Resonance mixing device
By simplifying the structure of the resonant mixing device and using a cam to drive the vibration table to vibrate, the resonance of the first and second elastic elements is achieved, which solves the problem of the complex structure of the existing device, improves the mixing efficiency, and is suitable for mixing a variety of materials.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- JIANGSU ZHIZI FUTURE TECHNOLOGY CO LTD
- Filing Date
- 2025-06-30
- Publication Date
- 2026-07-17
AI Technical Summary
Existing hybrid devices have complex structures, including multiple sets of elastic components, which makes the system less concise.
By employing a vibration assembly and a power assembly, the vibration table is driven to vibrate via a cam. The resonance of the first and second elastic elements is utilized to simplify the number of elastic elements and achieve a hybrid of mechanical and acoustic vibration.
It improves mixing efficiency, simplifies device structure, and achieves high acceleration vibration with low energy input through resonance, making it suitable for mixing powders, slurries, liquids, and solid-solid and solid-liquid materials.
Smart Images

Figure CN224506892U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of vibration mixing technology, and in particular to a resonance mixing device. Background Technology
[0002] Mixing devices are widely used in chemical, pharmaceutical, and other fields. For example, invention patent CN117772584B discloses an acoustic enhancement system and method. The acoustic enhancement system includes an acoustic enhancement cavity, a mechanical resonator, a pressure control system, and / or a temperature control system. The mechanical resonator is a multi-mass vibration system that forms a mechanical resonance system with the acoustic enhancement cavity. The acoustic enhancement cavity is connected to the pressure control system and / or temperature control system via pipelines. This acoustic enhancement system and method can perform various treatments on materials added to the acoustic enhancement cavity by controlling the pressure and / or temperature inside the acoustic enhancement cavity, the excitation force intensity, and the vibration displacement / velocity / acceleration of the acoustic enhancement cavity. However, this system includes four sets of elastic elements (elastic element one, elastic element two, elastic element three, and elastic element four), using multi-stage elastic elements, resulting in a complex structure. Utility Model Content
[0003] Therefore, it is necessary to provide a resonant mixing device with a simple structure to address the above problems.
[0004] A resonant mixing device includes a frame, a vibration assembly, and a power assembly. The vibration assembly includes a base plate, a vibration table, a guide post, a guide sleeve, a first elastic element, and a second elastic element. The base plate is mounted on the frame. The vibration table supports a container. One end of the guide post is mounted on the base plate, and the other end passes through the vibration table and the guide sleeve. One end of the first elastic element abuts against the base plate, and the other end abuts against the bottom of the vibration table. One end of the second elastic element abuts against the top of the vibration table, and the other end abuts against the guide sleeve. The power assembly includes a limiting plate, a cam, and a rotating shaft. The limiting plate is mounted on the vibration table. The cam selectively abuts against the bottom or top of the limiting plate as the rotating shaft rotates. When the natural frequencies of the first and second elastic elements are both consistent with the frequency at which the cam drives the vibration table to vibrate, the first and second elastic elements resonate.
[0005] In one embodiment, the cam is a single-angle cam or a triangular cam.
[0006] In one embodiment, the power assembly further includes a pulley rotatably connected to the cam, the pulley selectively abutting against the bottom or top of the limiting plate as the shaft rotates.
[0007] In one embodiment, the limiting plate has a receiving cavity to receive the cam; when one end of the cam abuts against the limiting plate, there is a gap between the other end of the cam and the limiting plate.
[0008] In one embodiment, the vibration assembly further includes a first fixed seat, a slide seat, and a second fixed seat, with the guide post passing through the first fixed seat, the slide seat, and the second fixed seat respectively; one end of the first elastic member abuts against the first fixed seat, and the other end abuts against the slide seat; one end of the second elastic member abuts against the second fixed seat, and the other end abuts against the guide sleeve.
[0009] In one embodiment, there are two of each of the guide post, guide sleeve, first elastic element, and second elastic element, and they correspond one-to-one. The two guide posts are respectively inserted through both ends of the vibration table; there are two of each of the first fixed seat, the slide seat, and the second fixed seat, and they correspond one-to-one.
[0010] In one embodiment, the vibration assembly further includes a first buffer pad and a second buffer pad, the first buffer pad being installed on the end of the slide near the first fixed seat, and the second buffer pad being installed on the end of the second fixed seat near the guide sleeve.
[0011] In one embodiment, a clamping assembly is further included, which includes a bracket, a pressure plate, and a top rod. The bracket is mounted on the vibration table, and the pressure plate is slidably disposed on the bracket. The pressure plate cooperates with the vibration table to fix both ends of the container. One end of the top rod passes through the bracket, and the other end is connected to the pressure plate. The top rod is used to drive the pressure plate to slide.
[0012] In one embodiment, the clamping assembly further includes a fastening plate, a clamping plate, and two clamping blocks. The fastening plate is mounted on the bracket, and the push rod is threadedly connected to the fastening plate. The clamping plate is mounted on the pressure plate, and one end of the push rod is movably connected to the clamping plate. The clamping blocks are mounted on the vibration table, and the clamping blocks are used to abut against one side of the container. The two clamping blocks cooperate to fix both sides of the container.
[0013] In one embodiment, the power assembly further includes a power element, a drive wheel, a driven wheel, a timing belt, and two bearing seats. The power element is installed inside the frame, the drive wheel is installed at the output end of the power element, the driven wheel is installed at one end of the rotating shaft, one end of the timing belt is connected to the drive wheel, and the other end is connected to the driven wheel. The two bearing seats are respectively installed on both sides of the base plate, and the rotating shaft passes through the two bearing seats.
[0014] Compared with the prior art, the beneficial effects of this utility model are as follows:
[0015] The resonant mixing device of this invention uses a cam to drive a vibrating table to vibrate. The vibrating table drives the first elastic element and the second elastic element to resonate, causing the material in the container to undergo mechanical vibration mixing and acoustic vibration mixing, thereby improving the mixing efficiency. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the resonant mixing device shown in the first embodiment of the present invention;
[0017] Figure 2 for Figure 1 The schematic diagram of the resonant mixing device shown is provided, but the frame is not shown.
[0018] Figure 3 for Figure 2 The diagram shows another angle of the resonant mixing device, in which the power element, driving wheel, driven wheel, and bearing housing are not shown;
[0019] Figure 4 This is a schematic diagram of the resonant mixing device according to the second embodiment of the present invention, wherein the frame, power element, driving wheel and driven wheel are not shown.
[0020] The meanings of the numbers in the attached diagram are as follows:
[0021] 100. Resonance mixing device;
[0022] 10. Frame; 11. Frame body; 12. Machine cover; 13. Cover door; 20. Vibration assembly; 21. Base plate; 210. Relief groove; 22. Vibration table; 23. Guide column; 24. Guide sleeve; 25. First elastic element; 26. Second elastic element; 27. First fixed seat; 28. Slide; 29. Second fixed seat;
[0023] 30. Power assembly; 31. Limiting plate; 310. Receiving cavity; 32. Cam; 33. Rotating shaft; 34. Power element; 35. Driving wheel; 36. Driven wheel; 37. Bearing seat; 40. Clamping assembly; 41. Bracket; 42. Pressure plate; 43. Push rod; 44. Fastening plate; 45. Clamping plate; 46. Clamping block; 90. Container;
[0024] 30a, power assembly; 31a, limit plate; 32a, cam; 33a, shaft; 38a, pulley. Detailed Implementation
[0025] To make the above-mentioned objects, features, and advantages of this utility model more apparent and understandable, the specific embodiments of this utility model will be described in detail below with reference to the accompanying drawings. Many specific details are set forth in the following description to provide a full understanding of this utility model. However, this utility model can be implemented in many other ways different from those described herein, and those skilled in the art can make similar modifications without departing from the spirit of this utility model. Therefore, this utility model is not limited to the specific embodiments disclosed below.
[0026] In the description of this utility model, it should be understood that the terms "center", "longitudinal", "transverse", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential", etc., indicating the orientation or positional relationship are based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this utility model and simplifying the description, and are not intended to indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model.
[0027] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Thus, a feature defined as "first" or "second" may explicitly or implicitly include at least one of that feature. In the description of this utility model, "a plurality of" means at least two, such as two, three, etc., unless otherwise explicitly specified.
[0028] In this utility model, unless otherwise explicitly specified and limited, the terms "installation," "connection," "joining," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components, unless otherwise explicitly limited. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.
[0029] In this utility model, unless otherwise explicitly specified and limited, "above" or "below" the second feature can mean that the first feature is in direct contact with the second feature, or that the first feature is in indirect contact with the second feature through an intermediate medium. Furthermore, "above," "on top of," and "over" the second feature can mean that the first feature is directly above or diagonally above the second feature, or simply that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature can mean that the first feature is directly below or diagonally below the second feature, or simply that the first feature is at a lower horizontal level than the second feature.
[0030] It should be noted that when an element is referred to as being "fixed to" or "set on" another element, it can be directly on the other element or there may be an intervening element. When an element is considered to be "connected to" another element, it can be directly connected to the other element or there may be an intervening element. The terms "vertical," "horizontal," "upper," "lower," "left," "right," and similar expressions used herein are for illustrative purposes only and do not represent the only possible implementation.
[0031] Example 1:
[0032] Please refer to Figures 1 to 3 The resonant mixing device 100 according to one embodiment of the utility model includes a frame 10, a vibration assembly 20, and a power assembly 30. The vibration assembly 20 includes a base plate 21, a vibration table 22, a guide post 23, a guide sleeve 24, a first elastic element 25, and a second elastic element 26. The base plate 21 is mounted on the frame 10. The vibration table 22 is used to support the container 90. One end of the guide post 23 is mounted on the base plate 21, and the other end passes through the vibration table 22 and the guide sleeve 24. One end of the first elastic element 25 abuts against the base plate 21, and the other end abuts against the vibration table 22. At the bottom of the vibrating table 22, one end of the second elastic element 26 abuts against the top of the vibrating table 22, and the other end abuts against the guide sleeve 24. The power assembly 30 includes a limiting plate 31, a cam 32, and a rotating shaft 33. The limiting plate 31 is installed on the vibrating table 22, and the cam 32 selectively abuts against the bottom or top of the limiting plate 31 as the rotating shaft 33 rotates. When the natural frequencies of the first elastic element 25 and the second elastic element 26 are consistent with the frequency at which the cam 32 drives the vibrating table 22 to vibrate, the first elastic element 25 and the second elastic element 26 resonate. This resonance mixing device 100 drives the vibrating table 22 to vibrate through the cam 32, and the vibrating table 22 drives the first elastic element 25 and the second elastic element 26 to resonate, causing the material in the container 90 to undergo mechanical vibration mixing and acoustic vibration mixing, thereby improving mixing efficiency; it also simplifies the number of elastic elements and has a simple structure.
[0033] like Figure 1As shown, in this embodiment, the frame 10 includes a frame body 11, a cover 12, and a door 13. The cover 12 is installed on the frame body 11, and one end of the door 13 is rotatably connected to one end of the cover 12. The vibration component 20 is installed on the frame body 11. During operation, the door 13 closes the cover 12 and the frame body 11 to prevent the container 90 from falling off due to vibration and accidentally injuring the user.
[0034] like Figure 2 and Figure 3 As shown, the vibration assembly 20 includes a base plate 21, a vibration table 22, guide pillars 23, guide sleeves 24, a first elastic element 25, and a second elastic element 26. The base plate 21 is mounted on the frame 11. The vibration table 22 supports the container 90, which is used to hold materials. One end of the guide pillar 23 is mounted on the base plate 21, and the other end passes through the vibration table 22 and the guide sleeve 24. Optionally, the vibration table 22 slides on the guide pillar 23. One end of the first elastic element 25 abuts against the base plate 21, and the other end abuts against the bottom of the vibration table 22. One end of the second elastic element 26 abuts against the top of the vibration table 22, and the other end abuts against the guide sleeve 24. Optionally, there are two guide pillars 23, guide sleeves 24, first elastic elements 25, and second elastic elements 26, which correspond one-to-one. The two guide pillars 23 pass through both ends of the vibration table 22. Further, the base plate 21 is provided with a clearance groove 210. The first elastic element 25 and the second elastic element 26 are both springs with the same natural frequency.
[0035] like Figure 3 As shown, the vibration assembly 20 also includes a first fixed seat 27, a slide 28, and a second fixed seat 29. The guide post 23 passes through the first fixed seat 27, the slide 28, and the second fixed seat 29 respectively. Optionally, the slide 28 and the second fixed seat 29 are both slidably mounted on the guide post 23. One end of the first elastic member 25 abuts against the first fixed seat 27, and the other end abuts against the slide 28. One end of the second elastic member 26 abuts against the second fixed seat 29, and the other end abuts against the guide sleeve 24. There are two of each of the first fixed seat 27, the slide 28, and the second fixed seat 29, and they correspond one-to-one.
[0036] In one embodiment, the vibration assembly 20 further includes a first buffer pad (not shown) and a second buffer pad (not shown). The first buffer pad is installed at the end of the slide 28 near the first fixed seat 27 to prevent the slide 28 from hard impacting the first fixed seat 27. The second buffer pad is installed at the end of the second fixed seat 29 near the guide sleeve 24 to prevent the second fixed seat 29 from hard impacting the guide sleeve 24. Optionally, both the first and second buffer pads are rubber pads. Further, the vibration assembly 20 also includes a linear bearing (not shown), which is installed on the vibration table 22, and the guide post 23 passes through the linear bearing.
[0037] like Figure 2 and Figure 3As shown, the power assembly 30 includes a limiting plate 31, a cam 32, and a rotating shaft 33. The limiting plate 31 is mounted on the vibration table 22, and the rotating shaft 33 drives the cam 32 to rotate. The cam 32 selectively abuts against the bottom or top of the limiting plate 31 as the rotating shaft 33 rotates, thereby causing the vibration table 22 to vibrate up and down. When the natural frequencies of the first elastic element 25 and the second elastic element 26 are both consistent with the frequency at which the cam 32 drives the vibration table 22 to vibrate, a resonance effect is generated. Optionally, a clearance groove 210 is provided for the limiting plate 31 to pass through. The limiting plate 31 has a receiving cavity 310 to accommodate the cam 32. When one end of the cam 32 abuts against the limiting plate 31, there is a gap between the other end of the cam 32 and the limiting plate 31. Further, the receiving cavity 310 is rectangular, and when one end of the cam 32 abuts against the limiting plate 31, there is a gap between the other parts of the cam 32 and the limiting plate 31. In one embodiment, the end of the cam 32 that abuts against the limiting plate 31 is arc-shaped; optionally, the cam 32 is a triangular cam, and all three end angles of the cam 32 are arc-shaped. In other embodiments, the cam 32 is a single-angle cam, a double-angle cam, etc.
[0038] like Figure 2 As shown, the power assembly 30 also includes a power element 34, a driving pulley 35, a driven pulley 36, a synchronous belt (not shown), and two bearing seats 37. The power element 34 is installed inside the frame 10. The driving pulley 35 is installed at the output end of the power element 34, and the driven pulley 36 is installed at one end of the rotating shaft 33. One end of the synchronous belt is connected to the driving pulley 35, and the other end is connected to the driven pulley 36. The two bearing seats 37 are respectively installed on both sides of the base plate 21, and the rotating shaft 33 passes through the two bearing seats 37. The power element 34 drives the driving pulley 35 to rotate, and under the action of the synchronous belt, the driven pulley 36 rotates synchronously, causing the rotating shaft 33 to rotate. Optionally, the power element 34 is a motor; furthermore, the speed of the power element 34 is changed by frequency conversion speed regulation, thereby changing the frequency at which the power element 34 drives the vibration table 22 to vibrate.
[0039] Please refer to the following: Figure 2 and Figure 3The resonant mixing device 100 further includes a clamping assembly 40, which includes a bracket 41, a pressure plate 42, and a push rod 43. The bracket 41 is mounted on the vibration table 22, and the pressure plate 42 is slidably mounted on the bracket 41. The pressure plate 42 and the vibration table 22 cooperate to fix the two ends of the container 90. One end of the push rod 43 passes through the bracket 41, and the other end is connected to the pressure plate 42. The push rod 43 is used to drive the pressure plate 42 to slide. Optionally, the clamping assembly 40 also includes a fastening plate 44, a clamping plate 45, and two clamping blocks 46. The fastening plate 44 is mounted on the bracket 41, and the push rod 43 is threadedly connected to the fastening plate 44. The clamping plate 45 is mounted on the pressure plate 42, and one end of the push rod 43 is movably connected to the clamping plate 45. Further, the push rod 43 is a screw. Clamping blocks 46 are installed on the vibration table 22. Clamping blocks 46 are used to abut one side of the container 90, and two clamping blocks 46 cooperate to fix the two sides of the container 90. Optionally, one end of the clamping block 46 is slidably mounted on the bracket 41, and the other end is used to abut one side of the container 90. The clamping blocks 46 are then fixed to the vibration table 22 by screws. In use, the container 90 is placed on the vibration table 22, and the two clamping blocks 46 are slid to clamp the two sides of the container 90. Then, the pressure plate 42 is lowered by the top rod 43 until the pressure plate 42 abuts one end of the container 90.
[0040] In use, the container 90 containing the material is placed on the vibration table 22, and the two sides of the container 90 are clamped by the clamping blocks 46. The pressure plate 42 presses the end of the container 90 away from the limiting plate 31. Then, the cover 13 is closed, the power element 34 is started, and the rotating shaft 33 is driven to rotate through the synchronous belt drive. The rotating shaft 33 then drives the cam 32 to rotate synchronously. The cam 32 selectively abuts against the bottom or top of the limiting plate 31 as the rotating shaft 33 rotates, thereby driving the vibration table 22 to vibrate. The vibration table 22 then drives the first elastic element 25 and the second elastic element 26 to compress or stretch. When the cam 32 abuts against the bottom of the limiting plate 31, the vibration table 22 descends and presses down on the first elastic element 25. At this time, the second elastic element 26 is in a stretched state. When the cam 32 rotates to its limit, at the instant the cam 32 disengages from the limiting plate 31, due to the gap between the cam 32 and the limiting plate 31, the vibration table 22 will continue to move downward due to the inertial impact of the movement. The vibration table 22 will compress the first elastic element 25 downward. When the cam 32 pushes the vibration table 22 upward, the first elastic element 25 releases and rebounds. The first elastic element 25 and the thrust of the cam 32 work together on the vibration table 22 to generate acceleration. By utilizing the gap between the cam 32 and the limiting plate 31, the impact force during the reversal of the up and down movement can be added to the first elastic element 25 or the second elastic element 26, allowing the first elastic element 25 or the second elastic element 26 to compress and store energy, and release the rebound force when the movement reverses. When the cam 32 abuts against the top of the limiting plate 31, the vibration table 22 rises and compresses the second elastic element 26. At this time, the first elastic element 25 is in a stretched state.
[0041] When the natural frequencies of the first elastic element 25 and the second elastic element 26 are both consistent with the frequency at which the cam 32 drives the vibration table 22 to vibrate, the first elastic element 25 and the second elastic element 26 resonate. At this time, the vibration is strongest. Through the resonance of the first elastic element 25 and the second elastic element 26, a large excitation force is obtained with a small energy input, achieving energy superposition. In one embodiment, the natural frequencies of the first elastic element 25 and the second elastic element 26 are 60Hz, and the frequency at which the cam 32 drives the vibration table 22 to vibrate is 60Hz. The triangular cam is used to increase the vibration frequency of the vibration table 22. The excitation force is generated by the power element 34 and the triangular cam. The power element 34 drives the triangular cam to rotate one revolution, and the triangular cam drives the vibration table 22 to vibrate up and down 3 times. With a small excitation energy input, a vibration with a large acceleration of 60Hz can be generated.
[0042] The material is vibrating and mixing inside the container 90, along with the vibration of the vibrating table 22. Specifically, the material undergoes macroscopic mechanical vibration mixing and microscopic acoustic vibration mixing. The sound waves generated by the vibration are transmitted into the container 90 and act on the material, causing the material to move throughout the field and achieving rapid and uniform mixing. This resonant mixing device 100 is suitable for powder, slurry, liquid, solid-solid mixing, and solid-liquid mixing.
[0043] Example 2:
[0044] Please see Figure 4 This is a second embodiment of the resonant mixing device of the present invention. This embodiment is similar to the resonant mixing device 100 of the first embodiment, except that the power component 30a in this embodiment further includes a pulley 38a. The pulley 38a is rotatably connected to the cam 32a, and the pulley 38a selectively abuts against the bottom or top of the limiting plate 31a as the rotating shaft 33a rotates. The rotation of the pulley 38a reduces the friction between the pulley 38a and the limiting plate 31a.
[0045] The resonant mixing device 100 of this utility model drives the vibration table 22 to vibrate via the cam 32. The vibration table 22 drives the first elastic element 25 and the second elastic element 26 to resonate, causing the material in the container 90 to undergo mechanical vibration mixing and acoustic vibration mixing, thereby improving the mixing efficiency; the number of elastic elements is simplified, and the structure is simple.
[0046] The technical features of the above embodiments can be combined in any way. For the sake of brevity, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.
[0047] The embodiments described above are merely illustrative of several implementations of this utility model, and while the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the utility model patent. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this utility model, and these all fall within the protection scope of this utility model. Therefore, the protection scope of this utility model patent should be determined by the appended claims.
Claims
1. A resonant mixing device, characterized by, The system includes a frame, a vibration assembly, and a power assembly. The vibration assembly includes a base plate, a vibration table, a guide post, a guide sleeve, a first elastic element, and a second elastic element. The base plate is mounted on the frame. The vibration table supports the container. One end of the guide post is mounted on the base plate, and the other end passes through the vibration table and the guide sleeve. One end of the first elastic element abuts against the base plate, and the other end abuts against the bottom of the vibration table. One end of the second elastic element abuts against the top of the vibration table, and the other end abuts against the guide sleeve. The power assembly includes a limiting plate, a cam, and a rotating shaft. The limiting plate is mounted on the vibration table. The cam selectively abuts against the bottom or top of the limiting plate as the rotating shaft rotates. When the natural frequencies of the first and second elastic elements are both consistent with the frequency at which the cam drives the vibration table to vibrate, the first and second elastic elements resonate.
2. The resonant mixing device of claim 1, wherein The cam is a single-angle cam or a triangular cam.
3. The resonant mixing device of claim 1, wherein The power assembly also includes a pulley, which is rotatably connected to the cam. The pulley selectively abuts against the bottom or top of the limiting plate as the shaft rotates.
4. The resonant mixing device of claim 1, wherein The limiting plate is provided with a receiving cavity to accommodate the cam; when one end of the cam abuts against the limiting plate, there is a gap between the other end of the cam and the limiting plate.
5. The resonant mixing device of claim 1, wherein The vibration assembly further includes a first fixed seat, a slide seat, and a second fixed seat. The guide post passes through the first fixed seat, the slide seat, and the second fixed seat respectively. One end of the first elastic member abuts against the first fixed seat, and the other end abuts against the slide seat. One end of the second elastic member abuts against the second fixed seat, and the other end abuts against the guide sleeve.
6. The resonant mixing device of claim 5, wherein The guide post, guide sleeve, first elastic element, and second elastic element are all in pairs and correspond one-to-one. The two guide posts are respectively inserted through both ends of the vibration table; the first fixed seat, the slide, and the second fixed seat are all in pairs and correspond one-to-one.
7. The resonant mixing device of claim 5, wherein The vibration assembly further includes a first buffer pad and a second buffer pad. The first buffer pad is installed on the end of the slide near the first fixed seat, and the second buffer pad is installed on the end of the second fixed seat near the guide sleeve.
8. The resonant mixing device of claim 1, wherein It also includes a clamping assembly, which includes a bracket, a pressure plate, and a top rod. The bracket is mounted on the vibration table, and the pressure plate is slidably mounted on the bracket. The pressure plate cooperates with the vibration table to fix both ends of the container. One end of the top rod passes through the bracket, and the other end is connected to the pressure plate. The top rod is used to drive the pressure plate to slide.
9. The resonant mixing device of claim 8, wherein The clamping assembly further includes a fastening plate, a clamping plate, and two clamping blocks. The fastening plate is installed on the bracket, and the push rod is threadedly connected to the fastening plate. The clamping plate is installed on the pressure plate, and one end of the push rod is movably connected to the clamping plate. The clamping blocks are installed on the vibration table, and the clamping blocks are used to abut against one side of the container. The two clamping blocks cooperate to fix the two sides of the container.
10. The resonant mixing device of claim 1, wherein The power assembly also includes a power element, a drive pulley, a driven pulley, a timing belt, and two bearing seats. The power element is installed inside the frame, the drive pulley is installed at the output end of the power element, the driven pulley is installed at one end of the rotating shaft, one end of the timing belt is connected to the drive pulley, and the other end is connected to the driven pulley. The two bearing seats are respectively installed on both sides of the base plate, and the rotating shaft passes through the two bearing seats.