Kneading machine cooling mechanism for rubber production

Through the design of the inner and outer ring devices, the kneader body and driving equipment are fully cooled by using motors and fan blades, which solves the problem of incomplete heat dissipation in the prior art and realizes efficient cooling of the kneader.

CN223071713UActive Publication Date: 2025-07-08CHANGCHUN HUIRONG SEALING MATERIAL CO LTD
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Patent Information

Application Number
CN202422073058.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-26
Publication Date
2025-07-08
Estimated Expiration
2034-08-26

AI Technical Summary

Technical Problem

The existing kneader cooling mechanism can only dissipate heat on one side of the kneader body, and the heat dissipation range is not comprehensive, and it is impossible to effectively dissipate heat to the driving equipment.

Method used

The inner ring device and the outer ring device are adopted to cool the kneader body through the first motor and the first fan blade, the driving equipment is cooled by the second motor and the second fan blade, and the air-conditioning and cooling box are used to circulate and dissipate heat.

Benefits of technology

It realizes all-round cooling of the kneader body and drive equipment, with simple structure, easy use, and significantly improved cooling effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of rubber production, and discloses a kneading machine cooling mechanism for rubber production, which comprises a base, a kneading machine body and a driving device are arranged on the top wall surface of the base, and the driving device is positioned on the left side wall surface of the kneading machine body; comprising an inner ring device capable of cooling a kneading machine body, and the inner ring device comprises two first motors and two first fan blades; comprising an outer ring device capable of cooling the driving equipment, and the outer ring device comprises two second motors and two second fan blades. In conclusion, by arranging the refrigerating machine, the first refrigerating box, the second penetrating hole, the first partition plate, the first motor, the flow dividing partition plate and the first fan blades, cold air on the inner ring can surround the side wall of the kneading machine body by a circle through rotation of the two first fan blades in cooperation with blocking of the first partition plate, and hot air of the kneading machine body is taken away in the flowing process of the cold air; usage is convenient and the structure is simple.
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Description

Technical Field

[0001] The utility model belongs to the technical field of rubber production, and specifically relates to a kneader cooling mechanism for rubber production. Background Art

[0002] In the process of rubber production and processing, there is an operation of shaping rubber. The rubber is shaped by using a kneader and then quickly cooled to prevent rubber deformation. However, in the prior art, the inventor has found the following problems in use;

[0003] The prior art discloses a kneader cooling mechanism for silicone rubber production (202222512148.6), including a base. A kneader body is installed on the top of the base. A water storage tank is fixedly connected to the position on the top of the base below the kneader body. The front and back of the kneader body are both fixedly connected with frames, and heat conduction tubes are arranged inside the two frames. The middle parts of the two heat conduction tubes are attached to the side surface of the kneader body.

[0004] The prior art dissipates heat from the kneader body by using an air-cooled radiator to prevent the heat of the kneader body from affecting the rubber. However, the prior art can only dissipate heat from one side wall surface of the kneader body, and the heat dissipation range is not comprehensive. Moreover, when the driving device drives the kneader body to operate, the driving device will also generate a certain amount of heat, and the prior art cannot dissipate heat from the driving device. Therefore, the prior art has certain disadvantages in use.

[0005] In view of this, the present utility model is specifically proposed. Summary of the Utility Model

[0006] To solve the above technical problems, the basic concept of the technical solution adopted by the present utility model is as follows:

[0007] A kneader cooling mechanism for rubber production, comprising:

[0008] A base, on the top wall surface of the base, there is a kneader body and a driving device, and the driving device is located at the left wall surface of the kneader body;

[0009] An inner ring device that can cool the kneader body, and the inner ring device includes two first motors and two first fan blades;

[0010] An outer ring device that can cool the driving device, and the outer ring device includes two second motors and two second fan blades.

[0011] As a preferred embodiment of the present utility model, a first refrigeration box is fixedly installed on the side wall of the kneading machine body. The inner side wall of the cavity of the first refrigeration box is in a hollow state. A rectangular shunt partition is fixedly installed in the cavity of the first refrigeration box. A first partition is fixedly installed on the front and rear side wall surfaces of the front side of the shunt partition. The first partition is fixedly connected to the inside of the cavity of the first refrigeration box, and the first partition on the rear side is fixedly connected to the kneading machine body.

[0012] As a preferred embodiment of the present utility model, two second perforations are opened on the bottom wall surface of the front side cavity of the first refrigeration box. A refrigerating machine is fixedly installed on the front side wall surface of the kneading machine body, and the second perforations are respectively communicated with two interfaces of the refrigerating machine.

[0013] As a preferred embodiment of the present utility model, the two first motors are respectively fixedly installed at the positions of the bottom wall surface of the shunt partition and the left and right sides of the first partition. Two first fan blades are respectively fixedly installed at the output ends of the two first motors, and the two first fan blades are respectively located in the cavities of the two second perforations.

[0014] As a preferred embodiment of the present utility model, a first perforation is opened at both ends of the front and rear of the left side wall surface of the cavity of the first refrigeration box. A second refrigeration box is fixedly installed on the left side wall surface of the first refrigeration box. The left side wall surface of the second refrigeration box is in a hollow state and is attached to the driving device, and the first perforation is communicated with the inside of the cavity of the second refrigeration box.

[0015] As a preferred embodiment of the present utility model, the two second motors are fixedly installed at the positions of the front and rear ends of the right side wall surface of the driving device, and a rotating rod is fixedly installed at the output end of each of the two second motors.

[0016] As a preferred embodiment of the present utility model, the two second fan blades are respectively fixedly installed at the ends of the two rotating rods far from the second motors. The two second fan blades are respectively located in the cavities of the two first perforations. A second partition is fixedly installed at one end of the left side wall surface of the shunt partition where the two first perforations are close to each other, and the second partition is fixedly connected to the inner wall surface of the cavity of the first refrigeration box.

[0017] The present utility model has the following beneficial effects compared with the prior art:

[0018] 1. In summary, by setting the inner ring device and the outer ring device, the kneading machine body can be cooled by the two first motors and the two first fan blades, and the driving device can be cooled by the two second motors and the two second fan blades. Compared with the prior art, it has the characteristics of convenient use and simple structure.

[0019] 2. In summary, by providing a refrigerator, a first refrigerating box, a second perforation, a first partition plate, a first motor, a flow-dividing partition plate, and a first fan blade, the cold air in the inner circle can be made to surround the side wall of the kneading machine body by the rotation of the two first fan blades in cooperation with the blocking of the first partition plate. During the flow of the cold air, the hot air of the kneading machine body can be carried away, which is convenient to use and has a simple structure.

[0020] 3. In summary, by providing a second refrigerating box, a flow-dividing partition plate, a first perforation, a second partition plate, a second motor, a rotating rod, and a second fan blade, the cold air in the outer circle can be made to flow by the rotation of the two second fan blades, so as to dissipate heat from the driving device, which is convenient to use and has a simple structure.

[0021] The following further describes in detail the specific implementation manners of the present invention with reference to the accompanying drawings. Description of the Drawings

[0022] In the drawings:

[0023] Figure 1 is a perspective view of the present invention;

[0024] Figure 2 is a perspective view of the first refrigerating box 14 and the second refrigerating box 15 of the present invention;

[0025] Figure 3 is a perspective view of the first refrigerating box 14 of the present invention;

[0026] Figure 4 is a perspective view of the flow-dividing partition plate 16 of the present invention;

[0027] Figure 5 is a perspective view of the second refrigerating box 15 of the present invention.

[0028] In the figures: 10, base; 11, kneading machine body; 12, driving device; 13, refrigerator; 14, first refrigerating box; 15, second refrigerating box; 16, flow-dividing partition plate; 17, first perforation; 18, second perforation; 19, first partition plate; 20, second partition plate; 21, first motor; 22, first fan blade; 23, second motor; 24, rotating rod; 25, second fan blade. Specific Embodiment

[0029] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions in the embodiments will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention. The following embodiments are used to illustrate the present invention.

[0030] As Figure 1 shown, a cooling mechanism for a kneading machine used in rubber production, the following:

[0031] It includes a base 10, on the top wall of the base 10, a kneader body 11 and a driving device 12 are provided, and the driving device 12 is located at the left side wall of the kneader body 11;

[0032] It includes an inner ring device that can cool the kneader body 11, and the inner ring device includes two first motors 21 and two first fan blades 22;

[0033] It includes an outer ring device that can cool the driving device 12, and the outer ring device includes two second motors 23 and two second fan blades 25.

[0034] It should be noted that: both the base 10 and the kneader body 11 have been disclosed in a cooling mechanism for a kneader used in silicone rubber production (202222512148.6), and will not be elaborated here.

[0035] During specific use, the inner ring device can play a role in cooling the kneader body 11 through the two first motors 21 and the two first fan blades 22, and the outer ring device can play a role in cooling the driving device 12 through the two second motors 23 and the two second fan blades 25.

[0036] In summary, by setting the inner ring device and the outer ring device, the kneader body 11 can be cooled through the two first motors 21 and the two first fan blades 22, and the driving device 12 can be cooled through the two second motors 23 and the two second fan blades 25. Compared with the prior art, it has the characteristics of convenient use and simple structure.

[0037] As Figure 2 、 Figure 3 and Figure 4 shown, a first refrigeration box 14 is fixedly installed on the side wall of the kneader body 11. The inner side wall of the cavity of the first refrigeration box 14 is in a hollow state. A rectangular flow dividing partition 16 is fixedly installed in the cavity of the first refrigeration box 14. On the front and rear side walls of the front side of the flow dividing partition 16, a first partition 19 is fixedly installed. The first partition 19 is fixedly connected to the cavity of the first refrigeration box 14, and the rear first partition 19 is fixedly connected to the kneader body 11.

[0038] On the bottom wall of the front side cavity of the first refrigeration box 14, two second perforations 18 are opened. A refrigerator 13 is fixedly installed on the front side wall of the kneader body 11, and the second perforations 18 are respectively communicated with the two interfaces of the refrigerator 13.

[0039] Both of the two first motors 21 are respectively fixedly installed at the positions on the left and right sides of the bottom wall surface of the flow dividing partition 16 and the first partition 19. Both of the two first fan blades 22 are respectively fixedly installed at the output ends of the two first motors 21. Both of the two first fan blades 22 are respectively located in the cavities of the two second through holes 18. The refrigerator 13 is electrically connected to the power supply and the switch. The first motor 21 is electrically connected to the power supply and the switch.

[0040] During specific use, when the staff starts the refrigerator 13, cold air will be ejected from one side interface of the refrigerator 13. The cold air will enter the cavity of the first refrigerating box 14 through the second through hole 18 on the right side. The cold air will be divided into two parts by the flow dividing partition 16. One part is located in the cavity between the flow dividing partition 16 and the cavity of the first refrigerating box 14, and the other part is located in the cavity between the flow dividing partition 16 and the kneading machine body 11. The rotation of the output ends of the two first motors 21 can drive the corresponding first fan blades 22 to rotate. By the rotation of the first fan blade 22 on the right side, the cold air can be inhaled into the cavity of the first refrigerating box 14. By the rotation of the first fan blade 22 on the left side, the cold air inhaled by the first fan blade 22 on the right side will flow according to the first refrigerating box 14 and the flow dividing partition 16. The flow of the cold air inside it will take away the hot air on the side wall of the kneading machine body 11. The first partition 19 can block the cold air so that the cold air can surround the kneading machine body 11 in a circle and be introduced into the cavity of the refrigerator 13 through the rotation of the first fan blade 22 on the left side to cool the gas, and this cycle continues.

[0041] In summary, by setting the refrigerator 13, the first refrigerating box 14, the second through hole 18, the first partition 19, the first motor 21, the flow dividing partition 16 and the first fan blade 22, through the rotation of the two first fan blades 22 and the blocking of the first partition 19, the cold air in the inner circle can surround the side wall of the kneading machine body 11 in a circle. During the flow of the cold air, the hot air of the kneading machine body 11 can be taken away. It is convenient to use and has a simple structure.

[0042] As Figure 2 and Figure 5 shown, at the front and rear ends of the left side wall surface inside the cavity of the first refrigerating box 14, a first through hole 17 is opened at each end. A second refrigerating box 15 is fixedly installed on the left side wall surface of the first refrigerating box 14. The left side wall surface of the second refrigerating box 15 is in a hollow state and is attached to the driving device 12. The first through hole 17 communicates with the cavity of the second refrigerating box 15.

[0043] Both of the two second motors 23 are fixedly installed at the positions on the front and rear ends of the right side wall surface of the driving device 12. A rotating rod 24 is fixedly installed at the output end of each of the two second motors 23.

[0044] Both of the second fan blades 25 are respectively and fixedly installed at one ends of the two rotating rods 24 away from the second motor 23. Both of the second fan blades 25 are respectively located in the cavities of the two first through holes 17. At one ends of the left side wall surface of the flow dividing partition plate 16 where the two first through holes 17 are close to each other, a second partition plate 20 is fixedly installed. The second partition plate 20 is fixedly connected to the inner wall surface of the cavity of the first refrigeration box 14. The second motor 23 is electrically connected to the power supply and the switch.

[0045] During specific use, when the output ends of the two second motors 23 rotate, the two corresponding rotating rods 24 can be driven to rotate. The rotation of the rotating rods 24 can drive the corresponding second fan blades 25 to rotate. The rotation of the rear second fan blade 25 can suck the cold air in the outer ring into the cavity of the second refrigeration box 15. Through the flow of the cold air in the cavity of the second refrigeration box 15, the heat of the driving device 12 is taken away. Then, through the rotation of the front second fan blade 25, the cold air is sucked into the cavity between the first refrigeration box 14 and the flow dividing partition plate 16, and then sucked into the cavity of the refrigerator 13 through the rotation of the left first fan blade 22, so that the refrigerator 13 cools the gas.

[0046] In summary, by providing the second refrigeration box 15, the flow dividing partition plate 16, the first through holes 17, the second partition plate 20, the second motor 23, the rotating rods 24 and the second fan blades 25, the cold air in the outer ring can be made to flow through the rotation of the two second fan blades 25, thereby dissipating heat from the driving device 12. It is convenient to use and has a simple structure.

[0047] It can be understood that the present invention is described by some embodiments. As is known to those skilled in the art, without departing from the spirit and scope of the present invention, various changes or equivalent replacements can be made to these features and embodiments. In addition, under the teaching of the present invention, these features and embodiments can be modified to adapt to specific situations and materials without departing from the spirit and scope of the present invention. Therefore, the present invention is not limited by the specific embodiments disclosed herein, and all embodiments falling within the scope of the claims of this application belong to the scope protected by the present invention.

Claims

1. A kneader cooling mechanism for rubber production, characterized in that, The description is as follows: It includes a base (10). On the top wall surface of the base (10), there is a kneader body (11) and a driving device (12). The driving device (12) is located at the left wall surface of the kneader body (11). It includes an inner ring device that can cool the kneader body (11). The inner ring device includes two first motors (21) and two first fan blades (22). It includes an outer ring device that can cool the driving device (12). The outer ring device includes two second motors (23) and two second fan blades (25).

2. The kneader cooling mechanism for rubber production according to claim 1, wherein, A first refrigeration box (14) is fixedly installed on the side wall of the kneader body (11). The inner side wall of the cavity of the first refrigeration box (14) is in a hollow state. A rectangular flow dividing partition (16) is fixedly installed in the cavity of the first refrigeration box (14). On the front and rear side wall surfaces of the front side of the flow dividing partition (16), a first partition (19) is fixedly installed. The first partition (19) is fixedly connected to the cavity of the first refrigeration box (14), and the rear first partition (19) is fixedly connected to the kneader body (11).

3. The kneader cooling mechanism for rubber production according to claim 2, wherein, Two second perforations (18) are opened on the bottom wall surface of the front side cavity of the first refrigeration box (14). A refrigerator (13) is fixedly installed on the front side wall surface of the kneader body (11). The second perforations (18) are respectively communicated with the two interfaces of the refrigerator (13).

4. The kneader cooling mechanism for rubber production according to claim 3, characterized in that, The two first motors (21) are respectively fixedly installed at the left and right positions of the bottom wall surface of the flow dividing partition (16) and the first partition (19). The two first fan blades (22) are respectively fixedly installed at the output ends of the two first motors (21). The two first fan blades (22) are respectively located in the cavities of the two second perforations (18).

5. The kneading machine cooling mechanism for rubber production according to claim 4, characterized in that, At both the front and rear ends of the left side wall surface of the cavity of the first refrigeration box (14), a first perforation (17) is opened. A second refrigeration box (15) is fixedly installed on the left side wall surface of the first refrigeration box (14). The left side wall surface of the second refrigeration box (15) is in a hollow state and is attached to the driving device (12). The first perforation (17) is communicated with the cavity of the second refrigeration box (15).

6. The kneader cooling mechanism for rubber production according to claim 5, characterized in that, The two second motors (23) are both fixedly installed at the front and rear positions of the right side wall surface of the driving device (12). A rotating rod (24) is fixedly installed at the output end of each of the two second motors (23).

7. The kneader cooling mechanism for rubber production according to claim 6, wherein, The two second fan blades (25) are respectively fixedly installed at the ends of the two rotating rods (24) far from the second motors (23). The two second fan blades (25) are respectively located in the cavities of the two first perforations (17). At the end where the two first perforations (17) are close to each other on the left side wall surface of the flow dividing partition (16), a second partition (20) is fixedly installed. The second partition (20) is fixedly connected to the inner wall surface of the cavity of the first refrigeration box (14).

Citation Information

Patent Citations

  • Kneading machine cooling mechanism for silicone rubber production

    CN218139178U