Powder suspension dispersion device

By combining a stirring rod and ultrasonic waves in the dispersion tank, the problem of excessive ultrasonic load when dispersing large volumes of suspension in traditional devices is solved, resulting in better dispersion.

CN224009664UActive Publication Date: 2026-03-20南京诺禾机械制造有限公司
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Patent Information

Application Number
CN202520720887.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-16
Publication Date
2026-03-20
Estimated Expiration
2035-04-16

AI Technical Summary

Technical Problem

Traditional suspension dispersing devices place an excessive burden on the ultrasonic generator when processing large volumes of suspensions, resulting in poor dispersion performance.

Method used

The dispersion tank uses a combination of stirring rods and ultrasonic waves. A translation rod drives the rotating sleeve and stirring rods to rotate, which, together with the ultrasonic generator, promotes the uniform dispersion of suspended particles.

Benefits of technology

It improves the dispersion effect of suspensions, reduces the burden on ultrasonic generators, and meets the dispersion needs of large-volume suspensions.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a powder suspension dispersing device which comprises a dispersing groove, a liquid inlet pipe, a liquid outlet pipe and a liquid distributing pipe, a plurality of circular ring grooves are evenly formed in the liquid distributing pipe in the length direction, a center shaft of the liquid distributing pipe perpendicularly penetrates through the circle centers of the circular ring grooves, a rotating sleeve is arranged at the circle center of each circular ring groove, and the section of each rotating sleeve is in a circular ring shape. Stirring rods are uniformly arranged on the outer wall of the rotating sleeve along the circumference, the outer ends of the stirring rods are in sliding connection with the annular groove, a cylindrical translation rod is arranged at the position of a middle shaft in the liquid distribution pipe and penetrates through the rotating sleeve, a notch groove spirally advancing in the length direction of the translation rod is formed in the outer wall of the translation rod, and a sliding block in sliding connection with the notch groove is arranged on the inner wall of the rotating sleeve; a translation assembly connected with the end, close to the liquid outlet pipe, of the translation rod is arranged at the liquid outlet pipe, and a guide assembly slidably connected with the translation rod is arranged at the liquid inlet pipe. The suspension liquid dispersing device has the advantage of good suspension liquid dispersing effect.
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Description

Technical Field

[0001] This utility model relates to the field of dispersion device technology, specifically to a powder suspension dispersion device. Background Technology

[0002] The most widely used pesticide formulation is the suspension concentrate, which usually requires a suspension concentrate dispersion device to process the mixture of raw materials and solvents into a suspension concentrate suitable for application.

[0003] Traditional suspension dispersion devices promote the full dispersion of particles in a suspension by using ultrasonic waves generated by an ultrasonic generator to act on the suspension, thus producing a qualified suspension formulation. However, because they rely too heavily on the ultrasonic generator to disperse the suspension, the ultrasonic generator is under great strain when the volume of the suspension to be processed is large, and this also has an adverse effect on the dispersion effect. Utility Model Content

[0004] The purpose of this invention is to provide a powder suspension dispersion device, which has the advantage of good suspension dispersion effect.

[0005] The technical solution of this utility model is as follows:

[0006] A powder suspension dispersion device includes a dispersion tank, an inlet pipe, an outlet pipe, and a distribution pipe. A transducer electrically connected to an ultrasonic generator is mounted on the tank wall. Corresponding inlet and outlet pipes are located on the left and right sides of the dispersion tank, respectively. A plurality of distribution pipes are arranged from top to bottom between the corresponding inlet and outlet pipes. The distribution pipes are submerged by water within the dispersion tank. A plurality of annular grooves are evenly arranged along the length of each distribution pipe. The central axis of each distribution pipe passes perpendicularly through the center of each annular groove. A rotating sleeve with a circular cross-section is located at the center of each annular groove. The outer wall of the rotating sleeve... A stirring rod is evenly arranged along the circumference, and the outer end of the stirring rod is slidably connected to a circular groove. A cylindrical translation rod is provided at the central axis of the dispensing tube. The translation rod passes through a rotating sleeve. The outer wall of the translation rod is provided with a groove that spirals forward along the length of the translation rod. A slider is provided on the inner wall of the rotating sleeve and is slidably connected to the groove. A translation component is provided at the outlet tube and is connected to the end of the translation rod near the outlet tube. The translation component is used to drive the translation rod to reciprocate along the central axis of the dispensing tube. A guide component is provided at the inlet tube and is slidably connected to the translation rod. The guide component is used to support the end of the translation rod near the inlet tube.

[0007] Preferably, the translation assembly includes a connecting rod, a connecting frame, a telescopic rod, and a mounting platform. The end of the translation rod near the outlet pipe is coaxially connected to the end of the connecting rod. The outlet pipe has an outlet for the connecting rod to pass through, and a rubber ring is provided on the outlet. The rubber ring slides against the connecting rod. The end of the connecting rod located on the same outlet pipe, away from the translation rod, is connected to the same connecting frame. A mounting platform is provided on the outer side of the connecting frame, and a telescopic rod is provided on the mounting platform. The direction of the telescopic rod is the same as the direction of the central axis of the dispensing pipe, and the movable part of the telescopic rod is connected to the connecting frame.

[0008] Preferably, the guide component is a fixed rod, and the inlet pipe is provided with a fixed rod located on the central axis of the dispensing pipe. The end of the translation rod near the inlet pipe is provided with a sliding cavity corresponding to the fixed rod. The fixed rod and the sliding cavity are slidably connected, and the bottom of the sliding cavity is provided with a water exchange port.

[0009] Preferably, the number of sliders on the inner wall of the rotating sleeve is two, the two sliders are symmetrical about the central axis of the rotating sleeve, and the number of grooves on the translation rod is two.

[0010] The beneficial technical effects of this utility model are as follows:

[0011] The translation component drives the translation rod to move back and forth. Through the combination of grooves and sliders, the moving translation rod can drive the rotating sleeve and the stirring rod connected to the rotating sleeve to rotate. The rotating stirring rod agitates the suspension flowing through the separatory tube. Combined with the ultrasonic waves generated by the transducer, it promotes the uniform dispersion of particles in the suspension in the separatory tube. Attached Figure Description

[0012] The technical solution of this utility model will be further described below with reference to the accompanying drawings.

[0013] Appendix Figure 1 This is the front view of the present invention.

[0014] Appendix Figure 2 This is a front-view cross-sectional view of the present invention.

[0015] Appendix Figure 3 for Figure 2 Enlarged view of part A.

[0016] Appendix Figure 4 This is a top view of the present invention.

[0017] Appendix Figure 5 This is a schematic diagram of the translation rod.

[0018] Appendix Figure 6 This is a cross-sectional view of the annular groove.

[0019] In the diagram: 1-Dispersion tank, 2-Inlet pipe, 3-Outlet pipe, 4-Divider pipe, 5-Transducer, 6-Annular groove, 7-Rotating sleeve, 8-Stirring rod, 9-Translation rod, 10-Groove, 11-Slider, 12-Translation assembly, 13-Guide assembly, 14-Connecting rod, 15-Connecting frame, 16-Telescopic rod, 17-Mounting platform, 18-Outlet, 19-Rubber ring, 20-Fixing rod, 21-Sliding cavity, 22-Water exchange port. Detailed Implementation

[0020] The present invention will now be described in further detail with reference to the accompanying drawings and specific embodiments.

[0021] Example:

[0022] like Figures 1 to 6 As shown, this embodiment provides a powder suspension dispersion device, including a dispersion tank 1, an inlet pipe 2, an outlet pipe 3, and a distribution pipe 4. A transducer 5 electrically connected to an ultrasonic generator is provided on the tank wall of the dispersion tank 1. Corresponding inlet pipes 2 and outlet pipes 3 are respectively provided on the left and right sides of the dispersion tank 1. Several distribution pipes 4 are arranged from top to bottom between the corresponding inlet pipes 2 and outlet pipes 3. The distribution pipes 4 are submerged by water in the dispersion tank 1. Several annular grooves 6 are evenly arranged along the length of each distribution pipe 4. The central axis of the distribution pipe 4 passes perpendicularly through the center of the annular groove 6. A rotating sleeve 7 is provided at the center of the annular groove 6. The rotating sleeve 7 has an annular cross-sectional shape. The outer wall of the rotating sleeve 7... A stirring rod 8 is evenly arranged along the circumference. The outer end of the stirring rod 8 is slidably connected to the annular groove 6. A cylindrical translation rod 9 is provided at the central axis of the liquid distribution tube 4. The translation rod 9 passes through the rotating sleeve 7. The outer wall of the translation rod 9 is provided with a groove 10 that spirals forward along the length of the translation rod 9. A slider 11 is provided on the inner wall of the rotating sleeve 7 and is slidably connected to the groove 10. A translation component 12 is provided at the liquid outlet tube 3 and is connected to the end of the translation rod 9 near the liquid outlet tube 3. The translation component 12 is used to drive the translation rod 9 to reciprocate along the central axis of the liquid distribution tube 4. A guide component 13 is provided at the liquid inlet tube 2 and is slidably connected to the translation rod 9. The guide component 13 is used to support the end of the translation rod 9 near the liquid inlet tube 2.

[0023] The translation component 12 drives the translation rod 9 to move back and forth. Through the combined use of the groove 10 and the slider 11, the moving translation rod 9 can drive the rotating sleeve 7 and the stirring rod 8 connected to the rotating sleeve 7 to rotate. The rotating stirring rod 8 agitates the suspension flowing through the separatory tube 4. Combined with the ultrasonic wave generated by the transducer 5, it promotes the uniform dispersion of particles in the suspension in the separatory tube 4.

[0024] Furthermore, the translation component 12 includes a connecting rod 14, a connecting frame 15, a telescopic rod 16, and a mounting platform 17. The end of the translation rod 9 near the outlet pipe 3 is coaxially connected to the end of the connecting rod 14. The outlet pipe 3 is provided with an outlet 18 for the connecting rod 14 to pass through. A rubber ring 19 is provided on the outlet 18. The rubber ring 19 slides against the connecting rod 14. The end of the connecting rod 14 located on the same outlet pipe 3 away from the translation rod 9 is connected to the same connecting frame 15. The outer side of the connecting frame 15 is provided with a mounting platform 17. The mounting platform 17 is provided with a telescopic rod 16. The direction of the telescopic rod 16 is the same as the direction of the central axis of the dispensing pipe 4. The movable part of the telescopic rod 16 is connected to the connecting frame 15.

[0025] The telescopic rod 16, via the connecting frame 15 and connecting rod 14, drives the translation rod 9 to reciprocate, thereby causing the rotating sleeve 7, which cooperates with the translation rod 9, to rotate. This allows the stirring rod 8 on the rotating sleeve 7 to agitate the suspension. The connecting frame 15 allows the telescopic rod 16 to drive multiple translation rods 9 at once, and the connecting rod 14 helps connect the connecting frame 15 to the translation rods 9. The rubber ring 19 on the outlet 18 improves the sealing of the outlet 18 and reduces the risk of the suspension leaking out of the outlet 18.

[0026] Furthermore, the guide assembly 13 is a fixed rod 20. The liquid inlet pipe 2 is provided with a fixed rod 20 located on the central axis of the liquid distribution pipe 4. The translation rod 9 is provided with a sliding cavity 21 corresponding to the fixed rod 20 at one end near the liquid inlet pipe 2. The fixed rod 20 and the sliding cavity 21 are slidably connected. The bottom of the sliding cavity 21 is provided with a water exchange port 22.

[0027] The combined use of the sliding cavity 21 and the fixed rod 20 helps support the end of the translation rod 9 near the liquid inlet pipe 2, making the movement of the translation rod 9 more stable. The water exchange port 22 is used to allow the suspension to enter and exit the sliding cavity 21, avoiding the internal pressure of the sliding cavity 21 from hindering the fixed rod 20 from smoothly entering and exiting the sliding cavity 21.

[0028] Furthermore, there are two sliders 11 on the inner wall of the rotating sleeve 7, and the two sliders 11 are symmetrical about the central axis of the rotating sleeve 7. There are also two grooves 10 on the translation rod 9.

[0029] Two symmetrically distributed sliders 11 slide along their respective grooves 10. The movement of both sliders 11 can drive the rotating sleeve 7 to rotate, making the rotation of the rotating sleeve 7 more stable.

[0030] Working principle and usage process of this utility model:

[0031] The staff adds enough water to the dispersion tank 1 so that the distribution pipe 4 is completely submerged. Then, the suspension is allowed to pass through the inlet pipe 2, the distribution pipe 4, and the outlet pipe 3. At the same time, the transducer 5 and the translation component 12 are activated. When the suspension flows through the distribution pipe 4, the particles in the suspension are agitated by the stirring rod 8 and subjected to ultrasonic waves, thus being fully dispersed. Finally, the uniformly dispersed suspension leaves from the outlet pipe 3.

[0032] The above are merely specific application examples of this utility model and do not constitute any limitation on the scope of protection of this utility model. All technical solutions formed by equivalent transformations or equivalent substitutions fall within the scope of protection of this utility model.

Claims

1. A powder suspension dispersion device, comprising a dispersion tank, an inlet pipe, an outlet pipe, and a distribution pipe, wherein a transducer electrically connected to an ultrasonic generator is provided on the tank wall of the dispersion tank, and corresponding inlet pipes and outlet pipes are respectively provided on the left and right sides of the dispersion tank, and a plurality of distribution pipes are provided from top to bottom between the corresponding inlet pipes and outlet pipes, the distribution pipes being submerged by water in the dispersion tank, characterized in that: The dispensing tube has several annular grooves evenly distributed along its length. The central axis of the dispensing tube passes perpendicularly through the center of each annular groove. A rotating sleeve with a circular cross-section is located at the center of each annular groove. Stirring rods are evenly distributed along the circumference of the outer wall of the rotating sleeve, and the outer ends of the stirring rods are slidably connected to the annular grooves. A cylindrical translation rod is located at the central axis of the dispensing tube. The translation rod passes through the rotating sleeve, and the outer wall of the translation rod has grooves that spiral forward along its length. A slider is slidably connected to the grooves on the inner wall of the rotating sleeve. A translation component is located at the outlet tube and connected to the end of the translation rod near the outlet tube. The translation component drives the translation rod to reciprocate along the central axis of the dispensing tube. A guide component is located at the inlet tube and slidably connected to the translation rod. The guide component supports the end of the translation rod near the inlet tube.

2. The powder suspension dispersion device according to claim 1, characterized in that: The translation assembly includes a connecting rod, a connecting frame, a telescopic rod, and a mounting platform. The end of the translation rod near the outlet pipe is coaxially connected to the end of the connecting rod. The outlet pipe has an outlet for the connecting rod to pass through, and a rubber ring is provided on the outlet. The rubber ring slides against the connecting rod. The end of the connecting rod located on the same outlet pipe, away from the translation rod, is connected to the same connecting frame. A mounting platform is provided on the outer side of the connecting frame, and a telescopic rod is provided on the mounting platform. The direction of the telescopic rod is the same as the direction of the central axis of the dispensing pipe, and the movable part of the telescopic rod is connected to the connecting frame.

3. The powder suspension dispersion device according to claim 1, characterized in that: The guide component is a fixed rod. The inlet pipe is provided with a fixed rod located on the central axis of the dispensing pipe. The end of the translation rod near the inlet pipe is provided with a sliding cavity corresponding to the fixed rod. The fixed rod and the sliding cavity are slidably connected. The bottom of the sliding cavity is provided with a water exchange port.

4. The powder suspension dispersion device according to claim 1, characterized in that: The number of sliders on the inner wall of the rotating sleeve is two, and the two sliders are symmetrical about the central axis of the rotating sleeve. The number of grooves on the translation rod is two.