A glass tube scrap recycling device
By designing a glass tube waste recycling device, scale is automatically removed and glass tubes are crushed and pulverized, solving the problems of tedious scale cleaning and safety hazards in the recycling process of all-glass vacuum collector tubes, and improving recycling efficiency and product quality.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- SHANDONG XINHE SOLAR THERMAL CO LTD
- Filing Date
- 2024-12-31
- Publication Date
- 2026-05-29
AI Technical Summary
The scale removal process for all-glass vacuum collector tubes is tedious and labor-intensive, affecting the quality of the glass and posing a safety hazard if the glass tube breaks.
A glass tube waste recycling device was designed, comprising a washing tank, a crushing chamber, a pulverizing chamber, a transfer chamber, a crushing component, and an automatic scrubbing component. The automatic scrubbing component removes scale, while the crushing and pulverizing components enable automatic crushing and pulverizing of the glass tubes, avoiding the risks associated with manual operation.
It improves the efficiency of scale removal, ensures the quality of recycled products, reduces the risks of manual operation, and increases the efficiency of glass tube recycling.
Smart Images

Figure CN119794045B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of glass tube recycling technology, specifically to a glass tube waste recycling device. Background Technology
[0002] Glass tube recycling is an important environmental protection process that can effectively reduce resource waste and minimize environmental impact. All-glass vacuum collector tubes are a common type of collector in solar water heating systems. The structure of an all-glass vacuum collector tube consists of two layers of glass tubes, with a vacuum formed between the inner and outer tubes. During long-term use, all-glass vacuum collector tubes may indeed produce scale. Scale removal is cumbersome and time-consuming. If scale is not effectively removed during the recycling process, it may affect the quality of the glass, making some of it unusable for recycling. Furthermore, when glass tubes are broken during recycling, personnel wearing appropriate safety equipment are required to place the glass tubes into the crushing device. The small glass shards produced by the breakage pose a safety hazard. To address these issues, the inventor has proposed a glass tube waste recycling device. Summary of the Invention
[0003] To address the issues of scale treatment and automatic crushing, pulverizing, and transfer of all-glass vacuum collector tubes during recycling, this invention aims to provide a glass tube waste recycling device.
[0004] To solve the above-mentioned technical problems, the present invention adopts the following technical solution: a glass tube waste recycling device, including a washing tank, a crushing chamber provided on one side of the top of the washing tank, a breaking chamber provided outside the crushing chamber, a transfer chamber for use with the crushing chamber at the bottom of the breaking chamber, a crushing component provided in the breaking chamber, a glass fragment conveying component provided in the transfer chamber, a crushing component provided in the crushing chamber, an automatic scrubbing component provided on the side of the washing tank near the crushing chamber, a feeding conveying component for use with the automatic scrubbing component provided on the side of the washing tank away from the crushing chamber, a feeding frame for use with the feeding conveying component fixed on the outer wall of the washing tank, and a feeding conveying device for use with the breaking chamber fixed on the top of the washing tank.
[0005] Preferably, the crushing assembly includes three symmetrically distributed fixing plates, all three fixing plates being fixedly installed on the top of the crushing chamber. A rotating protrusion shaft is rotatably provided on the fixing plate. Six symmetrically distributed fixing columns are fixedly provided on the inner wall of the crushing chamber. A lower pressure plate that cooperates with the fixing columns is slidably provided in the crushing chamber. Two symmetrically distributed fixing rods are fixedly provided at the top of the lower pressure plate, and the fixing rods are slidably connected to the crushing chamber. Two symmetrically distributed connecting rods are rotatably provided at the top of the fixing rods, and the other end of the connecting rods is rotatably connected to the protrusion of the rotating protrusion shaft.
[0006] Preferably, the glass fragment conveying assembly includes a drive shaft, which is rotatably mounted on the outer wall of the transfer chamber. A conveying shaft is rotatably disposed in the transfer chamber. A spiral blade that cooperates with the transfer chamber is fixedly sleeved on the outer wall of the conveying shaft. A first motor is fixedly disposed at the top of the washing tank near the drive shaft, and the drive end of the first motor is connected to the drive shaft through a belt pulley transmission group. A second bevel gear is fixedly disposed at the end of the conveying shaft, and a first bevel gear is fixedly disposed at the end of the drive shaft. The first bevel gear and the second bevel gear are meshed together.
[0007] Preferably, the pulverizing component includes an annular frame, which is fixedly installed on the inner wall of the pulverizing chamber. A rotating shaft is provided in the middle of the annular frame and is rotatably connected to the pulverizing chamber. A rotating frame is fixedly provided at the end of the rotating shaft, and a pulverizing plate that cooperates with the annular frame is fixedly provided at the end of the rotating frame. The pulverizing plate has three plates arranged in a circular array. A second motor is fixedly provided at the top of the washing tank near the rotating shaft, and the drive end of the second motor is connected to the rotating shaft through a belt pulley transmission group.
[0008] Preferably, the automatic scrubbing assembly includes two symmetrically distributed support rods, both of which are fixedly installed on the inner wall of the washing tank. Two symmetrically distributed slide rails are fixedly installed at the top of each support rod. A scrubbing frame slides on the slide rails, and a sliding plate slides on the scrubbing frame. An inclined frame is fixedly installed in the washing tank. A first fixed frame and a second fixed frame are respectively fixedly installed at the top center of the inclined frame. A first sliding block slides on the first fixed frame and is fixedly connected to the first sliding block. A second sliding block slides on the second fixed frame and is fixedly connected to the second sliding block. A rotating shaft rotatably rotates in the first sliding block. A cam is fixedly installed at the end of the rotating shaft. A transmission rod rotatably rotates on the protruding end of the cam, and the other end of the transmission rod is rotatably connected to the second sliding block. Five partitions are fixedly installed on the scrubbing frame. Ten symmetrically distributed cleaning brushes are fixedly installed at the bottom of the sliding plate. Two symmetrically distributed limiting plates are fixedly installed at the top of the inclined frame. A first drive shaft is rotatably mounted on the limiting plate. A fourth bevel gear is slidably sleeved on the outer wall of the first drive shaft, and the fourth bevel gear is rotatably connected to the first sliding block. A third bevel gear is fixedly mounted at the end of the rotating shaft, and the third bevel gear is meshed with the fourth bevel gear. A coupling is fixedly mounted at the end of the first drive shaft, and a second drive shaft is fixedly mounted at the other end of the coupling, and the second drive shaft is fixedly connected to the inclined frame. The second drive shaft and the rotating shaft are connected by a synchronous pulley transmission group. A first guide rod is fixedly mounted at both ends of the first sliding block, and the first guide rod passes through the first fixed frame. A first spring is sleeved on the outer wall of the first guide rod, and the two ends of the first spring are fixedly connected to the first fixed frame and the first sliding block, respectively. A second guide rod is fixedly mounted at both ends of the second sliding block, and the second guide rod passes through the second fixed frame. A second spring is sleeved on the outer wall of the second guide rod, and the two ends of the second spring are fixedly connected to the second fixed frame and the second sliding block, respectively.
[0009] Preferably, the feeding and conveying assembly includes two symmetrically distributed conveying plates, both of which are fixedly installed in the washing tank. A first conveying roller and a second conveying roller are rotatably arranged between the two conveying plates, and the first and second conveying rollers are connected by a synchronous wheel transmission group. A driven shaft is rotatably arranged between the feeding frame and the conveying plates near the first conveying roller, and the driven shaft is connected to the drive shaft by a synchronous wheel transmission group. A first rotating gear is fixedly sleeved on the outer wall of the first conveying roller, and a second rotating gear is fixedly sleeved on the outer wall of the driven shaft, and the first and second rotating gears are meshed. A conveyor belt is sleeved on the outer walls of the first and second conveying rollers, and a plurality of equally spaced filter plates are fixedly arranged on the outer wall of the conveyor belt.
[0010] Preferably, the two support rods are inclined at the same angle to the slide rail as the inclined frame, and the scrubbing frame and the sliding plate are relatively parallel to the top of the inclined frame.
[0011] Compared with the prior art, the beneficial effects of the present invention are as follows:
[0012] 1. This invention sets up an automatic scrubbing component, which causes the scrubbing frame in the automatic scrubbing component to move back and forth while driving the sliding plate to move back and forth on the scrubbing frame. During the movement, the sliding plate, through the cooperation of the cleaning brush and the scrubbing frame, scrubs the scale on the surface of the glass particles in the cleaning solution. The glass particles rub against each other during the scrubbing process, which improves the scale removal efficiency, effectively removes the scale attached to the glass particles, and ensures the quality of the recycled products.
[0013] 2. This invention, by setting up a crushing component, a glass sheet conveying component, and a pulverizing component, enables the crushing component to crush the entire glass vacuum collector tube into glass fragments, and then drives the glass sheet conveying component to transport the broken glass fragments to the pulverizing component. The pulverizing component pulverizes the broken glass fragments into glass particles of the same size, avoiding the risk of cuts or punctures that may occur during manual operation, and effectively improving the recycling efficiency of the glass tube.
[0014] 3. By setting up a crushing component and an automatic scrubbing component, the rotating frame in the crushing component rotates at high speed, while driving the scrubbing frame in the automatic scrubbing component to move back and forth at high frequency. The scrubbing frame is tilted, so as to achieve the effect of quickly scrubbing the glass particles while conveying and transferring the glass particles, and improving the friction between the glass particles. Attached Figure Description
[0015] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0016] Figure 1 This is a schematic diagram of the overall structure of the present invention;
[0017] Figure 2 This is a schematic diagram of the overall side-section structure in this invention;
[0018] Figure 3 This is a schematic diagram of the structure of the crushing component in this invention;
[0019] Figure 4 This is a schematic diagram of the pulverizing component in this invention;
[0020] Figure 5 This is a schematic diagram of the material feeding and conveying assembly in this invention;
[0021] Figure 6This is a schematic diagram of the structure of the first conveyor roller and the second conveyor roller in this invention;
[0022] Figure 7 This is a schematic diagram of the automatic scrubbing assembly in this invention;
[0023] Figure 8 This is a schematic diagram of the structure of the first and second drive shafts in this invention;
[0024] Figure 9 This is a schematic diagram of the structure of the sliding plate and the second sliding block in this invention;
[0025] Figure 10 This is a schematic diagram of the structure of the scrubbing frame and the first sliding block in this invention;
[0026] Figure 11 This is a schematic diagram of the washing frame and partition in this invention;
[0027] Figure 12 for Figure 3 A magnified schematic diagram of the structure at point A in the middle.
[0028] In the diagram: 1. Washing tank; 2. Crushing chamber; 3. Crushing bin; 4. Transfer chamber; 5. Crushing assembly; 501. Fixing plate; 502. Rotating convex shaft; 503. Lower pressure plate; 504. Fixing rod; 505. Connecting rod; 506. Fixing column; 6. Glass shard conveying assembly; 601. Drive shaft; 602. Conveying shaft; 603. Spiral blade; 604. First bevel gear; 605. Second bevel gear; 606. First motor; 7. Crushing assembly; 701. Annular frame; 702. Rotating shaft; 703. Rotating frame; 704. Crushing plate; 705. Second motor; 8. Automatic scrubbing assembly; 801. Support rod; 802. Slide rail; 803. Scrubbing frame; 804. Sliding plate; 805. Inclined frame; 806. First fixing frame; 807 808. Second fixed frame; 809. First sliding block; 810. Second sliding block; 811. First guide rod; 812. First spring; 813. Second guide rod; 814. Second spring; 815. Rotating shaft; 816. Cam; 817. Transmission rod; 818. Limiting plate; 819. First transmission shaft; 820. Coupling; 821. Second transmission shaft; 822. Third bevel gear; 823. Fourth bevel gear; 824. Cleaning brush; 825. Partition plate; 906. Unloading conveyor assembly; 907. Conveying plate; 908. First conveying roller; 909. Second conveying roller; 900. Conveying belt; 900. Filter plate; 901. Driven shaft; 902. First rotating gear; 903. Second rotating gear; 10. Unloading frame; 11. Loading conveyor device. Detailed Implementation
[0029] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0030] Example: Figure 1-12 As shown, the present invention provides a technical solution: a glass tube waste recycling device, including a washing tank 1, a crushing chamber 2 is provided on one side of the top of the washing tank 1, a crushing chamber 3 is provided on the outside of the crushing chamber 2, a transfer chamber 4 is provided at the bottom of the crushing chamber 3 for use with the crushing chamber 2, a crushing component 5 is provided in the crushing chamber 3, a glass fragment conveying component 6 is provided in the transfer chamber 4, a crushing component 7 is provided in the crushing chamber 2, an automatic scrubbing component 8 is provided on the side of the washing tank 1 near the crushing chamber 2, a feeding conveying component 9 for use with the automatic scrubbing component 8 is provided on the side of the washing tank 1 away from the crushing chamber 2, a feeding frame 10 for use with the feeding conveying component 9 is fixedly provided on the outer wall of the washing tank 1, and a feeding conveying device 11 for use with the crushing chamber 3 is fixedly provided at the top of the washing tank 1;
[0031] The crushing assembly 5 includes three symmetrically distributed fixing plates 501, all of which are fixedly installed on the top of the crushing chamber 3. A rotating protrusion shaft 502 is rotatably provided on the fixing plate 501. Six symmetrically distributed fixing columns 506 are fixedly provided on the inner wall of the crushing chamber 3. A lower pressure plate 503 that cooperates with the fixing columns 506 is slidably provided in the crushing chamber 3. Two symmetrically distributed fixing rods 504 are fixedly provided at the top of the lower pressure plate 503, and the fixing rods 504 are slidably connected to the crushing chamber 3. Two symmetrically distributed connecting rods 505 are rotatably provided at the top of the fixing rods 504, and the other end of the connecting rods 505 is rotatably connected to the protrusion of the rotating protrusion shaft 502.
[0032] By adopting the above technical solution, the lower pressure plate 503 moves back and forth while cooperating with the fixed column 506 to squeeze the glass tube, causing the glass tube to break into glass fragments.
[0033] The glass shard conveying assembly 6 includes a drive shaft 601, which is rotatably mounted on the outer wall of the transfer chamber 4. A conveying shaft 602 is rotatably mounted in the transfer chamber 4. A spiral blade 603 that works in conjunction with the transfer chamber 4 is fixedly sleeved on the outer wall of the conveying shaft 602. A first motor 606 is fixedly mounted on the top of the washing tank 1 near the drive shaft 601, and the drive end of the first motor 606 is connected to the drive shaft 601 via a belt pulley transmission group.
[0034] By adopting the above technical solution, the drive shaft 601 rotates, which in turn drives the spiral blade 603 to rotate via the conveying shaft 602, thereby achieving the effect of transferring glass fragments.
[0035] The crushing component 7 includes an annular frame 701, which is fixedly installed on the inner wall of the crushing chamber 2. A rotating shaft 702 is provided in the middle of the annular frame 701, and the rotating shaft 702 is rotatably connected to the crushing chamber 2. A rotating frame 703 is fixedly provided at the end of the rotating shaft 702, and a crushing plate 704 that works with the annular frame 701 is fixedly provided at the end of the rotating frame 703. The crushing plate 704 has three plates arranged in a ring array. A second motor 705 is fixedly provided at the top of the washing tank 1 near the rotating shaft 702, and the drive end of the second motor 705 is connected to the rotating shaft 702 through a belt pulley transmission group.
[0036] By adopting the above technical solution, the crushing plate 704 rotates in conjunction with the annular frame 701 to crush glass fragments into the same particle shape.
[0037] The automatic scrubbing assembly 8 includes two symmetrically distributed support rods 801, both of which are fixedly installed on the inner wall of the washing tank 1. Two symmetrically distributed slide rails 802 are fixedly installed at the top of each support rod 801. A scrubbing frame 803 slides on the slide rails 802, and a sliding plate 804 slides within the scrubbing frame 803. An inclined frame 805 is fixedly installed in the washing tank 1. A first fixing frame 806 and a second fixing frame 807 are respectively fixed to the middle of the top of the inclined frame 805. A first sliding block 808 slides within the first fixing frame 806, and the scrubbing frame 803… A second sliding block 809 is slidably provided in the second fixed frame 807, and the sliding plate 804 is fixedly connected to the second sliding block 809. A rotating shaft 814 is rotatably provided in the first sliding block 808. A cam 815 is fixedly provided at the end of the rotating shaft 814. A transmission rod 816 is rotatably provided at the protruding end of the cam 815, and the other end of the transmission rod 816 is rotatably connected to the second sliding block 809. Five partitions 824 are fixedly provided on the scrubbing frame 803, and ten symmetrically distributed cleaning brushes 823 are fixedly provided at the bottom of the sliding plate 804.
[0038] By adopting the above technical solution, the scrubbing frame 803 and the sliding plate 804 move synchronously in opposite directions to work with the cleaning brush 823 to scrub the glass particles.
[0039] The feeding and conveying assembly 9 includes two symmetrically distributed conveying plates 901, both of which are fixedly installed in the washing tank 1. A first conveying roller 902 and a second conveying roller 903 are rotatably arranged between the two conveying plates 901, and the first conveying roller 902 and the second conveying roller 903 are connected by a synchronous wheel transmission group. A driven shaft 906 is rotatably arranged between the feeding frame 10 and the conveying plate 901 near the first conveying roller 902, and the driven shaft 906 is connected to the drive shaft 601 by a synchronous wheel transmission group. A first rotating gear 907 is fixedly sleeved on the outer wall of the first conveying roller 902, and a second rotating gear 908 is fixedly sleeved on the outer wall of the driven shaft 906, and the first rotating gear 907 and the second rotating gear 908 are meshed. A conveyor belt 904 is sleeved on the outer wall of the first conveying roller 902 and the second conveying roller 903, and a number of equally spaced filter plates 905 are fixedly arranged on the outer wall of the conveyor belt 904.
[0040] By adopting the above technical solution, the first conveyor roller 902 and the second conveyor roller 903 cooperate with each other through the conveyor belt 904 and the filter plate 905 to discharge the cleaned glass particles.
[0041] A second bevel gear 605 is fixedly provided at the end of the conveyor shaft 602, and a first bevel gear 604 is fixedly provided at the end of the drive shaft 601, and the first bevel gear 604 is meshed with the second bevel gear 605.
[0042] By adopting the above technical solution, the drive shaft 601 drives the conveyor shaft 602 to rotate.
[0043] Two symmetrically distributed limiting plates 817 are fixedly installed at the top of the inclined frame 805. A first transmission shaft 818 is rotatably installed on the limiting plate 817. A fourth bevel gear 822 is slidably sleeved on the outer wall of the first transmission shaft 818, and the fourth bevel gear 822 is rotatably connected to the first sliding block 808. A third bevel gear 821 is fixedly installed at the end of the rotating shaft 814, and the third bevel gear 821 is meshed with the fourth bevel gear 822. A coupling 819 is fixedly installed at the end of the first transmission shaft 818, and a second transmission shaft 820 is fixedly installed at the other end of the coupling 819. The second transmission shaft 820 is fixedly connected to the inclined frame 805. The second transmission shaft 820 and the rotating shaft 702 are connected by a synchronous pulley transmission group.
[0044] By adopting the above technical solution, the rotating shaft 702 drives the rotating shaft 814 to rotate through the second transmission shaft 820 and the first transmission shaft 818.
[0045] The first sliding block 808 has a first guide rod 810 fixed at both ends, and the first guide rod 810 passes through the first fixed frame 806. A first spring 811 is sleeved on the outer wall of the first guide rod 810, and the two ends of the first spring 811 are fixedly connected to the first fixed frame 806 and the first sliding block 808, respectively. The second sliding block 809 has a second guide rod 812 fixed at both ends, and the second guide rod 812 passes through the second fixed frame 807. A second spring 813 is sleeved on the outer wall of the second guide rod 812, and the two ends of the second spring 813 are fixedly connected to the second fixed frame 807 and the second sliding block 809, respectively.
[0046] By adopting the above technical solution, the first sliding block 808 and the second sliding block 809 slide in the corresponding first fixed frame 806 and second fixed frame 807, respectively.
[0047] The two support rods 801 and slide rail 802 are tilted at the same angle as the inclined frame 805, and the scrubbing frame 803 and sliding plate 804 are relatively parallel to the top of the inclined frame 805.
[0048] By adopting the above technical solution, the scrubbing frame 803 and the sliding plate 804 are set at an angle.
[0049] Working principle: First, cleaning fluid is injected into the cleaning tank 1. The all-glass vacuum heat collection tubes are then sequentially conveyed to the crushing chamber 3 via the feeding conveyor 11. Then, the first motor 606 is started. Figure 2 , Figure 3 As shown, the drive end of motor 606 drives drive shaft 601 to rotate counterclockwise. Drive shaft 601 drives rotating cam shaft 502 to rotate synchronously through synchronous gear transmission group. Rotating cam shaft 502 drives lower pressure plate 503 to move back and forth through connecting rod 505 and fixed rod 504. During the downward pressing process, lower pressure plate 503, in conjunction with fixed column 506, breaks all-glass vacuum heat collection tube into glass fragments that fall into transfer chamber 4. At the same time, drive shaft 601 rotates, driving conveying shaft 602 and spiral blade 603 to rotate counterclockwise through first bevel gear 604 and second bevel gear 605. At this time, glass fragments move along transfer chamber 4 under the action of spiral blade 603 and fall into annular frame 701 in crushing chamber 2. Simultaneously, motor 705 is activated. Figure 4 , Figure 7As shown, the second motor 705 drives the rotating shaft 702 to rotate. The rotating shaft 702 rotates through the rotating frame 703 and the crushing plate 704. The rotating crushing plate 704, in conjunction with the annular frame 701, crushes the glass fragments into uniformly sized glass particles. When the diameter of the glass particles is smaller than the diameter of the pores in the annular frame 701, the broken glass particles will pass through the pores and fall along the crushing chamber 2 into the scrubbing frame 803. The scrubbing frame 803 is completely immersed in the cleaning solution, which reacts with the scale residue on the surface of the glass particles, causing it to decompose. Simultaneously, the rotating shaft 702 drives the second drive shaft 820 to rotate through the synchronous gear transmission group. The second drive shaft 820 rotates through the coupling 819. The second drive shaft 820 then drives the rotating shaft 814 to rotate through the third bevel gear 821 and the fourth bevel gear 822. The rotating shaft 814, via the cam 815 and transmission rod 816, drives the first sliding block 808 and the second sliding block 809 to move synchronously in opposite directions within their respective first fixed frames 806 and second fixed frames 807, guided by the first guide rod 810, the second guide rod 812, the first spring 811, and the second spring 813. The first sliding block 808 drives the scrubbing frame 803 to move back and forth under the guidance of the slide rail 802. Because the scrubbing frame 803 is inclined, glass particles falling into it will move along the inner wall of the frame under the guidance of the partition 824. The second sliding block 809 drives the sliding plate 804 to move in the opposite direction on the scrubbing frame 803. Simultaneously, the sliding plate 804, moving back and forth, uses the cleaning brush 823 in conjunction with the scrubbing frame 803 to clean stubborn scale from the surface of the glass particles. Figure 5 As shown, the drive shaft 601 rotates counterclockwise while driving the driven shaft 906 to rotate via the synchronous gear transmission group. The driven shaft 906 drives the first conveyor roller 902 to rotate clockwise via the first rotating gear 907 and the second rotating gear 908. The first conveyor roller 902 drives the second conveyor roller 903 to rotate synchronously via the synchronous gear transmission group. The first conveyor roller 902 and the second conveyor roller 903 drive the conveyor belt 904 to rotate clockwise and cooperate with the filter plate 905 to transport the cleaned glass particles to the discharge frame 10 for discharge.
[0050] Obviously, those skilled in the art can make various modifications and variations to this invention without departing from its spirit and scope. Therefore, if these modifications and variations fall within the scope of the claims of this invention and their equivalents, this invention also intends to include these modifications and variations.
Claims
1. A glass tube waste recycling device, comprising a washing tank (1), characterized in that: The washing tank (1) has a crushing chamber (2) on one side of its top, a crushing chamber (3) on the outside of the crushing chamber (2), a transfer chamber (4) at the bottom of the crushing chamber (3) for use with the crushing chamber (2), a crushing component (5) in the crushing chamber (3), a glass fragment conveying component (6) in the transfer chamber (4), a crushing component (7) in the crushing chamber (2), an automatic scrubbing component (8) on the side of the washing tank (1) near the crushing chamber (2), a feeding conveying component (9) for use with the automatic scrubbing component (8) on the side of the washing tank (1) away from the crushing chamber (2), a feeding frame (10) for use with the feeding conveying component (9) fixed on the outer wall of the washing tank (1), and a feeding conveying device (11) for use with the crushing chamber (3) fixed at the top of the washing tank (1). The automatic scrubbing assembly (8) includes two symmetrically distributed support rods (801), and both support rods (801) are fixedly installed on the inner wall of the washing tank (1). Two symmetrically distributed slide rails (802) are fixedly provided at the top of each support rod (801). A scrubbing frame (803) is slidably mounted on each slide rail (802). A sliding plate (804) is slidably mounted in the scrubbing frame (803). An inclined frame (805) is fixedly mounted in the washing tank (1). A first fixed frame (806) and a second fixed frame (807) are fixedly mounted at the middle of the top of the inclined frame (805). A first sliding block (808) is slidably mounted in the first fixed frame (806), and the scrubbing frame (807)... 03) A second sliding block (809) is slidably provided in the second fixed frame (807) and the sliding plate (804) is fixedly connected to the second sliding block (809). A rotating shaft (814) is rotatably provided in the first sliding block (808). A cam (815) is fixedly provided at the end of the rotating shaft (814). A transmission rod (816) is rotatably provided at the protruding end of the cam (815). The other end of the transmission rod (816) is rotatably connected to the second sliding block (809). Five partitions (824) are fixedly provided on the scrubbing frame (803). Ten symmetrically distributed cleaning brushes (823) are fixedly provided at the bottom end of the sliding plate (804). Two symmetrically distributed limiting plates (817) are fixedly provided at the top of the inclined frame (805). A first transmission shaft (818) is rotatably provided on the limiting plate (817). A fourth bevel gear (822) is slidably sleeved on the outer wall of the first transmission shaft (818). The fourth bevel gear (822) is rotatably connected to the first sliding block (808). A third bevel gear (821) is fixedly provided at the end of the rotating shaft (814). The third bevel gear (821) is meshed with the fourth bevel gear (822). A coupling (819) is fixedly provided at the end of the first transmission shaft (818). A second transmission shaft (820) is fixedly provided at the other end of the coupling (819). The second transmission shaft (820) is fixedly connected to the inclined frame (805). The second transmission shaft (820) is connected to the rotating shaft (702) through a synchronous pulley transmission group. The first sliding block (808) is fixedly provided with a first guide rod (810) at both ends, and the first guide rod (810) passes through the first fixed frame (806). A first spring (811) is sleeved on the outer wall of the first guide rod (810), and the two ends of the first spring (811) are fixedly connected to the first fixed frame (806) and the first sliding block (808) respectively. The second sliding block (809) is fixedly provided with a second guide rod (812) at both ends, and the second guide rod (812) passes through the second fixed frame (807). A second spring (813) is sleeved on the outer wall of the second guide rod (812), and the two ends of the second spring (813) are fixedly connected to the second fixed frame (807) and the second sliding block (809) respectively.
2. The glass tube waste recycling device as described in claim 1, characterized in that, The crushing assembly (5) includes three symmetrically distributed fixing plates (501), all three fixing plates (501) are fixedly installed on the top of the crushing chamber (3), and a rotating protrusion shaft (502) is rotatably provided on the fixing plate (501). Six symmetrically distributed fixing columns (506) are fixedly provided on the inner wall of the crushing chamber (3). A lower pressure plate (503) that cooperates with the fixing columns (506) is slidably provided in the crushing chamber (3). Two symmetrically distributed fixing rods (504) are fixedly provided at the top of the lower pressure plate (503), and the fixing rods (504) are slidably connected to the crushing chamber (3). Two symmetrically distributed connecting rods (505) are rotatably provided at the top of the fixing rods (504), and the other end of the connecting rods (505) is rotatably connected to the protrusion of the rotating protrusion shaft (502).
3. The glass tube waste recycling device as described in claim 1, characterized in that, The glass shard conveying assembly (6) includes a drive shaft (601), which is rotatably mounted on the outer wall of the transfer chamber (4). A conveying shaft (602) is rotatably provided in the transfer chamber (4). A spiral blade (603) that works with the transfer chamber (4) is fixedly sleeved on the outer wall of the conveying shaft (602). A first motor (606) is fixedly provided on the top of the cleaning tank (1) near the drive shaft (601), and the drive end of the first motor (606) is connected to the drive shaft (601) through a belt pulley transmission group.
4. The glass tube waste recycling device as described in claim 1, characterized in that, The crushing component (7) includes an annular frame (701), which is fixedly installed on the inner wall of the crushing chamber (2). A rotating shaft (702) is provided in the middle of the annular frame (701), and the rotating shaft (702) is rotatably connected to the crushing chamber (2). A rotating frame (703) is fixedly provided at the end of the rotating shaft (702), and a crushing plate (704) is fixedly provided at the end of the rotating frame (703) to cooperate with the annular frame (701). The crushing plate (704) has three ring arrays. A second motor (705) is fixedly provided on the top of the washing tank (1) near the rotating shaft (702), and the driving end of the second motor (705) is connected to the rotating shaft (702) through a belt pulley transmission group.
5. A glass tube waste recycling device as described in claim 1, characterized in that, The feeding conveying assembly (9) includes two symmetrically distributed conveying plates (901). Both conveying plates (901) are fixedly installed in the washing tank (1). A first conveying roller (902) and a second conveying roller (903) are rotatably arranged between the two conveying plates (901). The first conveying roller (902) and the second conveying roller (903) are connected by a synchronous pulley transmission group. A driven shaft (906) is rotatably arranged between the feeding frame (10) and the conveying plate (901) near the first conveying roller (902). The drive shaft (601) is connected to the drive shaft (602) via a synchronous wheel transmission group. A first rotating gear (907) is fixedly sleeved on the outer wall of the first conveyor roller (902). A second rotating gear (908) is fixedly sleeved on the outer wall of the driven shaft (906). The first rotating gear (907) and the second rotating gear (908) are meshed together. A conveyor belt (904) is sleeved on the outer wall of the first conveyor roller (902) and the second conveyor roller (903). Several filter plates (905) are fixedly distributed at equal intervals on the outer wall of the conveyor belt (904).
6. A glass tube waste recycling device as described in claim 3, characterized in that, The end of the conveying shaft (602) is fixedly provided with a second bevel gear (605), and the end of the drive shaft (601) is fixedly provided with a first bevel gear (604), and the first bevel gear (604) and the second bevel gear (605) are meshed together.
7. A glass tube waste recycling device as described in claim 5, characterized in that, The two support rods (801) and slide rail (802) are inclined at the same angle as the inclined frame (805), and the scrubbing frame (803) and sliding plate (804) are relatively parallel to the top of the inclined frame (805).