Base station unit, oral care equipment and vibration reduction structure

By suspending the motor and water pump and absorbing vibrations with the connecting arms and soft glue, the problem of vibration transmission of the motor and water pump to the outer shell is solved, achieving the effect of reducing noise and improving user experience.

CN223190607UActive Publication Date: 2025-08-05SHENZHEN SOOCAS TECH CO LTD
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Patent Information

Application Number
CN202422415659.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-30
Publication Date
2025-08-05
Estimated Expiration
2034-09-30

AI Technical Summary

Technical Problem

In the prior art, vibrations of the motor and water pump are directly transmitted to the outer shell of the base station unit, resulting in an increase in noise and affecting the user experience.

Method used

Vibration transmission is reduced by suspending the motor and water pump with the connecting arm and absorbing vibration energy using the connecting arm that is elongated and has a curved portion, while covering soft glue between the connecting arm and the inner housing to absorb vibration.

Benefits of technology

It effectively reduces vibration and noise of base station units and improves user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a base station unit, oral care equipment and a vibration reduction structure, the base station unit comprises a main shell, a first bearing component and a first power assembly, and the main shell is provided with a containing cavity; the first bearing component is located in the containing cavity, the first bearing component is connected with the main shell, and the containing cavity is divided into a first cavity located on the upper portion and a second cavity located on the lower portion by the first bearing component; the first power assembly is connected with the first bearing component and suspended in the second cavity. According to the technical scheme provided by the invention, the vibration and noise of the base station unit can be reduced, and the user experience is improved.
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Description

Technical Field

[0001] The present application relates to the field of oral care technology, and in particular to a base station unit, an oral care device and a vibration reduction structure. Background Art

[0002] In the related art, the water flosser uses a motor to drive a water pump to generate a high-speed water flow or a pulsed water flow. These water flows can penetrate deep into the hard-to-clean areas of the teeth and gums, effectively removing food debris and bacteria.

[0003] However, the motor and water pump are often directly connected to the outer shell of the base station unit. During use, the operation of the motor and water pump will cause the outer shell to generate noise, affecting the user experience. Utility Model Content

[0004] The purpose of this application is to provide a base station unit, oral care equipment and vibration reduction structure, which can reduce the vibration and noise of the base station unit and improve the user experience.

[0005] To achieve the above objectives, the present application provides a base station unit, including:

[0006] a main housing having a receiving chamber;

[0007] a first bearing member located in the accommodating chamber, the first bearing member being connected to the main housing and dividing the accommodating chamber into a first cavity located at the upper portion and a second cavity located at the lower portion;

[0008] The first power assembly is connected to the first bearing member and suspended in the second cavity.

[0009] The technical solution provided by the present application is that the first power assembly is connected to the first bearing member and is suspended in the second cavity. That is to say, there is a predetermined height between the first power assembly and the bottom of the main shell, and the first power assembly is suspended relative to the bottom of the main shell. In this way, an air or space gap can be formed between the first power assembly and the bottom of the main shell. This gap can serve as a vibration isolation layer to prevent the vibration of the first power assembly from being directly transmitted to the bottom of the main shell that is in contact with the table on which the base station unit is placed, thereby reducing the vibration transmission to the main shell. At the same time, when the first power assembly is running, the vibration generated by the first power assembly first acts on the first bearing member instead of being directly transmitted to the main shell. In this way, the first bearing member deforms when it is vibrated to absorb the vibration energy, thereby reducing the vibration transmission of the first power assembly to the main shell through the first bearing member. In this way, as the vibration on the main shell is reduced, the noise generated by the vibration of the main shell can be reduced, thereby improving the user experience.

[0010] To achieve the above objectives, the present application further provides a base station unit, comprising:

[0011] a main housing having a receiving chamber;

[0012] a first bearing member located in the accommodating chamber, comprising a support member, a first connecting member, and a first connecting arm; the support member is connected to the main housing; a first notch is provided in the middle of the support member and passes through the support member; the first connecting member is located in the first notch and is connected to the support member via the first connecting arm;

[0013] A first power assembly is connected to the first connecting member and suspended in the accommodating chamber.

[0014] To achieve the above-mentioned purpose, the present application also provides an oral care device on the other hand, which includes at least a base station unit and an oral cleaner, wherein the base station unit is connected to the oral cleaner through a delivery pipeline, and the base station unit can deliver liquid to the oral cleaner through the delivery pipeline so that the liquid is sprayed out through the cleaning head of the oral cleaner.

[0015] To achieve the above-mentioned purpose, the present application also provides a vibration-damping structure on the other hand, which includes at least a support member, a first connecting member and a first connecting arm, wherein a first notch is provided in the middle of the support member, and the first notch passes through the support member; the first connecting member is located in the first notch and is connected to the support member through the first connecting arm, and the first connecting arm has a bent portion. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the following briefly introduces the drawings required for use in the description of the embodiments. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without any creative work.

[0017] Figure 1 This is a schematic structural diagram of an oral care device according to an embodiment of the present application;

[0018] Figure 2 1 is a schematic diagram of a half-section structure of a base station unit in one embodiment provided by the present application;

[0019] Figure 3 This is a schematic diagram of a top view of a partial structure of a base station unit in an embodiment provided by the present application;

[0020] Figure 4 This is a schematic diagram from a bottom perspective of a partial structure of a base station unit in an embodiment provided by the present application;

[0021] Figure 5 This is a schematic diagram of the connection state of the first connecting member and the first connecting arm in one embodiment provided by the present application;

[0022] Figure 6 This is a schematic diagram from a top perspective of another portion of the structure of a base station unit in one embodiment provided in the present application;

[0023] Figure 7 This is a schematic structural diagram of a first power assembly in an embodiment provided by the present application;

[0024] Figure 8 This is a schematic diagram from a top perspective of a partial structure of a base station unit in another embodiment provided by the present application;

[0025] Figure 9 This is a bottom perspective diagram of a partial structure of a base station unit in another embodiment provided by the present application;

[0026] Figure 10 is a half-section schematic diagram of a first load-bearing member in another embodiment provided by the present application;

[0027] Figure 11 This is a first angle schematic diagram of a first covering member in an embodiment provided by the present application;

[0028] Figure 12 This is a second angle schematic diagram of the first covering member in one embodiment provided in the present application;

[0029] Figure 13 This is a bottom perspective diagram of another portion of the structure of a base station unit in an embodiment provided by the present application;

[0030] Figure 14 This is a schematic diagram of the connection between the first power assembly and the second load-bearing member in one embodiment provided by the present application;

[0031] Figure 15 This is a bottom perspective diagram of a partial structure of a base station unit in another embodiment provided by the present application;

[0032] Figure 16 This is a half-section schematic diagram of another embodiment provided by the present application after the first power assembly is connected to the second load-bearing member;

[0033] Figure 17 This is a schematic diagram of a partial structure of a second load-bearing member from a first angle in an embodiment provided by the present application;

[0034] Figure 18 This is a schematic diagram of a partial structure of a second load-bearing member from a second angle in an embodiment provided by the present application;

[0035] Figure 19 This is a bottom view schematic diagram of a partial structure of a second load-bearing member in another embodiment provided by the present application;

[0036] Figure 20 It is a schematic structural diagram of the second covering member in an embodiment provided in this application.

[0037] Description of reference numerals:

[0038] 1000, base station unit; 2000, oral cleaner;

[0039] 100, main housing; 110, accommodating chamber; 111, first cavity; 112, second cavity;

[0040] 200, first bearing member; 210, support member; 211, first notch; 212, fixing hole; 213, step groove; 220, first connecting member; 221, intermediate frame; 222, first connecting column; 230, first connecting arm; 240, first covering member; 241, annular groove; 242, reinforcing rib;

[0041] 300, first power assembly; 310, drive module; 311, mounting column; 312, motor frame; 320, transmission module; 330, water pump module;

[0042] 400, second bearing member; 410, second connecting member; 420, second connecting arm; 430, third connecting member; 431, connecting portion; 440, connecting seat; 441, seat body; 4411, second notch; 442, second connecting column; 443, third connecting arm; 444, second covering member;

[0043] 500. Liquid storage module. DETAILED DESCRIPTION

[0044] With the development of oral hygiene devices, a growing number of devices with different functions have emerged, such as irrigators that only function as irrigators and integrated irrigators that combine irrigating and brushing functions. Both of these devices require a base unit to provide water flow to output a water impact, thereby flushing away food debris, bacteria, plaque, stains, and other substances harmful to dental health that adhere to the gums, thereby achieving oral health and care.

[0045] In related technologies, in order to fix the motor and water pump, the motor and water pump are usually directly connected to the outer shell of the base station unit. When the base station unit transports water, it needs to use the power of the motor to drive the water pump to pump and drain water. The motor and water pump will generate vibration and noise during operation, which will cause the vibration of the motor and water pump to be directly transmitted to the outer shell, thereby causing the outer shell to vibrate together, aggravating the noise generation and affecting the user experience.

[0046] In response to the above technical problems, the inventors of this application came up with the idea of connecting the motor and water pump to the internal housing through a connecting arm, thereby using the connecting arm to suspend the motor and water pump, preventing the vibration of the motor and water pump from being directly transmitted to the outer housing. The deformation of the slender connecting arm with a curved portion can also be used to absorb vibration energy, thereby further reducing the vibration transmitted to the motor and water pump, thereby reducing noise generation and improving the user experience. At the same time, the applicant also coated the connecting arm with soft rubber between the connecting arm and the internal housing, thereby utilizing the good elasticity and damping properties of the soft rubber to absorb and reduce the vibration transmitted from the motor and water pump to the outer housing, thereby further reducing noise and improving the operating stability of the base station unit.

[0047] In order to make the purpose, technical solutions and advantages of the embodiments of the present application clearer, the technical solutions in the embodiments of the present application will be clearly and completely described below in combination with the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, not all of the embodiments.

[0048] The present application provides a base station unit 1000, which can be used as a separate component in conjunction with an oral cleaner 2000 to provide liquid for rinsing the oral cleaner 2000. Of course, the base station unit 1000 can also be integrated with a charging module, and the base station unit 1000 can charge the oral cleaner 2000 through the charging module, but this application does not specifically limit this.

[0049] Please also see Figures 1 to 2 In one practicable embodiment, the base station unit 1000 may include at least a main housing 100. The main housing 100 serves as the main body of the base station unit 1000 and supports and protects the components of the base station unit 1000 other than the main housing 100. The main housing 100 may be a hollow structure, and a receiving chamber 110 may be formed therein.

[0050] In this embodiment, the base station unit 1000 may further include a first load-bearing member 200 and a first power assembly 300. The first load-bearing member 200 is located in the accommodating chamber 110. The first load-bearing member 200 is connected to the main housing 100 and divides the accommodating chamber 110 into a first cavity 111 located at the top and a second cavity 112 located at the bottom. The first cavity 111 may be used to accommodate the control components of the base station unit 1000, and the second cavity 112 may be used to accommodate the first power assembly 300. Therefore, when the first power assembly 300 or the pipeline connected thereto accidentally leaks, the first cavity 111 is located above the second cavity 112, which can reduce the possibility of liquid seeping into the first cavity 111, thereby preventing the spread of the fault.

[0051] The first power assembly 300 serves as the power source of the base station unit 1000. The first power assembly 300 can extract and discharge liquid based on the control of the control assembly. The first power assembly 300 is connected to the first bearing member 200 and is suspended in the second cavity 112. In other words, there is a predetermined height between the first power assembly 300 and the bottom of the main housing 100, and the first power assembly 300 is suspended relative to the bottom of the main housing 100. In this way, an air or space gap can be formed between the first power assembly 300 and the bottom of the main housing 100. This gap can serve as a vibration isolation layer to prevent the vibration of the first power assembly 300 from being directly transmitted to the bottom of the main housing 100 that is in contact with the table surface where the base station unit 1000 is placed, thereby reducing the vibration transmission to the main housing 100.

[0052] At the same time, when the first power assembly 300 is operating, the vibrations generated by the first power assembly 300 first act on the first bearing member 200, rather than being directly transmitted to the main housing 100. This allows the deformation of the first bearing member 200 during vibration to absorb vibration energy, thereby reducing the transmission of vibrations from the first power assembly 300 to the main housing 100 via the first bearing member 200. This reduces vibrations on the main housing 100, reducing the noise generated by the vibrations, thereby improving the user experience.

[0053] It should be noted that the up and down directions defined in this application refer to the Figure 1 The placement perspective of the base station unit 1000 shown is the upper and lower positions of the base station unit 1000 in a normal use state.

[0054] In a feasible embodiment, the base station unit 1000 may further include a liquid storage module 500 , and the first power assembly 300 is used to extract the liquid in the liquid storage module 500 and discharge it to the oral cleaner 2000 , thereby achieving an oral rinse function.

[0055] In practical applications, the liquid storage module 500 can be a liquid storage cavity enclosed by the main housing 100 and capable of accommodating liquid. The liquid storage module 500 can also be detachably mounted on the main housing 100 as a separate water tank. For example, the main housing 100 has a recessed receiving groove for accommodating the liquid storage module 500. The main housing 100 can be detachably mounted in the receiving groove. When the liquid storage module 500 is mounted in the receiving groove, the first power assembly 300 can communicate with the interior of the liquid storage module 500 to facilitate extraction of liquid from the liquid storage module 500. The accommodating groove can limit the main shell 100 to form an L-shaped structure. Accordingly, the accommodating chamber 110 can also be L-shaped. The above-mentioned first cavity 111 can be composed of the upper part of the vertical cavity of the L-shaped accommodating chamber 110, and the second cavity 112 is composed of the lower part of the vertical cavity of the L-shaped accommodating chamber 110 and the horizontal cavity of the accommodating chamber 110. The first power component 300 can extend from the lower part of the vertical cavity of the accommodating chamber 110 to the horizontal cavity of the accommodating chamber 110.

[0056] Regarding the specific structure of the first bearing member 200, as shown in FIG. Figures 3 to 6 As shown, in one achievable embodiment, the first load-bearing member 200 may include a support member 210, a first connecting member 220, and a first connecting arm 230. The number of first connecting arms 230 may be one, two, or more. The support member 210 is connected to the main housing 100, thereby connecting the first load-bearing member 200 to the main housing 100. A first notch 211 is defined in the middle region of the support member 210, extending through the support member 210. The first cavity 111 can communicate with the second cavity 112 via the first notch 211. The first connecting member 220 is at least partially located within the first notch 211 and is connected to the support member 210 via the first connecting arm 230. The first power assembly 300 is connected to the first connecting member 220. The first connecting arm 230 deforms when subjected to force, thereby absorbing vibration energy and reducing the transmission of vibration from the first power assembly 300 to the main housing 100 via the first load-bearing member 200. Furthermore, the first connector 220 connected to the first power assembly 300 is connected to the support member 210 via a first connecting arm 230. A gap exists between the first connector 220 and the support member 210, effectively isolating vibrations through the gap and reducing vibration transmission between the first power assembly 300 and the main housing 100. Furthermore, two or more first connecting arms 230 are preferably provided, with at least two first connecting arms 230 connecting the first connector 220 to the support member 210, thereby avoiding unstable unilateral connections and ensuring a stable connection between the first power assembly 300 and the support member 210.

[0057] In this embodiment, the first connecting arm 230 can be of an elongated structure, and the first connecting arm 230 can be made of hard glue material. The first connecting arm 230 realizes deformation by using its own shape characteristics, so as to absorb vibration energy through deformation and reduce the vibration transmission from the first power component 300 to the main housing 100. At the same time, the first connecting arm 230 made of hard glue material can also have a certain strength to avoid problems such as being broken by force and permanent deformation. Of course, the first connecting arm 230 can also be made of other materials with a certain strength and capable of generating a certain degree of deformation.

[0058] In practical applications, the support member 210 can be directly or indirectly connected to the main housing 100. When the support member 210 is directly connected to the main housing 100, the main housing 100, the support member 210, the first connecting member 220, and the first connecting arm 230 can be integrally formed by injection molding or the like, thereby simplifying the production process, reducing the production cost, and at the same time ensuring the stability and reliability of the connection between the main housing 100, the support member 210, the first connecting member 220, and the first connecting arm 230. Of course, the main housing 100 can also be integrally formed with a part of the support member 210, the first connecting member 220, and the first connecting arm 230, or the main housing 100, the support member 210, the first connecting member 220, and the first connecting arm 230 are separately formed and then connected to each other.

[0059] Furthermore, the first connecting arm 230 can have at least one bending portion, that is to say, there is a bending design for the first connecting arm 230, so as to further increase the deformation range of the first connecting arm 230 through the bending design and improve the vibration damping effect of the first connecting arm 230.

[0060] In practical applications, the bending portion of the first connecting arm 230 can have one, two, three, or four, etc. When the first connecting arm 230 has one bending portion, the first connecting arm 230 can be in the shape of a "Ji" character as Figure 5 shown.

[0061] As Figures 5 and 6As shown, in a feasible embodiment, the above-mentioned first connecting member 220 may include an intermediate frame 221 and a first connecting column 222, and the first power assembly 300 is connected to the first connecting column 222. The number of the first connecting columns 222 may be one, two, or more. The first connecting columns 222 are preferably provided in two or more, at least two first connecting columns 222 are connected to the edge of the intermediate frame 221, and at least two first connecting arms 230 are connected to the at least two first connecting columns 222 through the intermediate frame 221. In this way, compared to the method in which each first connecting column 222 is connected to the support member 210 separately through the first connecting arm 230, the present application simplifies the structure of the first bearing member 200 by connecting at least two first connecting columns 222 to the intermediate frame 221 and connecting the intermediate frame 221 to the support member 210 through the first connecting arm 230.

[0062] At the same time, the first connecting column 222 connected to the first power assembly 300 is connected to the edge of the intermediate frame 221. In other words, the intermediate frame 221 does not completely surround the first connecting column 222. This creates a circumferentially disconnected region between the first connecting column 222 and the intermediate frame 221, further reducing the transmission of circumferential vibrations of the first power assembly 300 through the first connecting column 222.

[0063] In practical applications, such as Figure 7 As shown, a mounting column 311 may be provided at the top of the first power assembly 300, and the first connecting column 222 may be provided with an inner cavity for accommodating the mounting column 311. The mounting column 311 may enter the inner cavity of the first connecting column 222 and be connected to the first connecting column 222 by means of clipping, bonding, interference fit, or screw fastening.

[0064] The shape of the first notch 211 can be triangle, circle, square or any other shape.

[0065] like Figure 3 and Figure 4As shown, taking the first notch 211 as a roughly circular shape as an example, the number of the first connecting columns 222 and the first connecting arms 230 can be the same, and at least two first connecting columns 222 and at least two first connecting arms 230 are arranged in a staggered manner and arranged in a circular array about the axis of the first notch 211. In other words, there is a first connecting arm 230 between two adjacent first connecting columns 222, and the two adjacent first connecting columns 222 are symmetrically arranged about the first connecting arm 230 located between the two adjacent first connecting columns 222. In this way, the uniformity and stability of the support provided by the first connecting arm 230 to the first connecting member 220 can be ensured. At the same time, the vibration from the first power assembly 300 can be evenly transmitted to the first notch 211 through the first connecting columns 222 and the first connecting arm 230, thereby being evenly distributed on the main housing 100, avoiding the problem of concentrated vibration and excessive noise.

[0066] It should be noted that the first notch 211 can be a complete circle. However, in actual design, the first notch 211 is often limited by the components inside the main housing 100, resulting in a corresponding inward or outward extension area forming a quasi-circular shape. Both the complete circle and the quasi-circular shape are generally circular shapes as defined above.

[0067] The number of the first connecting posts 222 and the number of the first connecting arms 230 can be two, three, four, five, etc. For example, if there are three first connecting posts 222 and three first connecting arms 230, the three first connecting arms 230 are respectively connected to the side wall of the intermediate frame 221 between two adjacent first connecting posts 222.

[0068] In practical applications, the intermediate frame 221 can be shaped like a triangle, with the three first connecting columns 222 connected to the three vertices of the intermediate frame 221, and the three first connecting arms 230 connected to the midpoints of the three sides of the intermediate frame 221. The three sides of the intermediate frame 221 can also be inwardly concave arcs, so that the intermediate frame 221 also has a certain degree of deformation ability. The deformation of the intermediate frame 221 absorbs vibration energy, thereby reducing the transmission of vibration from the first power assembly 300 to the main housing 100 through the first bearing member 200.

[0069] In order to further reduce the vibration transmission of the first power assembly 300 to the main housing 100 through the first bearing member 200, as shown in FIG. Figure 8 and Figure 9As shown, in a feasible embodiment, the first bearing member 200 may further include a first covering member 240 made of soft glue, wherein the soft glue is a material with elasticity and softness, and can be made of a variety of different polymers, such as natural or synthetic rubber, silicone rubber, TPE (thermoplastic elastomer), TPU (thermoplastic polyurethane), soft PVC, etc. The first covering member 240 at least partially covers at least one of the support member 210, the first connecting member 220 and the first connecting arm 230. In this way, when the first power assembly 300 transmits vibration through the first connecting member 220, the first connecting arm 230 and the support member 210, the first covering member 240 can absorb the vibration by utilizing its own elasticity and damping properties, thereby reducing the vibration transmission. At the same time, the first covering member 240 can connect the support member 210, the first connecting member 220 and the first connecting arm 230 to each other to ensure the stability of the support member 210, the first connecting member 220 and the first connecting arm 230, avoid breakage or permanent deformation damage due to vibration, and improve the service life of the first bearing member 200.

[0070] In actual applications, after the support member 210, the first connecting member 220 and the first connecting arm 230 are integrally formed, or after the split designs are connected to each other, the first covering member 240 can cover at least one of the support member 210, the first connecting member 220 and the first connecting arm 230 by secondary injection molding or lamination.

[0071] The first covering member 240 may partially fill the hollow area between the supporting member 210 , the first connecting member 220 and the first connecting arm 230 .

[0072] The above-mentioned first covering member 240 can also completely fill the hollow areas within the support member 210, the first connecting member 220 and the first connecting arm 230 bracket. Accordingly, the outer peripheral surface of the support member 210 is seamlessly connected to the inner wall surface of the main shell 100. In this way, the first bearing member 200 can isolate the first cavity 111 and the second cavity 112 from each other, and can further avoid the possibility of accidental leakage of liquid in the second cavity 112 entering the first cavity 111, thereby reducing the spread of faults.

[0073] In actual use, the first covering member 240 can completely enclose the intermediate frame 221 and the first connecting arm 230, or it can only cover the side and bottom surfaces of the intermediate frame 221 and the first connecting arm 230. The first covering member 240 can only cover the side surfaces of the first connecting column 222, so that the vibration transmitted circumferentially by the first connecting column 222 can be damped by the first covering member 240. To prevent the first covering member 240 from becoming disconnected from the first connecting column 222, an outwardly protruding annular flange is provided on the outer wall of the first connecting column 222, and the first covering member 240 only covers the lower portion of the annular flange. In this way, when the first power assembly 300 applies a downward force to the first connecting column 222, the first covering member 240 can abut against the annular flange to share the force, thereby reducing the possibility of disconnection between the first covering member 240 and the first connecting column 222.

[0074] like Figure 6 、 Figure 8 、 Figures 10 to 12 As shown, in a feasible embodiment, a plurality of fixing holes 212 can be provided on the support member 210, and the plurality of fixing holes 212 are arranged at intervals around the edge of the first notch 211, and the first covering member 240 fills the plurality of fixing holes 212. In this way, the contact area between the first covering member 240 and the support member 210 can be increased, and the adhesion between the first covering member 240 and the support member 210 can be increased, thereby avoiding the possibility of the first covering member 240 falling off during multiple deformation processes, and improving the stability and reliability of the first covering member 240.

[0075] In practical applications, the plurality of fixing holes 212 may be arranged in a circular array around the edge of the first notch 211 , or may be arranged at unequal intervals around at least part of the first notch 211 , which is not specifically limited in this application.

[0076] It can be understood that when a fixing hole 212 is provided on the support member 210, the fixing hole 212 can be understood as a hollow area on the support member 210. Accordingly, when the first bearing member 200 needs to isolate the first cavity 111 and the second cavity 112 from each other, the first covering member 240 not only needs to completely fill the hollow areas within the support member 210, the first connecting member 220 and the first connecting arm 230 bracket, but also needs to fill the fixing hole 212, that is, fill the hollow area on the support member 210.

[0077] Furthermore, the support member 210 may be provided with a stepped groove 213. The stepped groove 213 surrounds the edge of the first notch 211, and the inner wall of the stepped groove 213 communicates with the first notch 211. A plurality of fixing holes 212 are formed at the bottom of the stepped groove 213. The first covering member 240 fills the stepped groove 213, thereby further increasing the contact area between the first covering member 240 and the support member 210 and enhancing the adhesion between the first covering member 240 and the support member 210. Furthermore, the provision of the stepped groove 213 allows the top and bottom surfaces of the first covering member 240 and the support member 210 to be substantially flush, thereby ensuring the overall aesthetics of the first supporting member 200.

[0078] like Figure 12 As shown, in a feasible embodiment, an annular groove 241 is provided on the bottom surface of the first covering member 240, and the annular groove 241 is located in the first notch 211 and is arranged around the edge of the first notch 211, and a plurality of reinforcing ribs 242 are provided in the annular groove 241, and the plurality of reinforcing ribs 242 are arranged in an annular array along the annular groove 241, so that the strength of the first covering member 240 is increased by the reinforcing ribs 242, so that the first covering member 240 can better withstand long-term or repeated loads, thereby extending its service life, and the first covering member 240 with higher strength can provide better support for the first power component 300, reduce deformation under high load conditions, and thus improve the stability of the first bearing member 200.

[0079] Regarding the specific structure of the first power assembly 300, as shown in FIG. Figure 7 As shown, in a feasible embodiment, the first power component 300 may include a driving module 310, a transmission module 320 and a water pumping module 330, wherein the top end of the driving module 310 is connected to the first bearing member 200, and the bottom end of the driving module 310 is connected to the water pumping module 330 through the transmission module 320, so that the driving module 310 can drive the water pumping module 330 to operate through the transmission module 320 to extract the liquid in the liquid storage module 500 and discharge it.

[0080] In this embodiment, the driving module 310 can be connected to the pump module 330 via the transmission module 320 to form an integral body, and can be integrally installed on or removed from the base station unit 1000. The driving module 310 is located in the vertical cavity of the second cavity 112, the transmission module 320 is located at the intersection of the vertical cavity and the horizontal cavity of the second cavity 112, and the pump module 330 is located in the horizontal cavity of the second cavity 112.

[0081] In practical applications, the driving module 310 may be a motor, the transmission module 320 may be a gear box, and the pumping module 330 may be a water pump. A motor frame 312 is mounted on the motor, and correspondingly, the mounting column 311 is formed on the motor frame 312.

[0082] To ensure that the pump module 330 is relatively fixed in position and avoid affecting its normal operation, the pump module 330, or the connection between the pump module 330 and the transmission module 320, is connected to the main housing 100 via a second bearing member 400. Furthermore, the second bearing member 400 limits the position of the first power assembly 300 at the pump module 330, preventing the pump module 330 from vibrating significantly, thereby reducing vibration and noise.

[0083] In actual application, in order to ensure that the first power component 300 is suspended in the second cavity 112, the second bearing member 400 is connected to the part of the main shell 100 located above or on the side of the water pump module 330, so that the water pump module 330 is still suspended relative to the bottom of the main shell 100.

[0084] Regarding the specific structure of the second bearing member 400 , this application provides two achievable embodiments for reference.

[0085] Example 1: Figure 13 and Figure 14 As shown, the second bearing member 400 includes a second connecting member 410 and a second connecting arm 420, wherein the second connecting member 410 is connected to the water pump module 330, or the second connecting member 410 is connected to the connection between the water pump module 330 and the transmission module 320. One end of the second connecting arm 420 is connected to the second connecting member 410, and the other end of the second connecting arm 420 is connected to the main housing 100. The second connecting arm 420 also has at least one bent portion.

[0086] In this embodiment, the second connecting arm 420 can be slender and made of a hard plastic material. The second connecting arm 420 utilizes its own shape characteristics to deform, thereby absorbing vibration energy through deformation and reducing the transmission of vibration from the water pump module 330 to the main housing 100. Furthermore, the second connecting arm 420 can be made of a hard plastic material, which provides a certain strength to avoid breakage and permanent deformation under stress. Of course, the second connecting arm 420 can also be made of other materials with a certain strength and a certain degree of deformation.

[0087] In actual applications, the second connecting member 410 can be in the shape of a sleeve, and the second connecting member 410 is sleeved on the water pump module 330 or the connection between the water pump module 330 and the transmission module 320. The second connecting member 410 can also be formed into a sleeve shape by splicing two arc parts together, and this application does not make specific restrictions on this. The second connecting arm 420 can be directly connected to the main shell 100 or indirectly connected. When the second connecting arm 420 is directly connected to the main shell 100, the main shell 100 and the second connecting arm 420 can be integrally formed by injection molding or the like, thereby simplifying the production process and reducing production costs. Of course, when the second connecting arm 420 is directly connected to the main shell 100, the second connecting arm 420 and the main shell 100 can also be connected by snap-fitting, hot melting, gluing and threaded fastening, and this application does not make specific restrictions on this.

[0088] Furthermore, the second connecting arm 420 may have at least one bending portion, that is, the second connecting arm 420 has a bending design, so that the bending design can further increase the deformation range of the second connecting arm 420 and improve the vibration reduction effect of the second connecting arm 420.

[0089] Example 2: Figures 15 and 16 As shown, the second bearing member 400 includes a third connecting member 430 and a connecting seat 440, wherein the third connecting member 430 is connected to the water pump module 330, or the third connecting member 430 is connected to the connection between the water pump module 330 and the transmission module 320; the third connecting member 430 is connected to the main shell 100 through the connecting seat 440.

[0090] When the water pump module 330 is operating, the vibration generated by the first power assembly 300 at the water pump module 330, or in other words, the vibration generated by the water pump module 330, first acts on the second bearing member 400 rather than being directly transmitted to the main housing 100. Therefore, since the second bearing member 400 deforms when subjected to vibration, this deformation absorbs the vibration energy, thereby reducing the transmission of vibration from the water pump module 330 to the main housing 100 through the second bearing member 400. As a result, as the vibration on the main housing 100 is reduced, the noise generated by the vibration can be reduced, thereby improving the user experience.

[0091] In practical applications, the third connecting member 430 can be sleeve-shaped and sleeved on the water pump module 330 or at the connection between the water pump module 330 and the transmission module 320. The third connecting member 430 can also be formed by splicing two arc parts together to form a sleeve shape, which is not specifically limited in this application.

[0092] like Figures 16 to 18As shown, in one practicable embodiment, the connection base 440 may include a base body 441, a second connection column 442, and a third connection arm 443. The number of third connection arms 443 may be one, two, or more. The base body 441 is connected to the main housing 100 and is provided with a second notch 4411. The second connection column 442 is at least partially located within the second notch 4411. One end of the second connection column 442 is connected to the base body 441 via the third connection arm 443, and the other end of the second connection column 442 is connected to the third connection member 430. The deformation of the third connection arm 443 absorbs vibration energy, thereby reducing the transmission of vibration from the water pump module 330 to the main housing 100 through the connection base 440.

[0093] Furthermore, the number of third connecting arms 443 is preferably two or more, and the second connecting column 442 is connected to the base 441 via at least two third connecting arms 443. A gap exists between the second connecting column 442 and the base 441, effectively isolating vibrations through the gap and reducing vibration transmission between the second connecting column 442 and the main housing 100. Furthermore, the use of at least two third connecting arms 443 to connect the second connecting column 442 to the base 441 prevents unstable unilateral connections and ensures a stable connection between the base 441 and the second connecting column 442.

[0094] In this embodiment, the third connecting arm 443 can be slender and made of a hard plastic material. The third connecting arm 443 utilizes its own shape characteristics to deform, thereby absorbing vibration energy through deformation and reducing the transmission of vibration from the water pump module 330 of the first power assembly 300 to the main housing 100. Furthermore, the hard plastic material provided by the third connecting arm 443 provides a certain degree of strength, preventing breakage and permanent deformation under stress. Of course, the third connecting arm 443 can also be made of other materials with a certain degree of strength and a certain degree of deformation.

[0095] In actual applications, the base body 441, the second connecting column 442 and the third connecting arm 443 can all be made of hard plastic material and formed as one piece by injection molding, thereby simplifying the production process and reducing production costs, while also ensuring the stability and reliability of the connection between the base body 441, the second connecting column 442 and the third connecting arm 443.

[0096] Furthermore, the third connecting arm 443 may have at least one bending portion, that is, the third connecting arm 443 has a bending design, so that the bending design can further increase the deformation range of the third connecting arm 443 and improve the vibration reduction effect of the third connecting arm 443.

[0097] like Figures 16 to 20As shown, in one feasible embodiment, the connecting base 440 may further include a second covering member 444 made of soft rubber; the second covering member 444 at least partially covers at least one of the base body 441, the second connecting column 442, and the third connecting arm 443. It should be noted that soft rubber is an elastic and flexible material that can be made of a variety of different polymers, such as natural or synthetic rubber, silicone rubber, TPE (thermoplastic elastomer), TPU (thermoplastic polyurethane), soft PVC, etc.

[0098] When vibrations are transmitted from the pump module 330 of the first power assembly 300 through the second connecting column 442, the third connecting arm 443, and the base 441, the second covering member 444 can absorb the vibrations using its own elastic and damping properties, thereby reducing the vibration transmission. Furthermore, the second covering member 444 can interconnect the second connecting column 442, the third connecting arm 443, and the base 441 to ensure stability between the second connecting column 442, the third connecting arm 443, and the base 441, thereby preventing breakage or permanent deformation caused by vibration and extending the service life of the second load-bearing member 400.

[0099] In actual applications, after the second connecting column 442, the third connecting arm 443 and the base body 441 are integrally formed, or after the split designs are connected to each other, the second covering part 444 can be covered on the second connecting column 442, the third connecting arm 443 and the base body 441 by secondary injection molding or lamination.

[0100] Furthermore, the bottom surface of the second covering member 444 may be provided with an annular groove, which is located in the second notch 4411 and is arranged around the edge of the second notch 4411. A number of reinforcing structures are provided in the annular groove, and the number of reinforcing structures are arranged in an annular array along the annular groove, thereby increasing the strength of the second covering member 444 through the reinforcing structure, so that the second covering member 444 can better withstand long-term or repeated loads, thereby extending its service life, and the second covering member 444 with higher strength can provide better support for the first power component 300, reduce deformation under high load conditions, and thus improve the stability of the second bearing member 400.

[0101] Furthermore, the third connecting member 430 has two connecting portions 431. Accordingly, there are two second notches 4411, each of which is provided with a second connecting column 442, a third connecting arm 443, and a second covering member 444. The two connecting portions 431 are respectively connected to the two second connecting columns 442, thereby achieving a dual vibration reduction effect and ensuring the stability of the second bearing member 400 in limiting the first power assembly 300 at one end of the water pump module 330.

[0102] Based on the same inventive concept, the present application also provides a base station unit 1000, which may include a main housing 100, a first load-bearing member 200, and a first power assembly 300. The main housing 100 has a housing chamber 110. The first load-bearing member 200, located within the housing chamber 110, includes a support member 210, a first connector 220, and a first connecting arm 230. The support member 210 is connected to the main housing 100. A first notch 211 extending through the support member 210 is provided in the middle of the support member 210. The first connector 220 is located within the first notch 211 and is connected to the support member 210 via the first connecting arm 230. The first power assembly 300 is connected to the first connector 220 and suspended within the housing chamber 110.

[0103] It should be noted that the specific structures of the main housing 100 , the first bearing member 200 and the first power assembly 300 may refer to the detailed description in the above embodiment and will not be repeated here.

[0104] Based on the same inventive concept, the present application also provides an oral care device, which includes at least a base unit 1000 and an oral cleaner 2000 for oral cleaning, wherein the base unit 1000 is connected to the oral cleaner 2000 via a delivery pipeline, and the base unit 1000 can deliver liquid to the oral cleaner 2000 via the delivery pipeline, so that the liquid is sprayed through the cleaning head of the oral cleaner 2000. The oral cleaner 2000 is a combination of an all-in-one irrigator and an oral irrigator.

[0105] When the oral cleaner 2000 is an all-in-one flushing device, the cleaning head can be a brush head with bristles, a nozzle, or a brush head with both bristles and a nozzle. A second power assembly can be provided within the main body of the oral cleaner 2000. The second power assembly includes a motor body that receives a drive shaft for the cleaning head and rotates and / or applies vibration to the drive shaft. The drive shaft can be hollow to provide a fluid channel to facilitate fluid flow from the drive shaft into the cleaning head for flushing.

[0106] In actual application, the base station unit 1000 may also have an installation position, and the oral cleaner 2000 can be detachably connected to the base station unit 1000 through magnetic adsorption, hanging or buckling at the installation position, so that when the oral cleaner 2000 is idle, the oral cleaner 2000 can be stored and organized together with the base station unit 1000.

[0107] It should be noted that the specific structure of the base station unit 1000 can be referred to the detailed description in the above embodiment, and will not be repeated here.

[0108] Based on the same inventive concept, the present application also provides a vibration reduction structure, which can be applied to the base station unit 1000 of the above-mentioned oral care device, and can also be applied to other devices such as flushing machines or other devices that require vibration reduction. Specifically, the vibration reduction structure includes at least a support member 210, a first connecting member 220 and a first connecting arm 230, wherein a first notch 211 is provided in the middle of the support member 210, and the first notch 211 passes through the support member 210. The first connecting member 220 is located in the first notch 211 and is connected to the support member 210 through the first connecting arm 230, and the first connecting arm 230 has at least one curved portion.

[0109] Furthermore, the vibration reduction structure further includes a first covering member 240 having elastic properties. The first covering member 240 at least partially covers at least one of the supporting member 210 , the first connecting member 220 and the first connecting arm 230 .

[0110] It should be noted that the specific structures of the support member 210 , the first connecting member 220 , the first connecting arm 230 and the first covering member 240 may refer to the detailed description in the above embodiment and will not be repeated here.

[0111] Among them, the terms "upper" and "lower" are used to describe the relative position relationship of each structure in the accompanying drawings, which is only for the convenience of description and is not used to limit the scope of implementation of this application. Changes or adjustments to their relative relationships should also be regarded as the scope of implementation of this application without substantially changing the technical content.

[0112] It should be noted that, in this application, unless otherwise expressly specified or limited, a first feature being "above" or "below" a second feature may mean that the first and second features are in direct contact, or that the first and second features are in indirect contact through an intermediate medium. Furthermore, a first feature being "above," "above," and "above" a second feature may mean that the first feature is directly above or obliquely above the second feature, or simply means that the first feature is at a higher level than the second feature. A first feature being "below," "below," and "below" a second feature may mean that the first feature is directly below or obliquely below the second feature, or simply means that the first feature is at a lower level than the second feature.

[0113] Furthermore, in this application, unless otherwise expressly specified or limited, the terms "mounted," "connected," "connected," "fixed," and the like should be understood broadly. For example, they may refer to fixed connection, detachable connection, or integration; they may refer to direct connection or indirect connection through an intermediate medium; they may refer to internal communication between two components or interaction between two components. Those skilled in the art will understand the specific meanings of the above terms in this application based on the specific circumstances.

[0114] Throughout this specification, reference to terms such as "one embodiment," "some embodiments," "illustrative embodiments," "examples," "specific examples," or "some examples" means that the specific features, structures, materials, or characteristics described in conjunction with the embodiment or example are included in at least one embodiment or example of the present disclosure. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in any one or more embodiments or examples.

[0115] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present application, rather than to limit them. Although the present application has been described in detail with reference to the aforementioned embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the aforementioned embodiments, or make equivalent replacements for some or all of the technical features therein. These modifications or replacements do not deviate the essence of the corresponding technical solutions from the scope of the technical solutions of the embodiments of the present application.

Claims

1. A base station unit, characterized in that: include: A main housing (100) having a receiving chamber (110); a first bearing member (200) located in the accommodating chamber (110), the first bearing member (200) being connected to the main housing (100) and dividing the accommodating chamber (110) into a first cavity (111) located at the top and a second cavity (112) located at the bottom; A first power assembly (300) is connected to the first bearing member (200) and suspended in the second cavity (112).

2. The base station unit according to claim 1, wherein: The first load-bearing member (200) comprises a support member (210), a first connecting member (220) and a first connecting arm (230); The support member (210) is connected to the main housing (100), and a first notch (211) penetrating the support member (210) is provided in the middle of the support member (210); The first connecting member (220) is at least partially located in the first notch (211) and is connected to the supporting member (210) via the first connecting arm (230); the first power assembly (300) is connected to the first connecting member (220).

3. The base station unit according to claim 2, wherein: The first connecting arm (230) has at least one bent portion.

4. The base station unit according to claim 2, wherein: The first connecting member (220) includes an intermediate frame (221) and a first connecting column (222) for connecting to the first power assembly (300); The first connecting column (222) is connected to the edge of the intermediate frame (221), and the first connecting arm (230) is connected to the first connecting column (222) through the intermediate frame (221).

5. The base station unit according to claim 4, characterized in that The first notch (211) is substantially circular; The number of the first connecting columns (222) and the first connecting arms (230) is the same, and the first connecting columns (222) and the first connecting arms (230) are staggered in sequence and arranged in a circular array about the axis of the first notch (211).

6. The base station unit according to claim 5, characterized in that There are three first connecting columns (222) and three first connecting arms (230), and the three first connecting arms (230) are respectively connected to the side walls of the intermediate frame (221) located between two adjacent first connecting columns (222).

7. The base station unit according to claim 2, characterized in that The main housing (100), the support member (210), the first connecting member (220) and the first connecting arm (230) are integrally formed.

8. The base station unit according to any one of claims 2 to 7, characterized in that: The first bearing member (200) further includes a first covering member (240) made of soft rubber; The first covering member (240) at least partially covers at least one of the support member (210), the first connecting member (220), and the first connecting arm (230).

9. The base station unit according to claim 8, characterized in that The support member (210) is provided with a plurality of fixing holes (212); A plurality of the fixing holes (212) are arranged at intervals around the edge of the first notch (211), and the first covering member (240) fills the plurality of the fixing holes (212).

10. The base station unit according to claim 8, characterized in that The outer peripheral surface of the support member (210) is seamlessly connected to the inner wall surface of the main shell (100), and the first covering member (240) fills the hollow area on the support member (210) and the hollow area between the support member (210), the first connecting member (220) and the first connecting arm (230) to isolate the first cavity (111) and the second cavity (112) from each other.

11. The base station unit according to any one of claims 1 to 7, characterized in that: The first power assembly (300) includes a driving module (310), a transmission module (320) and a water pumping module (330), wherein: The bottom end of the driving module (310) is connected to the water pump module (330) via the transmission module (320); The water pump module (330), or the connection point between the water pump module (330) and the transmission module (320), is connected to the main housing (100) via a second bearing member (400).

12. The base station unit according to claim 11, wherein: The second bearing member (400) includes a second connecting member (410) and a second connecting arm (420), wherein: The second connecting member (410) is connected to the water pump module (330), or the second connecting member (410) is connected to the connection between the water pump module (330) and the transmission module (320); One end of the second connecting arm (420) is connected to the second connecting member (410), the other end of the second connecting arm (420) is connected to the main shell (100), and the second connecting arm (420) has at least one bent portion.

13. The base station unit according to claim 11, wherein: The second bearing member (400) includes a third connecting member (430) and a connecting seat (440), wherein: The third connecting member (430) is connected to the water pump module (330), or the third connecting member (430) is connected to the connection between the water pump module (330) and the transmission module (320); The connecting seat (440) has elastic properties, and the third connecting member (430) is connected to the main housing (100) via the connecting seat (440).

14. The base station unit according to claim 13, wherein: The connecting seat (440) includes a seat body (441), a second connecting column (442) and a third connecting arm (443), wherein: The seat body (441) is connected to the main housing (100), and a second notch (4411) is provided on the seat body (441); The second connecting column (442) is at least partially located in the second notch (4411), one end of the second connecting column (442) is connected to the base (441) through the third connecting arm (443), and the other end of the second connecting column (442) is connected to the third connecting member (430).

15. The base station unit according to claim 14, wherein: The connecting seat (440) further includes a second covering member (444) made of soft rubber; The second covering member (444) at least partially covers at least one of the seat body (441), the second connecting column (442) and the third connecting arm (443).

16. The base station unit according to claim 15, characterized in that The third connecting member (430) has two connecting parts (431); There are two second notches (4411), each of which is provided with the second connecting column (442), the third connecting arm (443) and the second covering member (444), and the two connecting portions (431) are respectively connected to the two second connecting columns (442).

17. A base station unit, characterized in that: include: A main housing (100) having a receiving chamber (110); A first bearing member (200) located in the accommodating chamber (110) comprises a support member (210), a first connecting member (220) and a first connecting arm (230); the support member (210) is connected to the main housing (100); a first notch (211) penetrating the support member (210) is provided in the middle of the support member (210); the first connecting member (220) is located in the first notch (211) and is connected to the support member (210) via the first connecting arm (230); A first power assembly (300) is connected to the first connecting member (220) and suspended in the accommodating chamber (110).

18. An oral care device, characterized in that The oral care device comprises at least the base station unit (1000) and the oral cleaner (2000) according to any one of claims 1 to 17, wherein: The base station unit (1000) is connected to the oral cleaner (2000) via a delivery pipeline, and the base station unit (1000) can deliver liquid to the oral cleaner (2000) via the delivery pipeline, so that the liquid is sprayed out through the cleaning head of the oral cleaner (2000).

19. A vibration reduction structure, characterized in that: The vibration reduction structure comprises at least a support member (210), a first connecting member (220) and a first connecting arm (230), wherein: A first notch (211) is provided in the middle of the support member (210), and the first notch (211) passes through the support member (210); The first connecting member (220) is located in the first notch (211) and is connected to the supporting member (210) via the first connecting arm (230), wherein the first connecting arm (230) has a curved portion.

20. The vibration damping structure according to claim 19, characterized in that: The vibration-damping structure further includes a first covering member (240) having elastic properties; The first covering member (240) at least partially covers at least one of the support member (210), the first connecting member (220), and the first connecting arm (230).