Scrap recovery equipment for degradable material processing
The system addresses inefficiencies in waste material processing by using movable magnetic elements to continuously relocate collected metal contaminants, ensuring consistent absorption and reducing maintenance needs, thus enhancing operational efficiency.
Patent Information
- Application Number
- CN202510537209.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-27
- Publication Date
- 2025-07-15
AI Technical Summary
In existing degradable material processing equipment, the adsorption distance of metal adsorption components is too far, resulting in some iron filings not being effectively adsorbed, and frequent shutdown and cleaning lead to low working efficiency.
The combination design of adsorption electromagnet and transfer electromagnet is adopted. Through the cooperation of electric push rods and airbags, the instant transfer and collection of iron filings can be achieved, and the shutdown and cleaning are avoided. The airflow is guided and dispersed in combination with the diversion block and the dial block to ensure the adsorption effect.
It realizes efficient adsorption and collection of iron filings, avoids equipment damage, improves work efficiency, and ensures the continuous and good effect of adsorbing electromagnets.
Smart Images

Figure CN120306120A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of degradable materials, and particularly to a waste chip recycling device for processing degradable materials. Background Art
[0002] Existing Chinese patent: A bamboo chip recycling device for bamboo processing (CN221268540U) sucks bamboo chips into a recycling box through a blower for spray sedimentation to achieve bamboo chip recycling, and adsorbs metals mixed in the bamboo chips through a metal adsorption component to remove the metals mixed in the bamboo chips and avoid damage to the blades of the blower. However, the metal adsorption component of this device is located at the upper part of the recycling pipeline, and can only achieve a good adsorption effect on the iron chips passing through the upper part of the recycling pipeline. For the iron chips passing through other areas of the pipeline, due to the too long adsorption distance, it is difficult to achieve a good adsorption effect, resulting in some iron chips still contacting the blower following the bamboo chips, causing damage to the blower.
[0003] Moreover, after the metal adsorption component has worked for a period of time, a large amount of iron chips will be adsorbed on the surface of the metal adsorption component. As the adsorption work progresses, the iron chips will gradually cover the part of the metal adsorption component for adsorption, and the subsequent adsorbed iron chips will stack layer by layer, and the adsorption force of the metal adsorption component will also weaken with the stacking of the iron chips. The subsequent iron chips passing through the metal adsorption component will be carried into the cavity by the air flow and bamboo chips. If the metal adsorption component is to maintain a good adsorption effect at all times, it is necessary to frequently stop the machine to clean the iron chips on the metal adsorption component so that it can be put into work again, and the overall working efficiency is too low. Summary of the Invention
[0004] In order to overcome the disadvantages mentioned in the background, the present invention provides a waste chip recycling device for processing degradable materials.
[0005] The technical solution is: a waste chip recycling device for processing degradable materials, including a first pipe body, a feeding pipe, and an adsorption electromagnet; the first pipe body is connected to a plurality of feeding pipes; the first pipe body is sleeved with an adsorption electromagnet; it further includes an annular mounting frame, a first electric push rod, a transfer electromagnet, a second pipe body, a sleeve, an annular airbag, an air pipe, a mounting ring, a second electric push rod, a third electric push rod, and a chip suction ring; the first pipe body is provided with an annular mounting frame; the annular mounting frame is installed with a plurality of first electric push rods; the telescopic parts of all the first electric push rods are jointly provided with a transfer electromagnet, and the transfer electromagnet is slidably connected to the first pipe body; the first pipe body is provided with a second pipe body; a discharge cavity is jointly formed between the first pipe body and the second pipe body; the second pipe body is slidably connected with a sleeve, and the first pipe body, the second pipe body, and the sleeve are mutually connected; an annular airbag is arranged inside the first pipe body; the annular airbag is connected to a plurality of air pipes; the second pipe body is fixedly connected with a mounting ring; the mounting ring is installed with a plurality of second electric push rods; the telescopic parts of all the second electric push rods are jointly fixedly connected to the sleeve; the mounting ring is installed with a plurality of third electric push rods; the telescopic parts of all the third electric push rods are jointly provided with a chip suction ring, and the chip suction ring is sleeved on the sleeve; a plurality of through holes are formed in the chip suction ring.
[0006] Further, it further includes a partition ring; the first pipe body is provided with a partition ring, and the partition ring is located between the adsorption electromagnet and the transfer electromagnet.
[0007] Further, it further includes a fixing frame, a long rod, and a flow dividing block; the second pipe body is fixedly connected with a fixing frame; the fixing frame is provided with a long rod; the long rod is fixedly connected with a flow dividing block, and the flow dividing block faces the adsorption electromagnet.
[0008] Further, the end of the flow dividing block facing the feeding pipe is set as a conical structure.
[0009] Further, it further includes a driving motor and a dialing block; the first pipe body is installed with a driving motor, and the output shaft of the driving motor is fixedly connected to the long rod, and the long rod is rotatably connected to the fixing frame; a plurality of dialing blocks distributed in an annular array are fixedly connected to the conical surface of the flow dividing block.
[0010] Further, all the feeding pipes are inclined and inclined towards the middle of the conical structure of the flow dividing block.
[0011] Further, the inner edges of the opposite surfaces of the second pipe body and the first pipe body are chamfered.
[0012] Further, it further includes a toothed ring, a power motor, and a gear; the first pipe body is rotatably connected to the annular mounting frame; the first pipe body is rotatably connected to the partition ring; the annular mounting frame is fixedly connected with a toothed ring; the first pipe body is fixedly connected with a power motor; the output shaft of the power motor is fixedly connected with a gear, and the gear meshes with the toothed ring.
[0013] Further, it further includes a scraping blade; the long rod is fixedly connected with a scraping blade, and the scraping blade is attached to the inner wall of the first pipe body and is attached to the side of the annular airbag facing the feeding pipe.
[0014] Further, the casing is provided with an annular groove; the annular groove is provided with a plurality of bristles, and the bristles expose out of the annular groove and contact the through holes on the chip suction ring.
[0015] The beneficial effects of the present invention are as follows: 1. In the present invention, while the iron filings are adsorbed by the adsorption electromagnet, the iron filings on the adsorption electromagnet are timely transferred, discharged and collected by the transfer electromagnet, and the iron filings can be removed without stopping the machine, which solves the problem in the prior art that in order to keep the metal adsorption component in good adsorption effect, it is necessary to frequently stop the machine to clean the iron filings on the metal adsorption component so that it can work again, resulting in too low overall working efficiency.
[0016] 2. In the present invention, when the air flow carries the bamboo chips and passes through the first pipe body, the casing and the second pipe body from right to left in sequence and enters the bamboo chip recovery equipment communicated with the second pipe body, through the conical structure on the right side of the shunt block, the air flow and the bamboo chips carried by it are first guided and dispersed. After the air flow is guided by the conical structure of the shunt block, it will move towards the edge of the shunt block, that is, the inner wall of the first pipe body, so that the bamboo chips are close to the inner wall of the first pipe body and the adsorption electromagnet. In this way, a good adsorption effect of the adsorption electromagnet can be ensured.
[0017] 3. In the present invention, the iron filings moving in the discharge cavity following the transfer electromagnet agitate the bamboo chips stuck in the discharge cavity, so that the bamboo chips can be smoothly carried by the air flow and enter the externally provided bamboo chip collection equipment. Description of the Drawings
[0018] Figure 1 is a schematic structural diagram of the present invention;
[0019] Figure 2 is a sectional view of the first combined structure of the first pipe body, the second pipe body and the casing of the present invention;
[0020] Figure 3 is a sectional view of the second combined structure of the first pipe body, the second pipe body and the casing of the present invention;
[0021] Figure 4 is a schematic combined structure diagram of the annular airbag and the shunt block of the present invention;
[0022] Figure 5 The upper one is a schematic diagram of the contracted state of the annular airbag of the present invention, and the lower one is a schematic diagram of the expanded state of the annular airbag of the present invention.
[0023] Reference numerals in the drawings: 1 - first pipe body, 2 - feeding pipe, 3 - adsorption electromagnet, 4 - annular mounting bracket, 5 - first electric push rod, 6 - transfer electromagnet, 7 - second pipe body, 8 - sleeve, 9 - annular airbag, 10 - air pipe, 11 - mounting ring, 12 - second electric push rod, 13 - third electric push rod, 14 - chip suction ring, 15 - partition ring, 20 - fixing bracket, 21 - long rod, 22 - shunt block, 30 - driving motor, 31 - shifting block, 40 - toothed ring, 41 - power motor, 42 - gear, 50 - scraping blade, 100 - discharge cavity, 200 - partition cavity, 8001 - annular groove, 14001 - through hole. Detailed implementation manners
[0024] The following is only a preferred embodiment of the present invention, and does not limit the protection scope of the present invention accordingly.
[0025] Embodiment 1
[0026] A waste chip recycling device for processing degradable materials, as Figures 1 - 5 shown, includes a first pipe body 1, a feeding pipe 2 and an adsorption electromagnet 3; the first pipe body 1 is communicated with a plurality of feeding pipes 2, and the feeding pipes 2 are communicated with an externally provided bamboo chip suction device; the first pipe body 1 is sleeved with an adsorption electromagnet 3;
[0027] It further includes an annular mounting bracket 4, a first electric push rod 5, a transfer electromagnet 6, a second pipe body 7, a sleeve 8, an annular airbag 9, an air pipe 10, a mounting ring 11, a second electric push rod 12, a third electric push rod 13 and a chip suction ring 14; the first pipe body 1 is provided with an annular mounting bracket 4; the annular mounting bracket 4 is installed with at least two first electric push rods 5; the telescopic parts of all the first electric push rods 5 are jointly provided with a transfer electromagnet 6, and the transfer electromagnet 6 is slidably connected with the first pipe body 1; the first pipe body 1 is provided with a second pipe body 7, and the second pipe body 7 is communicated with an externally provided bamboo chip recycling device; a discharge cavity 100 is jointly formed between the first pipe body 1 and the second pipe body 7; the second pipe body 7 is slidably connected with a sleeve 8, and the first pipe body 1, the second pipe body 7 and the sleeve 8 are communicated with each other; an annular airbag 9 is arranged inside the first pipe body 1; the annular airbag 9 is communicated with a plurality of air pipes 10; all the air pipes 10 are jointly communicated with an externally provided air pump; the second pipe body 7 is bolted with a mounting ring 11; the mounting ring 11 is installed with at least two second electric push rods 12; the telescopic parts of all the second electric push rods 12 are jointly fixed to the sleeve 8; the mounting ring 11 is installed with at least two third electric push rods 13; the telescopic parts of all the third electric push rods 13 are jointly provided with a chip suction ring 14, and the chip suction ring 14 is sleeved on the sleeve 8, and the chip suction ring 14 is communicated with an externally provided iron chip collection device; a plurality of through holes 14001 are formed in the chip suction ring 14.
[0028] It also includes a separating ring 15; the tube body 1 is provided with the separating ring 15, and the separating ring 15 is located between the adsorption electromagnet 3 and the transfer electromagnet 6. The separating ring 15 separates the adsorption electromagnet 3 and the transfer electromagnet 6 to avoid frequent direct contact between the adsorption electromagnet 3 and the transfer electromagnet 6, thereby avoiding problems such as magnetic force weakening, magnetic pole reversal and physical damage of the adsorption electromagnet 3 and the transfer electromagnet 6.
[0029] The present invention works specifically as follows:
[0030] First, the adsorption electromagnet 3, the electric push rod 1 5, the transfer electromagnet 6, the electric push rod 2 12, the electric push rod 3 13, and the chip suction ring 14 are electrically connected to the controller;
[0031] Next, the adsorption electromagnet 3 is powered to enable it to have the ability to adsorb iron filings, and then the external bamboo chip suction device is controlled to transport the bamboo chips generated by the bamboo material processing equipment from the feed pipe 2 to the tube body 1. The bamboo chips are carried by the airflow from right to left through the tube body 1, the sleeve 8 and the tube body 2 7, and finally enter the bamboo chip recovery device connected to the tube body 2 7. During this process, the iron filings in the bamboo chips passing through the tube body 1 will be adsorbed by the adsorption electromagnet 3, so that the adsorption electromagnet 3 adsorbs the iron filings in the bamboo chips through the tube body 1 and stays on the inner wall of the tube body 1, thereby removing the iron filings in the bamboo chips. Since the adsorption electromagnet 3 is annular, the adsorption electromagnet 3 has the same adsorption effect on the iron filings passing through various areas of the tube body 1, which solves the problem in the prior art that the metal adsorption component is difficult to achieve a good adsorption effect due to the long adsorption distance, resulting in some iron filings still following the bamboo chips to contact the fan and cause damage to the fan.
[0032] When a certain amount of iron filings are adsorbed at the adsorption electromagnet 3, the telescopic part of the electric push rod 5 is controlled to drive the transfer electromagnet 6 to gradually approach the adsorption electromagnet 3 until the transfer electromagnet 6 is close to the adsorption electromagnet 3; in this process, in order to avoid the magnetic fields of the adsorption electromagnet 3 and the transfer electromagnet 6 from interfering with each other, when the transfer electromagnet 6 gradually approaches the adsorption electromagnet 3, the adsorption electromagnet 3 is first powered off, and after the adsorption electromagnet 3 temporarily loses its adsorption capacity, the iron filings adsorbed on the adsorption electromagnet 3 through the tube body 1 will be transferred to the transfer electromagnet 6;
[0033] Next, the telescopic part of the electric push rod 15 is controlled to drive the transfer electromagnet 6 to gradually move away from the adsorption electromagnet 3 until the transfer electromagnet 6 is directly opposite to the discharge cavity 100. During this process, the iron filings adsorbed on the transfer electromagnet 6 through the tube body 1 will move synchronously with the transfer electromagnet 6 and enter the discharge cavity 100. In this way, the iron filings adsorbed on the adsorption electromagnet 3 through the tube body 1 are transferred to the discharge cavity 100.
[0034] Next, control the peripheral air pump to inject air into the annular airbag 9 through the air pipe 10, causing the annular airbag 9 to gradually expand, changing from Figure 5 the contracted state shown above to Figure 5 the expanded state shown below. As shown in Figure 4 the figure, the expanded annular airbag 9 forms a closed partition cavity 200, and the partition cavity 200 covers the iron filings in the discharge cavity 100, preventing the iron filings in the discharge cavity 100 from being carried by the air flow passing through the first pipe body 1, the sleeve 8, and the second pipe body 7 from right to left into the bamboo chip recovery device connected to the second pipe body 7 when the transfer electromagnet 6 is powered off subsequently;
[0035] Next, power off the transfer electromagnet 6 to temporarily lose its adsorption ability. At this time, the iron filings that are no longer affected by the adsorption of the transfer electromagnet 6 will fall into the discharge cavity 100 and the partition cavity 200;
[0036] Next, control the telescopic part of the electric push rod three 13 to drive the chip suction ring 14 to move to face the discharge cavity 100, as shown in Figure 4 the figure. Then, control the telescopic part of the electric push rod two 12 to drive the sleeve 8 to gradually move away from the first pipe body 1, so that the discharge cavity 100 can be connected to the through hole 14001. At this time, control the chip suction ring 14 to suck the iron filings in the discharge cavity 100 and the partition cavity 200 through the through hole 14001, so that the iron filings enter the peripheral iron filing collection device in sequence from the partition cavity 200, the discharge cavity 100, the through hole 14001, and the chip suction ring 14, realizing the transfer and discharge of the iron filings;
[0037] When the transfer electromagnet 6 moves away from the adsorption electromagnet 3, power on the adsorption electromagnet 3 again to continue the iron filing adsorption work. In this way, while the adsorption electromagnet 3 is performing the iron filing adsorption work, the transfer electromagnet 6 timely transfers, discharges, and collects the iron filings on the adsorption electromagnet 3, and the iron filing removal work can be realized without stopping the machine, solving the problem in the prior art that in order to keep the metal adsorption component in good adsorption effect, it is necessary to frequently stop the machine to clean the iron filings on the metal adsorption component so that it can be put into work again, resulting in too low overall work efficiency.
[0038] After the iron filings are discharged from the discharge cavity 100 and the partition cavity 200, control the telescopic part of the electric push rod two 12 to drive the sleeve 8 to gradually approach the first pipe body 1, so that the discharge cavity 100 is no longer connected to the through hole 14001. Then, control the telescopic part of the electric push rod three 13 to drive the chip suction ring 14 to move away from the first pipe body 1 to return to the initial position. Finally, control the annular airbag 9 to contract, waiting for the next transfer and discharge work of the iron filings.
[0039] Embodiment 2
[0040] Based on the above Embodiment 1, as shown inFigures 2 - 3 As shown, it also includes a fixing frame 20, a long rod 21 and a diverter block 22; the tube body 7 is bolted to the fixing frame 20; the fixing frame 20 is provided with a long rod 21; the long rod 21 is fixedly connected to the diverter block 22, and the diverter block 22 is opposite to the adsorption electromagnet 3.
[0041] The diverter block 22 is configured as a conical structure at one end facing the feed pipe 2 .
[0042] It also includes a driving motor 30 and a shift block 31; the pipe body 1 is equipped with a driving motor 30, and the output shaft of the driving motor 30 is fixedly connected to the long rod 21, and the long rod 21 and the fixed frame 20 are arranged to be rotatably connected; the conical surface of the diverter block 22 is fixedly connected with at least six shift blocks 31 distributed in a ring array.
[0043] All the feed pipes 2 are inclined and inclined toward the middle of the conical structure of the diverter block 22. When the bamboo chips enter the tube body 1 from the feed pipe 2, the feed pipe 2 inclined toward the middle of the diverter block 22 will make the bamboo chips contact the middle of the conical structure of the diverter block 22 at the first time and be broken up by the shifting block 31, ensuring that most of the bamboo chips can be broken up by the shifting block 31.
[0044] The inner edges of the facing surfaces of the tube body 2 7 and the tube body 1 are chamfered. When the iron filings are sucked out from the discharge cavity 100 and the separation cavity 200, the chamfered inner edges of the facing surfaces of the tube body 2 7 and the tube body 1 can reduce the movement resistance caused by the angle when the iron filings move to a certain extent.
[0045] The present invention works specifically as follows:
[0046] When the iron filings in the bamboo filings passing through the tube body 1 are adsorbed by the adsorption electromagnet 3 through the tube body 1, a good and stable adsorption effect can be achieved for the iron filings close to the inner wall of the tube body 1. However, relative to the iron filings in the central area of the tube body 1, the iron filings and the tube body 1 are not only separated by the tube body 1, but also have a large distance therebetween. The iron filings passing through the central area of the tube body 1 are easily carried by the airflow and bamboo filings and quickly pass through the tube body 1, and are not adsorbed by the adsorption electromagnet 3, making it difficult to achieve a good adsorption effect, resulting in some iron filings still following the bamboo filings to contact the fan, causing damage to the fan.
[0047] Therefore, when the airflow carries bamboo chips and sequentially passes through the first pipe body 1, the sleeve 8, and the second pipe body 7 from right to left and enters the bamboo chip recovery device connected to the second pipe body 7, through the right conical structure of the flow dividing block 22, the airflow and the bamboo chips it carries are first guided and dispersed. After the airflow is guided by the conical structure of the flow dividing block 22, it will move towards the edge of the flow dividing block 22, that is, the inner wall of the first pipe body 1, causing the bamboo chips to approach the inner wall of the first pipe body 1 and the adsorption electromagnet 3. In this way, it can ensure that the adsorption electromagnet 3 has a good adsorption effect.
[0048] During the process of some bamboo chips entering the feeding pipe 2, when they come into contact with the moisture in the air, agglomeration will occur. Some iron chips will be wrapped inside the bamboo chip clusters by the bamboo chips, and it is difficult for the adsorption electromagnet 3 to have a good adsorption effect on the iron chips inside the bamboo chip clusters. Therefore, while guiding and dispersing the bamboo chips through the flow dividing block 22, control the output shaft of the driving motor 30 to drive the long rod 21 to rotate rapidly. As a result, the long rod 21 drives the flow dividing block 22 and the dial block 31 to rotate rapidly. The bamboo chip clusters entering the first pipe body 1 from the feeding pipe 2 will be quickly dispersed by the dispersing action of the dial block 31 in the first time, ensuring that the adsorption electromagnet 3 can always have a good adsorption effect.
[0049] Embodiment 3
[0050] Based on the above Embodiment 2, as Figures 1 - 5 shown, it further includes a toothed ring 40, a power motor 41, and a gear 42; the first pipe body 1 is rotatably connected to the annular mounting frame 4; the first pipe body 1 is rotatably connected to the partition ring 15; the annular mounting frame 4 is fixedly connected with the toothed ring 40; the first pipe body 1 is bolted with the power motor 41; the output shaft of the power motor 41 is fixedly connected with the gear 42, and the gear 42 meshes with the toothed ring 40.
[0051] It further includes a scraping blade 50; the long rod 21 is fixedly connected with the scraping blade 50, and the scraping blade 50 is in contact with the inner wall of the first pipe body 1 and is also in contact with the side of the annular airbag 9 facing the feeding pipe 2.
[0052] The sleeve 8 is provided with an annular groove 8001; a number of bristles are arranged in the annular groove 8001, and the bristles protrude from the annular groove 8001 and are in contact with the through holes 14001 on the chip suction ring 14.
[0053] The specific working process of the present invention is as follows:
[0054] As Figure 5As shown above, when the annular airbag 9 is in a contracted state, the discharge cavity 100 is exposed to the inside of the tube body 1, and some bamboo chips passing through the discharge cavity 100 will be stuck in the discharge cavity 100. When the iron chips in the discharge cavity 100 and the separation cavity 200 are subsequently extracted by the chip suction ring 14, some bamboo chips will also be extracted, so that the bamboo chips cannot be completely recovered by the external bamboo chip collection device;
[0055] Therefore, before the transfer electromagnet 6 drives the iron filings to move to the discharge cavity 100 and before the annular airbag 9 expands, the output shaft of the control power motor 41 drives the gear 42 to rotate, so that the gear 42 drives the gear ring 40 and the annular mounting frame 4 to rotate 45 degrees clockwise from the right to the left, and then rotate 45 degrees counterclockwise from the right to the left, and repeats this process, so that the annular mounting frame 4 drives the electric push rod 15 and the transfer electromagnet 6 to rotate back and forth. During this process, the iron filings adsorbed on the transfer electromagnet 6 through the tube body 1 will move synchronously with the transfer electromagnet 6. In this way, the bamboo chips stuck in the discharge cavity 100 can be stirred by the iron filings moving in the discharge cavity 100 with the transfer electromagnet 6, so that the bamboo chips can be smoothly carried by the airflow into the external bamboo chip collection device;
[0056] It should be noted that when the output shaft of the driving motor 30 drives the long rod 21 to rotate rapidly, the long rod 21 will also drive the scraper 50 to rotate synchronously, so that the scraper 50 scrapes the annular airbag 9 toward the side of the feed pipe 2, thereby avoiding the bamboo chips from gathering at the corner, and making the bamboo chips unable to be completely recovered by the external bamboo chip collection equipment.
[0057] After the chip suction ring 14 has been working for a long time with suction, some through holes 14001 will be clogged with iron chips; therefore, the present invention provides a plurality of bristles in the annular groove 8001, and the bristles are exposed in the annular groove 8001 and contact the through holes 14001 on the chip suction ring 14; when the sleeve 8 is driven away from the tube body 1 and the chip suction ring 14 is driven close to the tube body 1, the bristles exposed in the annular groove 8001 will scrape away the iron chips clogged in the through holes 14001, thereby avoiding the through holes 14001 from being clogged with iron chips.
[0058] The above is only a specific embodiment of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art can easily think of changes or substitutions within the technical scope disclosed by the present invention, which should be included in the protection scope of the present invention. Therefore, the protection scope of the present invention should be based on the protection scope of the claims.
Claims
1. A waste chip recycling device for processing degradable materials, comprising a first pipe body (1), a feed pipe (2) and an adsorption electromagnet (3); the first pipe body (1) is communicated with a plurality of feed pipes (2); the first pipe body (1) is sleeved with an adsorption electromagnet (3); characterized in that, It further includes an annular mounting bracket (4), a first electric push rod (5), a transfer electromagnet (6), a second pipe body (7), a sleeve (8), an annular airbag (9), an air pipe (10), a mounting ring (11), a second electric push rod (12), a third electric push rod (13) and a chip suction ring (14); the first pipe body (1) is provided with an annular mounting bracket (4); the annular mounting bracket (4) is installed with a plurality of first electric push rods (5); the telescopic parts of all the first electric push rods (5) are jointly provided with a transfer electromagnet (6), and the transfer electromagnet (6) is slidably connected to the first pipe body (1); the first pipe body (1) is provided with a second pipe body (7); a discharge cavity (100) is jointly formed between the first pipe body (1) and the second pipe body (7); the second pipe body (7) is slidably connected with a sleeve (8), and the first pipe body (1), the second pipe body (7) and the sleeve (8) are mutually communicated; an annular airbag (9) is arranged in the first pipe body (1); the annular airbag (9) is communicated with a plurality of air pipes (10); the second pipe body (7) is fixedly connected with a mounting ring (11); the mounting ring (11) is installed with a plurality of second electric push rods (12); the telescopic parts of all the second electric push rods (12) are jointly fixedly connected with the sleeve (8); the mounting ring (11) is installed with a plurality of third electric push rods (13); the telescopic parts of all the third electric push rods (13) are jointly provided with a chip suction ring (14), and the chip suction ring (14) is sleeved on the sleeve (8); a plurality of through holes (14001) are formed in the chip suction ring (14).
2. The waste chip recycling equipment for processing degradable materials according to claim 1, characterized in that, It further includes a partition ring (15); the first pipe body (1) is provided with a partition ring (15), and the partition ring (15) is located between the adsorption electromagnet (3) and the transfer electromagnet (6).
3. The waste chip recycling equipment for processing degradable materials according to claim 1, characterized in that, It further includes a fixed bracket (20), a long rod (21) and a flow dividing block (22); the second pipe body (7) is fixedly connected with a fixed bracket (20); the fixed bracket (20) is provided with a long rod (21); the long rod (21) is fixedly connected with a flow dividing block (22), and the flow dividing block (22) faces the adsorption electromagnet (3).
4. The waste chip recycling device for processing degradable materials according to claim 3, characterized in that, One end of the flow dividing block (22) facing the feed pipe (2) is arranged in a conical structure.
5. The waste chip recycling equipment for processing degradable materials according to claim 4, characterized in that, It further includes a driving motor (30) and a dial block (31); the first pipe body (1) is installed with a driving motor (30), and the output shaft of the driving motor (30) is fixedly connected with the long rod (21), and the long rod (21) is rotatably connected with the fixed bracket (20); a plurality of dial blocks (31) distributed in an annular array are fixedly connected to the conical surface of the flow dividing block (22).
6. The waste chip recycling device for processing degradable materials according to claim 5, wherein, All the feed pipes (2) are inclined, and are inclined towards the middle of the conical structure of the flow dividing block (22).
7. A waste chip recycling device for processing degradable materials according to any one of claims 5-6, characterized in that, The inner edges of the opposite surfaces of the second pipe body (7) and the first pipe body (1) are chamfered.
8. A waste chip recycling device for processing degradable materials according to claim 7, characterized in that, It further includes a toothed ring (40), a power motor (41) and a gear (42); the first pipe body (1) is rotatably connected with the annular mounting bracket (4); the first pipe body (1) is rotatably connected with the partition ring (15); the annular mounting bracket (4) is fixedly connected with a toothed ring (40); the first pipe body (1) is fixedly connected with a power motor (41); the output shaft of the power motor (41) is fixedly connected with a gear (42), and the gear (42) meshes with the toothed ring (40).
9. The waste chip recycling equipment for processing degradable materials according to claim 8, characterized in that, It further includes a scraping blade (50); the long rod (21) is fixedly connected with the scraping blade (50), and the scraping blade (50) is attached to the inner wall of the first pipe body (1), and the scraping blade (50) is attached to the side of the annular airbag (9) facing the feeding pipe (2).
10. The waste chip recycling device for processing degradable materials according to claim 9, characterized in that, The sleeve (8) is provided with an annular groove (8001); a number of bristles are arranged in the annular groove (8001), and the bristles protrude from the annular groove (8001) and contact the through holes (14001) on the chip suction ring (14).
Citation Information
Patent Citations
Bamboo sawdust recovery device for bamboo wood processing
CN221268540U