Energy-saving and environment-friendly premixing tank and using method thereof

By combining the lower-level stirring and turbulence mechanism with the upper-level auxiliary stirring mechanism, the problems of high energy consumption and low mixing efficiency of existing premixing tanks are solved, achieving energy-saving and environmentally friendly high-efficiency mixing.

CN121372142APending Publication Date: 2026-01-23CHANGSHU BRIGHTLI LIGHT EQUIP MANUFACTURED CO LTD
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Patent Information

Application Number
CN202511679964.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-11-17
Publication Date
2026-01-23

AI Technical Summary

Technical Problem

The existing premix tank's stirring device cannot be adjusted according to the material capacity inside the tank, resulting in some parts running idle, high energy consumption, and low mixing efficiency.

Method used

It employs a lower-level stirring and turbulence mechanism and an upper-level auxiliary stirring mechanism, and controls the stirring mode through a transmission control box. Combined with reverse turbulence and synchronously rotating stirring blades, it achieves adaptive mixing of material quantity.

Benefits of technology

It reduces the idling of mechanical stirring components, improves mixing efficiency, reduces energy consumption, and shortens the material mixing cycle.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses an energy-saving and environment-friendly premixing tank which comprises a tank body, a transmission control box, a lower-layer stirring turbulent flow mechanism and an upper-layer auxiliary stirring mechanism. The lower-layer stirring turbulent flow mechanism is assembled in the tank body, the lower-layer stirring turbulent flow mechanism comprises a stirring main shaft, a stirring bottom rod and a stirring motor, the upper-layer auxiliary stirring mechanism is assembled in the tank body, the upper-layer auxiliary stirring mechanism comprises a plurality of outer-side stirring rods, a plurality of groups of auxiliary stirring blades and a plurality of groups of material lifting wheel sets, and the plurality of outer-side stirring rods are rotationally assembled in the tank body. According to the energy-saving and environment-friendly premixing tank disclosed by the invention, by arranging the lower-layer stirring turbulent flow mechanism and the upper-layer auxiliary stirring mechanism, different mixing and stirring modes can be rotated according to the quantity of materials in the premixing tank, so that the idling condition of a mechanical stirring part is reduced, and the energy-saving and environment-friendly properties of the premixing tank are remarkably improved; the high efficiency of mixing and stirring the materials in the premixing tank is improved, the material mixing period is shortened, and the energy consumption of the premixing tank is reduced.
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Description

Technical Field

[0001] This invention belongs to the field of premixing tank technology, specifically relating to an energy-saving and environmentally friendly premixing tank and its usage method. Background Technology

[0002] A premixing tank is a container used to mix materials in different states. It is usually equipped with a stirring device and a heating system. The stirring device can fully mix the materials in the premixing tank, and the heating system can control the temperature of the materials in the premixing tank. It is widely used in chemical, feed production and other fields.

[0003] Currently, the stirring devices commonly used in premixing tanks typically employ mechanical stirring mechanisms. Furthermore, most of these mechanisms operate as a single unit, meaning that when stirring is activated, all components rotate synchronously. This prevents the overall operation of the mechanical stirring mechanism from being adjusted to adapt to the material volume within the premixing tank. Consequently, some components may idle during mechanical stirring. Additionally, some stirring blades have small diameters and limited turbulence range, resulting in low mixing efficiency. Long-term operation increases energy consumption, leading to poor energy efficiency and environmental friendliness of the premixing tank.

[0004] Therefore, in order to address the above-mentioned technical problems, it is necessary to provide an energy-saving and environmentally friendly premixing tank and its usage method.

[0005] The information disclosed in this background section is intended only to enhance the understanding of the overall background of the invention and should not be construed as an admission or in any way implying that the information constitutes prior art known to those skilled in the art. Summary of the Invention

[0006] The purpose of this invention is to provide an energy-saving and environmentally friendly premix tank and its usage method, which can improve the energy-saving and environmental protection performance of the premix tank.

[0007] To achieve the above objectives, a specific embodiment of the present invention provides the following technical solution:

[0008] An energy-saving and environmentally friendly premixing tank includes: a tank body, a transmission control box, a lower stirring and turbulence mechanism, and an upper auxiliary stirring mechanism.

[0009] A transmission control box is fixedly mounted on the top of the tank, and the transmission control box and the tank together form a closed storage tank.

[0010] The lower-level stirring and turbulence-disrupting mechanism is assembled inside the tank. The lower-level stirring and turbulence-disrupting mechanism includes a stirring main shaft, a stirring base rod, and a stirring motor. The stirring main shaft is rotatably assembled inside the tank. The stirring base rod is fixedly connected to one end of the stirring main shaft located inside the tank. The stirring motor is fixedly assembled above the transmission control box. The output shaft of the stirring motor is drively connected to the stirring main shaft. A reverse turbulence-disrupting component is assembled on the outside of the stirring main shaft.

[0011] The upper auxiliary stirring mechanism is assembled inside the tank. The upper auxiliary stirring mechanism includes multiple outer stirring rods, multiple sets of auxiliary stirring blades, and multiple sets of lifting wheel sets. The multiple outer stirring rods are rotatably assembled inside the tank and are evenly distributed on the outside of the stirring main shaft. The multiple sets of auxiliary stirring blades are evenly and fixedly sleeved on the outside of the multiple outer stirring rods. The multiple sets of lifting wheel sets are fixedly connected to the lower end of the outer stirring rods. The transmission control box is equipped with a drive assembly for driving the multiple outer stirring rods to rotate.

[0012] In one or more embodiments of the present invention, a discharge pipe is fixedly connected to the lower part of the tank, through which the mixed material inside the tank can be discharged. A feeding pipe is fixedly connected to the upper part of the transmission control box, and the feeding pipe is connected to the tank, through which materials to be stored or mixed can be added to the tank.

[0013] In one or more embodiments of the present invention, the stirring base rod includes a fixing collar and a plurality of bent stirring rods. The plurality of bent stirring rods are uniformly and fixedly connected to the outside of the fixing collar, facilitating the fixed connection between the stirring base rod and the stirring main shaft by connecting the fixing collar. Furthermore, the plurality of bent stirring rods are correspondingly arranged on the lower inner wall of the tank. The materials inside the tank are mixed and stirred by the rotation of the bent stirring rods with the stirring main shaft.

[0014] In one or more embodiments of the present invention, the reverse turbulence assembly includes an outer sleeve, multiple sets of turbulence-inducing components, a drive bevel gear, a transmission bevel gear, a reversing bevel gear, a limiting shaft, and a shaft support. The outer sleeve is rotatably mounted inside a transmission control box, and serves to assemble, fix, and drive the multiple sets of turbulence-inducing components. The multiple sets of turbulence-inducing components are evenly and fixedly sleeved on the outside of the outer sleeve. By rotating synchronously with the outer sleeve in the opposite direction, the multiple sets of turbulence-inducing components can work in conjunction with the stirring rod to mix and stir the material on the lower side of the tank. The stirring rod and the multiple sets of turbulence-inducing components are all arranged below the auxiliary stirring blades. The rotation of the stirring rod and the multiple sets of turbulence-inducing components mixes and stirs the material in the lower layer of the tank.

[0015] In one or more embodiments of the present invention, a drive bevel gear is fixedly connected to one end of the outer sleeve located inside the transmission control box. The transmission bevel gears are symmetrically arranged above the drive bevel gears and are fixedly sleeved on the outside of the stirring main shaft. A reversing bevel gear is arranged between the drive bevel gear and the transmission bevel gear, and the drive bevel gear and the transmission bevel gear mesh with each other through the reversing bevel gear. The meshing of the drive bevel gear, the transmission bevel gear, and the reversing bevel gear allows the outer sleeve to move in the opposite direction to the rotation of the stirring main shaft.

[0016] In one or more embodiments of the present invention, the limiting shaft is fixedly assembled inside the reversing bevel gear, and the shaft bracket is sleeved on the outside of the limiting shaft, the limiting shaft serving to limit the assembly of the reversing bevel gear. The shaft bracket is rotatably engaged with the limiting shaft, and the shaft bracket is fixedly assembled inside the transmission control box, the shaft bracket serving to limit the assembly of the limiting shaft.

[0017] In one or more embodiments of the present invention, the driving assembly includes multiple sets of driving gears, a synchronous internal gear ring, and a control motor. Each set of driving gears is fixedly connected to one end of the outer stirring rod located within the transmission control box. The synchronous internal gear ring is sleeved on the outside of the multiple sets of driving gears, and all sets of driving gears mesh with the synchronous internal gear ring. The rotation of the synchronous internal gear ring drives the multiple sets of driving gears to rotate synchronously, thereby driving the rotation of multiple outer stirring rods.

[0018] In one or more embodiments of the present invention, the control motor is fixedly mounted above the transmission control box, and the output shaft of the control motor is fixedly connected to a single outer stirring rod. The control motor provides power, and by controlling the operation of the control motor, it drives the single outer stirring rod to rotate. The multiple sets of auxiliary stirring blades include a connecting collar and multiple vibrating stirring plates, and the multiple vibrating stirring plates are uniformly fixedly connected to the outside of the connecting collar.

[0019] In one or more embodiments of the present invention, the plurality of vibrating mixing plates are all hollow. This hollow design facilitates the storage of several vibrating balls and provides space for collision. Furthermore, several vibrating balls of varying sizes are evenly distributed within the plurality of vibrating mixing plates. The vibration of the vibrating mixing plates is assisted by the collision of these varying-sized vibrating balls with each other.

[0020] A method for using an energy-saving and environmentally friendly premixing tank includes the following steps:

[0021] S1. The material to be stored and mixed can be added to the tank through the feeding pipe. When there is little material in the tank, the stirring main shaft can be driven to rotate by controlling the operation of the stirring motor. During the rotation of the stirring main shaft, the stirring bottom rod will be driven to rotate, thereby mixing and stirring the material placed at the bottom of the tank.

[0022] S2. During the rotation of the stirring main shaft, the transmission bevel gear can be driven to rotate. Through the meshing of the transmission bevel gear, the reversing bevel gear and the drive bevel gear, the outer sleeve can rotate in the opposite direction to the rotation of the stirring main shaft. The material in the tank is reversed by the outer sleeve driving multiple sets of turbulent stirring components to rotate.

[0023] S3. When there is a large amount of material in the tank, the operating mode of the stirring motor can be controlled synchronously. When the motor is running, it can drive a single outer stirring rod to rotate, while multiple outer stirring rods will rotate synchronously under the meshing action of the synchronous internal gear ring and multiple sets of drive gears. The rotation of multiple outer stirring rods drives multiple sets of auxiliary stirring blades to rotate. The rotation of the auxiliary stirring blades can mix and stir the upper layer of material. At the same time, the auxiliary stirring blades, the lifting wheel set, the auxiliary stirring bottom rod, and the turbulence stirring components can mix and stir the material in the tank.

[0024] S4. In addition, during the rotation of the multiple sets of auxiliary stirring blades, several vibrating balls in the vibrating stirring plate will collide with each other under the action of centrifugal force. The collision of several vibrating balls causes the multiple sets of auxiliary stirring blades to vibrate, which further improves the mixing effect of the multiple sets of auxiliary stirring blades on the materials.

[0025] Compared with the prior art, the energy-saving and environmentally friendly premixing tank disclosed in this invention, by setting a lower stirring and turbulence mechanism and an upper auxiliary stirring mechanism, can rotate different mixing and stirring modes according to the amount of material in the premixing tank, reducing the idling of mechanical stirring parts and significantly improving the energy-saving and environmental protection of the premixing tank;

[0026] Meanwhile, the combined use of top-bottom stirring and internal-external stirring improves the efficiency of mixing materials in the premix tank, shortens the material mixing cycle, and reduces the energy consumption of the premix tank. Attached Figure Description

[0027] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments recorded in the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0028] Figure 1This is a front sectional view of an energy-saving and environmentally friendly premixing tank in one embodiment of the present invention;

[0029] Figure 2 for Figure 1 Schematic diagram of the structure at point A in the middle;

[0030] Figure 3 for Figure 1 Schematic diagram of the structure at point B;

[0031] Figure 4 This is a partial three-dimensional view of the energy-saving and environmentally friendly premix tank in one embodiment of the present invention;

[0032] Figure 5 This is a partial front view of the energy-saving and environmentally friendly premix tank in one embodiment of the present invention;

[0033] Figure 6 This is a perspective view of a portion of the structure of the energy-saving and environmentally friendly premix tank in one embodiment of the present invention from another angle;

[0034] Figure 7 for Figure 6 Schematic diagram of the structure at point C;

[0035] Figure 8 This is a perspective view of an energy-saving and environmentally friendly premix tank according to an embodiment of the present invention.

[0036] Explanation of key figure labels:

[0037] 1-Tank body, 101-Transmission control box, 102-Discharge pipe, 103-Feeding pipe, 2-Lower layer stirring and turbulence mechanism, 201-Main stirring shaft, 202-Stirring bottom rod, 203-Stirring motor, 204-Outer sleeve, 205-Turbulence stirring component, 206-Drive bevel gear, 207-Transmission bevel gear, 208-Reversing bevel gear, 209-Limiting shaft, 210-Shaft support, 3-Upper layer auxiliary stirring mechanism, 301-Outer stirring rod, 302-Auxiliary stirring blade, 303-Lifting wheel assembly, 304-Drive gear, 305-Synchronous internal gear ring, 306-Control motor, 307-Vibrating ball. Detailed Implementation

[0038] To enable those skilled in the art to better understand the technical solutions in this disclosure, the technical solutions in the embodiments of this disclosure will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this disclosure, and not all embodiments. Based on the embodiments in this disclosure, all other embodiments obtained by those skilled in the art without creative effort should fall within the scope of protection of this disclosure.

[0039] like Figures 1 to 8As shown, an energy-saving and environmentally friendly premixing tank according to one embodiment of the present invention includes: a tank body 1, a transmission control box 101, a lower stirring and agitation mechanism 2, and an upper auxiliary stirring mechanism 3. The transmission control box 101 is fixedly mounted on top of the tank body 1, and the transmission control box 101 cooperates with the tank body 1 to form a closed storage tank, providing space for material storage and mixing. Simultaneously, the operation of the lower stirring and agitation mechanism 2 and the upper auxiliary stirring mechanism 3 can be controlled separately according to the amount of material in the tank body 1, reducing the occurrence of idling of mechanical stirring components and improving the energy-saving and environmentally friendly performance of the premixing tank. Furthermore, the cooperation of the lower stirring and agitation mechanism 2 and the upper auxiliary stirring mechanism 3 improves the efficiency of mixing the material in the tank body 1.

[0040] like Figure 1 , Figure 8 As shown, a discharge pipe 102 is fixedly connected to the bottom of the tank body 1, through which the mixed material in the tank body 1 can be discharged. A feeding pipe 103 is fixedly connected to the top of the transmission control box 101, and the feeding pipe 103 is connected to the tank body 1, through which materials to be stored or mixed can be added to the tank body 1.

[0041] like Figures 1 to 5 As shown, the lower stirring and turbulence-disrupting mechanism 2 is assembled inside the tank body 1. The lower stirring and turbulence-disrupting mechanism 2 includes a stirring main shaft 201, a stirring bottom rod 202, and a stirring motor 203. The stirring main shaft 201 is rotatably assembled inside the tank body 1. The stirring bottom rod 202 includes a fixing collar and multiple bent stirring rods. The multiple bent stirring rods are evenly fixedly connected to the outside of the fixing collar, so as to facilitate the fixed connection between the stirring bottom rod 202 and the stirring main shaft 201 by connecting the fixing collar.

[0042] Specifically, multiple bent stirring rods are correspondingly arranged on the lower inner wall of the tank 1. The materials in the tank 1 are mixed and stirred by the rotation of the bent stirring rods along with the stirring main shaft 201. The stirring bottom rod 202 is fixedly connected to one end of the stirring main shaft 201 inside the tank 1. The stirring motor 203 is fixedly mounted above the transmission control box 101. The output shaft of the stirring motor 203 is connected to the stirring main shaft 201. A reverse flow turbulence component is mounted on the outer side of the stirring main shaft 201.

[0043] like Figures 1 to 2As shown, the reverse turbulence assembly includes an outer sleeve 204, multiple sets of turbulence-stirring components 205, a drive bevel gear 206, a transmission bevel gear 207, a reversing bevel gear 208, a limiting shaft 209, and a shaft support 210. The outer sleeve 204 is rotatably mounted inside the transmission control box 101, and serves to assemble, fix, and drive the rotation of the multiple sets of turbulence-stirring components 205. The multiple sets of turbulence-stirring components 205 are evenly fixedly sleeved on the outside of the outer sleeve 204. By rotating synchronously with the outer sleeve 204 in the opposite direction, the multiple sets of turbulence-stirring components 205 can work with the stirring rod 202 to mix and stir the material on the lower side of the tank 1.

[0044] It is worth noting that the stirring rod 202 and multiple sets of turbulent agitators 205 are all arranged below the auxiliary stirring blades 302. The rotation of the stirring rod 202 and the multiple sets of turbulent agitators 205 mixes and stirs the material in the lower layer of the tank 1.

[0045] like Figures 6 to 7 As shown, one end of the outer sleeve 204, located inside the transmission control box 101, is fixedly connected to a drive bevel gear 206. A transmission bevel gear 207 is symmetrically arranged above the drive bevel gear 206 and is fixedly sleeved on the outside of the stirring main shaft 201. A reversing bevel gear 208 is arranged between the drive bevel gear 206 and the transmission bevel gear 207, and the drive bevel gear 206 and the transmission bevel gear 207 mesh with each other through the reversing bevel gear 208. The meshing of the drive bevel gear 206, the transmission bevel gear 207, and the reversing bevel gear 208 allows the outer sleeve 204 to move in the opposite direction to the rotation of the stirring main shaft 201. A limiting shaft 209 is fixedly assembled inside the reversing bevel gear 208, and a shaft bracket 210 is sleeved on the outside of the limiting shaft 209. The limiting shaft 209 serves to limit the assembly of the reversing bevel gear 208. The rotating shaft bracket 210 is rotatably engaged with the limiting rotating shaft 209, and the rotating shaft bracket 210 is fixedly assembled inside the transmission control box 101. The rotating shaft bracket 210 plays the role of assembly limiting for the limiting rotating shaft 209.

[0046] like Figures 4 to 5As shown, the upper auxiliary stirring mechanism 3 is assembled inside the tank 1. The upper auxiliary stirring mechanism 3 includes multiple outer stirring rods 301, multiple sets of auxiliary stirring blades 302, and multiple sets of lifting wheel sets 303. The multiple outer stirring rods 301 are rotatably assembled inside the tank 1. The rotation of the multiple outer stirring rods 301 can drive the multiple sets of auxiliary stirring blades 302 and lifting wheel sets 303 to rotate synchronously, thereby achieving high efficiency in mixing and stirring the upper layer of materials in the tank 1. The multiple outer stirring rods 301 are evenly distributed on the outside of the stirring main shaft 201, the multiple sets of auxiliary stirring blades 302 are evenly fixedly sleeved on the outside of the multiple outer stirring rods 301, and the multiple sets of lifting wheel sets 303 are all fixedly connected to the lower end of the outer stirring rods 301. The transmission control box 101 is equipped with a drive assembly for driving the rotation of the multiple outer stirring rods 301.

[0047] like Figures 4 to 6 As shown, the drive assembly includes multiple sets of drive gears 304, a synchronous internal gear ring 305, and a control motor 306. Each set of drive gears 304 is fixedly connected to one end of the outer stirring rod 301 located within the transmission control box 101. The synchronous internal gear ring 305 is sleeved on the outside of the multiple sets of drive gears 304, and all sets of drive gears 304 mesh with the synchronous internal gear ring 305. The rotation of the synchronous internal gear ring 305 drives the multiple sets of drive gears 304 to rotate synchronously, thereby driving the rotation of multiple outer stirring rods 301.

[0048] like Figures 4 to 6 As shown, the control motor 306 is fixedly mounted above the transmission control box 101, and the output shaft of the control motor 306 is fixedly connected to the single outer stirring rod 301. The control motor 306 provides power, and by controlling the operation of the control motor 306, the single outer stirring rod 301 is driven to rotate. The multiple sets of auxiliary stirring blades 302 include a connecting collar and multiple vibrating stirring plates, which are evenly fixedly connected to the outside of the connecting collar.

[0049] Specifically, all the vibrating mixing plates are hollow, which makes it easier to store the vibrating balls 307 and provide collision space.

[0050] like Figures 1 to 3 As shown, several vibrating balls 307 of different sizes are evenly distributed inside multiple vibrating mixing plates. The vibration of the vibrating mixing plates is assisted by the collision of the vibrating balls 307 of different sizes with each other.

[0051] A method for using an energy-saving and environmentally friendly premixing tank includes the following steps:

[0052] S1. The material to be stored and mixed can be added to the tank 1 along the feeding pipe 103. When there is less material in the tank 1, such as when the material in the tank 1 is only half or less, the stirring main shaft 201 can be driven to rotate by controlling the operation of the stirring motor 203. During the rotation of the stirring main shaft 201, the stirring bottom rod 202 will be driven to rotate, so that the material placed at the bottom of the tank 1 can be mixed and stirred.

[0053] S2. During the rotation of the stirring main shaft 201, the transmission bevel gear 207 can be driven to rotate. Through the meshing of the transmission bevel gear 207, the reversing bevel gear 208 and the driving bevel gear 206, the outer sleeve 204 can rotate in the opposite direction to the rotation of the stirring main shaft 201. The material in the tank 1 is reversed by the outer sleeve 204 driving multiple sets of turbulent stirring elements 205 to rotate in the opposite direction.

[0054] S3. When there is a lot of material in the tank 1, such as when the material in the tank 1 is more than half full, the control motor 306 can be controlled to run synchronously while the stirring motor 203 is running. When the control motor 306 is running, it can drive a single outer stirring rod 301 to rotate. The multiple outer stirring rods 301 will rotate synchronously under the meshing action of the synchronous internal gear ring 305 and multiple sets of drive gears 304. The rotation of the multiple outer stirring rods 301 drives the rotation of multiple sets of auxiliary stirring blades 302. The rotation of the auxiliary stirring blades 302 can mix and stir the upper layer of material. At the same time, the auxiliary stirring blades 302, the lifting wheel group 303, the auxiliary stirring bottom rod 202, and the turbulence stirring component 205 can be used to mix and stir the material in the tank 1.

[0055] S4. In addition, during the rotation of the multiple sets of auxiliary stirring blades 302, several vibrating balls 307 in the vibrating stirring plate will collide with each other under the action of centrifugal force. The collision of several vibrating balls 307 causes the multiple sets of auxiliary stirring blades 302 to vibrate, which further improves the mixing effect of the multiple sets of auxiliary stirring blades 302 on the materials.

[0056] It will be apparent to those skilled in the art that this disclosure is not limited to the details of the exemplary embodiments described above, and that this disclosure can be implemented in other specific forms without departing from its spirit or essential characteristics. Therefore, the embodiments should be considered in all respects as exemplary and non-limiting, and the scope of this disclosure is defined by the appended claims rather than the foregoing description. Thus, all variations falling within the meaning and scope of equivalents of the claims are intended to be included within this disclosure. No reference numerals in the claims should be construed as limiting the scope of the claims.

[0057] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.

Claims

1. An energy-saving and environmentally friendly premixing tank, characterized in that, include: The tank body has a transmission control box fixedly mounted on its top, and the transmission control box and the tank body cooperate to form a closed storage tank. A lower-level stirring and turbulence-disrupting mechanism is assembled inside the tank. The lower-level stirring and turbulence-disrupting mechanism includes a stirring main shaft, a stirring base rod, and a stirring motor. The stirring main shaft is rotatably assembled inside the tank. The stirring base rod is fixedly connected to one end of the stirring main shaft located inside the tank. The stirring motor is fixedly assembled above the transmission control box. The output shaft of the stirring motor is drively connected to the stirring main shaft. A reverse turbulence-disrupting component is assembled on the outside of the stirring main shaft. An upper auxiliary stirring mechanism is assembled inside the tank. The upper auxiliary stirring mechanism includes multiple outer stirring rods, multiple sets of auxiliary stirring blades, and multiple sets of lifting wheel sets. The multiple outer stirring rods are rotatably assembled inside the tank and are evenly distributed on the outside of the stirring main shaft. The multiple sets of auxiliary stirring blades are evenly and fixedly sleeved on the outside of the multiple outer stirring rods. The multiple sets of lifting wheel sets are fixedly connected to the lower end of the outer stirring rods. The transmission control box is equipped with a drive assembly for driving the multiple outer stirring rods to rotate.

2. The energy-saving and environmentally friendly premixing tank according to claim 1, characterized in that, A discharge pipe is fixedly connected to the bottom of the tank, and a feeding pipe is fixedly connected to the top of the transmission control box. The feeding pipe is connected to the tank.

3. The energy-saving and environmentally friendly premixing tank according to claim 2, characterized in that, The stirring rod includes a fixing collar and multiple bent stirring rods. The multiple bent stirring rods are evenly fixedly connected to the outside of the fixing collar, and the multiple bent stirring rods are correspondingly arranged with the lower inner wall of the tank.

4. The energy-saving and environmentally friendly premixing tank according to claim 3, characterized in that, The reverse turbulence assembly includes an outer tube, multiple sets of turbulence agitators, a drive bevel gear, a transmission bevel gear, a reversing bevel gear, a limiting shaft, and a shaft support. The outer tube is rotatably assembled inside the transmission control box. Multiple sets of turbulence agitators are evenly and fixedly sleeved on the outside of the outer tube. The stirring base rod and multiple sets of turbulence agitators are all arranged below the auxiliary stirring blades.

5. The energy-saving and environmentally friendly premixing tank according to claim 4, characterized in that, The outer sleeve is fixedly connected to a drive bevel gear at one end inside the transmission control box. The transmission bevel gear is symmetrically arranged above the drive bevel gear and is fixedly sleeved on the outside of the stirring main shaft. The reversing bevel gear is arranged between the drive bevel gear and the transmission bevel gear, and the drive bevel gear and the transmission bevel gear mesh with each other through the reversing bevel gear.

6. The energy-saving and environmentally friendly premixing tank according to claim 5, characterized in that, The limiting shaft is fixedly assembled inside the reversing bevel gear, the shaft bracket is sleeved on the outside of the limiting shaft, the shaft bracket is rotatably engaged with the limiting shaft, and the shaft bracket is fixedly assembled inside the transmission control box.

7. The energy-saving and environmentally friendly premixing tank according to claim 6, characterized in that, The drive assembly includes multiple sets of drive gears, a synchronous internal gear ring, and a control motor. The multiple sets of drive gears are all fixedly connected to one end of the outer stirring rod located inside the transmission control box. The synchronous internal gear ring is sleeved on the outside of the multiple sets of drive gears, and the multiple sets of drive gears mesh with the synchronous internal gear ring.

8. The energy-saving and environmentally friendly premixing tank according to claim 7, characterized in that, The control motor is fixedly mounted on top of the transmission control box. The output shaft of the control motor is fixedly connected to a single outer stirring rod. The multiple sets of auxiliary stirring blades include a connecting collar and multiple vibrating stirring plates. The multiple vibrating stirring plates are evenly fixedly connected to the outside of the connecting collar.

9. The energy-saving and environmentally friendly premixing tank according to claim 8, characterized in that, All of the aforementioned vibrating mixing plates are hollow, and several vibrating balls of different sizes are evenly distributed inside the aforementioned vibrating mixing plates.

10. A method of using the energy-saving and environmentally friendly premixing tank as described in claim 9, characterized in that, Includes the following steps: S1. The material to be stored and mixed can be added to the tank through the feeding pipe. When there is little material in the tank, the stirring main shaft can be driven to rotate by controlling the operation of the stirring motor. During the rotation of the stirring main shaft, the stirring bottom rod will be driven to rotate, thereby mixing and stirring the material placed at the bottom of the tank. S2. During the rotation of the stirring main shaft, the transmission bevel gear can be driven to rotate. Through the meshing of the transmission bevel gear, the reversing bevel gear and the drive bevel gear, the outer sleeve can rotate in the opposite direction to the rotation of the stirring main shaft. The material in the tank is reversed by the outer sleeve driving multiple sets of turbulent stirring components to rotate. S3. When there is a large amount of material in the tank, the operating mode of the stirring motor can be controlled synchronously. When the motor is running, it can drive a single outer stirring rod to rotate, while multiple outer stirring rods will rotate synchronously under the meshing action of the synchronous internal gear ring and multiple sets of drive gears. The rotation of multiple outer stirring rods drives multiple sets of auxiliary stirring blades to rotate. The rotation of the auxiliary stirring blades can mix and stir the upper layer of material. At the same time, the auxiliary stirring blades, the lifting wheel set, the auxiliary stirring bottom rod, and the turbulence stirring components can mix and stir the material in the tank. S4. In addition, during the rotation of the multiple sets of auxiliary stirring blades, several vibrating balls in the vibrating stirring plate will collide with each other under the action of centrifugal force. The collision of several vibrating balls causes the multiple sets of auxiliary stirring blades to vibrate, which further improves the mixing effect of the multiple sets of auxiliary stirring blades on the materials.