Electric conditioner capable of rotating stably

By designing multiple vibration damping mechanisms in electric conditioners, including elastic vibration damping systems and energy-consuming damping systems, the mechanical vibration problems caused by high-speed rotation are solved, significantly reducing noise and improving equipment stability.

CN119949680APending Publication Date: 2025-05-09意杉(杭州)科技有限公司
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202510236970.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-01
Publication Date
2025-05-09

AI Technical Summary

Technical Problem

When the electric conditioner rotates at high speed, it causes high noise, poor vibration isolation effect and unstable operating conditions due to mechanical vibration.

Method used

An electric conditioner including a multiple vibration damping mechanism is designed to reduce mechanical vibration generated by the rotating device and prevent it from conducting to the housing through an elastic vibration damping system and an energy-consuming damping system.

Benefits of technology

Effectively isolate and reduce mechanical vibration, reduce equipment noise, improve operational stability, and improve user experience.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN119949680A_ABST
    Figure CN119949680A_ABST
Patent Text Reader

Abstract

The invention relates to a stable-rotation electric conditioner which comprises a shell and a rotating device, the rotating device comprises a mounting disc, a rotating component rotationally jointed on the mounting disc and a motor fixedly connected to the mounting disc, and the rotating component is in transmission connection with the motor; the mounting disc is attached to the shell through at least one multi-damping mechanism, and the multi-damping mechanism is suitable for isolating mechanical vibration generated by the rotating device and preventing the mechanical vibration from being transmitted to the shell. Mechanical vibration generated by the rotating device is isolated and reduced in a multi-degree-of-freedom floating mode through the elastic vibration reduction system; the energy dissipation damping system adopts a damping rod and a damping sleeve which are matched with each other to convert vibration into damping force and friction, so that the mechanical vibration of the equipment is further eliminated. The multiple vibration reduction mechanisms reduce transmission of mechanical vibration and achieve a good vibration isolation effect, so that shaking and noise of the shell are reduced, the stability of the equipment is improved, and the use body feeling of a user is improved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the technical field of electric conditioners, and in particular to an electric conditioner with stable rotation. Background Art

[0002] As people's living standards improve, the types and functions of household appliances are becoming increasingly diverse. Among them, electric blenders, as a common household appliance, are widely used in homes, restaurants, cafes and other places to shake milk, prepare beverages, etc.

[0003] Due to the large difference in specific gravity between powdered granules and water, many granules dissolve slowly. It is often difficult to achieve rapid and complete uniform mixing by slowly shaking them, and the powder particles will agglomerate with each other to form larger particle clusters. For this reason, mixers on the market usually use high-speed motors as the driving source. The use of high-speed motors improves the efficiency of dissolving granules and water, allowing them to fully shake the granules in a short time. However, with the use of high-speed motors, when the motor drives the solvent to rotate at high speed, mechanical vibrations will be generated due to unbalanced centrifugal force, causing resonance of the shell and generating noise, etc., and resonance will also cause violent shaking of the equipment, which can easily cause the container to tip over, affecting the user experience.

[0004] In order to solve the above problems, some vibration and noise reduction technologies have been applied to electric conditioners. For example, rubber feet are set at the bottom of the equipment, and sound insulation materials are filled around the motor to reduce the transmission of vibration and noise. However, these traditional methods can only alleviate the vibration problem to a certain extent, and cannot fundamentally solve the impact of mechanical vibration on the stability of the equipment.

[0005] In view of this, it is urgent to design an electric conditioner with stable rotation to solve the problems of high equipment noise, poor equipment vibration isolation effect and unstable operating conditions caused by high-speed rotation of the motor. Summary of the invention

[0006] The present application provides an electric conditioner with stable rotation, aiming to solve the problems of high equipment noise, poor equipment vibration isolation effect and unstable operating conditions when the electric conditioner is working.

[0007] To achieve the above-mentioned purpose, the present application adopts the following technical solution: an electric conditioner with stable rotation, comprising a housing and a rotating device, the rotating device comprising a mounting disk, a rotating member rotatably engaged with the mounting disk, and a motor fixedly connected to the mounting disk, the rotating member being transmission-connected to the motor;

[0008] The mounting plate is attached to the housing by at least one multiple vibration damping mechanism, the multiple vibration damping mechanism being adapted to reduce mechanical vibrations generated by the rotating device and prevent them from being transmitted to the housing;

[0009] Among them, the multiple vibration reduction mechanisms include:

[0010] an elastic vibration reduction system, comprising at least one spring clamped between the mounting plate and the housing, the elastic vibration reduction system supporting the mounting plate into a multi-degree-of-freedom floating structure; and

[0011] An energy dissipation damping system includes at least one set of mutually adapted damping rods and dampers. In response to a multi-degree-of-freedom floating event of a mounting plate, relative movement occurs between the damping rod and the damper and a damping force is generated to hinder the relative movement. The damping rod is attached to one of the mounting plate and the housing, and the damper is attached to the other.

[0012] Furthermore, the multi-degree-of-freedom floating events include left-right swaying and up-and-down bouncing of the mounting plate.

[0013] Furthermore, the elastic vibration reduction system includes three springs, and the three springs are evenly distributed in the circumferential direction of the mounting plate.

[0014] Further, in response to the multi-degree-of-freedom floating event of the mounting plate, the elastic vibration damping system absorbs the mechanical vibration generated by the mounting plate by compression or extension.

[0015] Further, the damping rod is attached to the mounting plate, the damper is attached to the housing, and the damper is sleeved on the damping rod to generate a damping force.

[0016] Furthermore, the damping rod is configured to be able to generate elastic bending deformation to accommodate the left-right swinging of the mounting plate.

[0017] Further, the damping rod is configured as a long plastic rod suitable for generating elastic bending deformation.

[0018] Furthermore, the damper is a grease damper or a friction damper.

[0019] Furthermore, the damper is a rubber sleeve fixedly connected to the housing.

[0020] Furthermore, the energy dissipation damping system includes three groups of damping rods and damping sleeves that are adapted to each other, and the three groups of damping rods and damping sleeves are evenly distributed in the circumferential direction of the mounting plate.

[0021] Furthermore, the electric mixer involved in the present application is a milk shaker and a beverage mixer.

[0022] The beneficial effects of the present invention are as follows: by designing multiple vibration reduction mechanisms, the vibration reduction performance and stability of the equipment during operation are improved. Among them, the rotating device is connected to the elastic vibration reduction system in a multi-degree-of-freedom floating manner, so that the elastic vibration reduction system can effectively isolate and reduce the mechanical vibration generated by the rotating device, making the equipment more stable during operation. By setting up an energy-absorbing damping system, multiple sets of mutually compatible damping rods and rubber damping sleeves are used to convert vibration into damping force and friction, thereby further eliminating the mechanical vibration of the equipment. The multiple vibration reduction mechanisms can reduce mechanical vibrations and prevent them from being transmitted to the shell, and have a good vibration isolation effect on the shell, thereby reducing the resonant shaking of the shell, reducing the working noise of the equipment, significantly improving the operating stability of the equipment, and enhancing the user experience. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] Figure 1 It is a schematic diagram of the appearance of the present invention;

[0024] Figure 2 It is a schematic diagram of the structure of the present invention;

[0025] Figure 3 is a transverse cross-sectional view of the present application;

[0026] Figure 4 is a longitudinal cross-sectional view of the present application;

[0027] Figure 5 It is a schematic diagram of the energy dissipation damping system.

[0028] Description of reference numerals in the figures:

[0029] 10- housing;

[0030] 20-rotating device; 21-mounting plate; 22-rotating member; 23-motor; 24-claw; 25-compression spring;

[0031] 30-Multiple vibration reduction mechanisms;

[0032] 41-elastic vibration reduction system; 42-spring;

[0033] 51-energy dissipation damping system; 52-damping rod; 53-damper; 54-damping sleeve. DETAILED DESCRIPTION

[0034] The following will be combined with the drawings in the embodiments of the present application to clearly describe the technical solutions in the embodiments of the present application. Obviously, the described embodiments are part of the embodiments of the present application, rather than all the embodiments. All other embodiments obtained by ordinary technicians in this field based on the embodiments in the present application belong to the scope of protection of this application.

[0035] In the description of the present application, it should be noted that the terms used herein are only for describing specific embodiments, and are not intended to limit the exemplary embodiments according to the present application. For ease of description, the sizes of the various parts shown in the drawings are not drawn according to the actual proportional relationship. The technology, methods and equipment known to ordinary technicians in the relevant field may not be discussed in detail, but in appropriate cases, the technology, methods and equipment should be regarded as part of the authorization specification. In all examples shown and discussed here, any specific value should be interpreted as merely exemplary, rather than as a limitation. Therefore, other examples of the exemplary embodiments may have different values. It should be noted that similar numbers and letters represent similar items in the following drawings, so once an item is defined in one drawing, it does not need to be further discussed in subsequent drawings.

[0036] Embodiment 1:

[0037] like Figure 1-4 As shown, this embodiment provides an electric conditioner with stable rotation, including a housing 10 and a rotating device 20, wherein the rotating device 20 is used to drive a rotating member 22 to rotate at a high speed.

[0038] The rotating device 20 includes a mounting plate 21, a rotating member 22 and a motor 23. The rotating member 22 is rotatably engaged with the mounting plate 21 and is transmission-connected to the motor 23 and driven to rotate by the motor 23. The motor 23 is fixedly connected to the mounting plate 21 to provide rotational power for the rotating member 22.

[0039] Specifically, taking the milk shaker as an example, the rotating component 22 is the milk shaking frame. In order to ensure that the milk shaking frame can stably clamp the milk bottle or the bottle container containing the instant powder, claws 24 that can apply force to the bottle body are provided on the circumferential side of the inner wall of the milk shaking frame. Furthermore, in order to ensure that the claws can evenly apply force on the circumferential side of the milk bottle, the claws 24 can be evenly arranged in three or four groups along the inner ring end wall of the milk shaking frame.

[0040] As a preferred embodiment, the clamping claw 24 can also be hinged on the inner wall of the milk-shaking frame by means of an axial connection, and then the clamping claw 24 and the side wall of the milk-shaking frame are clamped by means of a compression spring 25, so that the bottle can be well clamped. In order to better clamp the bottle, the clamping claw 24 is configured in two layers, upper and lower. Through the upper and lower layered design, when the bottle is placed inside the milk-shaking frame, pressure can be applied to the upper and lower ends of the milk-shaking frame respectively, so that the bottle can be stably fixed and clamped in the milk-shaking frame, thereby preventing the bottle and the liquid therein from shaking due to the high-speed rotation of the motor 23, causing the bottle to shake irregularly in the milk-shaking frame due to unbalanced centrifugal force, and further improving the stability of the device during operation.

[0041] In the process of using an electric mixer to shake and stir the powder, since many powders (such as sesame paste, soy milk powder and other paste-like powders) dissolve slowly, it is often difficult to achieve rapid and uniform mixing with water by slowly shaking the mixer, and when the motor speed of the mixer is too slow, it will cause the powder particles to agglomerate with each other to form larger particle clusters. As a result, the powder will adhere to the inner wall of the bottle and the container, increasing the difficulty of cleaning the bottle and causing the waste of powder.

[0042] To this end, a high-speed motor is used in product design to increase the set speed of the milk shaking frame to 1000r / min or even 1500r / min. Compared with traditional milk shakers (the speed of the milk shaking frame is only about 500r / min), the milk shaking time can be shortened by half or even more, allowing users to save time and effort in the process of shaking milk powder. Taking the milk shaker as an example, the uniform mixing effect brought by the high speed ensures the quality of milk liquid and milk powder, protects the fragile digestive system of babies, and reduces gastrointestinal problems caused by uneven dissolution.

[0043] As an optional embodiment, the rotating member 22 (milk shaking frame) can be directly connected to the motor shaft of the motor 23. When the milk shaking frame is directly connected to the motor shaft of the motor 23, the axis of the milk shaking frame should be collinear with the axis of the motor shaft to avoid the shaking of the device due to the large centrifugal force generated by the imbalance of its own center of gravity when the milk shaking frame rotates. Similarly, in order to reduce the internal space of the milk shaking device and make its structure compact, the motor 23 and the milk shaking frame can be arranged on both sides. When the motor shaft and the axis of the milk shaking frame are not collinear, gear transmission or belt transmission can be used to ensure that the motor 23 can efficiently drive the milk shaking frame to rotate at a high speed.

[0044] Furthermore, in order to reduce the volume of the milk shaker and make it easier to store and carry, the internal structure of the milk shaker is optimized. Specifically, a driving method in which the motor 23 is directly connected to the rotating member 22 (milk shaking frame) is adopted, and the rotating member 22 is coaxially connected to one side of the motor shaft, thereby ensuring that the two are not transmitted through other mechanical structures, thereby improving the driving efficiency of the motor. A mounting hole that is opened up and down is opened in the middle of the mounting plate 21, and the motor 23 is passed through the mounting hole from bottom to top and then fixed to the mounting plate 21 by fasteners (such as screws, bolts, etc.). Such a design not only reduces the volume of the rotating device 20, but also makes the layout of the entire device more compact and reasonable.

[0045] In a conventional milk shaker, the rotating device 20 is directly in contact with the housing 10, or an elastic isolation pad, such as a silicone pad or a rubber isolation pad, is added between the two to prevent or reduce the mechanical vibration generated by the rotating device 20 when it is working. Another method is to add sound insulation cotton inside the housing 10 or add a rubber pad at the bottom of the housing 10 to reduce the shaking of the device caused by these mechanical vibrations. However, the vibration reduction effect of these measures is limited, and the stable operation of the device cannot be guaranteed when the set speed of the motor 23 is high.

[0046] When the rotating member 22 holds the milk bottle and rotates at high speed under the power of the motor 23, mechanical vibration will inevitably be generated. The noise and shaking of the conditioner device during operation are also mainly caused by the resonance of the housing 10 caused by the mechanical vibration transmitted to the housing 10. In order to isolate this part of the mechanical vibration and prevent these vibrations from being transmitted to the housing 10 to cause the shaking of the device to the greatest extent, a multiple vibration reduction mechanism 30 is added between the mounting plate 21 and the housing 10.

[0047] Specifically, the multiple vibration reduction mechanism 30 is configured as two parts: a group of elastic vibration reduction systems 41 and a group of energy dissipation damping systems 51 .

[0048] The elastic vibration reduction system 41 includes at least one spring 42, preferably three springs 42, which are respectively located at three vertices of the mounting plate 21 (or a suitable layout is selected according to actual needs), and are installed between the mounting plate 21 and the housing 10. The stiffness and number of the springs 42 can be adjusted according to factors such as the weight and vibration frequency of the device to ensure that when the mounting plate 21 is subjected to mechanical vibration, the springs 42 can effectively absorb and reduce the vibration energy, so that the mounting plate 21 maintains a relatively stable floating state.

[0049] In the elastic vibration reduction system 41, springs 42 are arranged between the housing 10 and the mounting plate 21 to preliminarily reduce the mechanical vibration generated by the rotating device 20. And by selecting three groups of springs 42, the three groups of springs 42 can support the rotating device 20 and allow it to float above the housing 10. That is, the rotating device 20 is suspended above the housing 10 and floats freely. When the motor 23 is started, the rotating device 20 generates mechanical vibration in a floating manner, and the free floating includes movement in the horizontal direction of space and movement in the vertical direction of space.

[0050] The purpose of using multiple groups of springs 42 is to evenly distribute the total mass of the rotating device 20 and the bottle clamped thereon to each group of springs 42, and the three groups of springs 42 are evenly arranged on the shell 10 in a circular manner. The circular layout can further ensure that the elastic vibration reduction system 41 can exert a better vibration reduction effect when the rotating device 20 is working.

[0051] As a preferred embodiment, for the spring 42, a cylindrical helical spring is preferably used. The cylindrical helical spring has stronger deformation performance, longer service life and lower procurement cost. It is also easier to buy on the market, which is convenient for product maintenance. In addition, the cylindrical helical spring has a better load-bearing capacity than the conical spring and the butterfly spring, and is more conducive to bearing the weight of the rotating device 20 and the load of the clamping container in the rotating member 22, so as to ensure that when the mounting plate 21 is subjected to mechanical vibration, the spring 42 can effectively absorb and reduce the vibration energy, so that the mounting plate 21 can always remain in a relatively stable floating state during operation.

[0052] Depend on Figures 3 to 5 Further, the energy dissipation damping system 51 responds to the multi-degree-of-freedom floating event of the mounting plate 21 (i.e., the rotating device 20 floats freely above the housing 10 through three groups of springs 42) through three groups of mutually adapted damping rods 52 and dampers 53. When the energy dissipation damping system 51 is subjected to mechanical vibration transmitted by the motor 23, relative movement occurs between the damping rod 52 and the damper 53 therein, thereby generating a damping force that hinders the relative movement, and the damping rod 52 is attached to one of the mounting plate 21 or the housing 10, and the damper is attached to the other.

[0053] As a preferred embodiment, the damping rod 52 is attached to the mounting plate 21 and is designed to be a structure capable of elastic bending deformation, which ensures that it can follow and adapt to the left and right swing of the mounting plate 21 during operation. In addition, the damper 53 is attached to the housing 10 so that it is sleeved on the damping rod 52. The two can generate damping force through the viscosity or friction of the damping material (such as rubber, grease, etc.).

[0054] When the mounting plate 21 floats in multiple degrees of freedom, the damping rod 52 and the damper 53 move relative to each other, and the damper 53 hinders the movement of the damping rod 52, thereby consuming vibration energy. Like the elastic vibration reduction system 41, the energy dissipation damping system 51 is also arranged in a circular manner, and three groups are evenly arranged between the housing 10 and the mounting plate 21, so that they are evenly arranged between the housing 10 and the mounting plate 21.

[0055] Furthermore, the damping rod 52 is configured as a long plastic rod capable of producing elastic full deformation to adapt to vibrations in different directions. The damper 53 may be a grease damper, a friction damper, or a rubber sleeve fixed to the housing 10, etc. In this embodiment, the damper 53 is preferably a rubber sleeve with good damping effect and relatively easy to obtain on the market.

[0056] When designing a product, a suitable damper type should be selected according to actual needs. For example, when the model power of the motor 23 is very large, a damping rod with better bending deformation performance and a friction damper with better damping effect should be selected accordingly. Preferably, the energy dissipation damping system 51 is configured as a plastic rod and a silicone sleeve with deformation ability, not only because the silicone sleeve and the plastic rod are low in cost and have good bending deformation performance, but also because when the plastic rod rubs against the silicone sleeve, the plastic rod itself can also bear part of the load from the rotating device 20, thereby further increasing the stability of the device.

[0057] Furthermore, in order to prevent the entire conditioner from moving on the desktop due to the resonance of the housing 10, a vibration-damping foot 60 is provided at the lower end surface of the housing 10, thereby further reducing the transmission of vibration to the bottom of the device and the surrounding environment. The vibration-damping foot 60 can be made of elastic materials such as rubber and silicone, and reduces the impact of vibration on the device by absorbing and dispersing vibration energy.

[0058] In order to further reduce noise, sound insulation materials such as foam, sponge, etc. can be arranged around the motor 23 to reduce the interference of noise generated by the motor when it is running to the user. The sound insulation material can be customized according to the shape and size of the motor to ensure that it can effectively cover the motor and reduce the transmission of noise.

[0059] Furthermore, in order to improve the stability of the rotating member 22 during rotation, a balancing block can be provided on the rotating member 22 of the rotating device 20 to adjust the center of gravity of the rotating member 22 to make it more stable during operation. The balancing block can be designed and adjusted according to the shape and mass distribution of the rotating member 22 to ensure that it can effectively improve the stability of the device.

[0060] Embodiment 2:

[0061] As another optional implementation, electromagnetic dampers and rubber dampers are two common vibration control devices. When the viscosity of the mixed instant medicine is very high and it is difficult to dissolve in water in a short time, in order to speed up the dissolution efficiency, the motor 23 will select a high-power model motor, which will generate stronger mechanical vibration when rotating. At this time, the equipment needs a better vibration isolation effect to prevent the mechanical resonance of the housing 10. For this, the energy dissipation damping system 51 correspondingly selects an elastic plastic rod with better bending performance and an electromagnetic damper with better damping effect.

[0062] However, when the two are carefully compared, it is not difficult to find that the electromagnetic damper has more prominent advantages in multiple dimensions. The following is an in-depth analysis of the advantages of the electromagnetic damper over the friction damper in Example 1.

[0063] First, from the perspective of energy consumption and environmental friendliness, electromagnetic dampers use the principle of electromagnetic induction to generate the required damping force by controlling the current in the coil. This process is relatively energy-saving and environmentally friendly. In contrast, rubber dampers rely on the physical deformation of rubber materials to dissipate energy. Although this mechanism is simple and effective, it may cause aging and wear of rubber materials during long-term use, thereby increasing the cost of replacement and maintenance. More importantly, the production and processing of rubber materials may have an adverse impact on the environment, while electromagnetic dampers show higher sustainability in this regard.

[0064] Secondly, electromagnetic dampers have higher flexibility and controllability in performance. By precisely adjusting the magnitude and direction of the current in the coil, the damping force can be precisely controlled to meet the vibration control requirements under different working conditions. In contrast, the performance of rubber friction dampers is relatively fixed and difficult to flexibly adjust according to actual needs, which limits its application scope to a certain extent.

[0065] Furthermore, from the perspective of service life and reliability, electromagnetic dampers also perform well. Since the working principle of electromagnetic dampers does not involve physical deformation, the wear of their internal components is relatively low, which extends the service life of the equipment. In addition, the structure of electromagnetic dampers is relatively simple and easy to maintain and repair, which further improves their reliability. In contrast, rubber dampers may deteriorate in performance due to aging, wear and other reasons during long-term use, and need to be replaced and maintained regularly, increasing the cost of use.

[0066] In addition, electromagnetic dampers also have the advantages of strong adaptability and fast response speed. Electromagnetic dampers can quickly respond to vibration signals and generate corresponding damping forces, thereby effectively suppressing vibrations. This feature makes electromagnetic dampers have significant advantages in situations where rapid response to mechanical vibrations of the conditioner is required. At the same time, electromagnetic dampers can also adapt to vibration signals of different frequencies and amplitudes, showing stronger adaptability and stability.

[0067] Specifically, the electromagnetic damper can achieve precise control of mechanical vibration, and its braking effect and response speed are more superior. When a product design of a high-speed motor is selected, the electromagnetic damper is used to further eliminate the vibration caused by the rotation of the motor. When the mass of the container and the liquid clamped in the rotating member 22 is large, when the device is working, the current passing through the electromagnetic damper increases accordingly to generate a greater damping force to suppress this part of the mechanical vibration from being transmitted to the housing 10. When the mass of the container and the liquid clamped in the rotating member 22 is small, when the device is working, the amplitude of the mechanical vibration generated is small, and the current passing through the electromagnetic damper decreases accordingly. In addition, the electromagnetic damper has low energy consumption, does not generate noise when working, and is more environmentally friendly.

[0068] Compared with grease-based dampers, electromagnetic dampers have the characteristic of no liquid leakage. Electromagnetic dampers do not require liquid support, avoiding the problem of leakage such as grease. They use electric current to control the damping size, which improves the dynamic performance of the system. The use environment is more diverse, and no leakage ensures that the equipment will not contaminate food during use, thereby improving the stability and safety of equipment operation.

[0069] In summary, electromagnetic dampers are superior to friction dampers in terms of energy consumption, environmental friendliness, performance flexibility, service life, reliability and adaptability. Therefore, electromagnetic dampers are preferred in product upgrades and optimizations. And with the continuous advancement of technology and further reduction of costs, the cost of electromagnetic dampers is also within an acceptable range.

[0070] It should be noted that the electric mixer described in this embodiment can be a milk shaker or a beverage mixer.

[0071] The embodiments of the present application are described above in conjunction with the accompanying drawings. In the absence of conflict, the embodiments in the present application and the features in the embodiments can be combined with each other. The present application is not limited to the above-mentioned specific implementation methods. The above-mentioned specific implementation methods are merely illustrative and not restrictive. Under the guidance of the present application, ordinary technicians in this field can also make many forms without departing from the purpose of the present application and the scope of protection of the claims, all of which are within the protection of the present application.

Claims

1. An electric conditioner with stable rotation, comprising a housing and a rotating device, wherein the rotating device comprises a mounting plate, a rotating member rotatably engaged with the mounting plate, and a motor fixedly connected to the mounting plate, wherein the rotating member is transmission-connected to the motor; characterized in that: The mounting plate is attached to the housing by at least one multiple vibration damping mechanism, the multiple vibration damping mechanism being adapted to reduce mechanical vibrations generated by the rotating device and prevent them from being transmitted to the housing; Wherein, the multiple vibration reduction mechanism comprises: an elastic vibration reduction system, comprising at least one spring clamped between the mounting plate and the housing, the elastic vibration reduction system supporting the mounting plate into a multi-degree-of-freedom floating structure; and An energy dissipation damping system comprises at least one set of mutually adapted damping rods and dampers, wherein in response to a multi-degree-of-freedom floating event of the mounting plate, relative movement is generated between the damping rods and the dampers and a damping force is generated to hinder the relative movement, wherein the damping rods are attached to one of the mounting plate and the housing, and the damper is attached to the other.

2. The electric conditioner according to claim 1, characterized in that: The multi-degree-of-freedom floating events include left-right swaying and up-and-down bouncing of the mounting plate.

3. The electric conditioner according to claim 1 or 2, characterized in that: The elastic vibration reduction system includes three springs, and the three springs are evenly distributed in the circumferential direction of the mounting plate.

4. The electric conditioner according to claim 1, characterized in that: In response to a multi-degree-of-freedom floating event of the mounting plate, the elastic vibration damping system absorbs mechanical vibrations generated by the mounting plate by compression or extension.

5. The electric conditioner according to claim 1, characterized in that: The damping rod is attached to the mounting plate, the damper is attached to the housing, and the damper is sleeved on the damping rod to generate a damping force.

6. The electric conditioner according to claim 1 or 5, characterized in that: The damping rod is configured to be able to generate elastic bending deformation to adapt to the left-right swing of the mounting plate.

7. The electric conditioner according to claim 6, characterized in that The damping rod is configured as a long plastic rod suitable for generating elastic bending deformation.

8. The electric conditioner according to claim 6, characterized in that The damper is a grease damper or a friction damper.

9. The electric conditioner according to claim 8, characterized in that The damper is a rubber sleeve fixedly connected to the housing.

10. The electric conditioner according to claim 1, characterized in that The energy dissipation damping system comprises three groups of damping rods and damping sleeves adapted to each other, and the three groups of damping rods and damping sleeves are evenly distributed in the circumferential direction of the mounting plate.

11. The electric conditioner according to claim 1, characterized in that: The electric mixer is a milk shaker and a beverage mixer.