Waste glass recovery equipment
By designing a waste glass recycling equipment with a cleaning tank and nozzle system, the problem of dirt and impurities on the surface of waste glass affecting the quality of remelting has been solved, achieving high-purity treatment of raw materials and improving the quality of glass remelting.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-25
- Publication Date
- 2026-04-14
AI Technical Summary
Waste glass often gets contaminated with dirt and impurities on its surface when it is stored outdoors for a long time during recycling, which affects the quality of glass recycling.
A waste glass recycling device was designed, comprising a cleaning tank, a crushing roller, and a nozzle system. The raw materials are initially cleaned by spraying water through the nozzles, and the water flow is maintained by a stirring frame. Combined with the drainage holes and filter screen of the conveyor belt, impurities are further separated to ensure the cleanliness of the raw materials.
It effectively removes dirt and impurities from the surface of raw materials, improves the quality of glass recycling, and ensures the purity of the subsequent melting process.
Smart Images

Figure CN224114671U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of glass processing technology, and more specifically, to a waste glass recycling device. Background Technology
[0002] Waste glass is a recyclable material and an important category of current household waste sorting. However, recycling waste glass often requires crushing and processing equipment. For example, a waste glass recycling device proposed in application number "CN201911161427.9" includes a first crushing device, a second crushing device, a melting device, a first conveyor belt, and a second conveyor belt. The first crushing device has a first filter screen at its lower end, and the second crushing device has a second feed inlet at its upper end and a second filter screen at its lower end. The first filter screen is connected to the second feed inlet via the first conveyor belt, and the second filter screen is connected to the melting device via the second conveyor belt. This invention performs multiple crushing operations on the glass, effectively addressing the problem that existing crushers have insufficient crushing effect and cannot thoroughly crush the glass for effective melting.
[0003] However, although the above technical solutions can thoroughly crush waste glass, the waste glass may be piled up outdoors for a long time during recycling. This will cause the surface of the waste glass to be mixed with a lot of mud and impurities. As a result, when the waste glass is crushed, the mud and impurities on its surface will also mix with the waste glass, which will affect the quality of glass recycling. Therefore, we propose a waste glass recycling equipment to solve the above problems. Utility Model Content
[0004] The main purpose of this utility model is to provide a waste glass recycling device that solves the problem that although waste glass can be thoroughly crushed, it may be piled up outdoors for a long time during recycling. This results in the waste glass surface being mixed with a lot of mud and impurities, which will also mix with the waste glass during crushing, thus affecting the quality of glass recycling.
[0005] To achieve the above objectives, the technical solution adopted by this utility model is as follows:
[0006] A waste glass recycling device includes a processing box with a feed inlet at its upper end. The processing box has a cleaning trough inside, which is connected to the feed inlet. An auxiliary mechanism is installed between the cleaning trough and the feed inlet. A drive shaft is movably installed through both sides of the upper end of the cleaning trough. Crushing rollers are mounted on the outer sides of the drive shafts inside the cleaning trough, and the crushing rollers overlap each other. Guide frames are installed on both sides of the upper end of the cleaning trough, and the crushing rollers are engaged within the guide frames. Gears are installed at the rear end of the drive shafts, and the gears mesh with each other. A motor is installed at the rear of the processing box, and the output end of the motor is connected to the gears. The drive shaft and the auxiliary mechanism are connected by a transmission. Baffles are movably installed on both sides of the upper end of the feed inlet. Fixed rods are fixedly installed at both ends of the feed inlet, and the rods are movably installed through the baffles. Torsion springs are installed between the fixed rods and the baffles.
[0007] Preferably, the auxiliary mechanism includes a first temporary storage box, which is installed inside the upper part of the feed inlet. Several first nozzles are installed through the first temporary storage box on the side near the baffle, and a water inlet pipe is installed through the rear end of the first temporary storage box.
[0008] Preferably, a second temporary storage box is installed at each of the two ends in the middle of the cleaning tank, and a plurality of second nozzles are installed through the ends of the second temporary storage boxes that are close to each other. A connecting pipe is installed through the first temporary storage box and the second temporary storage box.
[0009] Preferably, a discharge port is installed through one side of the lower end of the cleaning tank, and a conveyor belt is installed between the cleaning tank and the discharge port. The water flow in the cleaning tank is higher than the end of the conveyor belt located in the cleaning tank, and the water level is lower than the discharge port. The conveyor belt is inclined, and a number of drainage holes are provided through the surface of the conveyor belt. A filter screen is installed inside each of the drainage holes, and a number of protrusions are installed at equal intervals on the surface of the conveyor belt.
[0010] Preferably, the lower end of the processing box is provided with a groove, and a first rotating rod is movably installed through the upper end of the groove. A stirring frame is movably installed through the lower end of the cleaning groove. The upper end of the first rotating rod is connected to the stirring frame. A worm gear is installed on the outer side of the first rotating rod inside the groove. A second rotating rod is movably installed through one end of the groove. A worm is installed on the outer side of the second rotating rod inside the groove. The worm and the worm gear are meshed together.
[0011] Preferably, a water outlet pipe is installed through the lower end of the cleaning trough, and sprockets are respectively installed at the rear end of the second rotating rod and the rear end of the transmission shaft, with a chain sleeved between the sprockets.
[0012] Compared with the prior art, the present invention has the following beneficial effects:
[0013] (1) In this utility model, the first nozzle and the second nozzle are used to rinse the raw material in its unprocessed and processed state, and to initially clean the impurities on the surface of the raw material. Then, after the raw material falls onto the surface of the conveyor belt, the stirring rack will drive the water flow at the bottom of the cleaning tank to rotate, so that the water flow can further rinse the raw material, improve the cleanliness of the raw material, and improve the processing quality of the raw material in the later melting process. Attached Figure Description
[0014] Figure 1 This is a schematic diagram of the overall structure of a waste glass recycling device according to the present invention;
[0015] Figure 2 This is a front view structural diagram of a waste glass recycling device according to the present invention;
[0016] Figure 3 This is a side view of a waste glass recycling device according to the present invention.
[0017] Figure 4 This utility model relates to a waste glass recycling device. Figure 2 Schematic diagram of the cross-sectional structure at point AA;
[0018] Figure 5 This utility model relates to a waste glass recycling device. Figure 3 Schematic diagram of the cross-sectional structure at point BB;
[0019] Figure 6 This utility model relates to a waste glass recycling device. Figure 2 Schematic diagram of the cross-sectional structure at point CC.
[0020] In the diagram: 1. Processing box; 101. Cleaning trough; 2. Auxiliary mechanism; 201. First temporary storage box; 202. First nozzle; 203. Water inlet pipe; 204. Second temporary storage box; 205. Connecting pipe; 206. Second nozzle; 207. Conveyor belt; 208. Protrusion; 209. Drain hole; 210. Discharge port; 211. Water outlet pipe; 212. Mixing rack; 213. First rotating rod; 214. Groove; 215. Worm gear; 216. Worm wheel; 217. Second rotating rod; 218. Sprocket; 219. Chain; 3. Feed inlet; 4. Baffle; 5. Fixing rod; 6. Crushing roller; 7. Guide frame; 8. Drive shaft; 9. Gear; 10. Motor. Detailed Implementation
[0021] The technical solutions of this utility model will be clearly and completely described below with reference to the embodiments of this utility model. Obviously, the described embodiments are only some embodiments of this utility model, and not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of this utility model.
[0022] like Figures 1 to 6 As shown in the figure, this utility model embodiment proposes a waste glass recycling device, including a processing box 1. A feed inlet 3 is installed at the upper end of the processing box 1. A cleaning trough 101 is provided inside the processing box 1, and the cleaning trough 101 is connected to the feed inlet 3. An auxiliary mechanism 2 is installed between the cleaning trough 101 and the feed inlet 3. Drive shafts 8 are movably installed through both sides of the upper end of the cleaning trough 101. Crushing rollers 6 are respectively installed on the outer side of the shafts 8 inside the cleaning trough 101, and the crushing rollers 6 overlap each other. The upper sides of the cleaning trough 101 are respectively... A guide frame 7 is installed, and the crushing rollers 6 are respectively engaged inside the guide frame 7. Gears 9 are respectively installed at the rear end of the drive shaft 8, and the gears 9 are meshed with each other. A motor 10 is installed on the rear side of the processing box 1, and the output end of the motor 10 is connected to the gears 9. The drive shaft 8 and the auxiliary mechanism 2 are connected by transmission. Baffles 4 are movably installed on both sides of the upper end of the inside of the feed port 3. Fixed rods 5 are fixedly installed at both ends of the inside of the feed port 3, and the rods of the fixed rods 5 are movably installed through the inside of the baffles 4. Torsion springs are installed between the fixed rods 5 and the baffles 4.
[0023] like Figures 4 to 6As shown, in another embodiment of this utility model, the auxiliary mechanism 2 includes a first temporary storage box 201, which is installed inside the upper part of the feed inlet 3. A plurality of first nozzles 202 are installed through the first temporary storage box 201 near the baffle 4. A water inlet pipe 203 is installed through the rear end of the first temporary storage box 201. Second temporary storage boxes 204 are installed at both ends of the middle of the cleaning trough 101. A plurality of second nozzles 206 are installed through the ends of the second temporary storage boxes 204 that are close to each other. A connecting pipe 205 is installed through the first temporary storage box 201 and the second temporary storage box 204. A discharge port 210 is installed through the lower part of the cleaning trough 101. A conveyor belt 207 is installed between the cleaning trough 101 and the discharge port 210. The water flow in the cleaning trough 101 is higher than the end of the conveyor belt 207 located in the cleaning trough 101, and the water level is lower than the discharge port 210. The conveyor belt 207 is inclined. The surface of the conveyor belt 207 is provided with several drainage holes 209, and filter screens are installed inside the drainage holes 209 respectively. Several protrusions 208 are evenly installed on the surface of the conveyor belt 207. The lower end of the interior of the processing box 1 is provided with a groove 214. The upper end of the interior of the groove 214 is movably installed with a first rotating rod 213. The lower end of the interior of the cleaning tank 101 is movably installed with a stirring rack 212. The upper end of the first rotating rod 213 is connected to the stirring rack 212. The rod body of the first rotating rod 213 is located inside the groove 214. A worm gear 216 is installed on the outside. A second rotating rod 217 is movably installed through one end of the groove 214. A worm 215 is installed on the outside of the rod body of the second rotating rod 217 inside the groove 214. The worm 215 is meshed with the worm gear 216. A water outlet pipe 211 is installed through the lower end of the cleaning groove 101. A sprocket 218 is installed on the rear end of the rod body of the second rotating rod 217 and the rear end of the rod body of the drive shaft 8, respectively. A chain 219 is sleeved between the sprockets 218.
[0024] When raw materials need to be recycled and processed, water is injected into the first temporary storage tank 201 through the inlet pipe 203, and then the water flows into the second temporary storage tank 204 along the connecting pipe 205. This allows the water to be sprayed outwards through the first nozzle 202 and the second nozzle 206, causing the water to stagnate at the lower end of the cleaning tank 101. The water level is higher than the end of the conveyor belt 207 inside the cleaning tank 101, but lower than the outlet 210. As the water continues to be injected, the user can open the outlet pipe 211. The water is discharged outwards to achieve a continuous inflow and outflow. The user can then start the motor 10, which drives the gear 9 to rotate. Through the meshing transmission between the gears 9, the two drive shafts 8 rotate synchronously. The drive shafts 8 then drive the crushing roller 6 to rotate relative to each other. Simultaneously, the drive shafts 8, through the sprocket 218 and chain 219, drive the second rotating rod 217 to rotate. The second rotating rod 217, through the worm gear 215 and worm wheel 216, controls the first rotating rod 213 and the stirring frame 212 to... The mixing rack 212 is rotated to agitate the water flow stagnating at the lower end of the cleaning tank 101, keeping it in a flowing state. The user can then pour the raw material onto the upper end of the feed inlet 3. The raw material, under gravity, pushes the baffle 4 to rotate around the fixed rod 5 as the axis, twisting the torsion spring and opening the baffle 4. This allows the raw material to fall between the crushing rollers 6 for crushing. The torsion spring then pushes the baffle 4 back to its original position, preventing the raw material from splashing out during crushing. After the raw material falls into the feed inlet 3, the water flow sprayed by the first nozzle 202 can initially clean the raw material and prevent impurities from remaining on the crushing rollers 6. As the crushed raw material falls downwards, it is further rinsed by the water flow sprayed by the second nozzle 206. Finally, after the raw material falls into the water flow stagnating at the lower end, it is further rinsed by the continuously flowing water, separating the impurities on the raw material. Finally, the raw material is discharged outwards by the conveyor belt 207, improving the quality of the raw material during subsequent smelting and preventing it from containing impurities.
[0025] The working principle of this type of waste glass recycling equipment:
[0026] In use, when raw materials need to be recycled and processed, water is first injected into the first temporary storage tank 201 through the inlet pipe 203. Then, the water flows along the connecting pipe 205 into the second temporary storage tank 204, allowing the water to be sprayed outward through the first nozzle 202 and the second nozzle 206 respectively. The water is retained at the lower end of the cleaning tank 101, with the water level higher than the end of the conveyor belt 207 inside the cleaning tank 101, but lower than the discharge port 210. As the water continues to be injected, the user can open the water outlet. Pipe 211 discharges water outwards, ensuring a continuous flow of water in and out. The user can then start motor 10, which drives gear 9 to rotate. Through the meshing of gears 9, the two drive shafts 8 rotate synchronously. Drive shafts 8 then drive the crushing roller 6 to rotate relative to each other. Simultaneously, drive shafts 8, via sprocket 218 and chain 219, drive the second rotating rod 217 to rotate. The second rotating rod 217, through worm gear 215 and worm wheel 216, controls the first rotating rod 213 and the stirring frame 21. 2. Rotate the stirring rack 212 to agitate the water flow stagnating at the lower end of the cleaning tank 101, keeping it in a flowing state. Then, the user can pour the raw material onto the upper end of the feed inlet 3. The raw material pushes the baffle 4 around the fixed rod 5 as an axis by gravity, which in turn twists the torsion spring, causing the baffle 4 to open and allowing the raw material to fall between the crushing rollers 6 for crushing. Then, the torsion spring pushes the baffle 4 back to its original position, so that the raw material will not splash to the outside during the crushing process. At the same time, after the raw material falls into the feed inlet 3, the water flow sprayed by the first nozzle 202 can initially clean the raw material and also prevent impurities from remaining on the crushing rollers 6. Then, when the crushed raw material falls downward, it is further rinsed by the water flow sprayed by the second nozzle 206. Finally, after the raw material falls into the water flow stagnating at the lower end, it can be further rinsed by the continuously flowing water to separate the impurities on the raw material. Finally, the raw material can be discharged outward by the conveyor belt 207, which improves the quality of the raw material during the later melting process and avoids the presence of impurities inside.
[0027] Obviously, the above embodiments of this utility model are merely examples for clearly illustrating this utility model, and are not intended to limit the implementation of this utility model. For those skilled in the art, other variations or modifications can be made based on the above description. It is impossible to exhaustively list all the implementation methods here. Any obvious variations or modifications derived from the technical solutions of this utility model are still within the protection scope of this utility model.
Claims
1. A waste glass recycling device, comprising a processing box (1), characterized in that: The upper end of the processing box (1) is equipped with a feed inlet (3). The processing box (1) is provided with a cleaning groove (101), and the cleaning groove (101) is connected to the feed inlet (3). An auxiliary mechanism (2) is installed between the cleaning groove (101) and the feed inlet (3). The two sides of the upper end of the cleaning groove (101) are respectively movably installed with drive shafts (8). The outside of the shaft of the drive shaft (8) inside the cleaning groove (101) is respectively equipped with crushing rollers (6), and the crushing rollers (6) overlap each other. The upper end of the cleaning groove (101) is provided with a feed inlet (3). Guide frames (7) are installed on both sides of the end, and the crushing rollers (6) are respectively engaged inside the guide frames (7). Gears (9) are installed at the rear end of the drive shaft (8), and the gears (9) are meshed with each other. A motor (10) is installed on the rear side of the processing box (1), and the output end of the motor (10) is connected to the gears (9). The drive shaft (8) and the auxiliary mechanism (2) are connected by transmission. Baffles (4) are movably installed on both sides of the upper end of the inside of the feed inlet (3). Fixed rods are fixedly installed at both ends of the inside of the feed inlet (3). 5), and the rod body of the fixing rod (5) is movably installed inside the baffle (4). A torsion spring is installed between the fixing rod (5) and the baffle (4). The auxiliary mechanism (2) includes a first temporary storage box (201). The first temporary storage box (201) is installed inside the upper part of the feed inlet (3). Several first nozzles (202) are installed through the side of the first temporary storage box (201) near the baffle (4). A water inlet pipe (203) is installed through the rear end of the first temporary storage box (201). A water inlet pipe (203) is installed through the lower part of the cleaning tank (101). A discharge port (210) is installed. A conveyor belt (207) is installed between the cleaning trough (101) and the discharge port (210). The water flow in the cleaning trough (101) is higher than that of the conveyor belt (207) at one end of the cleaning trough (101), and the water level is lower than that of the discharge port (210). The conveyor belt (207) is inclined. Several drainage holes (209) are provided through the surface of the conveyor belt (207). Filter screens are installed inside the drainage holes (209). Several protrusions (208) are installed at equal intervals on the surface of the conveyor belt (207).
2. The waste glass recycling equipment according to claim 1, characterized in that: The cleaning tank (101) has two second temporary storage boxes (204) installed at the two ends in the middle. Several second nozzles (206) are installed through the two temporary storage boxes (204) at their respective ends. A connecting pipe (205) is installed through the first temporary storage box (201) and the second temporary storage box (204).
3. The waste glass recycling equipment according to claim 1, characterized in that: The processing box (1) has a groove (214) at its lower interior end. A first rotating rod (213) is movably installed through the upper interior end of the groove (214). A stirring rack (212) is movably installed through the lower interior end of the cleaning groove (101). The upper end of the first rotating rod (213) is connected to the stirring rack (212). A worm gear (216) is installed on the outer side of the rod body inside the groove (214). A second rotating rod (217) is movably installed through one end inside the groove (214). A worm (215) is installed on the outer side of the rod body inside the groove (214). The worm (215) is meshed with the worm gear (216).
4. The waste glass recycling equipment according to claim 3, characterized in that: A water outlet pipe (211) is installed through the lower end of the cleaning trough (101). A sprocket (218) is installed on the rear end of the second rotating rod (217) and the rear end of the transmission shaft (8). A chain (219) is sleeved between the sprockets (218).
Citation Information
Patent Citations
Waste glass recovery device
CN110883055A