Treatment equipment capable of uniformly distributing powdered lubricant material

By setting up a material barrier mechanism at the feed port of the lubricating powder material mixing device, and using reduction transmission and belt transmission technology to buffer and disperse the materials, the problems of material splash, dust and uneven distribution are solved, and the mixing effect and product quality are improved.

CN120094479AInactive Publication Date: 2025-06-06TIANJIN HONGYA LUBRICATION POWDER MFG
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Patent Information

Application Number
CN202510334823.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-20
Publication Date
2025-06-06
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing material mixing devices do not fully consider the buffering and dispersion of the material when feeding, resulting in excessive splashing of lubricating powder materials during feeding, and the material distribution is uneven, affecting the mixing effect and product quality.

Method used

A processing device is designed, including providing a material barrier mechanism on the feed port of the mixing tank body, and using the first and second barrier rollers to achieve buffering and dispersion of materials through a reduction transmission and belt transmission, so that the materials can even enter the mixing tank body.

Benefits of technology

It effectively avoids excessive splashing of materials and dust generation, ensures that the materials are evenly distributed in the mixing tank, improves the mixing effect and the quality of the final product, and improves the working environment and the health of the operators.

✦ Generated by Eureka AI based on patent content.

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Abstract

The processing equipment comprises a mixing tank body, a feeding opening is formed in the middle of the top end of the mixing tank body, a material blocking mechanism is arranged in the feeding opening, and the material blocking mechanism comprises a first material blocking roller and a second material blocking roller which are rotationally connected to the upper portion of the feeding opening; and two groups of second material blocking rollers are symmetrically arranged. The material blocking mechanism is arranged at the feeding port, the first motor drives the first material blocking roller, and a speed reduction transmission structure formed by meshing of the first gear and the second gear is utilized, so that lubricating powder materials sensitive to impact force are gently blocked and buffered at a slow rotating speed, material splashing, dust generation and waste are reduced, and the service life of the lubricating powder is prolonged. Meanwhile, the first material blocking roller drives the second material blocking roller through belt transmission, the materials subjected to preliminary buffering are dispersed all around, the situation that the materials are gathered in the center of the feeding port and slide down along the inner wall of the mixing tank body is avoided, good conditions are created for sufficient mixing, and the final product quality is improved.
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Description

Technical Field

[0001] The invention relates to the technical field of material processing equipment, and in particular to a processing device capable of evenly distributing lubricating powder materials. Background Art

[0002] In the production process of lubricating powder, material mixing is an important link.

[0003] Normally, materials need to enter the mixing device through the feed port for mixing. However, the existing material mixing devices often do not fully consider the buffering and dispersion of materials when feeding, especially for some special lubricating powder materials, such as materials with fine texture and sensitive to impact force. During the feeding process, it is easy to cause excessive splashing of materials and generate a lot of dust. These problems will not only cause material waste, but also affect the working environment and bring potential threats to the health of operators. At the same time, it may cause uneven distribution of materials in the mixing tank, affecting the subsequent mixing effect and the quality of the final product.

[0004] To this end, we propose a processing device that can evenly distribute lubricating powder materials. Summary of the invention

[0005] The main purpose of the present invention is to provide a processing equipment that can make the lubricating powder material evenly distributed, in order to prevent excessive splashing of materials, generation of large amounts of dust, material waste, impact on the working environment and the health of operators, uneven distribution of materials in the mixing tank, impact on the mixing effect and the quality of the final product, etc., thereby improving the quality and efficiency of the material mixing link in the lubricating powder production process, improving the working environment, ensuring the health of operators and the quality of the final product, and can effectively solve the problems in the background technology.

[0006] To achieve the above object, the technical solution adopted by the present invention is:

[0007] A processing device capable of evenly distributing lubricating powder material comprises a mixing tank body, a feed port is arranged at the middle of the top of the mixing tank body, a material blocking mechanism is arranged inside the feed port, the material blocking mechanism comprises a first material blocking roller and a second material blocking roller rotatably connected to the upper part of the feed port, and the second material blocking roller is symmetrically arranged in two groups, one end of the first material blocking roller extends to the outside through the feed port and is fixedly connected to a first gear, a first motor is fixedly installed on the outer wall of the feed port on the same side as the first gear, a second gear is fixedly connected to the output end of the first motor, the second gear is meshed with the first gear, and the diameter of the second gear is smaller than the diameter of the first gear;

[0008] The other end of the first material-blocking roller extends through the feed port to the outside and is fixedly connected to the first pulley, one end of the two second material-blocking rollers extends through the feed port to the outside and is fixedly connected to the second pulley, and the two second pulleys are connected to the first pulley through belt transmission.

[0009] By adopting the above technical solution, when the first motor is started, the second gear at its output end rotates accordingly. Since the second gear is meshed with the first gear and the diameter of the second gear is smaller than that of the first gear, a reduction transmission structure is formed. The rotation of the second gear drives the first gear to rotate at a relatively slow speed, thereby causing the first material blocking roller to rotate at a slower speed at the upper part of the feed port. This slower speed is suitable for some lubricating powder materials that are sensitive to impact force. It can block and buffer the materials more gently to avoid excessive splashing of materials or generation of large dust due to too fast a speed. For example, for some lubricating powders with fine texture and easy to fly, the slower rotation speed of the first material blocking roller can not only play a buffering role, but also will not raise a large amount of dust due to too strong agitation.

[0010] When the first material-blocking roller rotates, the first pulley at one end of it rotates synchronously, and through belt transmission, the first pulley drives the second pulleys at one end of the two second material-blocking rollers to rotate, so that the two symmetrical second material-blocking rollers rotate in the same direction as the first material-blocking roller. After the first material-blocking roller preliminarily buffers the material, the second material-blocking rollers further play a role from different angles. They can disperse the material buffered by the first material-blocking roller to all sides, so that the material can enter the mixing tank more evenly. For example, after the material passes through the first material-blocking roller, there may be a certain amount of aggregation at the center of the feed port. At this time, the rotation of the second material-blocking roller can guide the aggregated material to the edge of the feed port, slide along the inner wall into the mixing tank, thereby creating good material distribution conditions for subsequent sufficient mixing in the mixing tank.

[0011] Furthermore, the first material blocking roller is located above the two second material blocking rollers, and the first material blocking roller and the two second material blocking rollers are distributed in a triangular three-dimensional manner, and the diameter of the first material blocking roller is greater than the diameter of the two second material blocking rollers.

[0012] By adopting the above technical solution, when the first motor is started, it drives the second gear to rotate, and then the first gear meshing with it drives the first material-blocking roller to rotate at a slower speed. Because it is located at the upper part of the feed inlet and has a larger diameter, it can first receive and buffer the materials entering from above. Due to the slow rotation speed, for those lubricating powder materials with fine texture and easy to fly, it can gently reduce their falling speed to avoid generating a large amount of dust and excessive splashing of materials, such as lightweight nano-scale lubricating powder particles. In this way, the first material-blocking roller provides a stable and low-dust starting state for the subsequent mixing process; when the first material-blocking roller rotates, through the second gear meshing with the first gear, the first material-blocking roller can rotate at a slower speed. One pulley drives two second pulleys to make the two second material blocking rollers rotate synchronously in the same direction. Because the first material blocking roller and the two second material blocking rollers are distributed in a triangular three-dimensional manner, the material after being buffered by the first material blocking roller will be blocked again by the two second material blocking rollers from different directions. The second material blocking rollers have a smaller diameter and can disperse the material to the surroundings more flexibly. For example, when the material gathers at the center after passing through the first material blocking roller, the second material blocking roller can guide the material to the edge of the feed port and slide along the inner wall into the mixing tank body, ensuring that the material is distributed more evenly before entering the mixing tank body, creating good conditions for subsequent sufficient mixing in the mixing tank body.

[0013] Furthermore, first brackets are arranged opposite to each other at two ends of the feed port, and one end of the first bracket away from the feed port is fixedly connected to the top of the mixing tank body.

[0014] By adopting the above technical solution, the structure of the first bracket provides a solid support for the entire feed port and the internal material blocking mechanism, ensuring that the feed port will not be displaced or deformed due to force during the entry of materials and the operation of the material blocking mechanism, thereby maintaining the stability of the entire device.

[0015] Furthermore, a discharge port is arranged at the bottom end of the mixing tank body, and a valve is arranged on the discharge port, and a plurality of second brackets are arranged in a circular array on the outer wall of the mixing tank body.

[0016] By adopting the above technical solution, when the lubricating powder material is fully mixed in the mixing tank, the discharging link starts to work. The discharging port is located at the bottom of the mixing tank. This design utilizes the principle of gravity, so that the mixed material can naturally gather and flow out to the discharging port under the action of its own gravity. The valve set on the discharging port plays a key control role. When discharging is required, the valve is opened and the material can be discharged smoothly; when discharging is not required, the valve is closed to effectively prevent accidental leakage of the material. For example, in industrial production, when the mixed lubricating powder needs to be quantitatively transported to the next process, the discharge flow rate can be accurately controlled by accurately controlling the opening time and degree of the valve.

[0017] There are multiple second brackets in a circular array on the outer wall of the mixing tank body. These second brackets are evenly distributed on the outer wall of the tank body, providing all-round support for the mixing tank body. During the material mixing process, the tank body may vibrate due to operations such as stirring. The second brackets can disperse the forces generated by these vibrations to ensure the stability of the tank body. During storage, they can bear the weight of the tank body and the materials inside to ensure that the tank body is placed stably. When the mixing tank body needs to be moved, the second bracket can be used as a fulcrum for transportation, and it can also protect the tank body from damage during transportation, thereby ensuring that the entire device can operate safely and reliably under various working conditions.

[0018] Furthermore, a second motor is fixedly installed in the middle of the bottom end of the mixing tank body, and a rotating shaft is fixedly connected to the output end of the second motor.

[0019] By adopting the above technical solution, when the second motor is started, the electrical energy is converted into mechanical energy, and the shaft at the output end of the driving motor starts to rotate.

[0020] Furthermore, the top end of the rotating shaft extends into the interior of the mixing tank, and two rows of multiple rotating rods arranged at equal distances are fixedly connected to the outer side of the rotating shaft, and stirring rods are fixedly connected to one end of the two rotating rods close to the inner wall of the mixing tank.

[0021] By adopting the above technical solution, the top of the rotating shaft extends to the inside of the mixing tank body, and two rows of multiple rotating rods equidistantly arranged on the outside thereof are fixedly connected, and they will move synchronously with the rotation of the rotating shaft. The stirring rods fixedly connected at one end of the two rows of rotating rods close to the inner wall of the mixing tank body will make circular motion in the mixing tank body under the drive of the rotating rods. When the lubricating powder material is mixed in the mixing tank body, the stirring rods can produce a strong stirring effect. They can stir the materials in all directions, not only making the materials fully mixed in the horizontal direction, but also promoting the convection of the materials in the vertical direction. In the initial stage of mixing, the stirring rods rotate rapidly to mix the materials. The same type of lubricating powder raw materials are quickly broken up and blended; and when the mixing is nearly completed, the speed of the second motor is adjusted to enable the stirring rod to perform more precise movements to stir the possible local uneven mixing areas in the tank body, ensuring that the lubricating powder materials in the entire tank body are evenly mixed; at the same time, since the second motor can adjust the speed and rotation direction of the shaft according to actual needs, the stirring action of the stirring rod can flexibly adapt to the mixing requirements of lubricating powder materials with different characteristics, greatly improving the mixing efficiency and quality, and providing efficient and reliable power support and operational flexibility for the entire material mixing process.

[0022] Compared with the prior art, the present invention has the following beneficial effects:

[0023] (1) The present invention provides a processing device that can evenly distribute lubricating powder materials. A material blocking mechanism is arranged at a feed inlet, wherein a first material blocking roller is driven by a first motor, and due to the meshing of a second gear and a first gear to form a reduction transmission structure, the first material blocking roller rotates at a slower speed. This slower speed is suitable for lubricating powder materials that are more sensitive to impact force, and can more gently block and buffer the materials, avoiding excessive splashing of materials or generation of large dust due to an excessively fast speed, thereby reducing material waste and pollution to the working environment and protecting the health of operators.

[0024] (2) The present invention provides a processing device that can evenly distribute lubricating powder materials. When the first material blocking roller rotates, the second material blocking roller is driven to rotate in the same direction through a belt transmission. After the first material blocking roller preliminarily buffers the material, the second material blocking roller further exerts its effect from different angles to disperse the material buffered by the first material blocking roller to all sides, so that the material can enter the mixing tank more evenly. In this way, the material can be prevented from gathering at the center of the feed inlet, and the material can be ensured to slide along the inner wall of the mixing tank, creating good material distribution conditions for subsequent sufficient mixing in the mixing tank, which is beneficial to improving the quality of the final product. BRIEF DESCRIPTION OF THE DRAWINGS

[0025] Figure 1 The present invention is a schematic structural diagram of a processing device capable of evenly distributing lubricating powder materials.

[0026] Figure 2 The figure is a schematic diagram of the internal structure of a processing device capable of evenly distributing lubricating powder materials according to the present invention.

[0027] Figure 3 The present invention is a schematic diagram of the front structure of a feed inlet of a processing device capable of evenly distributing lubricating powder materials.

[0028] Figure 4 The present invention is a schematic diagram of the back structure of a feed inlet of a processing device capable of evenly distributing lubricating powder materials.

[0029] In the figure: 1. mixing tank body; 2. feed inlet; 3. material blocking mechanism; 4. first material blocking roller; 5. first gear; 6. first motor; 7. second gear; 8. second material blocking roller; 9. first pulley; 10. second pulley; 11. first bracket; 12. discharge port; 13. second bracket; 14. second motor; 15. rotating shaft; 16. rotating rod; 17. stirring rod. DETAILED DESCRIPTION

[0030] In order to make the technical means, creative features, objectives and effects achieved by the present invention easy to understand, the present invention is further explained below in conjunction with specific implementation methods.

[0031] In order to prevent excessive splashing of materials, large amounts of dust, material waste, impact on the working environment and health of operators, uneven distribution of materials in the mixing tank, impact on mixing effect and final product quality, etc., the quality and efficiency of the material mixing process in the lubricating powder production process can be improved, the working environment can be improved, the health of operators and the quality of the final product can be guaranteed, such as Figure 1 , Figure 2 , Figure 3 , Figure 4 As shown, a processing device capable of evenly distributing lubricating powder material comprises a mixing tank body 1, a feed port 2 is arranged at the middle of the top of the mixing tank body 1, a material blocking mechanism 3 is arranged inside the feed port 2, the material blocking mechanism 3 comprises a first material blocking roller 4 and a second material blocking roller 8 rotatably connected to the upper part of the feed port 2, and the second material blocking roller 8 is symmetrically arranged in two groups, one end of the first material blocking roller 4 extends to the outside through the feed port 2 and is fixedly connected to a first gear 5, the feed port 2 is located on the same side of the first gear 5 and a first motor 6 is fixedly installed on the outer wall, the output end of the first motor 6 is fixedly connected to a second gear 7, the second gear 7 is meshed with the first gear 5, and the diameter of the second gear 7 is smaller than the diameter of the first gear 5;

[0032] The other end of the first material blocking roller 4 extends through the feed port 2 to the outside and is fixedly connected to a first pulley 9. One end of the two second material blocking rollers 8 extends through the feed port 2 to the outside and is fixedly connected to a second pulley 10. The two second pulleys 10 are connected to the first pulley 9 through belt transmission.

[0033] When in use, when the first motor 6 is started, the second gear 7 at its output end rotates accordingly. Since the second gear 7 is meshed with the first gear 5 and the diameter of the second gear 7 is smaller than that of the first gear 5, a reduction transmission structure is formed. The rotation of the second gear 7 drives the first gear 5 to rotate at a relatively slow speed, thereby causing the first material-blocking roller 4 to rotate at a relatively slow speed at the upper part of the feed port 2. This relatively slow speed is suitable for some lubricating powder materials that are sensitive to impact force. It can block and buffer the materials more gently to avoid excessive splashing of materials or generation of large dust due to too fast a speed. For example, for some lubricating powders that are fine and easy to fly, the relatively slow rotation speed of the first material-blocking roller 4 can not only play a buffering role, but also will not raise a large amount of dust due to too strong agitation.

[0034] When the first material-blocking roller 4 rotates, the first pulley 9 at one end thereof rotates synchronously. Through belt transmission, the first pulley 9 drives the second pulley 10 at one end of the two second material-blocking rollers 8 to rotate, so that the two symmetrical second material-blocking rollers 8 rotate in the same direction as the first material-blocking roller 4. After the first material-blocking roller 4 preliminarily buffers the material, the second material-blocking rollers 8 further play a role from different angles. They can disperse the material buffered by the first material-blocking roller 4 to all sides, so that the material can enter the mixing tank body 1 more evenly. For example, after the material passes through the first material-blocking roller 4, there may be a certain amount of aggregation at the center of the feed port 2. At this time, the rotation of the second material-blocking roller 8 can guide the aggregated material to the edge of the feed port 2, and slide along the inner wall into the mixing tank body 1, thereby creating good material distribution conditions for subsequent sufficient mixing in the mixing tank body 1.

[0035] For example, Figure 2 As shown, the present invention also includes that the first material stop roller 4 is located above the two second material stop rollers 8, and the first material stop roller 4 and the two second material stop rollers 8 are distributed in a triangular three-dimensional manner, and the diameter of the first material stop roller 4 is greater than the diameter of the two second material stop rollers 8.

[0036] When in use, when the first motor 6 is started, it drives the second gear 7 to rotate, and then the first gear 5 meshing therewith drives the first material-blocking roller 4 to rotate at a slower speed. Because it is located at the upper part of the feed inlet 2 and has a larger diameter, it can first receive and buffer the materials entering from above. Due to the slow rotation speed, for those lubricating powder materials with fine texture and easy to fly, it can gently reduce their falling speed to avoid generating a large amount of dust and excessive splashing of materials, such as lightweight nano-scale lubricating powder particles. In this way, the first material-blocking roller 4 provides a stable and low-dust starting state for the subsequent mixing process; when the first material-blocking roller 4 rotates, it drives the first pulley 9 to The two second pulleys 10 make the two second material-blocking rollers 8 rotate synchronously in the same direction. Because the first material-blocking roller 4 and the two second material-blocking rollers 8 are distributed in a triangular three-dimensional manner, the material after being buffered by the first material-blocking roller 4 will be blocked again by the two second material-blocking rollers 8 from different directions. The second material-blocking rollers 8 have a smaller diameter and can more flexibly disperse the material to the surroundings. For example, when the material gathers at the center position after passing through the first material-blocking roller 4, the second material-blocking roller 8 can guide the material to the edge of the feed port 2, slide along the inner wall into the mixing tank body 1, and ensure that the material is distributed more evenly before entering the mixing tank body 1, creating good conditions for subsequent sufficient mixing in the mixing tank body 1.

[0037] For example, Figure 1 , Figure 2 , Figure 3 , Figure 4 As shown, the present invention also includes that first brackets 11 are relatively arranged at both ends of the feed port 2, and one end of the first bracket 11 away from the feed port 2 is fixedly connected to the top of the mixing tank body 1.

[0038] When in use, the structure of the first bracket 11 provides a stable support for the entire feed port 2 and the internal material blocking mechanism 3, ensuring that the feed port 2 will not be displaced or deformed due to force during the entry of materials and the operation of the material blocking mechanism 3, thereby maintaining the stability of the entire device.

[0039] For example, Figure 1 , Figure 2 As shown, the present invention also includes that a discharge port 12 is provided at the bottom end of the mixing tank body 1, and a valve is provided on the discharge port 12, and a plurality of second brackets 13 are provided in a circular array on the outer wall of the mixing tank body 1.

[0040] During use, after the lubricating powder material is fully mixed in the mixing tank body 1, the discharging link starts to work. The discharging port 12 is located at the bottom of the mixing tank body 1. This design utilizes the principle of gravity, so that the mixed material can naturally gather and flow out to the discharging port 12 under the action of its own gravity. The valve provided on the discharging port 12 plays a key control role. When discharging is required, the valve is opened and the material can be discharged smoothly; when discharging is not required, the valve is closed to effectively prevent accidental leakage of the material. For example, in industrial production, when the mixed lubricating powder needs to be quantitatively transported to the next process, the discharge flow rate can be accurately controlled by accurately controlling the opening time and degree of the valve.

[0041] The outer wall of the mixing tank body 1 is provided with a plurality of second brackets 13 in a circular array, and these second brackets 13 are evenly distributed on the outer wall of the tank body, providing all-round support for the mixing tank body 1. During the material mixing process, the tank body may vibrate due to operations such as stirring, and the second brackets 13 can disperse the forces generated by these vibrations to ensure the stability of the tank body. During storage, they can bear the weight of the tank body and the materials inside to ensure that the tank body is placed stably. When the mixing tank body 1 needs to be moved, the second brackets 13 can be used as a fulcrum for moving, and can also protect the tank body from damage during the moving process, thereby ensuring that the entire device can operate safely and reliably under various working conditions.

[0042] For example, Figure 2 As shown, the present invention also includes that a second motor 14 is fixedly installed at the middle of the bottom end of the mixing tank body 1, and a rotating shaft 15 is fixedly connected to the output end of the second motor 14.

[0043] During use, when the second motor 14 is started, electrical energy is converted into mechanical energy, and the rotating shaft 15 at the output end of the driving motor starts to rotate.

[0044] For example, Figure 2As shown, the present invention also includes that the top end of the rotating shaft 15 extends into the interior of the mixing tank body 1, and two rows of multiple rotating rods 16 arranged at equal distances are fixedly connected to the outer side of the rotating shaft 15, and a stirring rod 17 is fixedly connected to one end of the two rotating rods 16 close to the inner wall of the mixing tank body 1.

[0045] When in use, the top end of the rotating shaft 15 extends to the inside of the mixing tank body 1, and two rows of multiple rotating rods 16 equidistantly arranged on the outside thereof are fixedly connected and move synchronously with the rotation of the rotating shaft 15. The stirring rods 17 fixedly connected to one end of the two rows of rotating rods 16 close to the inner wall of the mixing tank body 1 will make circular motion in the mixing tank body 1 under the drive of the rotating rods 16. When the lubricating powder material is mixed in the mixing tank body 1, the stirring rods 17 can produce a strong stirring effect. They can stir the materials in all directions, not only making the materials fully mixed in the horizontal direction, but also promoting the convection of the materials in the vertical direction. In the initial stage of mixing, the stirring rods 17 rotate rapidly. Different types of lubricating powder raw materials are quickly broken up and blended; and when the mixing is nearly completed, by adjusting the rotation speed of the second motor 14, the stirring rod 17 can perform targeted stirring on the local uneven mixing areas that may exist in the tank body with more precise movements, ensuring that the lubricating powder materials in the entire tank body are evenly mixed; at the same time, since the second motor 14 can adjust the rotation speed and rotation direction of the rotating shaft 15 according to actual needs, the stirring action of the stirring rod 17 can flexibly adapt to the mixing requirements of lubricating powder materials with different characteristics, greatly improving the mixing efficiency and quality, and providing efficient and reliable power support and operational flexibility for the entire material mixing process.

[0046] It should be noted that the present invention is a processing device that can evenly distribute lubricating powder materials. The first motor 6 is turned on, and its output end drives the second gear 7 to rotate. Since the second gear 7 is meshed with the first gear 5 and has a smaller diameter, a reduction transmission is formed, which drives the first material blocking roller 4 to rotate at a slower speed, and performs preliminary buffering on the material entering from the feed port 2. At the same time, the first material blocking roller 4 drives the two second material blocking rollers 8 to rotate in the same direction through a belt drive, and disperses the material buffered by the first material blocking roller 4 to the surroundings, so that it enters the mixing tank body 1 more evenly;

[0047] =After the material enters the mixing tank 1, the second motor 14 is started, and the rotating shaft 15 at the output end drives the two rows of rotating rods 16 and the stirring rods 17 fixed on the rotating rods 16 to make circular motion in the tank. The stirring rods 17 stir the material in all directions to promote the convection of the material in the horizontal and vertical directions to achieve efficient mixing. During the mixing process, the speed and rotation direction of the second motor 14 can be adjusted according to the actual situation to meet the mixing requirements of lubricating powder materials with different characteristics;

[0048] After the material mixing is completed, the valve of the discharge port 12 is opened, and gravity is used to make the mixed material flow out from the discharge port 12 at the bottom of the mixing tank body 1. By controlling the opening time and degree of the valve, the discharge flow rate can be accurately controlled. During the entire operation process, the first bracket 11 provides stable support for the feed port 2 and the material blocking mechanism 3, and the second bracket 13 provides all-round support for the mixing tank body 1 to ensure the stability of the device during operation.

[0049] The above shows and describes the basic principles and main features of the present invention and the advantages of the present invention. It should be understood by those skilled in the art that the present invention is not limited to the above embodiments. The above embodiments and descriptions are only for explaining the principles of the present invention. Without departing from the spirit and scope of the present invention, the present invention may have various changes and improvements, which fall within the scope of the present invention to be protected. The scope of protection of the present invention is defined by the attached claims and their equivalents.

Claims

1. A processing device for evenly distributing lubricating powder material, comprising a mixing tank (1), characterized in that: A feed port (2) is provided at the middle of the top of the mixing tank body (1), and a material blocking mechanism (3) is provided inside the feed port (2), wherein the material blocking mechanism (3) comprises a first material blocking roller (4) and a second material blocking roller (8) which are rotatably connected to the upper part of the feed port (2), and the second material blocking roller (8) is symmetrically arranged in two groups, one end of the first material blocking roller (4) passes through the feed port (2) and extends to the outside and is fixedly connected to a first gear (5), and a first motor (6) is fixedly installed on the outer wall of the feed port (2) on the same side as the first gear (5), and a second gear (7) is fixedly connected to the output end of the first motor (6), and the second gear (7) is meshed with the first gear (5), and the diameter of the second gear (7) is smaller than the diameter of the first gear (5); The other end of the first material blocking roller (4) extends to the outside through the feed inlet (2) and is fixedly connected to a first belt pulley (9); one end of each of the two second material blocking rollers (8) extends to the outside through the feed inlet (2) and is fixedly connected to a second belt pulley (10); and the two second belt pulleys (10) are connected to the first belt pulley (9) via a belt transmission.

2. The processing equipment for uniformly distributing lubricating powder materials according to claim 1, characterized in that: The first material blocking roller (4) is located above the two second material blocking rollers (8), and the first material blocking roller (4) and the two second material blocking rollers (8) are distributed in a triangular three-dimensional manner, and the diameter of the first material blocking roller (4) is greater than the diameter of the two second material blocking rollers (8).

3. The processing equipment for uniformly distributing lubricating powder materials according to claim 1, characterized in that: First brackets (11) are arranged opposite to each other at two ends of the feed port (2); one end of the first bracket (11) away from the feed port (2) is fixedly connected to the top of the mixing tank body (1).

4. The processing equipment for uniformly distributing lubricating powder materials according to claim 1, characterized in that: The bottom end of the mixing tank body (1) is provided with a discharge port (12), and a valve is provided on the discharge port (12). The outer wall of the mixing tank body (1) is provided with a plurality of second brackets (13) in a circular array.

5. The processing equipment for uniformly distributing lubricating powder materials according to claim 1, characterized in that: A second motor (14) is fixedly mounted in the middle of the bottom end of the mixing tank body (1), and a rotating shaft (15) is fixedly connected to the output end of the second motor (14).

6. The processing equipment for uniformly distributing lubricating powder materials according to claim 5, characterized in that: The top end of the rotating shaft (15) extends into the interior of the mixing tank body (1), and two rows of multiple rotating rods (16) arranged at equal distances are fixedly connected to the outside of the rotating shaft (15), and stirring rods (17) are fixedly connected to one end of the two rotating rods (16) close to the inner wall of the mixing tank body (1).

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