A high temperature resistant stirring iron removal device
By using a double-layer stirring structure of a rotating shaft and a stirring rod in the iron removal device, the problems of poor stirring uniformity and iron removal effect caused by the agglomeration of high-temperature plastic particles are solved, efficient stirring and uniform dispersion are achieved, and the iron removal effect is improved.
Patent Information
- Application Number
- CN202411822636.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-12
- Publication Date
- 2025-05-06
- Estimated Expiration
- 2044-12-12
AI Technical Summary
When traditional iron removal devices deal with high-temperature plastic particles, plastic particles are prone to agglomeration, which affects the uniformity of stirring and iron chip removal effect.
The unique double-layer stirring structure is adopted that combines the rotation axis clockwise rotation and the stirring rod counterclockwise rotation. The drive mechanism drives the mutual cooperation between the rotation axis and the stirring rod to achieve efficient stirring and dispersion.
The mixing efficiency is improved, and the plastic particles are distributed more evenly in the mixing box, which enhances the contact opportunity between iron filings and iron removal elements, and improves the iron removal effect.
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Figure CN119283219B_ABST
Abstract
Description
Technical Field
[0001] The invention belongs to the technical field of iron removal equipment, and in particular relates to a high-temperature resistant stirring iron removal device. Background Art
[0002] Plastic particles refer to granular plastics, which are generally divided into more than 200 types and subdivided into thousands of types. Common plastic particles include general-purpose plastics, engineering plastics, and special plastics. General-purpose plastics include polypropylene, polyethylene, polyvinyl chloride, polystyrene, polyester, polyurethane, etc. Engineering plastics include nylon, polytetrafluoroethylene, polyoxymethylene, polycarbonate silicone, etc. Special plastics include thermosetting plastics and functional polymer plastics.
[0003] At present, iron filings are often mixed into plastic particles during storage and transportation. This phenomenon directly leads to an increase in the defective rate of plastic finished products, which has an adverse effect on product quality. Therefore, it is necessary to effectively remove the iron filings in the plastic particles. In the process of removing iron filings from traditional iron removal devices, a stirring structure is usually used to stir the plastic particles, and then the iron filings in the plastic particles are removed. However, when processing high-temperature plastic particles, due to the enhanced interaction force between the particles, the plastic particles are often prone to agglomeration. This agglomeration phenomenon not only affects the uniformity of the plastic particles during the stirring process, but also greatly reduces the contact opportunity between the iron filings and the iron removal elements, thereby seriously affecting the removal effect of the iron filings. Therefore, there are deficiencies and it cannot meet the production and use needs of manufacturers. Therefore, it is necessary to further improve it.
[0004] Therefore, in view of this, the existing structure and defects are studied and improved, and a high-temperature resistant stirring iron removal device is provided, in order to achieve a more practical purpose. Summary of the invention
[0005] In order to solve the above technical problems, the present invention provides a high temperature resistant stirring iron removal device, which is achieved by the following specific technical means:
[0006] A high temperature resistant stirring iron removal device comprises a mixing box, a driving mechanism arranged on the mixing box, a stirring mechanism arranged inside the mixing box, and an iron removal component arranged on the mixing box for removing iron scraps in plastic particles;
[0007] The left and right sides of the mixing box are fixedly equipped with mounting seats, the driving mechanism is fixedly installed on the mounting seats, the output end of the driving mechanism passes through the mounting seats and is connected to the stirring mechanism, and the driving mechanism drives the stirring mechanism to rotate to stir the plastic particles;
[0008] The stirring mechanism includes a rotating shaft and a linkage component fixedly mounted on the inner wall of the mixing box, one end of the rotating shaft is fixedly connected to the output end of the driving mechanism, a fixed sleeve is provided on the linkage component, a stirring rod is fixedly mounted on the fixed sleeve, and a stirring component for stirring plastic particles is fixedly mounted on the rotating shaft and the stirring rod. The rotating shaft is driven to rotate clockwise by the driving mechanism, and the stirring rod is driven to rotate counterclockwise by the linkage component, so that the stirring components on the rotating shaft and the stirring rod form opposite stirring directions.
[0009] As a further description of the above technical solution: during the self-rotation of the rotating shaft driven by the driving mechanism, the stirring rod is also rotated counterclockwise by utilizing the linkage assembly, thereby forming a unique double-layer stirring structure combining the clockwise rotation of the rotating shaft and the counterclockwise rotation of the stirring rod. By combining the clockwise rotation of the rotating shaft with the counterclockwise rotation of the stirring rod, efficient stirring and dispersion of the plastic particles is achieved. This device not only improves the stirring efficiency, but also makes the plastic particles more evenly distributed in the mixing box, providing favorable conditions for subsequent processing.
[0010] Furthermore, the linkage assembly includes a fixed shell, the fixed shell is fixedly assembled on the fixed block by screws, and one side of the fixed block is fixedly assembled on the inner wall of the mixing box;
[0011] A driving gear is rotatably mounted on the fixed block via a bearing, a driven gear and a linkage gear are rotatably mounted on the inner wall of the fixed shell via a bearing, and the linkage gear is located between the driven gears, a driven sleeve is fixedly mounted on the driven gear, and the driven sleeve is located on the outer periphery of the rotating shaft, the inner wall of the driving gear is fixedly assembled with the rotating shaft, the driving gear is driven to rotate clockwise by the rotating shaft, and the driven gear and the driven sleeve are rotated counterclockwise by the meshing transmission of the linkage gears.
[0012] As a further description of the above technical solution: this arrangement can form a unique double-layer stirring structure that combines the clockwise rotation of the rotating shaft with the counterclockwise rotation of the stirring rod.
[0013] Furthermore, the stirring assembly on the rotating shaft and the stirring assembly on the stirring rod are arranged crosswise with each other, and the stirring assembly on the rotating shaft is perpendicular to the stirring assembly on the stirring rod.
[0014] As a further description of the above technical solution: the device not only improves the stirring efficiency, but also makes the plastic particles more evenly distributed in the mixing box, providing favorable conditions for subsequent processing.
[0015] Furthermore, the stirring assembly includes a stirring seat fixedly mounted on the stirring rod, a dispersion plate for stirring and dispersing the plastic particles is movably mounted on the stirring seat, and movable blocks are fixedly mounted on both the front and rear sides of the dispersion plate;
[0016] The stirring seat is provided with a movable groove, and an elastic folding layer is arranged in the movable groove, the side of the movable block away from the dispersion plate is located in the movable groove, and one side of the movable block is in contact with the elastic folding layer;
[0017] Wherein, a vibration spring is arranged inside the elastic folding layer.
[0018] As a further description of the above technical solution: based on the force during impact, the dispersion plate generates high-frequency vibrations under the joint action of the elastic folding layer and the vibration spring. The vibration during stirring by the dispersion plate not only promotes the relative movement and collision between the plastic particles, but also increases the dispersion of the plastic particles, making them more evenly dispersed.
[0019] Furthermore, a plurality of vibrating members are fixedly mounted on both the left and right sides of the dispersion plate.
[0020] As a further description of the above technical solution: during the interlaced operation of the rotating shaft and the dispersion plates on the stirring rod, the vibrating parts will be driven to collide with each other, and the dispersion plates will generate high-frequency vibrations based on the force of the collision.
[0021] Furthermore, the dispersion plate is provided with a plurality of dispersion components for dispersing plastic particles, and the dispersion components include a mounting ring, a dispersion ball is rotatably mounted on the inner side of the mounting ring, and a plurality of dispersion protrusions are provided on the outer wall of the dispersion ball.
[0022] As a further description of the above technical solution: the dispersion ball collides with the plastic particles during rotation, and utilizes its spherical shape and dynamic characteristics to knock and disperse the plastic particles from multiple directions, thereby increasing the relative movement and collision opportunities between the plastic particles, and this knocking action helps to break the agglomeration state between the plastic particles, making them more dispersed. At the same time, the dispersion protrusions on the surface of the dispersion ball produce rotation and shearing effects when in contact with the plastic particles, thereby enhancing the stirring effect.
[0023] Furthermore, the iron removal assembly includes a movable frame movably mounted on the front side of the mixing box, a high temperature resistant sealing ring is arranged between the mixing box and the movable frame, and the high temperature resistant sealing ring is mounted on the movable frame, a magnetic frame for magnetically cleaning iron filings in plastic particles is fixedly mounted on the side of the movable frame facing the mixing box, and an iron removal handle is fixedly mounted on the front side of the movable frame;
[0024] Wherein, the movable frame is assembled with the mixing material box through a fixed hand wheel.
[0025] As a further description of the above technical solution: when it is necessary to clean the iron filings on the magnetic frame, just open the fixed hand wheel and pull the iron removal handle to easily pull the magnetic frame out of the mixing box for cleaning.
[0026] Furthermore, a mounting top plate is fixedly mounted on the upper side of the mixing box, a feeding port for feeding plastic particles is provided on the mounting top plate, and a discharging port for discharging plastic particles is provided at the bottom of the mixing box.
[0027] As a further description of the above technical solution: by providing a feed port for feeding plastic particles on the mounting top plate, the feeding of plastic particles is facilitated.
[0028] Furthermore, an adjustment component is provided on the mixing box, and the adjustment component is located between the mixing box and the mounting top plate. The adjustment component includes an adjustment slide plate slidably installed on the mixing box, an adjustment groove for feeding plastic particles is provided on the adjustment slide plate, a limit block for sliding limit is fixedly mounted on the adjustment slide plate, and an adjustment handle is provided on the front side of the adjustment slide plate.
[0029] As a further description of the above technical solution: This setting can realize flexible adjustment of the feed port of the mixing box, and the size of the feed port can be changed to adapt to plastic particles of different particle sizes and flow rates. This setting not only improves the flexibility and applicability of the device, but also enables it to better meet actual production needs.
[0030] Furthermore, a control component is provided on the mounting seat on the right side of the mixing box, and the control component includes a mounting plate fixedly mounted on the mounting seat, an electrical box is fixedly mounted on the mounting plate, and a control switch for operation is provided on the electrical box.
[0031] As a further description of the above technical solution: the provision of an electrical box and a control switch facilitates the control of the equipment, further improving its applicability and safety.
[0032] In summary, due to the adoption of the above technical solution, the beneficial effects of the present invention are:
[0033] 1. This high-temperature resistant stirring and iron removal device cooperates with the driving mechanism, the rotating shaft, the linkage component and the stirring rod. During the rotation of the rotating shaft, the linkage component is used to make the stirring rod rotate counterclockwise, thereby forming a unique double-layer stirring structure combining the clockwise rotation of the rotating shaft and the counterclockwise rotation of the stirring rod. The clockwise rotation of the rotating shaft and the counterclockwise rotation of the stirring rod are combined to achieve efficient stirring and dispersion of plastic particles. This device not only improves the stirring efficiency, but also makes the plastic particles more evenly distributed in the mixing box, providing favorable conditions for subsequent processing.
[0034] 2. This high-temperature resistant stirring iron removal device cooperates with the driving mechanism, stirring mechanism and dispersing components, and is evenly distributed on the rotating shaft and the stirring rod through the dispersing plate. The dispersing plate not only stirs the plastic particles through its rotation, but also further enhances the stirring effect through the dispersing balls. The dispersing balls collide with the plastic particles during rotation, and use their spherical shape and dynamic characteristics to knock and disperse the plastic particles from multiple directions, thereby increasing the relative movement and collision opportunities between the plastic particles, and this knocking effect helps to break the agglomeration state between the plastic particles and make them more dispersed. At the same time, the dispersing bumps on the surface of the dispersing balls produce rotation and shearing effects when in contact with the plastic particles, thereby enhancing the stirring effect, and through the rotation and collision of the dispersing balls, the stirring energy can be more effectively transferred to the plastic particles, thereby improving the stirring efficiency.
[0035] 3. This high-temperature resistant stirring iron removal device cooperates with each other among the driving mechanism, the rotating shaft, the linkage assembly, the stirring rod and the stirring assembly. In the process of the interlaced operation of the rotating shaft and the dispersion plates on the stirring rod, the dispersion plates are prompted to generate high-frequency vibrations under the joint action of the elastic folding layer and the vibration spring. The vibration during the stirring of the dispersion plates not only promotes the relative movement and collision between the plastic particles, but also increases the dispersion of the plastic particles, making them more evenly dispersed. The vibration effect also helps to shake off the iron filings attached to the surface of the plastic particles, which is beneficial to the subsequent iron removal. BRIEF DESCRIPTION OF THE DRAWINGS
[0036] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings required for describing the embodiments will be briefly introduced below. Obviously, the accompanying drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other accompanying drawings can be obtained based on these accompanying drawings without paying creative work.
[0037] Figure 1 It shows a schematic diagram of an overall three-dimensional structure provided according to an embodiment of the present invention;
[0038] Figure 2 It shows a schematic diagram of the overall deployment structure provided according to an embodiment of the present invention;
[0039] Figure 3 A schematic diagram of the installation structure of a mixing box and an iron removal assembly provided in an embodiment of the present invention is shown;
[0040] Figure 4 A schematic diagram of the installation structure of the driving mechanism and the stirring mechanism provided in an embodiment of the present invention is shown;
[0041] Figure 5 A schematic diagram of the structure of a stirring mechanism provided in an embodiment of the present invention is shown;
[0042] Figure 6 A schematic diagram of the installation structure of the rotating shaft and the linkage assembly provided in an embodiment of the present invention is shown;
[0043] Figure 7 A schematic diagram of a local structure of a linkage component provided according to an embodiment of the present invention is shown;
[0044] Figure 8 A schematic diagram of the installation structure of the rotating shaft and the stirring assembly provided in an embodiment of the present invention is shown;
[0045] Fig. 9 A schematic diagram of the unfolding structure of a stirring assembly provided in an embodiment of the present invention is shown;
[0046] Fig.10 A schematic diagram of a local structure of a stirring assembly provided according to an embodiment of the present invention is shown;
[0047] Fig.11 The embodiment of the present invention provides Fig.10 Enlarged schematic diagram of part A in the middle.
[0048] Legend:
[0049] 10. Mixing box; 101. Discharge port; 11. Mounting seat; 12. Mounting top plate; 121. Feed port;
[0050] 20. Driving mechanism;
[0051] 30. Iron removal assembly; 31. Movable frame; 32. High temperature resistant sealing ring; 33. Magnetic frame; 34. Iron removal handle; 35. Fixed hand wheel;
[0052] 40. Adjustment assembly; 41. Adjustment slide plate; 42. Adjustment slot; 43. Adjustment handle; 44. Limit block;
[0053] 50. Control assembly; 51. Mounting plate; 52. Electrical box; 53. Control switch;
[0054] 60, stirring mechanism; 61, rotating shaft; 62, linkage assembly; 621, fixed shell; 622, fixed block; 623, driving gear; 624, driven gear; 6241, driven sleeve; 625, linkage gear; 63, fixed sleeve; 64, stirring rod; 65, stirring assembly; 651, stirring seat; 6511, movable groove; 652, dispersion plate; 6521, vibration member; 653, movable block; 654, elastic folding layer; 6541, vibration spring;
[0055] 70. Dispersion assembly; 71. Mounting ring; 72. Dispersion ball; 73. Dispersion bump. DETAILED DESCRIPTION
[0056] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative work are within the scope of protection of the present invention.
[0057] See also Figures 1 to 11 A high temperature resistant stirring iron removal device comprises a mixing box 10, a driving mechanism 20 arranged on the mixing box 10, a stirring mechanism 60 arranged inside the mixing box 10, and an iron removal component 30 arranged on the mixing box 10 for removing iron filings in plastic particles; both left and right sides of the mixing box 10 are fixedly equipped with mounting seats 11, the driving mechanism 20 is fixedly assembled on the mounting seat 11, the output end of the driving mechanism 20 passes through the mounting seat 11 and is connected to the stirring mechanism 60, and the stirring mechanism 60 is driven by the driving mechanism 20 to rotate to stir the plastic particles; the stirring mechanism 60 comprises a rotating shaft 61, and a linkage component 62 fixedly assembled on the inner wall of the mixing box 10, one end of the rotating shaft 61 is fixedly connected to the output end of the driving mechanism 20, a fixing sleeve 63 is arranged on the linkage component 62, and a stirring rod 64 is fixedly assembled on the fixing sleeve 63, A stirring assembly 65 for stirring the plastic particles is fixedly mounted on the rotating shaft 61 and the stirring rod 64. The rotating shaft 61 is driven to rotate clockwise by the driving mechanism 20, and the stirring rod 64 is driven to rotate counterclockwise by the linkage assembly 62, so that the stirring assembly 65 on the rotating shaft 61 and the stirring rod 64 form opposite stirring directions; during the self-rotation of the rotating shaft 61 driven by the driving mechanism 20, the stirring rod 64 is also rotated counterclockwise by the linkage assembly 62, thereby forming a unique double-layer stirring structure combining the clockwise rotation of the rotating shaft 61 and the counterclockwise rotation of the stirring rod 64. By combining the clockwise rotation of the rotating shaft 61 with the counterclockwise rotation of the stirring rod 64, efficient stirring and dispersion of the plastic particles is achieved. This device not only improves the stirring efficiency, but also makes the plastic particles more evenly distributed in the mixing box 10, providing favorable conditions for subsequent processing.
[0058] See also Figures 1 to 3 A mounting top plate 12 is fixedly mounted on the upper side of the mixing box 10, and a feed port 121 for feeding plastic particles is opened on the mounting top plate 12, and a discharge port 101 for discharging plastic particles is opened at the bottom of the mixing box 10; by opening the feed port 121 for feeding plastic particles on the mounting top plate 12, the feeding of plastic particles is facilitated.
[0059] See also Figures 1 to 3An adjusting component 40 is provided on the mixing box 10, and the adjusting component 40 is located between the mixing box 10 and the mounting top plate 12. The adjusting component 40 includes an adjusting slide plate 41 slidably mounted on the mixing box 10, and an adjusting slot 42 for feeding plastic particles is provided on the adjusting slide plate 41. A limit block 44 for sliding limit is fixedly mounted on the adjusting slide plate 41, and an adjusting handle 43 is provided on the front side of the adjusting slide plate 41; by adjusting the handle 43 and the adjusting slide plate 41, flexible adjustment of the feed port 121 of the mixing box 10 can be achieved, and by adjusting the position of the adjusting slide plate 41, the size of the feed port 121 can be changed to adapt to plastic particles of different particle sizes and flow rates.
[0060] See also Figure 1 to Figure 2 A control assembly 50 is arranged on the mounting seat 11 on the right side of the mixing box 10. The control assembly 50 includes a mounting plate 51 fixedly mounted on the mounting seat 11, an electrical box 52 fixedly mounted on the mounting plate 51, and a control switch 53 for operation is arranged on the electrical box 52; the arrangement of the electrical box 52 and the control switch 53 is convenient for the operation of the equipment.
[0061] See also Figures 5 to 7 The linkage assembly 62 includes a fixed shell 621, which is fixedly assembled on a fixed block 622 by screws, and one side of the fixed block 622 is fixedly assembled on the inner wall of the mixing box 10; a driving gear 623 is rotatably mounted on the fixed block 622 through a bearing, and a driven gear 624 and a linkage gear 625 are rotatably mounted on the inner wall of the fixed shell 621 through a bearing, and the linkage gear 625 is located between the driven gears 624, and a driven sleeve 6241 is fixedly mounted on the driven gear 624, and the driven sleeve 6241 is located on the outer periphery of the rotating shaft 61, and the inner wall of the driving gear 623 is fixedly assembled with the rotating shaft 61, and the rotating shaft 6 1 drives the driving gear 623 to rotate clockwise, and utilizes the meshing transmission of the linkage gear 625 to make the driven gear 624 and the driven sleeve 6241 rotate counterclockwise; in the process of the rotating shaft 61 being driven by the driving mechanism 20 to rotate, the driving gear 623 installed thereon and the linkage gear 625 are precisely meshed, thereby driving the driven gear 624 to rotate counterclockwise, and the rotation of the driven gear 624 is transmitted to the stirring rod 64 through the driven sleeve 6241 and the fixed sleeve 63, so that the stirring rod 64 also rotates counterclockwise, thereby forming a unique double-layer stirring structure combining the clockwise rotation of the rotating shaft 61 and the counterclockwise rotation of the stirring rod 64.
[0062] See also Figure 5The stirring assembly 65 on the rotating shaft 61 and the stirring assembly 65 on the stirring rod 64 are arranged to cross each other, and the stirring assembly 65 on the rotating shaft 61 is perpendicular to the stirring assembly 65 on the stirring rod 64; through the combination of the clockwise rotation of the rotating shaft 61 and the counterclockwise rotation of the stirring rod 64, the stirring assembly 65 can achieve efficient stirring and dispersion of the plastic particles. This device not only improves the stirring efficiency, but also makes the plastic particles more evenly distributed in the mixing box 10.
[0063] See also Figures 8 to 10 The stirring assembly 65 includes a stirring seat 651 fixedly mounted on the stirring rod 64, a dispersion plate 652 for stirring and dispersing plastic particles is movably mounted on the stirring seat 651, and movable blocks 653 are fixedly mounted on both the front and rear sides of the dispersion plate 652; a movable groove 6511 is provided on the stirring seat 651, and an elastic folding layer 654 is arranged in the movable groove 6511, a side of the movable block 653 away from the dispersion plate 652 is located in the movable groove 6511, and one side of the movable block 653 is in contact with the elastic folding layer 654; In the figure, a vibration spring 6541 is arranged inside the elastic folding layer 654; based on the force during the impact, the dispersion plate 652 generates high-frequency vibration under the joint action of the elastic folding layer 654 and the vibration spring 6541. The vibration of the dispersion plate 652 during stirring not only promotes the relative movement and collision between the plastic particles, but also increases the dispersion of the plastic particles, making them more evenly dispersed. At the same time, the vibration effect also helps to shake off the iron filings attached to the surface of the plastic particles, which is beneficial to the subsequent iron removal.
[0064] See also Figures 8 to 10 A plurality of vibrating members 6521 are fixedly installed on both sides of the dispersion plate 652. During the interlaced operation of the dispersion plates 652 on the rotating shaft 61 and the stirring rod 64, the vibrating members 6521 will be driven to collide with each other. Based on the force of the collision, the dispersion plate 652 generates high-frequency vibration under the joint action of the elastic folding layer 654 and the vibration spring 6541.
[0065] See also Figures 8 to 11 A plurality of dispersion components 70 for dispersing plastic particles are arranged on the dispersion plate 652, and the dispersion components 70 include a mounting collar 71, and a dispersion ball 72 is rotatably mounted on the inner side of the mounting collar 71, and a plurality of dispersion protrusions 73 are arranged on the outer wall of the dispersion ball 72; the dispersion ball 72 collides with the plastic particles during rotation, and utilizes its spherical shape and dynamic characteristics to knock and disperse the plastic particles from multiple directions, thereby increasing the relative movement and collision opportunities between the plastic particles, and this knocking effect helps to break the agglomeration state between the plastic particles and make them more dispersed, and at the same time, the dispersion protrusions 73 on the surface of the dispersion ball 72 produce rotation and shearing effects when in contact with the plastic particles, thereby enhancing the stirring effect.
[0066] See also Figures 1 to 3 The iron removal component 30 includes a movable frame 31 movably installed on the front side of the mixing box 10, a high temperature resistant sealing ring 32 is arranged between the mixing box 10 and the movable frame 31, and the high temperature resistant sealing ring 32 is installed on the movable frame 31, and the movable frame 31 is fixedly equipped with a magnetic frame 33 for magnetically cleaning iron filings in plastic particles on the side of the movable frame 31 facing the mixing box 10, and an iron removal handle 34 is fixedly installed on the front side of the movable frame 31; wherein, the movable frame 31 is assembled with the mixing box 10 through a fixed hand wheel 35; when it is necessary to clean the iron filings on the magnetic frame 33, it is only necessary to open the fixed hand wheel 35 and pull the iron removal handle 34, and the magnetic frame 33 can be easily pulled out of the mixing box 10 for cleaning.
[0067] The specific usage and function of this embodiment are as follows:
[0068] Working principle: When in use, first pour the plastic particles into the mixing box 10 through the feed port 121 at the top, then operate the control switch 53 to start the driving mechanism 20, which is driven by a high-performance motor, and the output shaft of the driving mechanism 20 is directly connected to the rotating shaft 61. The driving mechanism 20 drives the rotating shaft 61 to rotate clockwise at a certain speed. During the self-rotation of the rotating shaft 61, the driving gear 623 installed thereon and the linkage gear 625 are precisely meshed, thereby driving the driven gear 624 to rotate counterclockwise. The rotation of the driven gear 624 is transmitted to the stirring rod 64 through the driven sleeve 6241 and the fixed sleeve 63, so that the stirring rod 64 also rotates counterclockwise, thereby forming a unique double-layer stirring structure combining the clockwise rotation of the rotating shaft 61 and the counterclockwise rotation of the stirring rod 64. The clockwise rotation of the rotating shaft 61 and the counterclockwise rotation of the stirring rod 64 are combined to achieve efficient stirring and dispersion of the plastic particles. This device not only improves the stirring efficiency, but also makes the plastic particles more evenly distributed in the mixing box 10, providing favorable conditions for subsequent processing;
[0069] As the plastic particles are continuously added, the dispersion plates 652 and the dispersion balls 72 in the stirring mechanism 60 begin to play their key roles. The dispersion plates 652 are evenly distributed on the rotating shaft 61 and the stirring rod 64. The dispersion plates 652 not only stir the plastic particles by their rotation, but also further enhance the stirring effect through the dispersion balls 72. The dispersion balls 72 collide with the plastic particles during the rotation process, and utilize their spherical shape and dynamic characteristics to knock and disperse the plastic particles from multiple directions, thereby increasing the relative movement and collision opportunities between the plastic particles. Moreover, this knocking effect helps to break the agglomeration state between the plastic particles and make them more dispersed. At the same time, the dispersion protrusions 73 on the surface of the dispersion balls 72 generate rotation and shearing effects when in contact with the plastic particles, thereby enhancing the stirring effect.
[0070] At the same time, the rotating shaft 61 and the dispersion plates 652 on the stirring rod 64 will drive the vibrating parts 6521 to collide with each other during the interlaced operation. Based on the force of the collision, the dispersion plates 652 generate high-frequency vibrations under the joint action of the elastic folding layer 654 and the vibration spring 6541. The vibration of the dispersion plates 652 during stirring not only promotes the relative movement and collision between the plastic particles, but also increases the dispersion of the plastic particles, making them more evenly dispersed. In addition, the vibration effect also helps to shake off the iron filings attached to the surface of the plastic particles, which is beneficial to the subsequent iron removal.
[0071] During the stirring process, the magnetic frame 33 on the iron removal component 30 always magnetically attracts the plastic particles in the mixed material box 10, and the magnetic frame 33 is made of high-performance permanent magnetic material, has a strong magnetic attraction, and can effectively absorb iron filings in the plastic particles. As the stirring proceeds, the iron filings are gradually absorbed and gathered together by the magnetic frame 33, which provides convenience for the subsequent cleaning of iron filings;
[0072] In addition, by adjusting the handle 43 and the adjusting slide 41, the feed port 121 of the mixing box 10 can be flexibly adjusted. By adjusting the position of the adjusting slide 41, the size of the feed port 121 can be changed to adapt to plastic particles of different particle sizes and flow rates. This setting not only improves the flexibility and applicability of the device, but also enables it to better meet actual production needs; finally, when it is necessary to clean the iron filings on the magnetic frame 33, just open the fixed handwheel 35 and pull the iron removal handle 34 to easily pull the magnetic frame 33 out of the mixing box 10 for cleaning. This setting not only simplifies the cleaning process, but also improves the cleaning efficiency, thereby ensuring the continuous and stable operation of the device.
[0073] The preferred embodiments of the present invention disclosed above are only used to help illustrate the present invention. The preferred embodiments do not describe all the details in detail, nor do they limit the invention to the specific implementation methods described. Obviously, many modifications and changes can be made according to the content of this specification. This specification selects and specifically describes these embodiments in order to better explain the principles and practical applications of the present invention, so that those skilled in the art can understand and use the present invention well. The present invention is limited only by the claims and their full scope and equivalents.
Claims
1. A high temperature resistant stirring iron removal device, comprising a mixing box (10), a driving mechanism (20) arranged on the mixing box (10), characterized in that: It also includes a stirring mechanism (60) disposed inside the mixing box (10), and an iron removal component (30) disposed on the mixing box (10) for removing iron filings from the plastic particles; The left and right sides of the mixing box (10) are both fixedly mounted with mounting seats (11), the driving mechanism (20) is fixedly mounted on the mounting seats (11), the output end of the driving mechanism (20) passes through the mounting seats (11) and is connected to the stirring mechanism (60), and the driving mechanism (20) drives the stirring mechanism (60) to rotate to stir the plastic particles; The stirring mechanism (60) comprises a rotating shaft (61) and a linkage assembly (62) fixedly mounted on the inner wall of the mixing box (10); one end of the rotating shaft (61) is fixedly connected to the output end of the driving mechanism (20); a fixing sleeve (63) is provided on the linkage assembly (62); a stirring rod (64) is fixedly mounted on the fixing sleeve (63); a stirring assembly (65) for stirring the plastic particles is fixedly mounted on both the rotating shaft (61) and the stirring rod (64); the rotating shaft (61) is driven to rotate clockwise by the driving mechanism (20), and the stirring rod (64) is driven to rotate counterclockwise by the linkage assembly (62), so that the stirring assembly (65) on the rotating shaft (61) and the stirring rod (64) form opposite stirring directions; The stirring assembly (65) comprises a stirring seat (651) fixedly mounted on the stirring rod (64); a dispersion plate (652) for stirring and dispersing plastic particles is movably mounted on the stirring seat (651); movable blocks (653) are fixedly mounted on both the front and rear sides of the dispersion plate (652); The stirring seat (651) is provided with a movable groove (6511), and an elastic folding layer (654) is provided in the movable groove (6511); a side of the movable block (653) away from the dispersion plate (652) is located in the movable groove (6511), and one side of the movable block (653) is in contact with the elastic folding layer (654); Wherein, a vibration spring (6541) is arranged inside the elastic folding layer (654); A plurality of vibrating members (6521) are fixedly mounted on both the left and right sides of the dispersion plate (652); The dispersion plate (652) is provided with a plurality of dispersion components (70) for dispersing plastic particles. The dispersion components (70) include a mounting collar (71). A dispersion ball (72) is rotatably mounted on the inner side of the mounting collar (71), and a plurality of dispersion protrusions (73) are provided on the outer wall of the dispersion ball (72).
2. A high temperature resistant stirring iron removal device according to claim 1, characterized in that: The linkage assembly (62) comprises a fixed shell (621), a fixed block (622) being fixedly mounted on the fixed shell (621) by means of screws, and one side of the fixed block (622) being fixedly mounted on the inner wall of the mixing material box (10); A driving gear (623) is rotatably mounted on the fixed block (622) via a bearing, a driven gear (624) and a linkage gear (625) are rotatably mounted on the inner wall of the fixed shell (621) via a bearing, and the linkage gear (625) is located between the driven gears (624), a driven sleeve (6241) is fixedly mounted on the driven gear (624), and the driven sleeve (6241) is located on the outer periphery of the rotating shaft (61), the inner wall of the driving gear (623) is fixedly assembled with the rotating shaft (61), the driving gear (623) is driven to rotate clockwise via the rotating shaft (61), and the driven gear (624) and the driven sleeve (6241) are rotated counterclockwise via meshing transmission of the linkage gear (625).
3. A high temperature resistant stirring iron removal device according to claim 1, characterized in that: The stirring assembly (65) on the rotating shaft (61) and the stirring assembly (65) on the stirring rod (64) are arranged to cross each other, and the stirring assembly (65) on the rotating shaft (61) is perpendicular to the stirring assembly (65) on the stirring rod (64).
4. A high temperature resistant stirring iron removal device according to claim 1, characterized in that: The iron removal assembly (30) comprises a movable frame (31) movably mounted on the front side of the mixing box (10); a high temperature resistant sealing ring (32) is provided between the mixing box (10) and the movable frame (31); and the high temperature resistant sealing ring (32) is mounted on the movable frame (31); a magnetic frame (33) for magnetically cleaning iron filings in plastic particles is fixedly mounted on one side of the movable frame (31) facing the mixing box (10); and an iron removal handle (34) is fixedly mounted on the front side of the movable frame (31); The movable frame (31) is assembled with the mixing material box (10) via a fixed hand wheel (35).
5. A high temperature resistant stirring iron removal device according to claim 1, characterized in that: A mounting top plate (12) is fixedly mounted on the upper side of the mixing box (10), a feeding port (121) for feeding plastic particles is provided on the mounting top plate (12), and a discharging port (101) for discharging plastic particles is provided at the bottom of the mixing box (10).
6. A high temperature resistant stirring iron removal device according to claim 5, characterized in that: The mixing box (10) is provided with an adjustment assembly (40), and the adjustment assembly (40) is located between the mixing box (10) and the mounting top plate (12), the adjustment assembly (40) comprises an adjustment slide plate (41) slidably mounted on the mixing box (10), an adjustment slot (42) for feeding plastic particles is provided on the adjustment slide plate (41), a limit block (44) for sliding limit is fixedly mounted on the adjustment slide plate (41), and an adjustment handle (43) is provided on the front side of the adjustment slide plate (41).
7. A high temperature resistant stirring iron removal device according to claim 1, characterized in that: A control assembly (50) is arranged on the right mounting seat (11) of the mixing material box (10), and the control assembly (50) comprises a mounting plate (51) fixedly mounted on the mounting seat (11), an electrical box (52) fixedly mounted on the mounting plate (51), and a control switch (53) for operation is arranged on the electrical box (52).
Citation Information
Patent Citations
Magnetic impurity filtering equipment in TGIC (triglycidyl isocyanurate) production process
CN117019388A