outlet (707) is provided at the bottom of the barrier outer sleeve (704). A connecting rotating ring (708) is provided at one end of the screening cylinder (703). One end of the screening cylinder (703) is movably installed on the heating barrel (601) through the connecting rotating ring (708).
6. The material screening machine for a glass crusher according to claim 5, wherein: Bearings are provided at the edges of both ends of the drive shaft (702). The drive shaft (702) is movably installed inside the device housing (1) through the bearings.
7. A material screening machine for a glass crusher according to claim 6, wherein: The positioning ring (706) is fixed on the drive shaft (702) through the cage (705). The screening cylinder (703) is installed on the drive shaft (702) through the positioning ring (706). The screening cylinder (703) is movably installed inside the device housing (1) through the drive shaft (702). Struts are provided at the bottom of the barrier outer sleeve (704). The barrier outer sleeve (704) is fixedly installed inside the device housing (1) through the struts.
Citation Information
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