Waste recovery device for insulating material processing
By designing an insulating material waste recycling device that includes waste recycling, mobile sealing, rotary feeding and drive mechanisms, the problems of waste splashing and dropping are solved, and safe and efficient waste collection is achieved.
Patent Information
- Application Number
- CN202510483919.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-17
- Publication Date
- 2025-07-04
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The inlet design of the existing insulating material waste recycling device poses safety hazards. The waste is prone to splashing and the broken waste is easily dropped to the ground, affecting the collection effect.
A device including a waste recycling mechanism, a movable sealing mechanism, a rotary feeding mechanism, a driving mechanism and a starting mechanism is designed to control the delivery and collection of waste through a servo motor to ensure that the waste does not splash to the staff side and maintain the accurate position of the collection box.
Improve the safety of waste recycling of insulating material, avoiding waste splashing and falling, ensuring effective waste collection, and improving operational safety and efficiency.
Smart Images

Figure CN120243210A_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of waste recycling of insulating materials. More specifically, it particularly relates to a waste recycling device for processing insulating materials. Background Art
[0002] The processing of insulating materials refers to the process of processing materials with high insulation performance into the required shapes and sizes through a series of technological steps; when processing insulating materials, waste will be generated, and the waste contains a large amount of recyclable resources. After recycling, these materials can be reprocessed and utilized, reducing the demand for new resources.
[0003] The currently used waste recycling devices still have the following problems:
[0004] 1. The feed inlet is generally set at the top or on one side close to the usage direction, resulting in the situation that when the waste is crushed, the waste is likely to splash. The waste will splash towards the staff or upwards, posing a safety hazard.
[0005] 2. Usually, the crushed waste is collected through a collection bag or a collection box. When the collection bag or the collection box is not placed in the accurate position, the waste recycling device can still work, resulting in the crushed waste being easily dropped to the ground, affecting the waste collection effect. Summary of the Invention
[0006] The embodiment of the present disclosure relates to a waste recycling device for processing insulating materials, which has a waste recycling mechanism, a movable sealing mechanism, a rotating feeding mechanism, a driving mechanism, and a starting mechanism; it ensures that the splashed waste does not move towards the side of the staff, improving the safety during the recycling of insulating material waste; it ensures that when the servo motor A and the servo motor B work, the waste collection box is always in the accurate collection position, preventing the crushed waste from dropping to the ground; it solves the problems that the waste will splash towards the staff or upwards and the crushed waste is easily dropped to the ground.
[0007] The present invention provides a waste recycling device for processing insulating materials, including a waste recycling mechanism; a movable sealing mechanism is installed on the waste recycling mechanism; a rotating feeding mechanism is installed at the top of the waste recycling mechanism; a driving mechanism is installed on the waste recycling mechanism, and the driving mechanism is used to rotate the rotating feeding mechanism.
[0008] A waste collection box is installed on the waste recycling mechanism, and the waste collection box is located directly below the movable sealing mechanism; two starting mechanisms are installed on the waste recycling mechanism, and the two starting mechanisms are used to control the waste recycling mechanism and the driving mechanism.
[0009] In at least some embodiments, the waste recycling mechanism includes: a support frame, a crushing barrel for insulating materials, and a limiting retaining ring; the crushing barrel for insulating materials is fixedly installed on the support frame, and two feeding round holes are provided at the top of the crushing barrel for insulating materials; there are two limiting retaining rings in total, and the two limiting retaining rings are fixedly installed outside the crushing barrel for insulating materials, and two arc-shaped slot holes are provided on the lower limiting retaining ring.
[0010] In at least some embodiments, the waste recycling mechanism further includes: a servo motor A, a circular driving rod, and crushing blades; the servo motor A is installed on the top of the crushing barrel for insulating materials by screws; the circular driving rod is fixedly installed on the output shaft of the servo motor A; there is a row of crushing blades in total, and the row of crushing blades is fixedly installed outside the circular driving rod.
[0011] In at least some embodiments, the movable sealing mechanism includes: a circular guiding rod, a movable sealing plate, and arc-shaped stress blocks; there is a circle of circular guiding rods in total, and the circle of circular guiding rods is fixedly installed at the bottom of the crushing barrel for insulating materials; the movable sealing plate is slidably installed outside the circle of circular guiding rods, and the top of the movable sealing plate is in contact with the bottom of the crushing barrel for insulating materials; there are four arc-shaped stress blocks in total, and the four arc-shaped stress blocks are fixedly installed on the top of the movable sealing plate.
[0012] In at least some embodiments, the movable sealing mechanism further includes: a positioning ring A and a return spring A; there is a circle of positioning rings A in total, and the circle of positioning rings A is fixedly installed at the bottom end of the circle of circular guiding rods; there is a circle of return springs A in total, and the circle of return springs A is sleeved outside the circle of circular guiding rods, and the circle of return springs A is located between the movable sealing plate and the circle of positioning rings A.
[0013] In at least some embodiments, the rotary feeding mechanism includes: a circular mounting sleeve and a circular feeding pipe; the circular mounting sleeve is rotatably installed outside the crushing barrel for insulating materials, and the circular mounting sleeve is also in contact with the inner sides of the two limiting retaining rings; there are four circular feeding pipes in total, and the four circular feeding pipes are fixedly installed outside the circular mounting sleeve, and the two circular feeding pipes on the front and back sides are aligned with the two feeding round holes.
[0014] In at least some embodiments, the rotary feeding mechanism further includes: a gear A and a rectangular stress rod; the gear A is fixedly installed at the bottom end of the circular mounting sleeve; there are two rectangular stress rods in total, and the two rectangular stress rods are fixedly installed at the bottom of the circular mounting sleeve; the two rectangular stress rods are inserted into the two arc-shaped slot holes of the lower limiting retaining ring, and the bottoms of the two rectangular stress rods are provided with rounded corners, and the bottoms of the two rectangular stress rods are in contact with the movable sealing plate.
[0015] In at least some embodiments, the drive mechanism includes: a servo motor B and a gear B; the servo motor B is fixedly installed on the support frame; the gear B is fixedly installed on the output shaft of the servo motor B, and the gear B is also meshed with the gear A.
[0016] In at least some embodiments, the starting mechanism includes: a rectangular protective sleeve, a movable mounting plate, a control box and a reset block; the rectangular protective sleeve is fixedly installed on the support frame; the movable mounting plate is slidably installed on the support frame and the rectangular protective sleeve, and the bottom end of the movable mounting plate is provided with a rounded corner, and the bottom end of the movable mounting plate is in contact with the waste collection box; the control box is fixedly installed inside the movable mounting plate, and the control box is electrically connected to the servo motor A and the servo motor B; the reset block is fixedly installed inside the movable mounting plate.
[0017] In at least some embodiments, the starting mechanism further includes: a circular mounting shaft, a positioning ring B and a reset spring B; the circular mounting shaft is fixedly installed on the support frame, and the circular mounting shaft is also slidably connected to the reset block; the positioning ring B is fixedly installed at the bottom end of the circular mounting shaft; the reset spring B is sleeved outside the circular mounting shaft, and the reset spring B is located between the support frame and the reset block.
[0018] Compared with the prior art, the present invention has the following beneficial effects:
[0019] 1. In the present invention, since the two circular feed pipes on the left and right sides are close to the insulation material processing equipment, when the staff needs to place the insulation material waste, it will be placed in the two circular feed pipes on the left and right sides; realizing the temporary storage and collection of the insulation material waste; when the servo motor B works, the circular mounting sleeve slowly rotates a quarter of a circle under the action of the gear A and the gear B, so that the two circular feed pipes on the left and right sides are exchanged with the two circular feed pipes on the front and back sides, realizing the intermittent feeding of the insulation material waste, so that the servo motor A only needs to work intermittently; at the same time, the splashing generated during the recycling process of the insulation material waste will only be discharged through the two circular feed pipes on the front and back sides, ensuring that the splashed waste will not move towards the side of the staff, improving the safety during the recycling of the insulation material waste;
[0020] In addition, when the circular mounting sleeve drives the four circular feed pipes to exchange positions, the movable sealing plate can automatically move downward under the action of the two arc-shaped force-receiving blocks and the two rectangular force-receiving rods, creating a gap automatically between the movable sealing plate and the insulating material crushing barrel, ensuring that the crushed insulating material waste can automatically enter the waste collection box, which is conducive to the complete discharge of the insulating material waste on top of the movable sealing plate; when the rectangular force-receiving rod contacts the other two arc-shaped force-receiving blocks, some small pieces of the insulating material waste to be crushed can pass through the filter screen plate in the insulating material crushing barrel, enabling some small pieces of the insulating material waste to directly enter the waste collection box; when the two rectangular force-receiving rods separate from the two movable sealing plates, the movable sealing plate automatically resets upward under the action of a circle of return spring A.
[0021] 2. The present invention facilitates one of the staff members to control the operation of servo motor A and servo motor B through the control box; when the staff member dumps the waste in the waste collection box, the movable mounting plate automatically moves under the action of return spring B, causing the control box to move into the rectangular protective sleeve; when the staff member accurately resets the waste collection box, the movable mounting plate drives the control box to move out; when the staff member does not accurately reset the waste collection box, the movable mounting plate cannot drive the control box to move to the appropriate position. At this time, the staff member cannot start servo motor A and servo motor B, ensuring that when servo motor A and servo motor B are operating, the waste collection box is always in the accurate collection position, preventing the crushed waste from falling to the ground. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings of the embodiments will be briefly introduced below.
[0023] The drawings in the following description only relate to some embodiments of the present invention and do not limit the present invention.
[0024] In the drawings:
[0025] Figure 1 The three-dimensional structure diagram of the present invention is shown;
[0026] Figure 2 The structural diagram of the waste recycling mechanism of the present invention is shown;
[0027] Figure 3 The present invention is shown Figure 1 The central sectional structure diagram of;
[0028] Figure 4 The present invention is shown Figure 3 The partial enlarged structural diagram of area A in;
[0029] Figure 5 The structural diagram of the rotary feeding mechanism of the present invention is shown;
[0030] Figure 6 shows the partial enlarged structural schematic diagram of area B in the present invention; Figure 1 in the present invention;
[0031] Figure 7 shows the partial enlarged structural schematic diagram of area C in the present invention; Figure 1 in the present invention;
[0032] Figure 8 shows the partial enlarged structural schematic diagram of area D in the present invention; Figure 1 in the present invention;
[0033] Figure 9 shows the partial enlarged structural schematic diagram of area E in the present invention; Figure 3 in the present invention.
[0034] List of reference numerals:
[0035] 100, waste recycling mechanism; 101, support frame; 102, insulating material crushing barrel; 1021, feeding round hole; 103, limit retaining ring; 104, servo motor A; 105, circular driving rod; 106, crushing blade;
[0036] 200, movable sealing mechanism; 201, circular guide rod; 202, movable sealing plate; 203, arc-shaped stress block; 204, positioning ring A; 205, return spring A;
[0037] 300, rotary feeding mechanism; 301, circular mounting sleeve; 302, circular feeding pipe; 303, gear A; 304, rectangular stress rod;
[0038] 400, driving mechanism; 401, servo motor B; 402, gear B;
[0039] 500, waste collection box;
[0040] 600, starting mechanism; 601, rectangular protective sleeve; 602, movable mounting plate; 603, control box; 604, reset block; 605, circular mounting shaft; 606, positioning ring B; 607, return spring B. Detailed implementation manners
[0041] In order to make the objectives, solutions and advantages of the technical solutions of the present invention clearer, the technical solutions of the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings of the specific embodiments of the present invention. Unless otherwise specified, the terms used herein have the ordinary meanings in the art. The same reference numerals in the drawings represent the same components.
[0042] Embodiment: Please refer to Figures 1 to 9As shown in the figure: The present invention provides a waste recycling device for insulating material processing, including a waste recycling mechanism 100; a movable sealing mechanism 200 is installed on the waste recycling mechanism 100; a rotary feeding mechanism 300 is installed at the top of the waste recycling mechanism 100; a driving mechanism 400 is installed on the waste recycling mechanism 100, and the driving mechanism 400 is used to rotate the rotary feeding mechanism 300; a waste collection box 500 is installed on the waste recycling mechanism 100, and the waste collection box 500 is located directly below the movable sealing mechanism 200; two starting mechanisms 600 are installed on the waste recycling mechanism 100, and the two starting mechanisms 600 are used to control the waste recycling mechanism 100 and the driving mechanism 400.
[0043] In the embodiment of the present disclosure, as Figure 2 shown, the waste recycling mechanism 100 includes: a support frame 101, an insulating material crushing barrel 102, and a limit retaining ring 103; the insulating material crushing barrel 102 is fixedly installed on the support frame 101, and two feeding round holes 1021 are opened at the top of the insulating material crushing barrel 102; there are two limit retaining rings 103 in total, and the two limit retaining rings 103 are fixedly installed on the outside of the insulating material crushing barrel 102, and two arc-shaped slot holes are opened on the lower limit retaining ring 103; the waste recycling mechanism 100 further includes: a servo motor A104, a circular driving rod 105, and a crushing blade 106; the servo motor A104 is installed on the top of the insulating material crushing barrel 102 by screws; the circular driving rod 105 is fixedly installed on the output shaft of the servo motor A104; there is a row of crushing blades 106 in total, and the row of crushing blades 106 is fixedly installed on the outside of the circular driving rod 105;
[0044] Its specific function is: Since the servo motor A104 is installed on the top of the insulating material crushing barrel 102 by screws, and the circular driving rod 105 is fixedly installed on the output shaft of the servo motor A104, and a row of crushing blades 106 is fixedly installed on the outside of the circular driving rod 105, when the servo motor A104 works, the circular driving rod 105 drives a row of crushing blades 106 to rotate, realizing the automatic crushing of insulating material waste; at the same time, the crushing size of the insulating material waste can be controlled by the working time of the servo motor A104.
[0045] In the embodiment of the present disclosure, as Figures 4 to 7As shown, the movable sealing mechanism 200 includes: a circular guide rod 201, a movable sealing plate 202, and an arc-shaped force-bearing block 203. There is a total of one circle of circular guide rods 201, and the one circle of circular guide rods 201 is fixedly installed at the bottom of the insulating material crushing barrel 102. The movable sealing plate 202 is slidably installed outside the one circle of circular guide rods 201, and the top of the movable sealing plate 202 contacts the bottom of the insulating material crushing barrel 102. There are a total of four arc-shaped force-bearing blocks 203, and the four arc-shaped force-bearing blocks 203 are fixedly installed at the top of the movable sealing plate 202. The movable sealing mechanism 200 further includes: a positioning ring A 204 and a return spring A 205. There is a total of one circle of positioning rings A 204, and the one circle of positioning rings A 204 is fixedly installed at the bottom end of the one circle of circular guide rods 201. There is a total of one circle of return springs A 205, and the one circle of return springs A 205 is sleeved outside the one circle of circular guide rods 201, and the one circle of return springs A 205 is located between the movable sealing plate 202 and the one circle of positioning rings A 204.
[0046] The rotary feeding mechanism 300 includes: a circular mounting sleeve 301 and a circular feeding pipe 302. The circular mounting sleeve 301 is rotatably installed outside the insulating material crushing barrel 102, and the circular mounting sleeve 301 also contacts the inner sides of the two limit retaining rings 103. There are a total of four circular feeding pipes 302, and the four circular feeding pipes 302 are fixedly installed outside the circular mounting sleeve 301, and the two circular feeding pipes 302 on the front and rear sides are aligned with the two feeding round holes 1021. The rotary feeding mechanism 300 further includes: a gear A 303 and a rectangular force-bearing rod 304. The gear A 303 is fixedly installed at the bottom end of the circular mounting sleeve 301. There are a total of two rectangular force-bearing rods 304, and the two rectangular force-bearing rods 304 are fixedly installed at the bottom of the circular mounting sleeve 301. The two rectangular force-bearing rods 304 are inserted into the two arc-shaped slots of the lower limit retaining ring 103, and the bottoms of the two rectangular force-bearing rods 304 are provided with rounded corners, and the bottoms of the two rectangular force-bearing rods 304 contact the movable sealing plate 202.
[0047] The driving mechanism 400 includes: a servo motor B 401 and a gear B 402. The servo motor B 401 is fixedly installed on the support frame 101. The gear B 402 is fixedly installed on the output shaft of the servo motor B 401, and the gear B 402 is also meshed and connected with the gear A 303.
[0048] Its specific functions are as follows: Since the four circular feed pipes 302 are fixedly installed outside the circular mounting sleeve 301, and the two circular feed pipes 302 on the front and rear sides are aligned with the two feed circular holes 1021, and the support frame 101 is installed between two insulation material processing devices. Because the two circular feed pipes 302 on the left and right sides are close to the insulation material processing devices, when the staff needs to place insulation material waste, it will be placed in the two circular feed pipes 302 on the left and right sides; and because the two circular feed pipes 302 on the left and right sides are not aligned with the two feed circular holes 1021, the temporary storage and collection of insulation material waste are realized; also because the gear A 303 is fixedly installed at the bottom of the circular mounting sleeve 301, and the gear B 402 is fixedly installed on the output shaft of the servo motor B 401, and the gear B 402 is also meshed with the gear A 303. When the servo motor B 401 works, the circular mounting sleeve 301 slowly rotates a quarter of a circle under the action of the gear A 303 and the gear B 402, so that the two circular feed pipes 302 on the left and right sides and the two circular feed pipes 302 on the front and rear sides exchange positions, realizing the intermittent feeding of insulation material waste, and the servo motor A 104 only needs to work intermittently; at the same time, the splashes generated during the recovery of insulation material waste will only be discharged through the two circular feed pipes 302 on the front and rear sides, ensuring that the splashed waste does not move towards the side of the staff, improving the safety during the recovery of insulation material waste;
[0049] In addition, since the four arc-shaped force-bearing blocks 203 are fixedly installed on the top of the movable sealing plate 202, and the two rectangular force-bearing rods 304 are fixedly installed at the bottom of the circular mounting sleeve 301, and the bottoms of the two rectangular force-bearing rods 304 are in contact with the movable sealing plate 202. When the circular mounting sleeve 301 drives the four circular feed pipes 302 to exchange positions, the movable sealing plate 202 can automatically move downward under the action of the two arc-shaped force-bearing blocks 203 and the two rectangular force-bearing rods 304, so that a gap is automatically generated between the movable sealing plate 202 and the insulation material crushing barrel 102, ensuring that the crushed insulation material waste can automatically enter the waste collection box 500, which is beneficial to the complete discharge of the insulation material waste on the top of the movable sealing plate 202; when the rectangular force-bearing rod 304 contacts the other two arc-shaped force-bearing blocks 203, some small pieces of waste in the insulation material to be crushed can pass through the filter screen plate in the insulation material crushing barrel 102, so that some small pieces of insulation material waste can directly enter the waste collection box 500; also because a circle of positioning ring A 204 is fixedly installed at the bottom of a circle of circular guide rods 201, and a circle of return spring A 205 is sleeved outside the circle of circular guide rods 201, and the circle of return spring A 205 is located between the movable sealing plate 202 and the circle of positioning ring A 204. When the two rectangular force-bearing rods 304 are separated from the two movable sealing plates 202, the movable sealing plate 202 automatically resets upward under the action of the circle of return spring A 205.
[0050] In the embodiments of the present disclosure, as Figure 8 and Figure 9 shown, the starting mechanism 600 includes: a rectangular protective sleeve 601, a movable mounting plate 602, a control box 603, and a reset block 604; the rectangular protective sleeve 601 is fixedly mounted on the support frame 101; the movable mounting plate 602 is slidably mounted on the support frame 101 and the rectangular protective sleeve 601, and the bottom end of the movable mounting plate 602 is provided with a rounded corner, and the bottom end of the movable mounting plate 602 contacts the waste collection box 500; the control box 603 is fixedly mounted inside the movable mounting plate 602, and the control box 603 is electrically connected to the servo motor A 104 and the servo motor B 401; the reset block 604 is fixedly mounted inside the movable mounting plate 602; the starting mechanism 600 further includes: a circular mounting shaft 605, a positioning ring B 606, and a reset spring B 607; the circular mounting shaft 605 is fixedly mounted on the support frame 101, and the circular mounting shaft 605 is also slidably connected to the reset block 604; the positioning ring B 606 is fixedly mounted at the bottom end of the circular mounting shaft 605; the reset spring B 607 is sleeved outside the circular mounting shaft 605, and the reset spring B 607 is located between the support frame 101 and the reset block 604;
[0051] Its specific function is: because the control box 603 is fixedly mounted inside the movable mounting plate 602, and the control box 603 is electrically connected to the servo motor A 104 and the servo motor B 401, it is convenient for one of the staff to control the servo motor A 104 and the servo motor B 401 to work through the control box 603; and because the bottom end of the movable mounting plate 602 is provided with a rounded corner, and the bottom end of the movable mounting plate 602 contacts the waste collection box 500, and the reset spring B 607 is located between the support frame 101 and the reset block 604, when the staff dumps the waste in the waste collection box 500, the movable mounting plate 602 automatically moves under the action of the reset spring B 607, so that the control box 603 moves into the rectangular protective sleeve 601; when the staff accurately resets the waste collection box 500, the movable mounting plate 602 drives the control box 603 to move out; when the staff does not accurately reset the waste collection box 500, the movable mounting plate 602 cannot drive the control box 603 to move to a suitable position. At this time, the staff cannot start the servo motor A 104 and the servo motor B 401, ensuring that when the servo motor A 104 and the servo motor B 401 work, the waste collection box 500 is always in the accurate collection position, avoiding the broken waste from falling to the ground.
[0052] The specific usage mode and function of this embodiment:
[0053] During the use of the present invention, first, the staff installs the support frame 101 between two insulation material processing devices through bolts. Since the two circular feed pipes 302 on the left and right sides are close to the insulation material processing devices, when the staff needs to place insulation material waste, it will be placed in the two circular feed pipes 302 on the left and right sides. When the servo motor B 401 works, the circular mounting sleeve 301 slowly rotates a quarter of a circle under the action of the gear A 303 and the gear B 402, so that the two circular feed pipes 302 on the left and right sides are exchanged with the two circular feed pipes 302 on the front and back sides, realizing the intermittent feeding of the insulation material waste, and the servo motor A 104 only needs to work intermittently. At the same time, the splashes generated during the recycling process of the insulation material waste will only be discharged through the two circular feed pipes 302 on the front and back sides, ensuring that the splashed waste does not move towards the side of the staff, improving the safety during the recycling of the insulation material waste. When the circular mounting sleeve 301 drives the four circular feed pipes 302 to exchange positions, the movable sealing plate 202 can automatically move downward under the action of the two arc-shaped force-receiving blocks 203 and the two rectangular force-receiving rods 304, so that a gap is automatically generated between the movable sealing plate 202 and the insulation material crushing barrel 102, ensuring that the crushed insulation material waste can automatically enter the waste collection box 500, which is beneficial to the complete discharge of the insulation material waste on the top of the movable sealing plate 202. When the rectangular force-receiving rod 304 contacts the other two arc-shaped force-receiving blocks 203, some small pieces of the waste to be crushed insulation material can pass through the filter screen plate in the insulation material crushing barrel 102, so that some small pieces of the insulation material waste can directly enter the waste collection box 500. When the two rectangular force-receiving rods 304 are separated from the two movable sealing plates 202, the movable sealing plate 202 automatically resets upward under the action of a circle of return spring A 205. When the servo motor A 104 works, the circular driving rod 105 drives a row of crushing blades 106 to rotate, realizing the automatic crushing of the insulation material waste. At the same time, the crushing size of the insulation material waste can be controlled by the working time of the servo motor A 104. When the staff dumps the waste in the waste collection box 500, the movable mounting plate 602 automatically moves under the action of the return spring B 607, so that the control box 603 moves into the rectangular protective sleeve 601. When the staff accurately resets the waste collection box 500, the movable mounting plate 602 drives the control box 603 to move out. When the staff does not accurately reset the waste collection box 500, the movable mounting plate 602 cannot drive the control box 603 to move to a suitable position. At this time, the staff cannot start the servo motor A 104 and the servo motor B 401, ensuring that the waste collection box 500 is always in the accurate collection position when the servo motor A 104 and the servo motor B 401 work, and preventing the crushed waste from falling to the ground.
[0054] In this article, the following points need to be noted:
[0055] 1. The accompanying drawings of the embodiments of the present disclosure only relate to the structures involved in the embodiments of the present disclosure, and other structures may refer to the general design.
[0056] 2. Without conflict, the embodiments of the present disclosure and the features in the embodiments may be combined with each other to obtain new embodiments.
[0057] The above are only the specific implementation manners of the present disclosure, but the protection scope of the present disclosure is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present disclosure can easily think of changes or substitutions, which should all be covered within the protection scope of the present disclosure. Therefore, the protection scope of the present disclosure shall be subject to the protection scope of the claims.
Claims
1. A waste recycling device for insulating material processing, comprising a waste recycling mechanism (100); characterized in that, An active sealing mechanism (200) is installed on the waste recycling mechanism (100); a rotary feeding mechanism (300) is installed at the top of the waste recycling mechanism (100); a driving mechanism (400) is installed on the waste recycling mechanism (100), and the driving mechanism (400) is used to rotate the rotary feeding mechanism (300). A waste collection box (500) is installed on the waste recycling mechanism (100), and the waste collection box (500) is located directly below the active sealing mechanism (200); two starting mechanisms (600) are installed on the waste recycling mechanism (100), and the two starting mechanisms (600) are used to control the waste recycling mechanism (100) and the driving mechanism (400).
2. The waste recycling device for insulating material processing according to claim 1, characterized in that, The waste recycling mechanism (100) includes: a support frame (101), an insulating material crushing barrel (102), and a limiting retaining ring (103); the insulating material crushing barrel (102) is fixedly installed on the support frame (101), and two feeding round holes (1021) are opened at the top of the insulating material crushing barrel (102); there are two limiting retaining rings (103) in total, and the two limiting retaining rings (103) are fixedly installed outside the insulating material crushing barrel (102), and two arc-shaped slot holes are opened on the lower limiting retaining ring (103).
3. The waste recycling device for processing insulating materials according to claim 2, wherein, The waste recycling mechanism (100) further includes: a servo motor A (104), a circular driving rod (105), and crushing blades (106); the servo motor A (104) is installed on the top of the insulating material crushing barrel (102) by screws; the circular driving rod (105) is fixedly installed on the output shaft of the servo motor A (104); there is a row of crushing blades (106) in total, and the row of crushing blades (106) is fixedly installed outside the circular driving rod (105).
4. The waste recycling device for insulating material processing according to claim 3, characterized in that, The active sealing mechanism (200) includes: a circular guide rod (201), an active sealing plate (202), and an arc-shaped force-bearing block (203); there is a circle of circular guide rods (201) in total, and the circle of circular guide rods (201) is fixedly installed at the bottom of the insulating material crushing barrel (102); the active sealing plate (202) is slidably installed outside the circle of circular guide rods (201), and the top of the active sealing plate (202) is in contact with the bottom of the insulating material crushing barrel (102); there are four arc-shaped force-bearing blocks (203) in total, and the four arc-shaped force-bearing blocks (203) are fixedly installed on the top of the active sealing plate (202).
5. The waste recycling device for insulating material processing according to claim 4, wherein, The active sealing mechanism (200) further includes: a positioning ring A (204) and a return spring A (205); there is a circle of positioning rings A (204) in total, and the circle of positioning rings A (204) is fixedly installed at the bottom end of the circle of circular guide rods (201); there is a circle of return springs A (205) in total, and the circle of return springs A (205) is sleeved outside the circle of circular guide rods (201), and the circle of return springs A (205) is located between the active sealing plate (202) and the circle of positioning rings A (204).
6. The waste recycling device for insulating material processing according to claim 4, characterized in that, The rotating feeding mechanism (300) includes: a circular mounting sleeve (301) and a circular feeding pipe (302); the circular mounting sleeve (301) is rotatably mounted outside the insulating material crushing barrel (102), and the circular mounting sleeve (301) also contacts the inner sides of two limiting retaining rings (103); there are four circular feeding pipes (302) in total, and the four circular feeding pipes (302) are fixedly mounted outside the circular mounting sleeve (301), and the two circular feeding pipes (302) on the front and rear sides are aligned with the two feeding round holes (1021).
7. An apparatus for recycling waste materials used in the processing of an insulating material according to claim 6, characterized in that, The rotating feeding mechanism (300) further includes: a gear A (303) and a rectangular force-bearing rod (304); the gear A (303) is fixedly mounted at the bottom end of the circular mounting sleeve (301); there are two rectangular force-bearing rods (304) in total, and the two rectangular force-bearing rods (304) are fixedly mounted at the bottom of the circular mounting sleeve (301); the two rectangular force-bearing rods (304) are inserted into two arc-shaped slot holes of the lower limiting retaining ring (103), and the bottoms of the two rectangular force-bearing rods (304) are provided with rounded corners, and the bottoms of the two rectangular force-bearing rods (304) contact the movable sealing plate (202).
8. The waste recycling device for insulating material processing according to claim 7, wherein, The driving mechanism (400) includes: a servo motor B (401) and a gear B (402); the servo motor B (401) is fixedly mounted on the support frame (101); the gear B (402) is fixedly mounted on the output shaft of the servo motor B (401), and the gear B (402) is also meshed and connected with the gear A (303).
9. The waste recycling device for insulating material processing according to claim 7, characterized in that, The starting mechanism (600) includes: a rectangular protective sleeve (601), a movable mounting plate (602), a control box (603) and a reset block (604); the rectangular protective sleeve (601) is fixedly mounted on the support frame (101); the movable mounting plate (602) is slidably mounted on the support frame (101) and the rectangular protective sleeve (601), and the bottom end of the movable mounting plate (602) is provided with a rounded corner, and the bottom end of the movable mounting plate (602) contacts the waste collection box (500); the control box (603) is fixedly mounted inside the movable mounting plate (602), and the control box (603) is electrically connected to the servo motor A (104) and the servo motor B (401); the reset block (604) is fixedly mounted on the inner side of the movable mounting plate (602).
10. The waste recycling device for insulating material processing according to claim 9, characterized in that, The starting mechanism (600) further includes: a circular mounting shaft (605), a positioning ring B (606) and a reset spring B (607); the circular mounting shaft (605) is fixedly mounted on the support frame (101), and the circular mounting shaft (605) is also slidably connected with the reset block (604); the positioning ring B (606) is fixedly mounted at the bottom end of the circular mounting shaft (605); the reset spring B (607) is sleeved outside the circular mounting shaft (605), and the reset spring B (607) is located between the support frame (101) and the reset block (604).