Rubber particle lifting device

By setting up a cooling assembly and air inlet duct in the rubber particle lifting device, combining the air outlet strip and air outlet, the problem of poor heat dissipation effect of traditional vertical vibration hoists is solved, and more efficient heat dissipation effect and equipment stability are achieved.

CN222989310UActive Publication Date: 2025-06-17HUBEI TONGMINGHUI NEW MATERIALS TECHNOLOGY CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202421934313.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-09
Publication Date
2025-06-17
Estimated Expiration
2034-08-09

AI Technical Summary

Technical Problem

The traditional vertical vibration hoist does not have good heat dissipation effect when used, resulting in excessive heat accumulation in materials and affecting the stability of the equipment.

Method used

A rubber particle lifting device is designed, using a combination of cooling components and fasteners to introduce air through the air inlet duct, and the cooling air is sprayed onto the material at the spiral disc using the air outlet strip and the air outlet, thereby improving the heat dissipation efficiency.

Benefits of technology

It significantly improves heat dissipation efficiency, prevents materials from overheating, extends the service life of the equipment, and enhances the stability and reliability of the equipment.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN222989310U_ABST
    Figure CN222989310U_ABST
Patent Text Reader

Abstract

The utility model relates to the technical field of rubber particle lifting, and particularly discloses a rubber particle lifting device which comprises a supporting assembly used for supporting and a vertical vibration lifting machine arranged on the supporting assembly. The supporting assembly comprises a base, a mounting base is arranged above the base through a buffering assembly, and the vertical vibration elevator and the base are fixed through a flange. The vertical vibration elevator comprises a stand column connected with the flange, and a continuous spiral disc is spirally arranged on the outer side of the stand column and used for lifting materials. The stand column comprises a pipe body, an inner cavity is formed in the inner side of the pipe body, and a cooling assembly is installed on the inner side of the inner cavity and installed at the bottom of the inner cavity through a fastener. According to the cooling device, when the cooling device is used through the arranged cooling assembly and the arranged fastener, air enters the cooling assembly through the air inlet pipe and then is sprayed to materials on the spiral disc through the air outlet strip and the air outlet, and the heat dissipation efficiency is improved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The utility model relates to the technical field of rubber particle lifting, in particular to a rubber particle lifting device. Background Art

[0002] The vertical vibration elevator, also known as the spiral elevator, is suitable for transporting and lifting powdery, blocky and short fiber materials. The materials can not only be lifted, but also dried and cooled during the lifting process.

[0003] In the traditional cooling method, generally one or more small through holes are opened on the column, and heat is adsorbed by adsorption to achieve the heat dissipation effect. However, this heat dissipation effect is not good enough. During use, the heat dissipation efficiency is poor. At the same time, when adsorbing, dust is easily poured into the column, resulting in unstable use of the elevator. Based on this, it needs to be improved. Summary of the Utility Model

[0004] Aiming at the deficiencies of the prior art, the utility model provides a rubber particle lifting device, which solves the problem that in the prior art, the vertical vibration elevator has a poor heat dissipation effect during use, resulting in excessive heat accumulation of the materials.

[0005] The rubber particle lifting device of the utility model includes a support assembly for support and a vertical vibration elevator arranged on the support assembly;

[0006] The support assembly includes a base, an installation seat is arranged above the base through a buffer assembly, and the vertical vibration elevator is fixed to the base by a flange;

[0007] The vertical vibration elevator includes a column connected to the flange, and a continuous spiral disk is arranged in a spiral shape on the outer side of the column for lifting materials;

[0008] The column includes a pipe body, an inner cavity is arranged inside the pipe body, a cooling assembly is installed inside the inner cavity, and is installed at the bottom of the inner cavity through a fastener;

[0009] One or more ventilation strips arranged in an annular array are opened on the outer side of the pipe body for dissipating heat from the materials at the spiral disk.

[0010] As a further improvement of the utility model, a material storage disk is arranged above the flange at the bottom of the column for loading materials, and the middle part of the material storage disk is adapted to one end of the spiral disk.

[0011] As a further improvement of the utility model, a discharge port extends along one end of the column at the top of the spiral disk for guiding materials.

[0012] As a further improvement of the present utility model, a support block is provided at the top of the column, and vibrators are symmetrically arranged on both sides of the support block for vibrating and lifting materials.

[0013] As a further improvement of the present utility model, one or more support bars are provided on the outer side of the spiral disk, and the support bars are arranged in an annular array for fixing the spiral disk.

[0014] As a further improvement of the present utility model, an air outlet strip is clamped at the ventilation strip opened on the outer side of the pipe body, and one or more air outlet holes are provided on the plate body of the air outlet strip for dissipating heat from the materials on the spiral disk.

[0015] As a further improvement of the present utility model, a through hole is opened at one end of the pipe body located at the support block, and an air inlet pipe is installed for introducing external air.

[0016] As a further improvement of the present utility model, connection rings are provided at both the top and bottom of the pipe body, and positioning holes corresponding to the flange are opened at the connection rings for fixing the pipe body.

[0017] Compared with the prior art, the beneficial effects of the present utility model are as follows:

[0018] When the cooling component and the fasteners provided in the present utility model are in use, air is allowed to enter the cooling component through the air inlet pipe, and then sprayed onto the materials at the spiral disk through the air outlet strip and the air outlet holes, improving the heat dissipation efficiency;

[0019] The combination of the provided air outlet strip and the air outlet holes, the density of their arrangement can be adjusted according to the heat dissipation needs of different materials. At the same time, in combination with the provided air inlet pipe and the air compressor on the outer side, the pressure is adjusted to meet different heat dissipation needs. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] The drawings described herein are used to provide a further understanding of the present application and form a part of the present application. The illustrative embodiments and descriptions thereof of the present application are used to explain the present application and do not constitute an improper limitation of the present application. In the drawings:

[0021] Figure 1 is a three-dimensional structural schematic diagram of the support assembly and the vertical vibration elevator combination of the present utility model;

[0022] Figure 2 is a front view structural schematic diagram of the support assembly and the vertical vibration elevator combination of the present utility model;

[0023] Figure 3 is of the present utility model Figure 2 is a schematic cross-sectional structure diagram of A-A in;

[0024] Figure 4 This is a schematic diagram of the top view of the structure of the support assembly and the vertical vibration hoist combination of the utility model;

[0025] Figure 5 This is a schematic diagram of the three-dimensional structure of the column of the utility model;

[0026] Figure 6 This is a schematic diagram of the front view structure of the utility model column;

[0027] Figure 7 This is a three-dimensional structural diagram of the utility model column from another angle;

[0028] Figure 8 It is a schematic diagram of the top view structure of the column of the utility model.

[0029] In the figure: 1. Support assembly; 2. Vertical vibration hoist; 3. Cooling assembly; 4. Fasteners;

[0030] 11. Base; 12. Buffer assembly; 13. Mounting seat; 14. Flange;

[0031] 21. Material storage tray; 22. Column; 23. Spiral disk; 24. Support bar; 25. Vibrator; 26. Support block; 27. Air inlet pipe;

[0032] 221. tube body; 222. ventilation strip; 223. air outlet strip; 224. air outlet; 225. connecting ring; 226. inner cavity. DETAILED DESCRIPTION

[0033] The following will disclose multiple embodiments of the utility model with diagrams. For the purpose of clear description, many physical details will be described together in the following description. However, it should be understood that these physical details should not be used to limit the utility model. In other words, in some embodiments of the utility model, these physical details are not necessary. In addition, for the purpose of simplifying the diagram, some conventional structures and components will be depicted in a simple schematic manner in the diagram.

[0034] In addition, the technical solutions between the various embodiments can be combined with each other, but it must be based on the fact that ordinary technicians in the field can implement it. When the combination of technical solutions is contradictory or cannot be implemented, it should be deemed that such combination of technical solutions does not exist and is not within the scope of protection required by the present utility model.

[0035] See also Figures 1-8 , vertical vibration elevator 2 is also called spiral elevator, which is suitable for conveying and lifting powder, block and short fiber materials. The materials can not only be lifted, but also dried and cooled during the lifting process.

[0036] In traditional cooling methods, generally one or more small through-holes are opened on the column 22, and heat is adsorbed through the adsorption method to achieve the heat dissipation effect. However, this heat dissipation effect is not good enough. During use, the heat dissipation efficiency is poor. At the same time, during adsorption, dust is easily poured into the column 22, resulting in an unstable phenomenon in the use of the hoist. Based on this, the present application provides a rubber particle lifting device, including a support assembly 1 for support and a vertical vibration hoist 2 arranged on the support assembly 1;

[0037] The support assembly 1 includes a base 11. Above the base 11, a mounting seat 13 is arranged through a buffer assembly 12, and the vertical vibration hoist 2 is fixed to the base 11 by a flange 14;

[0038] The vertical vibration hoist 2 includes a column 22 connected to the flange 14. A continuous spiral disk 23 is arranged in a spiral shape on the outer side of the column 22 for lifting materials;

[0039] The column 22 includes a pipe body 221. An inner cavity 226 is arranged inside the pipe body 221. A cooling assembly 3 is installed inside the inner cavity 226 and is installed at the bottom of the inner cavity 226 through a fastener 4;

[0040] One or more ventilation strips 222 arranged in an annular array are opened on the outer side of the pipe body 221 for dissipating heat from the materials at the spiral disk 23.

[0041] The base 11 is the basic part of the entire device, providing stable support. The material of the base 11 is usually selected as high-strength steel or other sturdy materials to ensure stability during the working process.

[0042] The mounting seat 13 is connected to the base 11 through the buffer assembly 12. The function of the buffer assembly 12 is to absorb and slow down vibrations, preventing the load generated by the vibration of the equipment from being transmitted to the base 11, thereby extending the service life of the equipment.

[0043] The vertical vibration hoist 2 is fixed to the mounting seat 13 through the flange 14 to ensure that the hoist does not displace or loosen during the working process. The design of the flange 14 should consider the transmission of vibrations and is usually fixed with high-strength bolts.

[0044] The column 22 is connected to the flange 14 to support the structure of the entire hoist. The design of the column 22 needs to be strong enough to withstand the weight and vibration of the materials.

[0045] A continuous spiral disk 23 is installed on the outer side of the column 22. The spiral disk 23 is distributed in a spiral shape for pushing the materials to rise along the column 22. The material and design of the spiral disk 23 should be able to withstand the friction and extrusion of the rubber particles.

[0046] The tube body 221 is one of the main components of the elevator, and an inner cavity 226 is provided inside it. The design of the inner cavity 226 allows the installation of the cooling component 3 and provides sufficient space to maintain the cooling effect.

[0047] The cooling component 3 is installed at the bottom of the inner cavity 226 and fixed by the fastener 4. The cooling component 3 may include a fan or other cooling devices, which are responsible for taking away the heat and improving the cooling efficiency of the material.

[0048] One or more ventilation strips 222 are provided on the outer side of the tube body 221 in an annular array. The main function of these ventilation strips 222 is to help the material at the spiral disk 23 dissipate heat. The design of the ventilation strips 222 should allow air flow and effectively take away the heat generated by the material.

[0049] The design of the support component 1 and the flange 14 ensures the stability of the elevator and reduces the displacement or loosening of the equipment caused by vibration during operation.

[0050] The buffer component 12 effectively absorbs vibration, reduces the impact on the equipment structure and the base 11, and extends the service life of the equipment.

[0051] The cooling component 3 in the inner cavity 226 can efficiently take away the heat and prevent the material from being affected in performance or quality due to overheating during the lifting process.

[0052] The annular array design of the ventilation strips 222 enhances the heat dissipation effect, enabling the heat to be taken away more effectively, thus avoiding the problem of material overheating.

[0053] Through the annular array of the ventilation strips 222 and the setting of the cooling component 3, it can be adjusted according to the different heat dissipation requirements of the material, so as to meet the heat dissipation requirements under different working conditions.

[0054] A storage tray 21 is provided above the flange 14 at the bottom of the column 22 for loading materials, and the middle part of the storage tray 21 is adapted to one end of the spiral disk 23.

[0055] An outlet is extended along one end of the column 22 at the top of the spiral disk 23 for guiding the material.

[0056] A support block 26 is provided at the top of the column 22, and vibrators 25 are symmetrically arranged on both sides of the support block 26 for vibrating and lifting the material.

[0057] One or more support bars 24 are provided on the outer side of the spiral disk 23, and the support bars 24 are arranged in an annular array for fixing the spiral disk 23.

[0058] The storage tray 21 is located at the bottom of the column 22 and is set above the flange 14. The storage tray 21 is designed to load and store the materials to be lifted, and the middle part of the storage tray 21 is adapted to one end of the spiral tray 23 to ensure that the materials can smoothly enter the spiral tray 23 for lifting.

[0059] Adaptation function: The design of the storage tray 21 needs to consider the shape and size of the connection part with the spiral tray 23, so that the materials can seamlessly transition from the storage tray 21 to the spiral tray 23, improving the conveying efficiency of the materials.

[0060] The top of the spiral tray 23 extends the discharge port along one end of the column 22, which is used to discharge the materials from the elevator. The position design of the discharge port needs to ensure that the materials can smoothly flow out after being lifted to the top, avoiding blockage or overflow.

[0061] The design of the discharge port should include a suitable guiding structure or valve to control the flow rate and flow volume of the materials to meet different production requirements.

[0062] A support block 26 is set at the top of the column 22. The main function of the support block 26 is to provide additional structural support and enhance the stability of the elevator.

[0063] Vibrators 25 are symmetrically arranged on both sides of the support block 26. The vibrators 25 are used to provide vertical vibration to help the materials smoothly rise in the spiral tray 23. The layout of the vibrators 25 should be uniform to ensure the stability and uniformity of the vibration effect.

[0064] One or more support bars 24 are set on the outside of the spiral tray 23. These support bars 24 are distributed in a circular array and are used to fix the spiral tray 23. The function of the support bars 24 is to maintain the stability of the spiral tray 23 during operation and prevent the spiral tray 23 from deforming or loosening due to vibration or material friction.

[0065] The support bars 24 should have sufficient strength and wear resistance to ensure that they do not break or wear during long-term operation.

[0066] The adaptation design of the middle parts of the storage tray 21 and the spiral tray 23 ensures that the materials can smoothly enter the spiral tray 23, improving the loading efficiency and reducing the loss of materials during transmission.

[0067] The designs of the support block 26 and the support bars 24 enhance the structural stability of the entire elevator. The support block 26 provides additional support, and the support bars 24 effectively fix the spiral tray 23, thus preventing the equipment from deforming or loosening during operation.

[0068] The reasonable position and design of the discharge port ensure that the materials can be discharged smoothly, avoiding blockage problems and improving the working efficiency and production capacity of the elevator.

[0069] The symmetrically arranged vibrator 25 can provide uniform vibration, ensuring a smooth lifting process of the material in the spiral disk 23. The stable operation of the vibrator 25 can reduce the retention and jamming of the material.

[0070] The annular array design of the support bars 24 provides additional stability, enabling the spiral disk 23 to maintain a normal working state during long-term operation and reducing the maintenance frequency and cost.

[0071] An air outlet strip 223 is clamped at the ventilation strip 222 opened on the outer side of the pipe body 221. One or more air outlets 224 are provided on the plate body of the air outlet strip 223 for dissipating heat from the material on the spiral disk 23.

[0072] A through hole is opened at one end of the pipe body 221 where it is located at the support block 26, and an air inlet pipe 27 is installed for introducing external air.

[0073] Connection rings 225 are provided at both the top and bottom of the pipe body 221. Positioning holes corresponding to the flange 14 are opened at the connection rings 225 for fixing the pipe body 221.

[0074] A clamping structure is designed at the ventilation strip 222 opened on the outer side of the pipe body 221 for installing the air outlet strip 223. This clamping design ensures that the air outlet strip 223 can be firmly fixed on the ventilation strip 222, preventing it from falling off or shifting during operation.

[0075] One or more air outlets 224 are provided on the plate body of the air outlet strip 223 for spraying cooling air onto the material on the spiral disk 23. The design of the air outlets 224 should consider the spraying angle and air volume to ensure effective heat dissipation of the material on the spiral disk 23.

[0076] A through hole is opened at one end of the pipe body 221 at the support block 26 for installing the air inlet pipe 27. The position of the through hole should be designed to ensure that air can smoothly enter the pipe body 221 without interfering with the normal operation of other components.

[0077] The air inlet pipe 27 is used to introduce external air and provide fresh air required for cooling. The installation position and design of the air inlet pipe 27 need to consider the direction and flow rate of the air inflow to ensure the best cooling effect.

[0078] Connection rings 225 are provided at both the top and bottom of the pipe body 221. The function of these connection rings 225 is to ensure that the pipe body 221 can be firmly connected to other components.

[0079] Positioning holes corresponding to the flange 14 are opened on the connection rings 225 for fixing the pipe body 221 to the structure of the elevator. The design of the positioning holes needs to be precise to ensure that the pipe body 221 will not shift or loosen during the fixing process.

[0080] Through the snap - fit design of the air outlet strip 223 and the setting of the air outlet 224, the cooling air can be effectively ejected onto the material on the spiral disk 23. This design improves the heat dissipation efficiency, prevents the material from being affected by overheating and ensures the efficient operation of the elevator.

[0081] The setting of the air inlet pipe 27 can introduce fresh outside air, enhancing the heat dissipation capacity of the cooling component 3. The design of the through - hole ensures the smooth inflow of air, thus improving the overall cooling effect.

[0082] The connection rings 225 and the positioning hole design at the top and bottom of the pipe body 221 provide a stable fixing method, ensuring that the pipe body 221 will not loosen or shift during operation. This stability reduces the frequency of equipment maintenance and improves the reliability of the equipment.

[0083] The snap - fit design makes the installation and disassembly of the air outlet strip 223 more convenient, and the maintenance work is also more convenient. The setting of the connection ring 225 and the positioning hole simplifies the installation process of the pipe body 221, making the assembly and adjustment of the equipment more efficient.

[0084] The combination of the air inlet pipe 27 and the air outlet strip 223 optimizes the air flow path, enabling the cooling air to evenly cover the spiral disk 23 and the material. Good air flow management improves the cooling efficiency of the entire system and reduces the cooling blind area.

[0085] The above - mentioned is only the embodiment of the present utility model and is not used to limit the present utility model. For those skilled in the art, various changes and modifications can be made to the present utility model. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present utility model shall be included within the scope of the claims of the present utility model.

Claims

1. A rubber particle lifting device, comprising a supporting assembly (1) for supporting and a vertical vibration hoist (2) arranged on the supporting assembly (1); Features: The support assembly (1) comprises a base (11), a mounting seat (13) is arranged above the base (11) via a buffer assembly (12), and a flange (14) is used to fix the vertical vibration hoist (2) to the base (11); The vertical vibration hoist (2) comprises a column (22) connected to a flange (14), and a continuous spiral disk (23) is spirally arranged on the outer side of the column (22) for lifting materials; The column (22) comprises a tube body (221), an inner cavity (226) is provided on the inner side of the tube body (221), a cooling assembly (3) is installed on the inner side of the inner cavity (226), and is installed on the bottom of the inner cavity (226) via a fastener (4); One or more ventilation strips (222) arranged in a ring array are provided on the outer side of the tube body (221) for dissipating heat from the material at the spiral disk (23).

2. A rubber particle lifting device according to claim 1, characterized in that: A material storage tray (21) is provided at the bottom of the column (22) above the flange (14) for loading materials, and the middle of the material storage tray (21) is adapted to one end of the spiral disk (23).

3. A rubber particle lifting device according to claim 1, characterized in that: A discharge port is provided at the top of the spiral disk (23) along one end of the column (22) for guiding materials.

4. The rubber particle lifting device according to claim 1, characterized in that: A support block (26) is arranged on the top of the column (22), and vibrators (25) are symmetrically arranged on both sides of the support block (26) for vibrating and lifting materials.

5. The rubber particle lifting device according to claim 1, characterized in that: One or more support bars (24) are arranged on the outer side of the spiral disk (23), and the support bars (24) are arranged in a ring array and are used to fix the spiral disk (23).

6. The rubber particle lifting device according to claim 1, characterized in that: An air outlet strip (223) is clamped on the ventilation strip (222) provided on the outer side of the tube body (221), and one or more air outlets (224) are provided on the plate body of the air outlet strip (223) for dissipating heat from the material on the spiral disk (23).

7. The rubber particle lifting device according to claim 1, characterized in that: The tube body (221) is provided with a through hole at one end of the support block (26), and is provided with an air inlet pipe (27) for introducing external air.

8. The rubber particle lifting device according to claim 1, characterized in that: The top and bottom of the tube body (221) are both provided with connecting rings (225), and the connecting rings (225) are provided with positioning holes corresponding to the flange (14) for fixing the tube body (221).