Efficient raw material crushing equipment for high borosilicate glass tube processing
By setting up coarse and fine crushing zones in the high borosilicate glass tube processing equipment, and combining the periodic movement of the orifice plate with the fine crushing of the crushing roller, the problem of manual pretreatment required by existing equipment is solved, and efficient raw material crushing is achieved.
Patent Information
- Application Number
- CN202511218227.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-28
- Publication Date
- 2025-10-31
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Existing high borosilicate glass tube processing equipment requires manual pretreatment before crushing, resulting in wasted time and resources and low crushing efficiency.
A crushing device including a coarse crushing zone and a fine crushing zone was designed. The rotating shaft is driven by a drive component. After the raw material is coarsely crushed in the coarse crushing frame, it is screened by a perforated plate and enters the fine crushing zone. The perforated plate moves up and down periodically to screen and coarsely crush unqualified raw materials again. Combined with the crushing roller, fine crushing is carried out to improve the crushing efficiency.
The crushing efficiency of high borosilicate glass tube raw materials has been improved. By setting coarse crushing zone and fine crushing zone and periodic movement of the orifice plate, the raw materials are ensured to be fully crushed, reducing manual pretreatment and improving the overall crushing efficiency.
Smart Images

Figure CN120861202A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of glass tube processing technology, and in particular to a high-efficiency crushing device for raw materials used in the processing of high borosilicate glass tubes. Background Technology
[0002] High borosilicate glass is a type of glass with enhanced fire resistance. The manufacturing process involves adding glaze, water glass sand, soda water, and lime. Because high borosilicate glass has a higher melting temperature than ordinary silicate glass, some new technologies and processes are required during its manufacturing. When high borosilicate glass is processed into high borosilicate glass tubes, the raw materials need to be crushed.
[0003] Currently, most of the crushing equipment used in the processing of high borosilicate glass tubes is a single crusher. Since the raw material blocks are of different sizes, they need to be manually broken up before being put into the crusher, which wastes a lot of time and resources. Therefore, corresponding improvements have been made to address this problem. Summary of the Invention
[0004] Based on the technical problems existing in the prior art, this invention proposes a high-efficiency crushing device for raw materials used in the processing of high borosilicate glass tubes.
[0005] This invention proposes a high-efficiency crushing device for raw materials used in the processing of high borosilicate glass tubes, comprising a housing, a feeding hopper at the top of the housing, a discharge pipe at the bottom of the housing, and a coarse crushing zone and a fine crushing zone inside the housing, with the coarse crushing zone located above the fine crushing zone. The coarse crushing zone includes a pair of partitions fixedly connected to the housing, and a plurality of evenly distributed rotating shafts rotatably connected between the two partitions. The rotating shafts are connected to a drive assembly, and a plurality of evenly distributed coarse crushing frames are fixedly sleeved on the rotating shafts. A perforated plate that can move up and down is also provided between the two partitions and located below the rotating shafts, and the perforated plate is connected to the rotating shafts through a transmission assembly.
[0006] After the equipment is started, the drive assembly drives multiple rotating shafts to rotate, and then feeds the raw material from the feed hopper into the box. The raw material is first coarsely crushed by the coarse crushing frame in the coarse crushing zone. Then, the qualified coarsely crushed raw material falls from the perforated plate into the fine crushing zone for fine crushing, and finally exits from the discharge pipe. During this process, the transmission assembly drives the perforated plate to move up and down periodically. On the one hand, this promotes the screening efficiency of the coarsely crushed raw material by the perforated plate. On the other hand, it pushes the raw material that has not been coarsely crushed back up to continue to be coarsely crushed by the coarse crushing frame until it is qualified. This can improve the crushing efficiency of the raw material.
[0007] Preferably, the drive assembly includes a first motor fixed to the outside of one of the partitions, a first gear fixed to the output shaft of the first motor, a second gear fixedly sleeved at the end of one of the rotating shafts, the second gear meshing with the first gear, and two synchronous pulleys fixedly sleeved at the ends of the multiple rotating shafts away from the second gear. Adjacent synchronous pulleys are connected by a synchronous belt, and the adjacent synchronous belts are staggered. The output shaft of the first motor drives the first gear to rotate, and then the first gear meshes with the second gear to drive one of the rotating shafts to rotate. Then, through the transmission cooperation of the synchronous pulleys and the synchronous belt, the multiple rotating shafts rotate synchronously.
[0008] Preferably, the bottom end of the partition plate is provided with a sliding opening, and both sides of the perforated plate are fixed with sliding rods that slide in cooperation with the sliding opening; the perforated plate can move up and down by the cooperation of the sliding rods and the sliding opening.
[0009] Preferably, the fine crushing zone includes a crushing chamber fixedly connected to the housing. Above the crushing chamber are a pair of guide plates fixedly connected to the housing in a V-shape. A pair of crushing rollers are rotatably connected inside the crushing chamber. Both ends of the crushing rollers pass through the housing. The same end of each of the two crushing rollers is fixedly fitted with a third gear that meshes with each other. A second motor is fixedly mounted on one side of the housing. The output shaft of the second motor is fixedly connected to the end of one of the crushing rollers. After coarse crushing, the raw material is guided between the two crushing rollers by the two guide plates. When the second motor is working, its output shaft drives one of the crushing rollers to rotate. Then, through the meshing transmission of the two third gears, the two crushing rollers rotate in opposite directions, thereby finely crushing the raw material.
[0010] Preferably, the transmission assembly includes two sets of first connecting rods and second connecting rods. The first connecting rod is rotatably connected to the end of the slide rod, and the second connecting rod is fixedly sleeved on the end of a rotating shaft above the slide rod. The adjacent ends of the first connecting rod and the second connecting rod in the same set are rotatably connected. When the rotating shaft rotates, it synchronously drives the second connecting rod to rotate. Then, the second connecting rod will drive the slide rod and the orifice plate to move up and down periodically through the first connecting rod.
[0011] Preferably, the transmission assembly includes two sets of first and second sleeves. The first and second sleeves are respectively fixedly sleeved on the end of a rotating shaft located above the slide rod and the end of the slide rod. Magnets are fixedly connected to adjacent ends of the first and second sleeves, and an elastic connection is formed between the slide rod and the partition. When the rotating shaft rotates, it synchronously drives the first sleeve to rotate. When the two magnets approach each other, the second sleeve will move upward together with the slide rod and the perforated plate under the magnetic attraction between the two magnets. When the two magnets move away from each other, the perforated plate will move downward due to the elastic force, thereby causing the perforated plate to move up and down periodically.
[0012] Preferably, a guide sleeve is fixed to one side of the slide rod, and a pair of vertically distributed lugs are fixed to the outer side of the partition. A guide post is fixed between the two lugs. The guide sleeve is fitted onto the guide post, and a first spring is fitted onto the guide post. The two ends of the first spring are fixedly connected to the guide sleeve and one of the lugs, respectively. In this way, the elastic force of the first spring can be applied to the guide sleeve to drive the slide rod and the orifice plate to move downward to reset.
[0013] Preferably, the transmission assembly includes two L-shaped push plates. The horizontal section of the push plate has an inclined surface for supporting the slide rod, and the vertical section of the push plate is fixed with a rack. Half gears are fixedly sleeved at both ends of the rotating shaft. The half gears mesh with the rack, and the push plate and the corresponding partition plate form an elastic connection. When the rotating shaft rotates, it synchronously drives the half gears to rotate. Then, the half gears mesh with the rack and drive the push plate to move to one side. Then, the push plate acts on the slide rod through the inclined surface, thereby lifting the perforated plate upward. When the half gears and the rack disengage, the push plate will be driven to return to its original position under the action of elastic force, and then the perforated plate will move downward, thereby causing the perforated plate to move up and down periodically.
[0014] Preferably, a pair of guide sleeves are fixed to the inner side of the push plate, a guide post is inserted into the guide sleeve, one end of the guide post is fixed to an ear seat that is fixedly connected to the partition plate, and a second spring is sleeved on the guide post. The two ends of the second spring are fixedly connected to the guide sleeve and the ear seat respectively. In this way, the elastic force of the second spring can be applied to the guide sleeve to drive the push plate to reset and move. Through the sliding cooperation between the guide post and the guide sleeve, the push plate can be laterally limited to move.
[0015] Preferably, a pair of support rods are fixed to the bottom of the perforated plate, and a pressure plate is fixed to the bottom of the two support rods. When the perforated plate moves up and down periodically, it will drive the support rods and pressure plate to move synchronously. The pressure plate will periodically press the coarsely crushed raw material against the two crushing rollers, thereby accelerating the raw material to be crushed between the two crushing rollers.
[0016] Compared with the prior art, the present invention provides a high-efficiency crushing device for raw materials in the processing of high borosilicate glass tubes, which has the following beneficial effects:
[0017] 1. A high-efficiency crushing equipment for raw materials in the processing of high borosilicate glass tubes, which sets up a coarse crushing zone and a fine crushing zone. The raw materials are first coarsely crushed by the coarse crushing frame in the coarse crushing zone, and then the qualified raw materials fall from the perforated plate into the fine crushing zone for fine crushing. Finally, the materials are discharged from the discharge pipe, thereby improving the crushing efficiency.
[0018] 2. A high-efficiency crushing device for raw materials in the processing of high borosilicate glass tubes, wherein an orifice plate is set and the transmission component drives the orifice plate to move up and down periodically. On the one hand, this improves the screening efficiency of the orifice plate on the coarsely crushed raw materials, and on the other hand, it pushes the raw materials that have not passed the coarse crushing again upwards to continue to be coarsely crushed by the coarse crushing frame until they pass the coarse crushing frame. This can improve the crushing efficiency of the raw materials.
[0019] 3. A high-efficiency crushing device for raw materials used in the processing of high borosilicate glass tubes, wherein a pressure plate is set up so that when the perforated plate moves up and down periodically, it will drive the support rod and the pressure plate to move synchronously. The pressure plate will periodically press the coarsely crushed raw material against the two crushing rollers, thereby accelerating the raw material to enter between the two crushing rollers and be crushed. Attached Figure Description
[0020] Figure 1 This is a schematic diagram of the first angle structure of a high-efficiency raw material crushing device for processing high borosilicate glass tubes proposed in this invention;
[0021] Figure 2 This is a second-angle structural schematic diagram of a high-efficiency raw material crushing device for processing high borosilicate glass tubes proposed in this invention;
[0022] Figure 3 This is a schematic diagram of the internal structure of a high-efficiency raw material crushing device for processing high borosilicate glass tubes proposed in this invention;
[0023] Figure 4 This is a schematic diagram of the first angle structure of the coarse crushing zone of a high-efficiency raw material crushing device for processing high borosilicate glass tubes proposed in this invention;
[0024] Figure 5 This is a schematic diagram of the second angle structure of the coarse crushing zone of a high-efficiency raw material crushing device for processing high borosilicate glass tubes proposed in this invention;
[0025] Figure 6 This is a schematic diagram of the magnet mounting structure of a high-efficiency raw material crushing device for processing high borosilicate glass tubes proposed in this invention;
[0026] Figure 7 For the present invention Figure 6 A magnified structural diagram at point A;
[0027] Figure 8 This is a schematic diagram of the pusher plate installation structure of a high-efficiency crushing device for raw materials in the processing of high borosilicate glass tubes proposed in this invention.
[0028] Figure 9 For the present invention Figure 8 A magnified structural diagram at point B.
[0029] In the diagram: 1. Box body; 2. Crushing chamber; 3. Partition plate; 4. Guide plate; 5. Rotating shaft; 6. Coarse crushing frame; 7. Perforated plate; 8. Synchronous pulley; 9. Synchronous belt; 10. First motor; 11. First gear; 12. Second gear; 13. Crushing roller; 14. Third gear; 15. Second motor; 16. Feed hopper; 17. Discharge pipe; 18. Sliding port; 19. Sliding rod; 20. First connecting rod; 21. Second connecting rod; 22. First sleeve rod; 23. Second sleeve rod; 24. Magnet; 25. Guide sleeve; 26. Ear block; 27. Guide post; 28. First spring; 29. Half gear; 30. Push plate; 31. Inclined surface; 32. Rack; 33. Guide sleeve; 34. Ear seat; 35. Guide post; 36. Second spring; 37. Support rod; 38. Pressure plate. Detailed Implementation
[0030] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.
[0031] In the description of this invention, it should be understood that the terms "upper", "lower", "front", "rear", "left", "right", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this invention.
[0032] Reference Figures 1-9 A high-efficiency crushing device for raw materials in the processing of high borosilicate glass tubes includes a housing 1, a feeding hopper 16 at the top of the housing 1, and a discharge pipe 17 at the bottom of the housing 1. The housing 1 is provided with a coarse crushing zone and a fine crushing zone. The coarse crushing zone is located above the fine crushing zone. The coarse crushing zone includes a pair of partitions 3 fixedly connected to the housing 1. Multiple evenly distributed rotating shafts 5 are rotatably connected between the two partitions 3. The rotating shafts 5 are connected to a drive assembly. Multiple evenly distributed coarse crushing frames 6 are fixedly sleeved on the rotating shafts 5. A perforated plate 7 that can move up and down is also provided between the two partitions 3 and located below the rotating shafts 5. The perforated plate 7 and the rotating shafts 5 are connected by a transmission assembly.
[0033] After the equipment is started, the drive component will drive multiple rotating shafts 5 to rotate, and then feed the raw material from the feed hopper 16 into the housing 1. The raw material will first be coarsely crushed by the coarse crushing frame 6 in the coarse crushing zone. Then, the qualified coarsely crushed raw material will fall from the perforated plate 7 into the fine crushing zone for fine crushing, and finally be discharged from the discharge pipe 17. During this process, the transmission component will drive the perforated plate 7 to move up and down periodically. On the one hand, this will improve the screening efficiency of the coarsely crushed raw material by the perforated plate 7. On the other hand, it will push the raw material that has not been coarsely crushed back up to continue to be coarsely crushed by the coarse crushing frame 6 until it is qualified by the coarse crushing frame 6. This can improve the crushing efficiency of the raw material.
[0034] The drive assembly includes a first motor 10 fixed to the outside of one of the partitions 3. The output shaft of the first motor 10 is fixed with a first gear 11. A second gear 12 is fixedly sleeved at the end of one of the rotating shafts 5. The second gear 12 meshes with the first gear 11. Two synchronous pulleys 8 are fixedly sleeved at the ends of the multiple rotating shafts 5 away from the second gear 12. Adjacent synchronous pulleys 8 are connected by synchronous belts 9, which are staggered. The output shaft of the first motor 10 drives the first gear 11 to rotate. Then, the first gear 11 meshes with the second gear 12 to drive one of the rotating shafts 5 to rotate. Then, through the transmission cooperation of the synchronous pulleys 8 and the synchronous belts 9, the multiple rotating shafts 5 rotate synchronously.
[0035] The bottom end of the partition plate 3 is provided with a sliding opening 18, and both sides of the perforated plate 7 are fixed with sliding rods 19 that form a sliding fit with the sliding opening 18; the perforated plate 7 can move up and down through the cooperation of the sliding rods 19 and the sliding opening 18.
[0036] The fine crushing zone includes a crushing chamber 2 fixedly connected to the housing 1. Above the crushing chamber 2 are a pair of guide plates 4 arranged in a V-shape and fixedly connected to the housing 1. A pair of crushing rollers 13 are rotatably connected inside the crushing chamber 2. Both ends of the crushing rollers 13 pass through the housing 1. The same end of the two crushing rollers 13 is respectively fixedly fitted with a third gear 14 that meshes with each other. A second motor 15 is fixedly fixed on one side of the housing 1. The output shaft of the second motor 15 is fixedly connected to the end of one of the crushing rollers 13. After coarse crushing, the raw material is guided between the two crushing rollers 13 by the two guide plates 4. When the second motor 15 is working, its output shaft drives one of the crushing rollers 13 to rotate. Then, through the meshing transmission of the two third gears 14, the two crushing rollers 13 rotate in opposite directions, thereby fine crushing the raw material.
[0037] In Embodiment 1, the transmission assembly includes two sets of first connecting rods 20 and second connecting rods 21. The first connecting rod 20 is rotatably connected to the end of the slide rod 19, and the second connecting rod 21 is fixedly sleeved on the end of a rotating shaft 5 above the slide rod 19. The adjacent ends of the first connecting rod 20 and the second connecting rod 21 in the same set are rotatably connected. When the rotating shaft 5 rotates, it synchronously drives the second connecting rod 21 to rotate. Then, the second connecting rod 21 will drive the slide rod 19 and the perforated plate 7 to move up and down periodically through the first connecting rod 20.
[0038] In embodiment 2, the transmission assembly includes two sets of first sleeve rods 22 and second sleeve rods 23. The first sleeve rods 22 and second sleeve rods 23 are respectively fixedly sleeved on the end of a rotating shaft 5 located above the slide rod 19 and the end of the slide rod 19. Magnets 24 are fixedly connected to the adjacent ends of the first sleeve rods 22 and second sleeve rods 23. An elastic connection is formed between the slide rod 19 and the partition plate 3. When the rotating shaft 5 rotates, it synchronously drives the first sleeve rods 22 to rotate. When the two magnets 24 approach each other, under the magnetic attraction between the two magnets 24, the second sleeve rod 23 will move upward together with the slide rod 19 and the perforated plate 7. When the two magnets 24 move away from each other, the perforated plate 7 will move downward due to the elastic force, thereby causing the perforated plate 7 to move up and down periodically.
[0039] The slide rod 19 has a guide sleeve 25 fixed on one side, and a pair of ear blocks 26 distributed vertically are fixed on the outer side of the partition plate 3. A guide post 27 is fixed between the two ear blocks 26. The guide sleeve 25 is sleeved on the guide post 27, and a first spring 28 is sleeved on the guide post 27. The two ends of the first spring 28 are fixedly connected to the guide sleeve 25 and one of the ear blocks 26, respectively. In this way, the elastic force of the first spring 28 can be applied to the guide sleeve 25 to drive the slide rod 19 and the orifice plate 7 to move downward to reset.
[0040] In embodiment 3, the transmission assembly includes two L-shaped push plates 30. The horizontal section of the push plate 30 is provided with an inclined surface 31 for supporting the slide rod 19, and the vertical section of the push plate 30 is fixed with a rack 32. Half gears 29 are respectively fixedly sleeved at both ends of the rotating shaft 5. The half gears 29 are meshed with the rack 32, and the push plate 30 and the corresponding partition plate 3 form an elastic connection. When the rotating shaft 5 rotates, it synchronously drives the half gears 29 to rotate. Then, the half gears 29 will mesh with the rack 32 and drive the push plate 30 to move to one side. Then, the push plate 30 will act on the slide rod 19 through the inclined surface 31, thereby lifting the perforated plate 7 upward. When the half gears 29 and the rack 32 disengage, the push plate 30 will be driven to reset and move under the action of elastic force. Then, the perforated plate 7 will move downward, thereby making the perforated plate 7 move up and down periodically.
[0041] The inner side of the push plate 30 is fixed with a pair of guide sleeves 33. A guide post 35 is inserted into the guide sleeve 33. One end of the guide post 35 is fixed with an ear seat 34 that is fixedly connected to the partition plate 3. A second spring 36 is sleeved on the guide post 35. The two ends of the second spring 36 are fixedly connected to the guide sleeve 33 and the ear seat 34 respectively. In this way, the elastic force of the second spring 36 can be applied to the guide sleeve 33 to drive the push plate 30 to reset and move. Through the sliding cooperation between the guide post 35 and the guide sleeve 33, the push plate 30 can be moved laterally to limit its movement.
[0042] Furthermore, a pair of support rods 37 are fixed to the bottom of the perforated plate 7, and a pressure plate 38 is fixed to the bottom of the two support rods 37. When the perforated plate 7 moves up and down periodically, it will drive the support rods 37 and the pressure plate 38 to move synchronously. The pressure plate 38 will periodically press the coarsely crushed raw material against the two crushing rollers 13, thereby accelerating the raw material to enter between the two crushing rollers 13 and be crushed.
[0043] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.
Claims
1. A high-efficiency raw material crushing device for processing high borosilicate glass tubes, comprising a housing (1), characterized in that, The box (1) is provided with a feeding hopper (16) at the top and a discharge pipe (17) at the bottom. The box (1) is provided with a coarse crushing zone and a fine crushing zone inside. The coarse crushing zone is located above the fine crushing zone. The coarse crushing zone includes a pair of partitions (3) fixedly connected to the box (1). Multiple evenly distributed rotating shafts (5) are rotatably connected between the two partitions (3). The rotating shafts (5) are connected to a drive assembly. Multiple evenly distributed coarse crushing frames (6) are fixedly sleeved on the rotating shafts (5). A perforated plate (7) that can move up and down is also provided between the two partitions (3) and located below the rotating shafts (5). The perforated plate (7) and the rotating shafts (5) are connected by a transmission assembly. The drive assembly is used to drive multiple rotating shafts (5) to rotate synchronously; The transmission assembly is used to drive the perforated plate (7) to move up and down periodically.
2. The high-efficiency raw material crushing equipment for processing high borosilicate glass tubes according to claim 1, characterized in that, The drive assembly includes a first motor (10) fixed to the outside of one of the partitions (3), a first gear (11) fixed to the output shaft of the first motor (10), a second gear (12) fixedly sleeved at the end of one of the rotating shafts (5), the second gear (12) meshing with the first gear (11), and two synchronous pulleys (8) fixedly sleeved at the ends of the multiple rotating shafts (5) away from the second gear (12), and adjacent synchronous pulleys (8) are connected by synchronous belts (9), and adjacent synchronous belts (9) are staggered.
3. The high-efficiency raw material crushing equipment for processing high borosilicate glass tubes according to claim 1, characterized in that, The bottom end of the partition (3) is provided with a sliding opening (18), and both sides of the perforated plate (7) are fixed with sliding rods (19) that form a sliding fit with the sliding opening (18).
4. The high-efficiency raw material crushing equipment for processing high borosilicate glass tubes according to claim 1, characterized in that, The fine crushing zone includes a crushing chamber (2) fixedly connected to the housing (1). Above the crushing chamber (2) are a pair of guide plates (4) arranged in a figure-eight shape and fixedly connected to the housing (1). A pair of crushing rollers (13) are rotatably connected inside the crushing chamber (2). Both ends of the crushing rollers (13) pass through the housing (1). The same end of the two crushing rollers (13) is respectively fixedly fitted with a third gear (14) that meshes with each other. A second motor (15) is fixedly fixed on one side of the housing (1). The output shaft of the second motor (15) is fixedly connected to the end of one of the crushing rollers (13).
5. The high-efficiency raw material crushing equipment for processing high borosilicate glass tubes according to claim 3, characterized in that, The transmission assembly includes two sets of first connecting rods (20) and second connecting rods (21). The first connecting rod (20) is rotatably connected to the end of the slide rod (19), and the second connecting rod (21) is fixedly sleeved on the end of a rotating shaft (5) above the slide rod (19). The adjacent ends of the first connecting rod (20) and the second connecting rod (21) of the same set are rotatably connected.
6. The high-efficiency raw material crushing equipment for processing high borosilicate glass tubes according to claim 3, characterized in that, The transmission assembly includes two sets of first sleeve rods (22) and second sleeve rods (23). The first sleeve rods (22) and second sleeve rods (23) are respectively fixedly sleeved on the end of a rotating shaft (5) located above the slide rod (19) and the end of the slide rod (19). Magnets (24) are fixedly connected to the adjacent ends of the first sleeve rods (22) and the second sleeve rods (23). An elastic connection is formed between the slide rod (19) and the partition (3).
7. The high-efficiency raw material crushing equipment for processing high borosilicate glass tubes according to claim 6, characterized in that, A guide sleeve (25) is fixed on one side of the slide rod (19), and a pair of ear blocks (26) distributed vertically are fixed on the outside of the partition plate (3). A guide post (27) is fixed between the two ear blocks (26). The guide sleeve (25) is sleeved on the guide post (27), and a first spring (28) is sleeved on the guide post (27). The two ends of the first spring (28) are fixedly connected to the guide sleeve (25) and one of the ear blocks (26) respectively.
8. The high-efficiency raw material crushing equipment for processing high borosilicate glass tubes according to claim 3, characterized in that, The transmission assembly includes two L-shaped push plates (30). The horizontal section of the push plate (30) is provided with an inclined surface (31) for supporting the slide rod (19). The vertical section of the push plate (30) is fixed with a rack (32). Half gears (29) are fixedly sleeved at both ends of the rotating shaft (5). The half gears (29) mesh with the rack (32). An elastic connection is formed between the push plate (30) and the corresponding partition (3).
9. The high-efficiency raw material crushing equipment for processing high borosilicate glass tubes according to claim 8, characterized in that, A pair of guide sleeves (33) are fixed on the inner side of the push plate (30). A guide post (35) is inserted into the guide sleeve (33). One end of the guide post (35) is fixed with an ear seat (34) that is fixedly connected to the partition plate (3). A second spring (36) is sleeved on the guide post (35). The two ends of the second spring (36) are fixedly connected to the guide sleeve (33) and the ear seat (34) respectively.
10. A high-efficiency raw material crushing device for processing high borosilicate glass tubes according to claim 5, 6, or 8, characterized in that, A pair of support rods (37) are fixed to the bottom of the perforated plate (7), and a pressure plate (38) is fixed to the bottom of the two support rods (37).