Efficient screw rod cleaning agent material strip cooling and curing device
Through the design of motor drive cam and hexagonal dial plate, the shaking and separate cavity cooling of the material strips are achieved, which solves the problems of uneven cooling and waste of water resources in the existing devices, and improves the cooling and curing efficiency and quality of the screw cleaning agent material strips.
Patent Information
- Application Number
- CN202422016813.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-19
- Publication Date
- 2025-07-11
- Estimated Expiration
- 2034-08-19
AI Technical Summary
The existing screw cleaning agent strip cooling and curing device increases when cooling, resulting in a decrease in cooling and curing speed, uneven cooling and waste of water resources, and the heat inside the strip is slowly dissipated, which cannot meet the requirements of efficient cooling and curing.
The design of motor drive cam and hexagonal dial plate is adopted to drive the cooling and curing cylinder to shake left and right and material strips to rotate, and combined with the injection and discharge of the coolant in the cavity, break the static air layer, increase the heat transfer area, ensure that the material strips continue to come into contact with the coolant with a lower temperature, shorten the cooling time and improve uniformity.
Accelerate the cooling and curing process of the material strip, reduce bubbles and residual solvents, improve cooling quality and curing consistency, shorten cooling time, and reduce waste of water resources.
Smart Images

Figure CN223085389U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of screw cleaning agents, in particular to an efficient cooling and solidifying device for screw cleaning agent strips. Background Technique
[0002] Screw cleaning agents are used to solve the problems of color and material change during injection molding and extrusion production. At the same time, they can solve the coking substances generated in the screw during the injection molding and extrusion process. They can also provide the function of shutdown maintenance. The screw cleaning agent can generate strong shear force with the rotation of the screw, so as to have a strong cleaning effect on the screw and the barrel. After the screw cleaning agent strip is extruded through the extrusion equipment, it needs to be cooled and solidified by the cooling and solidifying equipment to cool down the strip and make it solidify and form.
[0003] When the common screw cleaning agent strip cooling and solidifying device is in use, the strip is mostly directly placed in a cold water pool for cooling. This method will cause the water temperature to gradually rise during cooling, resulting in a decrease in the cooling and solidifying speed of the strip. It not only easily leads to uneven cooling and causes a large waste of water resources, but also because the strip is in a static state during cooling and solidifying, the contact between the strip surface and the cooling water is uneven, making the heat dissipation inside the strip slower, thereby increasing the cooling and solidifying time and not meeting the working requirements for the cooling and solidifying of the cleaning agent strip. Therefore, an efficient screw cleaning agent strip cooling and solidifying device is proposed. Summary of the Utility Model
[0004] (1) Technical Problems to be Solved
[0005] Aiming at the deficiencies of the prior art, the utility model provides an efficient screw cleaning agent strip cooling and solidifying device to solve the technical problem that the water temperature will gradually rise during cooling, resulting in a decrease in the cooling and solidifying speed of the strip.
[0006] (2) Technical Solutions
[0007] To achieve the above object, the utility model provides the following technical solutions: An efficient screw cleaning agent strip cooling and solidifying device, comprising:
[0008] A base, a mounting seat is connected to the middle position at the top of the base, a cooling tower is installed at the front of the base, a spray pipe is installed at the top of the cooling tower, and a transmission block is inserted into the right side inside the mounting seat;
[0009] A support frame is connected to the top of the transmission block, a supporting plate is installed at the top of the support frame, mounting plates are connected to both the left and right sides at the top of the supporting plate, and cooling and solidifying cylinders are installed inside the mounting plates;
[0010] The first motor is inserted and installed on the left side inside the mounting seat. A cam is coaxially installed on the rotor of the first motor. The outer side of the front part of the cam is connected with a driving arm through a bearing, and the outer end of the driving arm is connected with the corresponding position of the front part of the transmission block through a bearing. A second motor is installed on the upper outer side of the left mounting plate through a bracket.
[0011] A hexagonal dial plate is inserted in the middle position inside the cooling and curing cylinder. The left end of the hexagonal dial plate is coaxially connected with the rotor of the second motor. A through groove is opened at the middle position of the top of the cooling and curing cylinder, and a mesh plate is installed at the middle position of the lower part of the cooling and curing cylinder.
[0012] Preferably, springs are connected to both the left and right sides of the transmission block, which facilitates the left and right shaking of the transmission block. The outer ends of the springs are connected to the corresponding positions inside the cavity of the mounting seat. An empty groove is opened at the right side of the top of the mounting seat.
[0013] Preferably, support legs are connected to both the front and rear parts of the left side of the bottom of the supporting plate. Rollers are inserted through bearings at the lower sides inside the support legs. Sliding grooves are opened at the positions of the base corresponding to the support legs, and the rollers are inserted inside the sliding grooves, which improves the stability when the supporting plate and the cooling and curing cylinder shake left and right.
[0014] Preferably, a diversion seat is installed at the middle position of the upper surface of the supporting plate corresponding to the mesh plate. The inner sides of the diversion seats are all inclined, which facilitates the collection of cooling water. A sealing door is hinged to the lower left side of the cooling and curing cylinder, and a locking structure is installed on the outer side of the sealing door, which facilitates opening and closing the sealing door to unload the strip.
[0015] Preferably, the outer ends of the hexagonal dial plate are all arc-shaped, which makes the contact tightness between the outer ends of the hexagonal dial plate and the inner wall of the cooling and curing cylinder. The right end of the hexagonal dial plate is connected to the corresponding position inside the cavity of the cooling and curing cylinder through a rotating shaft.
[0016] (III) Beneficial effects
[0017] Compared with the prior art, the utility model provides an efficient screw cleaning agent strip cooling and curing device, which has the following beneficial effects:
[0018] 1. The efficient screw cleaning agent strip cooling and curing device drives the rotation of the cam through the first motor, thereby driving the left and right movement of the transmission block through the driving arm, and then making the supporting plate and the cooling and curing cylinder shake left and right, so as to drive the strip inside the cooling and curing cylinder to shake during cooling. Vibration can break the static air layer on the surface and inside of the strip, increase the surface area of heat transfer, thereby accelerating heat dissipation. And with the assistance of vibration, the molecular movement inside the strip is intensified, which helps the curing agent to solidify faster, shortens the curing time. At the same time, vibration helps to discharge the bubbles and residual solvents inside the strip, reduce curing defects, and improve the quality of cooling and curing;
[0019] 2. The efficient screw cleaning agent strip cooling and curing device drives the hexagonal dial to rotate through the second motor, thereby storing the strips in compartments. After the cooling tower and the spray pipe inject the cooling liquid into the cooling and curing cylinder through the through groove, the hexagonal dial drives the strip to rotate. When driving the strip past the mesh plate, the heated cooling water can be discharged, and when rotating to the through groove, new cooling water is injected, so that the strip inside the hexagonal dial can always contact the cooling liquid with a lower temperature for curing, ensuring that the strip can achieve the optimal cooling rate throughout the cooling process, thereby shortening the cooling time. At the same time, the compartment design helps to reduce the uneven cooling phenomenon caused by temperature difference, making the temperature distribution of the strip from the inside to the surface more uniform, which is beneficial to the consistency of the curing process. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Figure 1 is a schematic structural diagram of the present utility model;
[0021] Figure 2 is a schematic structural diagram of the present utility model;
[0022] Figure 3 is a schematic structural diagram of the present utility model;
[0023] Figure 4 is a schematic structural diagram of the present utility model;
[0024] Figure 5 is a schematic structural diagram of the present utility model;
[0025] Figure 6 is a schematic structural diagram of the present utility model.
[0026] In the figure: 1. Base; 2. Mounting seat; 3. Cooling tower; 4. Spray pipe; 5. Transmission block; 6. Support frame; 7. Supporting plate; 8. First motor; 9. Cam; 10. Driving arm; 11. Spring; 12. Mounting plate; 13. Cooling and curing cylinder; 14. Second motor; 15. Through groove; 16. Mesh plate; 17. Flow guide seat; 18. Hexagonal dial; 19. Sealing door; 20. Support leg; 21. Chute. Detailed implementation manners
[0027] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a 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 those of ordinary skill in the art without making creative efforts shall fall within the protection scope of the present invention.
[0028] The present invention provides a technical solution, an efficient screw cleaning agent strip cooling and solidifying device, including a base 1, a mounting seat 2, a cooling tower 3, a spray pipe 4, a transmission block 5, a support frame 6, a supporting plate 7, a first motor 8, a cam 9, a driving arm 10, a spring 11, a mounting plate 12, a cooling and solidifying cylinder 13, a second motor 14, a through groove 15, a net plate 16, a diversion seat 17, a hexagonal baffle 18, a sealing door 19, a support leg 20 and a chute 21:
[0029] Please refer to Figure 1 , the mounting seat 2 is connected to the middle position of the top of the base 1, the cooling tower 3 is installed at the front of the base 1, and the spray pipe 4 is installed at the top of the cooling tower 3. Please refer to Figure 3 , the transmission block 5 is inserted into the right side inside the mounting seat 2. Springs 11 are connected to both the left and right sides of the transmission block 5, and the outer ends of the springs 11 are connected to the corresponding positions inside the cavity of the mounting seat 2. An empty groove is opened at the right side of the top of the mounting seat 2;
[0030] The support frame 6 is connected to the top of the transmission block 5. Please refer to Figure 2 , the supporting plate 7 is installed at the top of the support frame 6. Please refer to Figure 4 , mounting plates 12 are connected to both the left and right sides of the top of the supporting plate 7, and cooling and solidifying cylinders 13 are installed inside the inner sides of the mounting plates 12. Please refer to Figure 2 , support legs 20 are connected to both the front and rear of the lower side of the left side of the supporting plate 7, and rollers are inserted through bearings in the inner lower sides of the support legs 20. Please refer to Figure 1 , chutes 21 are opened at the positions of the left side of the base 1 corresponding to the support legs 20, and the rollers are inserted into the inside of the chutes 21;
[0031] Please refer to Figure 3 , the first motor 8 is inserted into the left side inside the mounting seat 2, a cam 9 is coaxially installed on the rotor of the first motor 8, a driving arm 10 is connected to the outer front side of the cam 9 through a bearing, and the outer end of the driving arm 10 is connected to the corresponding position in the front of the transmission block 5 through a bearing. Please refer to Figure 4, a second motor 14 is installed on the upper outer side of the left mounting plate 12 through a bracket. By driving the rotation of the cam 9 with the first motor 8, the left and right movement of the transmission block 5 can be driven through the driving arm 10, and then the supporting plate 7 and the cooling and curing cylinder 13 can be shaken left and right, so that the strip inside the cooling and curing cylinder 13 can be shaken during cooling. Vibration can break the static air layer on the surface and inside of the strip, increase the surface area of heat transfer, and thus accelerate the dissipation of heat. Moreover, with the assistance of vibration, the molecular movement inside the strip is intensified, which helps the curing agent to solidify faster, shortens the curing time. At the same time, vibration helps to discharge the bubbles and residual solvents inside the strip, reduces curing defects, and improves the quality of cooling and curing;
[0032] Please refer to Figure 6 , a hexagonal deflector 18 is inserted in the middle position inside the cooling and curing cylinder 13. The left end of the hexagonal deflector 18 is coaxially connected to the rotor of the second motor 14. Please refer to Figure 4 , a through groove 15 is opened at the middle position of the top of the cooling and curing cylinder 13. Please refer to Figure 5 , a mesh plate 16 is installed at the middle position of the lower part of the cooling and curing cylinder 13. Please refer to Figure 4 , a diversion seat 17 is installed at the position corresponding to the mesh plate 16 in the middle of the upper surface of the supporting plate 7. The inner sides of the diversion seats 17 are all inclined. Please refer to Figure 5 , a sealing door 19 is hinged to the lower left side of the cooling and curing cylinder 13, and a locking structure is installed on the outer side of the sealing door 19. Please refer to Figure 6 , the outer ends of the hexagonal deflector 18 are all arc-shaped. The right end of the hexagonal deflector 18 is connected to the corresponding position of the inner cavity of the cooling and curing cylinder 13 through a rotating shaft. By driving the rotation of the hexagonal deflector 18 with the second motor 14, the strips can be stored in separate cavities. After the cooling tower 3 and the spray pipe 4 inject the cooling liquid into the cooling and curing cylinder 13 through the through groove 15, the strips are driven to rotate by the hexagonal deflector 18. When driving the strips past the mesh plate 16, the heated cooling water can be discharged, and when rotating to the through groove 15, new cooling water is injected. Thus, the strips inside the hexagonal deflector 18 can always be in contact with the cooler cooling liquid for curing, so as to ensure that the strips can reach the optimal cooling rate throughout the cooling process, thereby shortening the cooling time. At the same time, the separate cavity design helps to reduce the uneven cooling phenomenon caused by temperature difference, makes the temperature distribution of the strips from the inside to the surface more uniform, and is beneficial to the consistency of the curing process.
[0033] In this solution, the rotation of the cam 9 is driven by the first motor 8, so that the left and right movement of the transmission block 5 can be driven by the driving arm 10. Furthermore, the supporting plate 7 and the cooling and solidifying cylinder 13 can be shaken left and right, so that the strip inside the cooling and solidifying cylinder 13 is shaken during cooling. Vibration can break the static air layer on the surface and inside of the strip, increase the surface area of heat transfer, and thus accelerate the dissipation of heat. Moreover, with the assistance of vibration, the molecular movement inside the strip is intensified, which helps the curing agent to solidify faster, shortens the curing time. At the same time, vibration helps to discharge the bubbles and residual solvents inside the strip, reduces curing defects, and improves the quality of cooling and solidification. At the same time, the rotation of the hexagonal dial 18 is driven by the second motor 14, so that the strips can be stored in separate cavities. After the cooling tower 3 and the spray pipe 4 inject the cooling liquid into the cooling and solidifying cylinder 13 through the through groove 15, the hexagonal dial 18 drives the strips to rotate. When the strips are driven past the mesh plate 16, the heated cooling water can be discharged, and when it rotates to the through groove 15, new cooling water is injected. Thus, the strips inside the hexagonal dial 18 can always be in contact with the cooler cooling liquid for solidification, ensuring that the strips can achieve the optimal cooling rate throughout the cooling process, thereby shortening the cooling time. At the same time, the separate cavity design helps to reduce the uneven cooling phenomenon caused by temperature difference, making the temperature distribution of the strips from the inside to the surface more uniform, which is beneficial to the consistency of the curing process.
[0034] It should be noted that in this article, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the term "comprising", "including" or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article or device comprising a series of elements not only includes those elements, but also includes other elements not expressly listed, or elements inherent to such process, method, article or device.
[0035] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. An efficient screw cleaning agent strip cooling and solidifying device, characterized in that Including: A base (1), at the middle position of the top of the base (1), there is a mounting seat (2) connected. At the front of the base (1), a cooling tower (3) is installed. At the top of the cooling tower (3), a spray pipe (4) is installed. Inside the right side of the mounting seat (2), a transmission block (5) is inserted; A support frame (6), connected to the top of the transmission block (5). At the top of the support frame (6), a supporting plate (7) is installed. On both the left and right sides of the top of the supporting plate (7), mounting plates (12) are connected. Inside the mounting plates (12), cooling and solidifying cylinders (13) are installed; A first motor (8), inserted inside the left side of the mounting seat (2). The rotor of the first motor (8) is coaxially installed with a cam (9). At the outer side of the front of the cam (9), a driving arm (10) is connected through a bearing. And the outer end of the driving arm (10) is connected to the corresponding position at the front of the transmission block (5) through a bearing. At the upper outer side of the left mounting plate (12), a second motor (14) is installed through a support; A hexagonal dial (18), inserted at the middle position inside the cooling and solidifying cylinder (13). The left end of the hexagonal dial (18) is coaxially connected to the rotor of the second motor (14). At the middle position of the top of the cooling and solidifying cylinder (13), a through slot (15) is opened. At the middle position of the lower part of the cooling and solidifying cylinder (13), a mesh plate (16) is installed.
2. The high-efficiency screw cleaning agent strip cooling and solidifying device according to claim 1, characterized in that: On both the left and right sides of the transmission block (5), springs (11) are connected. The outer ends of the springs (11) are respectively connected to the corresponding positions inside the cavity of the mounting seat (2). At the right side of the top of the mounting seat (2), an empty slot is opened.
3. An efficient screw cleaning agent strip cooling and solidifying device according to claim 1, characterized in that: At the front and rear of the left side of the bottom of the supporting plate (7), support legs (20) are connected. Inside the lower sides of the support legs (20), rollers are inserted through bearings. At the positions on the left side of the base (1) corresponding to the support legs (20), chutes (21) are opened. The rollers are inserted inside the chutes (21).
4. An efficient screw cleaning agent strip cooling and solidifying device according to claim 1, characterized in that: At the position on the middle of the upper surface of the supporting plate (7) corresponding to the mesh plate (16), a diversion seat (17) is installed. The inner sides of the diversion seats (17) are all inclined. At the lower left side of the cooling and solidifying cylinder (13), a sealing door (19) is hinged. Outside the sealing door (19), a locking structure is installed.
5. An efficient screw cleaning agent strip cooling and solidifying device according to claim 1, characterized in that: The outer ends of the hexagonal dial (18) are all arc-shaped. The right end of the hexagonal dial (18) is connected to the corresponding position inside the cavity of the cooling and solidifying cylinder (13) through a rotating shaft.