Solid-liquid accelerated dispersion systems for containers, beverage mixers, beverage extraction equipment, and beverage extraction containers.

The solid-liquid accelerated dispersion system using mechanical vibration solves the problems of low mixing efficiency, poor uniformity, and safety and hygiene in existing technologies, achieving efficient and convenient solid-liquid mixing, and is suitable for the production of various beverages and medicines.

CN224268990UActive Publication Date: 2026-05-26FUZHOU SHIHONG MEDICAL TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
FUZHOU SHIHONG MEDICAL TECH CO LTD
Filing Date
2025-03-26
Publication Date
2026-05-26

AI Technical Summary

Technical Problem

Existing solid-liquid mixing devices suffer from problems such as low mixing efficiency, poor uniformity, high equipment costs, and safety and hygiene hazards, which are particularly prominent in the food and pharmaceutical fields.

Method used

The system employs mechanical vibration, generating vibrations through a hollow cup motor and transmitting the vibrational energy to the liquid via a vibration transmission rod. Combined with a detachable vibration transmission rod and outer casing design, it ensures that the vibrational energy is evenly distributed in the liquid, avoiding the generation of eddies and dead zones.

Benefits of technology

It significantly improves the efficiency and uniformity of solid-liquid mixing, has a simple structure, low cost, is easy to clean and maintain, and enhances the safety and mixing effect of the equipment.

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Abstract

This invention discloses a solid-liquid accelerated dispersion system for a container, comprising a base, a hollow cup motor, and a vibration transmission rod. The hollow cup motor generates mechanical vibration, which is embedded inside the vibration transmission rod, transmitting the vibration to the liquid and promoting rapid dispersion of solid particles. The vibration transmission rod is configured as a rod-shaped structure extending into the liquid, with the hollow cup motor located downstream of it. The system may also include a temperature sensor, a flexible connecting part, and an outer cover to improve vibration transmission efficiency, increase the movement range, and define a vibration-assisted solubilization zone. Furthermore, this invention also discloses a beverage mixer, an electrically heated beverage extraction device, and a portable beverage extraction container incorporating this solid-liquid accelerated dispersion system, suitable for various beverage preparation and extraction processes. This invention features a simple structure, safety, reliability, high efficiency, and uniformity, significantly improving the efficiency and effect of solid-liquid mixing, and has broad application prospects and practical value.
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Description

Technical Field

[0001] This utility model relates to the field of solid-liquid mixing and dispersion technology, and in particular to a solid-liquid accelerated dispersion system for containers and its application in beverage mixing devices, beverage extraction equipment, and beverage extraction containers. This system effectively promotes the rapid and uniform dispersion of solid particles (such as powders and granules) in a liquid through mechanical vibration, greatly improving the efficiency and effect of solid-liquid mixing, and is suitable for various beverage preparation and extraction processes. Background Technology

[0002] Solid-liquid mixing is a crucial step in daily life and industrial production. Traditional solid-liquid mixing methods often employ mechanical stirring using agitators or stirring rods; however, this method has several limitations. First, stirring speed and mixing efficiency are often limited by the design of the agitator and the power of the motor. For some solid particles that are difficult to dissolve or prone to clumping, the mixing effect is not ideal. Second, eddies and dead zones are easily generated during stirring, leading to uneven mixing and affecting the final product quality. Furthermore, agitators usually come into direct contact with the liquid, posing hygiene and cleaning risks, especially in sensitive fields such as food and pharmaceuticals.

[0003] To address the aforementioned problems, various solid-liquid mixing devices and methods have emerged in the prior art. For example, patent document CN201210124896.X discloses an ultrasonic-assisted solid-liquid mixing device that utilizes the cavitation effect and microjets generated by ultrasound to promote the dispersion of solid particles in a liquid. While this device improves mixing efficiency to some extent, ultrasonic equipment is expensive and may have adverse effects on certain substances (such as easily damaged bioactive substances).

[0004] Another common solid-liquid mixing technique is to use a magnetic stirrer, which uses magnetic force to drive a stir bar to rotate in the liquid, thereby achieving mixing. However, magnetic stirrers also suffer from low mixing efficiency and poor mixing uniformity, and require an additional magnetic drive device, increasing the complexity and cost of the system.

[0005] In addition, some solid-liquid mixing devices use vibration to promote mixing, such as the vibrating stirring device disclosed in patent document CN102973153A. This device generates vibration through a vibrating motor, which drives the stirring rod to vibrate in the liquid, thereby achieving solid-liquid mixing. Although this device improves mixing efficiency to some extent, its structure is relatively complex, and the vibrating motor is directly exposed to the liquid, posing safety hazards and maintenance difficulties. At the same time, the efficiency and uniformity of vibration energy transfer are also limited by the design and material of the stirring rod.

[0006] In summary, while existing solid-liquid mixing devices and methods have addressed some of the problems associated with traditional stirring methods, they still have many shortcomings. In particular, further improvements and optimizations are needed in areas such as mixing efficiency, mixing uniformity, equipment cost, and safety and hygiene. Utility Model Content

[0007] This invention proposes a solid-liquid accelerated dispersion system for containers, aiming to overcome the shortcomings of existing technologies and provide a simple, safe, reliable, efficient, and uniform solid-liquid mixing solution. The system of this invention can significantly improve the efficiency and uniformity of solid-liquid mixing, providing related industries with a more efficient and convenient mixing and dispersion technology.

[0008] To achieve the above objectives, the technical solution adopted by this utility model is as follows:

[0009] A solid-liquid accelerated dispersion system for a container includes a base; further includes a hollow cup motor for generating mechanical vibration; and a vibration transmission rod attached to the base, the hollow cup motor being embedded within the cavity to transmit mechanical vibration as a driving force for dispersing solid particles via the vibration transmission rod; wherein the vibration transmission rod is configured as a rod-shaped member suitable for extending in the liquid, and the hollow cup motor is positioned downstream of the vibration transmission rod in the direction of extension.

[0010] Furthermore, the hollow cup motor is embedded at the end of the vibration transmission rod to maximize the vibration transmission effect. A temperature sensor can also be embedded within the vibration transmission rod to monitor the liquid temperature in real time. The length, diameter, and wall thickness of the vibration transmission rod are configured according to actual needs to ensure sufficient vibration transmission efficiency and structural strength. For example, the length of the vibration transmission rod can be configured to be no less than 20 mm, its diameter to be between 6 and 20 mm, and its wall thickness to be between 0.2 and 1.5 mm, and it can be made of a hollow metal rod.

[0011] To increase the range of motion of the vibrating part, the vibration transmission rod may include a vibrating part and a connecting part, which is attached to the base and may be configured as a flexible tube, such as a food-grade silicone hose. Furthermore, the vibration transmission rod can be detachably attached to the base for easy cleaning and maintenance. The vibration transmission rod can extend downwards or upwards from the base to accommodate the needs of different containers. A battery and control device may also be installed on the base to provide power and control signals to the coreless cup motor.

[0012] The space within the container formed by the limiting wall surrounding the vibration transmission rod is defined as the vibration-assisted solubilizing zone. Within this zone, the distance between the vibration transmission rod and the limiting wall is no greater than 80 mm to ensure effective transmission and uniform dispersion of vibrational energy. The limiting wall can be formed by the side wall of the container or by an outer cover surrounding the vibration transmission rod.

[0013] This utility model also provides a beverage extraction container suitable for holding liquids, including a solid-liquid accelerated dispersion system for the extraction container, wherein the solid-liquid accelerated dispersion system is any of the solid-liquid accelerated dispersion systems described above. In one specific application, the beverage extraction container is a thermos.

[0014] By adopting the above technical solutions, this utility model possesses the following beneficial technical effects:

[0015] 1. This utility model generates mechanical vibration through a hollow cup motor and transmits the vibration energy to the liquid through a vibration transmission rod, so that solid particles are rapidly dispersed under the action of vibration, thereby significantly improving the efficiency of solid-liquid mixing.

[0016] 2. The vibration transmission rod extends into the liquid, forming a vibration-assisted dissolving zone inside the outer casing. This increases the energy density of the vibration energy in the liquid, avoiding the generation of eddies and dead zones, thereby enhancing the mixing effect.

[0017] 3. This utility model adopts a combination structure of hollow cup motor and vibration transmission rod, which is simple in structure, low in cost, and easy to produce and promote.

[0018] 4. The vibration transmission rod can be configured as a flexible tube or a detachable structure, facilitating cleaning and maintenance and avoiding the hygiene hazards associated with traditional agitators. Simultaneously, the hollow cup motor is embedded within the vibration transmission rod, avoiding direct contact with the liquid and improving equipment safety.

[0019] In summary, the solid-liquid accelerated dispersion system of this invention effectively solves the problems of low solid-liquid mixing efficiency, poor mixing uniformity, high equipment cost, and safety and hygiene issues existing in the prior art through mechanical vibration, and has broad application prospects and practical value. Attached Figure Description

[0020] To more clearly illustrate the technical solutions of the embodiments of this utility model, the accompanying drawings of the embodiments will be briefly introduced below. Obviously, the drawings described below only involve some embodiments of this utility model, and are not intended to limit this utility model.

[0021] Figure 1A This is an exploded view of the structure of Embodiment 1.

[0022] Figure 1B This is a cross-sectional view of Embodiment 1.

[0023] Figure 2 This is an overall structural view of Embodiment 2.

[0024] Figure 3 This is an overall structural view of Embodiment 3.

[0025] Figure label:

[0026] 100. Solid-liquid accelerated dispersion system; 101. Base; 102. Outer cover; 103. Vibration transmission rod; 104. Hollow cup motor; 105. Temperature measuring device; 200. Beverage extraction equipment; 201. Lid; 202. Cup body; 203. Outer cover; 204. Vibration transmission rod; 205. Hollow cup motor; 300. Beverage mixing device; 302. Vibration transmission rod; 301. Base; 400. Container. Detailed Implementation

[0027] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the utility model will be further described in detail below with reference to the accompanying drawings. The components of the embodiments of this utility model described and shown in the accompanying drawings can be arranged and designed in various different configurations. All other embodiments obtained by those skilled in the art based on the embodiments of this utility model without inventive effort are within the scope of protection of this utility model.

[0028] It should be noted that similar labels and letters in the following figures indicate similar items. Therefore, once an item is defined in one figure, it does not need to be further defined and explained in subsequent figures.

[0029] Unless otherwise defined, the technical or scientific terms used in this patent document shall have the ordinary meaning understood by one of ordinary skill in the art to which this utility model pertains. The terms "first," "second," and similar terms used in this utility model patent specification and claims do not indicate any order, quantity, or importance, but are merely used to distinguish different components. Similarly, the terms "an," "a," or "the" do not indicate a quantity limitation, but rather indicate the presence of at least one. The terms "comprising" or "including" indicate that the element or object preceding "comprising" encompasses the element or object listed following "comprising" or its equivalents, and do not exclude other elements or objects. Terms such as "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer" are used only to indicate relative positional relationships. When the absolute position of the described object changes, the relative positional relationship may also change accordingly. They are only for the convenience of describing this utility model and simplifying the description, and do not 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.

[0030] In the description of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "joining" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; 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; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.

[0031] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0032] Example 1:

[0033] like Figure 1A and 1B As shown, this embodiment details a solid-liquid accelerated dispersion system 100 for container 400. This system cleverly utilizes the principle of mechanical vibration to efficiently and rapidly promote the uniform dispersion of solid particles (including powders, granules, etc.) in a liquid, significantly improving the efficiency and effectiveness of solid-liquid mixing.

[0034] The core components of the system include a base 101, a hollow cup motor 104 (in this embodiment, the LVM-0820 model is used, with a length of 20mm and a diameter of 8mm), a vibration transmission rod 103, and an embedded temperature measuring device 105.

[0035] The base 101 serves as a stable support and operating platform for the system, integrating a control circuit board and a rechargeable lithium battery pack to provide power supply and intelligent control. The base 101 also features a touch-screen interface for convenient system settings and operation, greatly enhancing ease of use.

[0036] The vibration transmission rod 103 is a key component in the system for transmitting vibrational energy. It is made of high-quality 304 stainless steel and is shaped like a hollow cylinder. In this embodiment, the total length L of the vibration transmission rod 103 is 50mm, the outer diameter D is 9mm, the wall thickness t is 0.5mm, and the diameter d of the internal cavity is 8mm. It fits tightly with the hollow cup motor 104, ensuring structural strength while reducing weight. In other embodiments, the length of the vibration transmission rod 103 can be configured to be no less than 20mm, the diameter selected within the range of 6-20mm, and the wall thickness selected within the range of 0.2-1.5mm. The vibration transmission rod 103 is divided into an upper connecting part and a lower vibrating part. The connecting part is tightly connected to the base 101 via a rotating snap-fit ​​structure, enabling rapid switching of the vibration transmission rod 103 downwards (suitable for cup-shaped containers) or upwards (suitable for kettle-shaped containers), enhancing the system's adaptability and flexibility. The vibrating part, as the main part of vibration transmission, is responsible for efficiently transmitting mechanical vibrations to solid particles in the liquid.

[0037] The hollow cup motor 104 plays a crucial role as the vibration source of the system. When the vibration transmission rod 103 extends downward, the hollow cup motor 104 is installed at the lower end of the vibration transmission rod 103; when the vibration transmission rod 103 extends upward, the hollow cup motor 104 is adjusted to the upper position, and an eccentric rotor is set on its output shaft to generate mechanical vibration. The hollow cup motor 104 is tightly embedded in the receiving cavity at the end of the vibration transmission rod 103 through an interference fit, efficiently transmitting the generated mechanical vibration to the solid particles in the liquid through the vibration transmission rod 103, driving them to disperse quickly and uniformly. The hollow cup motor 104 is a DC permanent magnet servo control motor, which can also be classified as a micro motor. Mechanical vibration can be generated by installing an unbalanced mass (eccentric block) on its motor shaft. The hollow cup motor has significant energy-saving characteristics, sensitive and convenient control characteristics, and stable operating characteristics, and its technology is significantly advanced.

[0038] To monitor the liquid temperature in real time and ensure stable operation of the system under different temperature environments, a temperature measuring device 105 is installed on the base 101. A PT100 platinum resistance temperature probe is selected, which features high accuracy and good stability. In other applications where high temperature measurement accuracy is not required, a common thermistor can also be used. In another embodiment, the temperature measuring device is embedded in the vibration transmission rod 103, and the wires are connected to the control circuit of the base through the internal channel of the rod, accurately transmitting real-time temperature data so that the user can make corresponding adjustments and controls as needed.

[0039] To further improve the vibration-assisted solubilization effect, a small space structure surrounding the vibrating part is provided inside the container 400. This small space can be formed by the side wall of the container or by an outer cover 102 detachably installed inside the container 400. In this embodiment, the outer cover 102 is used to form the small space, and the internal space of the container 400 is much larger than the space surrounded by the outer cover 102, thereby forming a vibration-assisted solubilization region Z within the outer cover 102. The wall of the outer cover 102 is provided with multiple through holes for fluid to pass through, and the lower part is open, forming a cylindrical vibration-assisted solubilization region with a diameter of 50 mm. The outer cover design can reduce energy loss between the vibrating part and the surrounding liquid. By restricting the large-scale flow of liquid in the container or restricting the fluidity of the liquid, more energy is concentrated in the target area, forcing the mechanical waves (such as pressure waves or shear waves) generated by the vibration transmission rod 103 to propagate axially instead of spreading randomly in all directions. This constraint significantly improves the energy transfer efficiency and increases the energy density around the vibrating part. Furthermore, due to the presence of the outer casing 102, the vibration waves are reflected inside the casing, which may form standing waves. The presence of standing waves can significantly increase the amplitude. Experimental data show that when an outer casing is set outside the vibration transmission rod 103, the vibration around the vibration transmission rod 103 is significantly enhanced, the energy density is also enhanced, and the solid-liquid mixing effect is significantly improved.

[0040] The working principle of this embodiment will be explained in detail below, taking the actual application of the system in beverage preparation as an example.

[0041] When a user needs to prepare a cup of milk powder, they first put an appropriate amount of milk powder and water into container 400. Then, the solid-liquid accelerated dispersion system 100 of this embodiment is inserted into the container, so that the vibration transmission rod 103 extends into the liquid. Next, the hollow cup motor 104 is easily started through the touch operation interface. At this time, the control circuit quickly drives the hollow cup motor 104 to generate axial vibration, and the vibration wave is directly transmitted to the liquid medium through the vibrating part, forming a ring-shaped pressure wave centered on the rod. This pressure wave effectively promotes the rapid dispersion and dissolution of milk powder particles.

[0042] Meanwhile, the temperature measuring device 105 monitors the liquid temperature in real time. When the temperature exceeds the set threshold, the control circuit will immediately and automatically reduce its operating frequency to protect the equipment from overheating damage. This intelligent temperature control design not only ensures the safe operation of the system but also extends the service life of the equipment.

[0043] The solid-liquid accelerated dispersion system 100 of this embodiment greatly promotes the rapid dispersion and dissolution of milk powder particles through mechanical vibration, significantly improving reconstitution efficiency. Simultaneously, the vibration transmission rod 103 extending into the liquid to form a vibration-aiding region Z, along with the outer casing 102, enhances the energy density of vibration energy within the vibration-aiding region, improving the vibration effect and effectively preventing the generation of eddies and dead zones, thereby further enhancing the mixing effect.

[0044] Furthermore, the detachable design of the vibration transmission rod 103 makes cleaning and maintenance very convenient. After use, users can easily remove the vibration transmission rod 103 from the base 101 for thorough cleaning and disinfection, thus ensuring the hygiene and safety of the system. The hollow cup motor 104 is embedded within the vibration transmission rod 103 and does not directly contact the liquid, a design that greatly improves the safety of the equipment.

[0045] Besides beverage preparation, the solid-liquid accelerated dispersion system 100 of this embodiment can also be widely used in various other solid-liquid mixing scenarios, such as pharmaceutical dissolution and chemical raw material mixing. Wherever there is a need to rapidly and uniformly disperse solid particles into a liquid, the solid-liquid accelerated dispersion system 100 of this embodiment can be fully utilized to achieve efficient and stable solid-liquid mixing.

[0046] Example 2

[0047] like Figure 2 As shown, this embodiment provides a beverage extraction device 200, which includes a heating base, a cup body 202 for holding liquid, and a solid-liquid accelerated dispersion system. The cup body 202 is placed on the heating base, and its flexible design can be adapted to various shapes and sizes such as electric kettles and electric cups to meet the needs of different beverage extraction.

[0048] The heating base is equipped with heating elements (such as heating wires, heating plates, etc.) that can heat the water to a suitable extraction temperature.

[0049] The solid-liquid accelerated dispersion system consists of a base 201, a hollow cup motor 205, and a vibration transmission rod 204. The base 201 is securely fixed to the top of the cup body 202, supporting and fixing the hollow cup motor 205 and the vibration transmission rod 204. The hollow cup motor 205 acts as a vibration source, generating mechanical vibration; the vibration transmission rod 204 then transmits this vibration to solid particles (such as tea leaves, coffee powder, medicinal herbs, etc.) in the liquid, promoting their rapid dispersion and extraction. To enhance the vibration extraction effect, this embodiment includes an outer cover 203 around the vibration transmission rod 204, similar to Embodiment 1.

[0050] To enhance the user experience, the heating base is equipped with control buttons or a touchscreen, allowing users to easily adjust parameters such as the start / stop and speed of the coreless motor 205, as well as the heating temperature and heating time of the heating element. Additionally, the base 201 has a battery compartment or power interface to provide power to the coreless motor 205, or it can obtain power from the heating base via an electrical coupling device.

[0051] The electrically heated beverage extraction equipment of this embodiment is suitable for extracting various beverages, such as tea, coffee, and medicinal herbs. In use, simply pour water into the cup body 202, place the solid particles into the extraction basket or directly into the water, then insert the solid-liquid accelerated dispersion system, and start the hollow cup motor and heating device. The solid-liquid accelerated dispersion system significantly improves the dispersion and extraction efficiency of solid particles through mechanical vibration. The vibration transmission rod 204 extends into the liquid to form a vibration-assisted dissolving zone, ensuring uniform distribution of vibration energy throughout the liquid, effectively avoiding eddies and dead zones, and enhancing the uniformity of extraction. Simultaneously, the heating device heats the water to a suitable extraction temperature, further improving the extraction effect.

[0052] It is worth mentioning that the vibration transmission rod 204 in this embodiment consists of a vibration part and a connecting part. The connecting part is attached to the base 201 and is made of food-grade silicone tubing, which increases the range of motion of the vibration part and makes it more flexible. In addition, the vibration transmission rod 204 is designed as a detachable structure, which facilitates cleaning and maintenance, ensuring the hygiene and safety of beverages.

[0053] Example 3

[0054] like Figure 3 As shown, this embodiment provides a beverage mixer 300, which includes a solid-liquid accelerated dispersion system, allowing users to easily prepare beverages anytime, anywhere. As one form of the beverage mixer 300, this embodiment preferably adopts a baby bottle shape, primarily for preparing formula or other beverages for infants and young children.

[0055] The solid-liquid accelerated dispersion system, as described in Example 1, includes a base 301 and a vibration transmission rod 302. To accommodate the design of a portable container, the base 301 can be fixedly or detachably connected to the bottom of the container 303, ensuring that the hollow cup motor and vibration transmission rod can be securely mounted on the container. The hollow cup motor, serving as the system's power source, is powered by a battery or external power supply and generates mechanical vibration. The vibration transmission rod extends into the container, transmitting the mechanical vibration to the solid particles in the liquid, promoting their rapid dispersion and dissolution.

[0056] In use, users simply need to place an appropriate amount of liquid and solid particles into the container, install the base 301, and start the hollow cup motor. Because the solid-liquid accelerated dispersion system promotes rapid dispersion and extraction of solid particles through mechanical vibration, it significantly improves dissolution efficiency. Simultaneously, the vibration transmission rod extends into the liquid to form a vibration-assisted dissolution zone, allowing vibration energy to propagate through the liquid, thereby improving the dissolution efficiency of the milk powder.

[0057] The above description is merely a specific embodiment of this utility model, but the protection scope of this utility model is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the technical scope disclosed in this utility model should be included within the protection scope of this utility model. Therefore, the protection scope of this utility model should be determined by the scope of the claims.

Claims

1. A solid-liquid accelerated dispersion system for containers, which promotes the rapid dispersion of solid particles into a liquid by means of mechanical vibration, comprising a base; characterized in that, Also includes: Hollow cup motors are used to generate mechanical vibrations; as well as A vibration transmission rod attached to the base defines a receiving cavity inside, in which the hollow cup motor is embedded to transmit mechanical vibration as a driving force for dispersing solid particles via the vibration transmission rod. The vibration transmission rod is configured as a rod-shaped object suitable for extending in the liquid, and the hollow cup motor is positioned downstream of the vibration transmission rod in the direction of extension.

2. The solid-liquid accelerated dispersion system according to claim 1, characterized in that, The hollow cup motor is embedded at the end of the vibration transmission rod, and a temperature sensor is also embedded in the vibration transmission rod. The length of the vibration transmission rod is configured to be no less than 20 mm, and its diameter is configured to be between 6 and 20 mm. The wall thickness of the vibration transmission rod is configured to be between 0.2 and 1.5 mm. The vibration transmission rod is a hollow metal rod.

3. The solid-liquid accelerated dispersion system according to claim 1, characterized in that, The vibration transmission rod includes a vibration part and a connecting part, the connecting part being attached to a base; the connecting part is configured as a flexible tube to increase the range of motion of the vibration part; the vibration transmission rod is detachably attached to the base; the vibration transmission rod extends downward or upward from the base.

4. The solid-liquid accelerated dispersion system according to claim 1, characterized in that, The base has a battery and / or control device; the space inside the container formed by a limiting wall surrounding the vibratory transmission rod is defined as a vibration-assisted dissolving area, in which the distance between the vibratory transmission rod and the limiting wall is no greater than 80 mm; the limiting wall is formed by the side wall of the container or by an outer cover covering the vibratory transmission rod, the bottom of the outer cover having an opening.

5. A beverage mixing device comprising a container for holding liquid, characterized in that, It also includes a solid-liquid accelerated dispersion system for the container, wherein the solid-liquid accelerated dispersion system is the solid-liquid accelerated dispersion system according to any one of claims 1-4.

6. The beverage mixing device according to claim 5, characterized in that, The beverage mixer is configured to prepare milk powder, soy milk powder, or coffee powder.

7. A beverage extraction device, comprising a container for holding an aqueous liquid, characterized in that, It also includes a solid-liquid accelerated dispersion system for the container, wherein the solid-liquid accelerated dispersion system is the solid-liquid accelerated dispersion system according to any one of claims 1-4.

8. The beverage extraction equipment according to claim 7, characterized in that, The beverage extraction equipment is configured to extract tea leaves, coffee, or medicinal herbs.

9. A beverage extraction container suitable for holding liquids, characterized in that, It also includes a solid-liquid accelerated dispersion system for the extraction vessel, wherein the solid-liquid accelerated dispersion system is the solid-liquid accelerated dispersion system according to any one of claims 1-4.

10. The beverage extraction container according to claim 9, characterized in that, The beverage extraction container is a thermos.