Liquid guide device and massager

CN224711437UActive Publication Date: 2026-09-04SHENZHEN BREO TECH CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202522014659.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-18
Publication Date
2026-09-04
Estimated Expiration
2035-09-18

AI Technical Summary

Technical Problem

[0003]本申请的目的在于提供一种导液装置及按摩器,旨在解决现有技术中的按摩梳在倾斜使用时存在多个出液孔出液不均匀的技术问题

Benefits of technology

[0005] Compared with the prior art, the beneficial effects of the liquid guiding device provided in this application are as follows: In use, the liquid in the inlet channel can flow into the diversion channel through the outlet and then flow out from the outlet hole to realize the liquid guiding function. When the liquid in the inlet channel flows to the outlet and contacts the diversion component, the diversion component, whose cross-sectional area gradually decreases from bottom to top, can make the liquid flow evenly in all directions, thus flowing to the first end of each diversion channel. Since the height of the diversion channel gradually decreases from the first end to the second end of the diversion channel, that is, the diversion channel is set to extend obliquely downward, even if the liquid guiding device is tilted to a certain extent, the liquid in each diversion channel can flow smoothly from the first end to the second end under its own gravity and then flow out from the outlet hole. This effectively avoids the situation where the liquid flow in some diversion channels is blocked, resulting in a large amount of liquid flowing out of some outlet holes, while the liquid flow in other outlet holes is small or even no liquid flows out, thus realizing uniform liquid discharge from multiple outlet holes.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224711437U_ABST
    Figure CN224711437U_ABST
Patent Text Reader

Abstract

The application belongs to the technical field of massage equipment, and specifically provides a liquid guiding device and a massager. The massager comprises a massager host and a liquid guiding device. The liquid guiding device is provided with a liquid inlet channel, a plurality of shunt channels and a plurality of liquid outlet holes. The liquid inlet channel has an outlet. The outlet is provided with a shunt member. The shunt channel has oppositely arranged first and second ends. The first ends of the plurality of shunt channels converge at the shunt member and are all communicated with the liquid outlet. The second ends of the plurality of shunt channels are respectively communicated with the plurality of liquid outlet holes. In the direction from the first end to the second end, the height of the shunt channel gradually decreases. Even if the liquid guiding device is inclined to a certain degree, the liquid in each shunt channel can flow smoothly from the first end to the second end under the action of its own gravity and then flow out of the liquid outlet hole, so that the plurality of liquid outlet holes uniformly discharge liquid.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This application belongs to the field of massage equipment technology, specifically relating to a fluid guiding device and a massager. Background Technology

[0002] Some massage combs have a liquid guiding device that can deliver essential oils. The liquid guiding device usually has multiple liquid outlets. However, essential oils will only flow from all the liquid outlets when the massage comb is used in a horizontal position. Once the massage comb is tilted, some liquid outlets will have a larger amount of essential oil flowing out, while others will have a smaller amount, or even some liquid outlets will have no essential oil flowing out. This means that there is an uneven liquid output from multiple liquid outlets. Utility Model Content

[0003] The purpose of this application is to provide a liquid guiding device and a massager, which aims to solve the technical problem of uneven liquid output from multiple liquid outlets when the massage comb is used at an angle in the prior art.

[0004] On the one hand, to achieve the above objectives, the technical solution adopted in this application is: a liquid guiding device, which is provided with an inlet channel, multiple diversion channels and multiple outlet holes. The inlet channel has an outlet, and a diversion element is provided at the outlet. The cross-sectional area of ​​the diversion element gradually decreases from bottom to top. Multiple diversion channels are distributed around the diversion element. Each diversion channel has a first end and a second end that are arranged opposite to each other. The first ends of the multiple diversion channels converge at the diversion element and are all connected to the outlet. The second ends of the multiple diversion channels are respectively connected to the multiple outlet holes. The diversion channels are inclined, and the height of the diversion channels gradually decreases from the first end to the second end. Liquid in the inlet channel can flow into the diversion channel through the outlet and then flow out from the outlet hole.

[0005] Compared with the prior art, the beneficial effects of the liquid guiding device provided in this application are as follows: In use, the liquid in the inlet channel can flow into the diversion channel through the outlet and then flow out from the outlet hole to realize the liquid guiding function. When the liquid in the inlet channel flows to the outlet and contacts the diversion component, the diversion component, whose cross-sectional area gradually decreases from bottom to top, can make the liquid flow evenly in all directions, thus flowing to the first end of each diversion channel. Since the height of the diversion channel gradually decreases from the first end to the second end of the diversion channel, that is, the diversion channel is set to extend obliquely downward, even if the liquid guiding device is tilted to a certain extent, the liquid in each diversion channel can flow smoothly from the first end to the second end under its own gravity and then flow out from the outlet hole. This effectively avoids the situation where the liquid flow in some diversion channels is blocked, resulting in a large amount of liquid flowing out of some outlet holes, while the liquid flow in other outlet holes is small or even no liquid flows out, thus realizing uniform liquid discharge from multiple outlet holes.

[0006] Furthermore, the liquid guiding device includes a support assembly, which includes a liquid guiding support and a diversion assembly. The liquid guiding support has an upwardly oriented first convex surface, and an outlet is located on the liquid guiding support and at the edge of the first convex surface. The diversion component is located at the center of the first convex surface, and the height of the first convex surface gradually decreases in the direction away from the diversion component. The diversion assembly has an inlet channel and a downwardly oriented first concave surface, and the outlet is located at the center of the first concave surface. The shape of the first concave surface is adapted to the shape of the first convex surface, and the first concave surface fits against the first convex surface. One of the first concave surface and the first convex surface has multiple channels, which are distributed at intervals around the diversion component. The other of the first concave surface and the first convex surface encloses the channels to form a diversion channel.

[0007] Furthermore, the top of the diverter extends from the outlet into the inlet channel.

[0008] Furthermore, the diversion assembly includes a diversion bracket and a diversion soft rubber, the diversion soft rubber being connected to the diversion bracket, the liquid inlet channel including a first channel disposed on the diversion bracket and a second channel disposed on the diversion soft rubber, the bottom of the diversion soft rubber having a first concave surface, one end of the second channel communicating with the first channel, and the other end of the second channel having an outlet.

[0009] Furthermore, the first channel and the second channel are spaced apart; one of the bottom surface of the diversion bracket and the top surface of the diversion soft rubber is provided with a groove, and the other of the bottom surface of the diversion bracket and the top surface of the diversion soft rubber and the groove enclose to form a connecting channel, and the two ends of the connecting channel are respectively connected to the first channel and the second channel.

[0010] On the other hand, in order to achieve the above objectives, the technical solution adopted in this application is: a massager, including a massager main unit and the above-mentioned liquid guiding device, wherein the massager main unit has a massage head for massage and the liquid guiding device is disposed on the massager main unit.

[0011] Compared with existing technologies, the beneficial effects of the massager provided in this application are as follows: During use, the massager can massage body parts using the massage heads on the main unit, and simultaneously, liquids such as essential oils, liniments, or skin lotions can be directed to the body parts through the liquid outlet via the liquid guiding device. During the liquid guiding process, when the liquid in the guiding channel flows to the outlet and contacts the diverting component, the diverting component can evenly distribute the liquid in all directions, allowing it to flow to the first end of each diverting channel. Since the height of the diverting channel gradually decreases from the first end to the second end, i.e., the diverting channel extends obliquely downwards, even if the liquid guiding device is tilted to a certain extent, the liquid in each diverting channel can smoothly flow from the first end to the second end under its own gravity and then flow out through the liquid outlet. This effectively avoids the situation where the liquid flow in some diverting channels is obstructed, resulting in some liquid outlets having a larger output while others have a smaller output or no liquid flow, thus achieving even liquid output from multiple liquid outlets.

[0012] Furthermore, the massager main unit includes a housing, an installation cavity inside the housing, an installation port at the bottom of the housing that communicates with the installation cavity, and a liquid inlet at the top of the housing. The liquid guiding device is inserted into the installation cavity through the installation port and fixedly connected to the top side of the housing facing the installation cavity. The liquid inlet channel also has an inlet that communicates with the liquid inlet.

[0013] Furthermore, the top of the outer shell is partially recessed inward to form a liquid storage cavity, and the liquid inlet is located between the liquid storage cavity and the inlet, with the inlet communicating with the liquid storage cavity through the liquid inlet.

[0014] Furthermore, the liquid guiding device also includes a driving mechanism, which includes a liquid guiding hose and a driving assembly. The two ends of the liquid guiding hose are respectively connected to the liquid inlet and the inlet. The driving assembly is used to squeeze the liquid guiding hose so that the liquid in the storage chamber flows through the liquid guiding hose, the liquid inlet channel and the diversion channel in sequence and then flows out from the liquid outlet.

[0015] Furthermore, the massager main unit also includes a comb assembly, a light guide cover, and a light-emitting element. The light guide cover is at least partially inserted into the mounting cavity from the mounting port and fixedly connected to the top side of the outer shell facing the mounting cavity. The liquid guiding device and the light-emitting element are both located inside the light guide cover. The comb assembly is partially inserted into the mounting cavity from the mounting port and fixedly connected to the top side of the outer shell facing the mounting cavity. The comb assembly is arranged around the light guide cover and has a massage head, which is a comb. Attached Figure Description

[0016] To more clearly illustrate the technical solutions in the embodiments of this application, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0017] Figure 1 This is an exploded view of the structure of the massager provided in the embodiments of this application; Figure 2 for Figure 1 A cross-sectional view of the fluid guiding device of the massager shown; Figure 3 for Figure 2 An exploded view of the liquid guiding device shown. Figure 4 for Figure 3 A schematic diagram of the diversion soft rubber of the liquid guiding device shown from one view. Figure 5 for Figure 3 A schematic diagram of the diversion soft rubber of the liquid guiding device shown from another perspective; Figure 6 for Figure 3 A schematic diagram of the diversion bracket of the liquid guiding device shown from one perspective; Figure 7 for Figure 3 A schematic diagram of the diversion bracket of the liquid guiding device shown from another perspective; Figure 8 for Figure 3 The diagram shown is an exploded view of the drive mechanism. Figure 9 for Figure 1 The cross-sectional view of the casing shown.

[0018] 100. Liquid guiding device; 10. Support assembly; 11. Liquid inlet channel; 111. Inlet; 112. Outlet; 113. First channel; 114. Second channel; 12. Diversion channel; 121. First end; 122. Second end; 13. Liquid outlet; 14. Diversion component; 15. Liquid guide support; 151. First convex surface; 152. Receiving cavity; 153. Liquid guide column; 154. Bottom of support; 155. Cylinder body; 16. Diversion assembly; 161. Diversion support; 1611, Second concave surface; 1612, Fixing groove; 1613, Positioning groove; 1614, First connecting post; 1615, First connecting hole; 1616, Second connecting post; 1617, Second connecting hole; 1618, Third connecting post; 162, Flow-diverting soft adhesive; 1621, First concave surface; 1622, Channel; 1623, Second convex surface; 1624, Groove; 1625, Positioning post; 1626, Connecting hole; 1627, Notch; 20. Drive mechanism; 21. Liquid guiding hose; 22. Drive assembly; 221. Motor; 222. Gear assembly; 2221. First gear; 2222. Second gear; 2223. Third gear; 2224. Fourth gear; 2225. Fifth gear; 223. Rotating bracket; 224. Extrusion component; 23. Housing; 231. Top cover; 232. Middle cover; 233. Bottom cover; 234. Side cover; 30. Sealing components; 40. Circuit board; 200. Massager main unit; 201. Outer shell; 2011. Liquid storage chamber; 2012. Mounting chamber; 2013. Mounting port; 2014. Liquid inlet hole; 2015. Insertion post; 202. Cover; 203. Comb assembly; 2031. Massage head; 204. Light guide cover; 205. Light-emitting component. Detailed Implementation

[0019] The embodiments of this application are described in detail below. Examples of the embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain this application, and should not be construed as limiting this application.

[0020] In the description of this application, it should be understood that the terms "length", "width", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this application.

[0021] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this application, "multiple" means two or more, unless otherwise explicitly specified.

[0022] In this application, unless otherwise expressly specified and limited, the terms "installation," "connection," "linking," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this application according to the specific circumstances.

[0023] Combination Figure 1 and Figure 2 As shown in the figure, this application embodiment provides a liquid guiding device 100. The liquid guiding device 100 is provided with an inlet channel 11, a plurality of diversion channels 12 and a plurality of outlet holes 13. The inlet channel 11 has an outlet 112, and a diversion element 14 is provided at the outlet 112. The cross-sectional area of ​​the diversion element 14 gradually decreases from bottom to top. The plurality of diversion channels 12 are distributed around the diversion element 14. The diversion channels 12 have a first end 121 and a second end 122 arranged opposite to each other. The first ends 121 of the plurality of diversion channels 12 converge at the diversion element 14 and are all connected to the inlet channel 11. The second ends 122 of the plurality of diversion channels 12 are respectively connected to the plurality of outlet holes 13. The diversion channels 12 are inclined, and the height of the diversion channels 12 gradually decreases from the first end 121 to the second end 122. The liquid in the inlet channel 11 can flow into the diversion channel 12 through the outlet 112 and then flow out from the outlet holes 13.

[0024] It should be noted that when using the fluid delivery device 100 to deliver liquid, in order to deliver the liquid to an upward-facing surface on the body, such as the scalp, the orientation of the fluid delivery device 100 needs to be adjusted according to... Figure 2The vertical direction shown makes the liquid outlet 13 located below the diversion channel 12, so that the liquid outlet direction of the liquid outlet 13 is downward, that is, the liquid flows from top to bottom through the liquid outlet 13 and then flows onto the body. When the liquid guiding device 100 is in this posture, the cross-sectional area of ​​the diversion member 14 gradually decreases from bottom to top, and the height of the diversion channel 12 gradually decreases from the first end 121 to the second end 122. In addition, the "top" and "bottom" of each component in the following description are determined based on the liquid guiding device 100 being in this posture. That is, when the liquid guiding device 100 is in this posture, the highest part of a component is the "top" of the component, and the lowest part of a component is the "bottom" of the component.

[0025] In use, the liquid in the inlet channel 11 flows into the diversion channel 12 through the outlet 112 and then flows out through the outlet hole 13, realizing the liquid guiding function. When the liquid in the inlet channel 11 flows to the outlet 112 and contacts the diversion component 14, the diversion component 14, whose cross-sectional area gradually decreases from bottom to top, can make the liquid evenly diverted to all sides, thus flowing to the first end 121 of each diversion channel 12. Since the diversion channel 12 is located from the first end 121 to the second end 122 of the diversion channel 12, the diversion channel 12 has a lower cross-sectional area than the diversion channel 12. The height gradually decreases, meaning the diversion channel 12 extends obliquely downwards. Therefore, even if the liquid guiding device 100 is tilted to a certain extent, the liquid in each diversion channel 12 can flow smoothly from the first end 121 to the second end 122 under its own gravity and then flow out from the liquid outlet 13. This effectively avoids the situation where the liquid flow in some diversion channels 12 is obstructed, resulting in a large amount of liquid flowing out of some liquid outlets 13, while the liquid flow in other liquid outlets 13 is small or even no liquid flows out. This achieves uniform liquid discharge from multiple liquid outlets 13.

[0026] Specifically, Figure 2 The liquid guiding device 100 shown is in a horizontal state. At this time, the height of the first end 121 of each diversion channel 12 is the same, and the height of the second end 122 of each diversion channel 12 is the same. When the liquid guiding device 100 is tilted, the height of the first end 121 and the second end 122 will change. As long as the height of the second end 122 of the diversion channel 12 is still lower than the height of the first end 121 of the diversion channel 12, the liquid can flow smoothly from the first end 121 to the second end 122 under its own gravity and then flow out from the liquid outlet 13. This avoids the situation where the liquid in some diversion channels 12 is obstructed, resulting in less liquid or even no liquid flowing out of the liquid outlet 13 connected to the diversion channel 12, thereby achieving uniform liquid discharge from multiple liquid outlets 13.

[0027] The shape of the diverter 14 is not limited. Figure 2The diverter 14 shown is conical, enabling liquid to flow in various directions. In other embodiments, the diverter 14 can also be frustum-shaped, hemispherical, or pyramidal. When the diverter 14 is pyramidal, the number of its edges can be determined by the number of diverting channels 12. For example, if there are six diverting channels 12, the diverter 14 is a regular hexagonal prism with a hexagonal base, having six edges and six facets. Each facet corresponds to one of the first ends 121 of the six diverting channels 12, allowing the liquid to flow obliquely downwards along the six facets to the first ends 121 of the six diverting channels 12, thus achieving uniform diversion.

[0028] In some embodiments, combined with Figure 2 and Figure 4As shown, the liquid guiding device 100 includes a support assembly 10, which includes a liquid guiding support 15 and a diversion assembly 16. The liquid guiding support 15 has an upwardly oriented first convex surface 151. An outlet hole 13 is located on the liquid guiding support 15 and at the edge of the first convex surface 151. A diversion member 14 is located at the center of the first convex surface 151. The height of the first convex surface 151 gradually decreases in the direction away from the diversion member 14. The diversion assembly 16 has an inlet channel 11 and a downwardly oriented first concave surface 1621. The outlet 112 of the inlet channel 11 is located at the center of the first concave surface 1621. The shape of the first concave surface 1621 is adapted to the shape of the first convex surface 151. The first concave surface 1621 fits against the first convex surface 151. The first concave surface 1621 has a plurality of channels 1622. The plurality of channels 1622 are distributed at intervals around the diversion member 14. The first convex surface 151 and the channels 1622 enclose each other to form a diversion channel 12. By creating multiple channels 1622 on the first concave surface 1621 of the diversion assembly 16, the first concave surface 1621 is made to fit against the first convex surface 151 of the liquid guide bracket 15, thereby allowing the first convex surface 151 to form multiple diversion channels 12 by enclosing the multiple channels 1622 respectively. Since the heights of the first concave surface 1621 and the first convex surface 151, which are adapted in shape, gradually decrease in the direction away from the diversion member 14, it is possible to create inclined channels 1622 on the first concave surface 1621, and the inclined diversion channels 12 are formed by enclosing the channels 1622 and the first convex surface 151, satisfying the requirement that the height of the diversion channels 12 gradually decreases in the direction from the first end 121 to the second end 122. The first convex surface 151 and the first concave surface 1621 are fitted together at the location between two adjacent diversion channels 12 to form a seal, which can prevent liquid from flowing into the space between the two adjacent diversion channels 12. When the liquid guiding device 100 is in an inclined state, it can prevent liquid from flowing from one diversion channel 12 into the adjacent diversion channel 12 due to its own gravity. This effectively avoids the situation where some liquid outlets 13 have a large liquid output while others have a small liquid output or even no liquid output, thus achieving uniform liquid output from multiple liquid outlets 13.

[0029] Of course, in some other embodiments, the channel 1622 may not be formed on the first concave surface 1621, but on the first convex surface 151. In this case, the first concave surface 1621 and the channel 1622 together form a diversion channel 12. Alternatively, both the first concave surface 1621 and the first convex surface 151 may have channels 1622, and the channels 1622 of the first concave surface 1621 and the first convex surface 151 together form a diversion channel 12.

[0030] In some embodiments, the diverter 14 and the liquid guide support 15 are integrally formed. Integral forming ensures a secure connection between the diverter 14 and the liquid guide support 15, preventing movement of the diverter 14 relative to the liquid guide support 15 and thus ensuring uniform diversion. Of course, in other embodiments, the diverter 14 and the liquid guide support 15 can be manufactured separately and then assembled, allowing for the replacement of diverters 14 with different shapes and sizes.

[0031] In some embodiments, such as Figure 2 As shown, the top end of the diverter 14 extends into the inlet channel 11 from the outlet 112. Compared to having the diverter 14 completely below the outlet 112, by having the top end of the diverter 14 extend into the inlet channel 11 from the outlet 112, the liquid can be pre-diverted inside the inlet channel 11 before it flows out of the outlet 112, so as to ensure that the liquid can flow to each diverter channel 12 after it flows out of the outlet 112.

[0032] In some embodiments, such as Figure 2 As shown, the steepness of the diverter 14 is greater than that of the first convex surface 151, that is, the ratio of the height of the diverter 14 to its horizontal length is greater than that of the first convex surface 151. This makes it easier for the top of the diverter 14 to extend into the liquid inlet channel 11.

[0033] In some embodiments, such as Figure 2 As shown, the liquid guide support 15 has a receiving cavity 152, and the diversion component 16 is disposed within the receiving cavity 152. By providing a receiving cavity 152 in the liquid guide support 15 and placing the diversion component 16 within the receiving cavity 152, the diversion component 16 can be stored and protected.

[0034] In some embodiments, the top of the fluid guide bracket 15 is provided with an opening communicating with the receiving cavity 152, and the diversion assembly 16 can be inserted into the receiving cavity 152 through the opening.

[0035] In some embodiments, such as Figure 2 As shown, the bottom of the liquid guiding support 15 is provided with multiple liquid guiding columns 153, and the liquid guiding columns 153 are provided with liquid outlet holes 13.

[0036] In some embodiments, such as Figure 2 As shown, the liquid guiding support 15 includes a support bottom 154 and a cylindrical body 155. The bottom end of the cylindrical body 155 is connected to the support bottom 154. The cylindrical body 155 and the support bottom 154 enclose an installation cavity 2012. An opening is formed at the top end of the cylindrical body 155. A liquid guiding column 153 is disposed on the support bottom 154. The support bottom 154 has a first convex surface 151 and a diverter 14 on the side facing the installation cavity 2012.

[0037] In some embodiments, combined with Figure 2 , Figure 5 and Figure 6 As shown, the diversion assembly 16 includes a diversion bracket 161 and a diversion soft rubber 162. The diversion soft rubber 162 is connected to the diversion bracket 161. The liquid inlet channel 11 includes a first channel 113 disposed on the diversion bracket 161 and a second channel 114 disposed on the diversion soft rubber 162. The bottom of the diversion soft rubber 162 has a first concave surface 1621. One end of the second channel 114 communicates with the first channel 113, and the other end of the second channel 114 has an outlet 112. In use, the liquid in the first channel 113 can flow into the second channel 114, and after flowing out from the outlet 112 of the second channel 114, it flows into each diversion channel 12 under the action of the diversion component 14, and finally flows out from each liquid outlet 13. The diversion soft rubber 162 is made of soft rubber, which allows the first concave surface 1621 to elastically abut against the first convex surface 151, and also to elastically abut against the diversion bracket 161, thereby enhancing the sealing effect. Specifically, the diversion bracket 161 can be made of rigid materials, ensuring the stability and reliability of the connection between the diversion bracket 161 and the drive mechanism 20. This eliminates the need for additional rigid components to connect the diversion bracket 161 and the drive mechanism 20, simplifying the device structure and reducing manufacturing costs. The diversion bracket 161 can be made of rigid materials such as phenolic plastic, polyurethane plastic, epoxy plastic, unsaturated polyester plastic, or acrylic resin. The diversion bracket 161 and the drive mechanism 20 can be connected and fixed using screws, locating pins, etc. The diversion soft rubber 162 can be made of soft materials such as soft silicone, polyvinyl chloride, or thermoplastic elastomers. The diversion bracket 161 and the diversion soft rubber 162 can be integrated through a secondary injection molding process, or they can be manufactured separately and then assembled. The cross-sectional area of ​​the liquid inlet channel 11 can be greater than or equal to the sum of the cross-sectional areas of all the diversion channels 12, ensuring sufficient liquid in each diversion channel 12, thereby ensuring sufficient liquid outflow from each liquid outlet 13.

[0038] In some embodiments, the first concave surface 1621 of the diversion soft adhesive 162, the first convex surface 151 of the liquid guide bracket 15, and the hole wall of the liquid outlet 13 are all treated with oleophobic coating, such as vacuum coating, perfluoropolyether or nano silica spraying to form a thin film, which can effectively prevent liquid from adsorbing and remaining on the above surfaces during the flow process and causing local blockage.

[0039] In some embodiments, combined with Figure 2 and Figure 6 As shown, the diversion bracket 161 has a downwardly facing second concave surface 1611; combined with Figure 2 and Figure 5As shown, the top of the diversion soft gel 162 has a second convex surface 1623 facing upward. When the diversion soft gel 162 is in its natural state, the height of the second convex surface 1623 and the height of the first concave surface 1621 gradually decrease in the direction away from the liquid inlet channel 11. The shape of the second convex surface 1623 is adapted to the shape of the second concave surface 1611, and the shape of the first concave surface 1621 is adapted to the shape of the first convex surface 151. The diversion soft gel 162 is disposed between the diversion bracket 161 and the liquid guide bracket 15, and the second convex surface 1623 is in contact with the second concave surface 1611. Since the shape of the second convex surface 1623 matches the shape of the second concave surface 1611, and the shape of the first concave surface 1621 matches the shape of the first convex surface 151, when the diverting adhesive 162 is in its natural state, bending deformation of the diverting adhesive 162 can be avoided. This prevents the diverting channel 12 from being cut off due to bending deformation of the diverting adhesive 162, ensuring that the liquid can flow smoothly in each diverting channel 12. In the direction away from the liquid inlet channel 11, compared to the case where the height of the first concave surface 1621 gradually decreases while the height of the second convex surface 1623 remains unchanged, the heights of both the second convex surface 1623 and the first concave surface 1621 gradually decrease. This reduces the thickness of the diverting adhesive 162, saving the material used in its production. The second concave surface 1611 and the first convex surface 151 of the liquid guide bracket 15 can respectively limit the flow-diverting soft rubber 162 from the upper and lower sides, thereby fixing the flow-diverting soft rubber 162. The shape of the second concave surface 1611 of the flow-diverting bracket 161 matches the shape of the second convex surface 1623 of the flow-diverting soft rubber 162, so that the second concave surface 1611 and the second convex surface 1623 can fit tightly to form a seal, preventing the liquid flowing out of the first channel 113 of the flow-diverting bracket 161 from flowing into the gap between the second concave surface 1611 and the second convex surface 1623 and causing waste, and ensuring that the liquid flows out of the first channel 113 and fully flows into the liquid inlet channel 11 of the flow-diverting soft rubber 162.

[0040] In some embodiments, such as Figure 6 As shown, the bottom of the diversion bracket 161 is provided with a fixing groove 1612, and the bottom of the fixing groove 1612 has a second concave surface 1611. The shape of the fixing groove 1612 is adapted to the shape of the diversion soft rubber 162. By opening the fixing groove 1612 at the bottom of the diversion bracket 161 and placing the diversion soft rubber 162 in the fixing groove 1612, the diversion soft rubber 162 can be positioned, preventing the diversion soft rubber 162 from moving and affecting the diversion effect.

[0041] In some embodiments, the first channel 113 and the second channel 114 are spaced apart; such as Figure 5As shown, the top surface of the diverting soft rubber 162 has a groove 1624, and the bottom surface of the diverting bracket 161 and the groove 1624 enclose each other to form a connecting channel. The two ends of the connecting channel are respectively connected to the first channel 113 and the second channel 114. Specifically, by setting the first channel 113 and the second channel 114 alternately, space is freed up above the center of the diverting bracket 161, making it easier to install the drive mechanism 20 on the top surface of the diverting bracket 161. By opening the groove 1624 on the top surface of the diverting soft rubber 162, the groove 1624 and the bottom surface of the diverting bracket 161 enclose each other to form a connecting channel. The two ends of the connecting channel are respectively connected to the first channel 113 and the second channel 114, so that the liquid can pass through the first channel 113, the connecting channel and the second channel 114 in sequence, and then flow to each diverting channel 12. Specifically, the groove 1624 is provided on the second convex surface 1623 of the diversion soft rubber 162, and the groove 1624 and the second concave surface 1611 of the diversion bracket 161 form a connecting channel.

[0042] Of course, in some other embodiments, the groove 1624 may not be formed on the top surface of the diversion soft adhesive 162, but on the bottom surface of the diversion bracket 161. In this case, the groove 1624 and the top surface of the diversion soft adhesive 162 cooperate to form a connecting channel. Alternatively, the top surface of the diversion soft adhesive 162 and the bottom surface of the diversion bracket 161 may both have grooves 1624, and the grooves 1624 of the diversion soft adhesive 162 and the grooves 1624 of the diversion bracket 161 together form a connecting channel.

[0043] In some embodiments, such as Figure 6 As shown, the bottom surface of the diversion bracket 161 is provided with a positioning groove 1613, and one end of the first channel 113 near the second channel 114 is opened at the bottom of the positioning groove 1613, as shown. Figure 5 As shown, a positioning post 1625 is provided on the top surface of the diversion soft gel 162. The shape of the positioning post 1625 is adapted to the shape of the positioning groove 1613, and the positioning post 1625 is inserted into the positioning groove 1613. The positioning post 1625 has a connecting hole 1626 extending axially, and a notch 1627 communicating with the connecting hole 1626 is provided on the peripheral side of the positioning post 1625. The end of the groove 1624 away from the liquid inlet channel 11 communicates with the notch 1627. By setting the positioning groove 1613 on the bottom surface of the diversion bracket 161 and setting the positioning post 1625 on the top surface of the diversion soft gel 162, the positioning post 1625 is inserted into the positioning groove 1613, and the positioning of the diversion bracket 161 and the diversion soft gel 162 can be achieved. The liquid can pass through the first channel 113, the connecting hole 1626, the notch 1627, the groove 1624 and the second channel 114 in sequence, and then flow to each diversion channel 12.

[0044] In one embodiment, such as Figure 2As shown, the liquid guiding device 100 also includes a sealing element 30, which is disposed between the outer periphery of the diversion bracket 161 and the cylindrical body 155 of the liquid guiding bracket 15. By providing the sealing element 30 between the outer periphery of the diversion bracket 161 and the cylindrical body 155 of the liquid guiding bracket 15, a sealing effect can be achieved, preventing external liquid from flowing into the receiving cavity 152 from the outlet hole 13 and then flowing through the gap between the diversion bracket 161 and the cylindrical body 155 to the top of the diversion bracket 161 and contacting the drive mechanism 20, thereby ensuring the normal operation of the drive mechanism 20. Specifically, the sealing element 30 can be a sealing ring, and the outer periphery of the diversion bracket 161 is provided with a groove for installing the sealing ring. The sealing element 30 can also be integrated with the diversion bracket 161 or the liquid guiding bracket 15 through a secondary injection molding process.

[0045] Combination Figure 1 and Figure 9 As shown, this application embodiment also provides a massager, including a massager main unit 200 and a liquid guiding device 100 of any of the above embodiments. The massager main unit 200 is provided with a massage head 2031 for massage, and the liquid guiding device 100 is provided on the massager main unit 200.

[0046] When in use, you can massage your body parts with the massage head 2031 on the main unit of the massage machine, and you can also use the liquid guiding device 100 to guide liquids such as essential oils, liniment or skin lotion to your body parts through the liquid outlet 13. During the liquid guiding process, when the liquid in the liquid guiding channel 11 flows to the outlet 112 and comes into contact with the diverter 14, the diverter 14 can evenly distribute the liquid to the surrounding area, so that it flows to the first end 121 of each diverter channel 12. Since the height of the diverter channel 12 gradually decreases from the first end 121 to the second end 122 of the diverter channel 12, that is, the diverter channel 12 extends obliquely downward, even if the massager main unit 200 and the liquid guiding device 100 are tilted to a certain extent, the liquid in each diverter channel 12 can flow smoothly from the first end 121 to the second end 122 under its own gravity and then flow out from the liquid outlet 13. This effectively avoids the situation where the liquid flow in some diverter channels 12 is blocked, resulting in a large amount of liquid flowing out of some liquid outlets 13, while the liquid flow in other liquid outlets 13 is small or even no liquid flows out, thus achieving uniform liquid discharge from multiple liquid outlets 13.

[0047] Furthermore, such as Figure 9As shown, the massager main unit 200 includes a housing 201, an installation cavity 2012 inside the housing 201, an installation port 2013 communicating with the installation cavity 2012 at the bottom of the housing 201, and a liquid inlet 2014 at the top of the housing 201. The liquid guiding device 100 is inserted into the installation cavity 2012 through the installation port 2013 and is fixedly connected to the side of the top of the housing 201 facing the installation cavity 2012. The liquid inlet channel 11 is also provided with an inlet 111, which communicates with the liquid inlet 2014. Compared to opening a longitudinally extending mounting hole in the outer casing 201 and placing the liquid guiding device 100 inside the mounting hole, this embodiment opens a mounting port 2013 at the bottom of the outer casing 201. The liquid guiding device 100 is inserted into the mounting cavity 2012 of the outer casing 201 through the mounting port 2013 and fixed to the top side of the outer casing 201 facing the mounting cavity 2012. This makes the lateral dimension of the liquid guiding device 100 unaffected by the diameter of the mounting hole, thereby increasing the lateral dimension of the liquid guiding device 100. In use, liquid can be added to the liquid inlet 2014. The liquid flows into the liquid inlet channel 11 from the inlet 111, flows through the liquid inlet channel 11 and the diversion channel 12 in sequence, and then flows out from the liquid outlet 13.

[0048] Furthermore, the liquid guiding device 100 is provided with a first optical aperture, and the top of the outer casing 201 is provided with a first threaded hole. The massager also includes a first threaded fastener, which passes through the first optical aperture and is threadedly connected to the first threaded hole, thereby fixing the liquid guiding device 100 to the outer casing 201. Specifically, the first optical aperture is located in the liquid guiding support 15 of the liquid guiding device 100. Of course, in some other embodiments, the positions of the first optical aperture and the first threaded hole can be interchanged, that is, the first optical aperture is located in the outer casing 201, and the first threaded hole is located in the liquid guiding device 100.

[0049] Furthermore, the top of the outer casing 201 is partially recessed inward to form a liquid storage cavity 2011. A liquid inlet 2014 is located between the liquid storage cavity 2011 and the inlet 111 of the liquid inlet channel 11, with the inlet 111 communicating with the liquid storage cavity 2011 through the liquid inlet 2014. The liquid storage cavity 2011 can store a certain amount of liquid, thereby continuously replenishing the liquid into the liquid inlet 2014. Of course, in some other embodiments, the liquid storage cavity 2011 can be omitted, and liquid can be manually added to the liquid inlet 2014.

[0050] Furthermore, combined Figure 3 and Figure 8As shown, the liquid guiding device 100 also includes a driving mechanism 20, which includes a liquid guiding hose 21 and a driving assembly 22. The two ends of the liquid guiding hose 21 are connected to the liquid inlet 2014 and the inlet 111 of the liquid inlet channel 11, respectively. The driving assembly 22 is disposed on the support assembly 10, specifically on the top of the diversion support 161 of the support assembly 10. The driving assembly 22 is used to squeeze the liquid guiding hose 21, thereby causing the liquid in the storage chamber 2011 to flow sequentially through the liquid guiding hose 21, the liquid inlet channel 11, and the diversion channel 12, and then flow out from the outlet 13. In some other embodiments, the driving mechanism 20 may include a driver and a piston. The piston is disposed in the storage chamber 2011, and the power output end of the driver is connected to the piston and used to drive the piston to move within the storage chamber 2011, thereby pressurizing the liquid in the storage chamber 2011 into the liquid inlet channel 11.

[0051] Furthermore, such as Figure 8 As shown, the drive assembly 22 includes a motor 221, a gear assembly 222, a rotating bracket 223, and an extruder 224. The extruder 224 is mounted on the rotating bracket 223, which is connected to the gear assembly 222. The power output end of the motor 221 is connected to the gear assembly 222 and is used to drive the gear assembly 222 to rotate. The gear assembly 222 drives the rotating bracket 223 to rotate, thereby causing the extruder 224 to periodically extrude the fluid guiding hose 21. There can be one or more extruders 224, which can be evenly spaced along the circumference of the rotating bracket 223. Specifically, the extruder 224 can be a roller, rotatably mounted on the rotating bracket 223.

[0052] Furthermore, such as Figure 8As shown, the motor 221 is arranged horizontally, that is, the length direction of the motor 221 is horizontal. The gear assembly 222 includes a first gear 2221, a second gear 2222, and a transmission gear set. The first gear 2221 is connected to the power output end of the motor 221. The second gear 2222 is a face gear and meshes with the first gear 2221. The axis of the second gear 2222 is perpendicular to the axis of the first gear 2221. The second gear 2222 is connected to the rotating bracket 223 through the transmission gear set. The motor 221 drives the first gear 2221 to rotate, the first gear 2221 drives the second gear 2222 to rotate, and the second gear 2222 then drives the rotating bracket 223 to rotate through the transmission gear set. Specifically, the transmission gear set includes a third gear 2223, a fourth gear 2224, and a fifth gear 2225. The third gear 2223 is fixedly connected to the second gear 2222, and the axis of the third gear 2223 coincides with the axis of the second gear 2222. The fourth gear 2224 meshes with the third gear 2223, and the fifth gear 2225 meshes with the fourth gear 2224. A gear shaft is fixedly mounted on the fifth gear 2225, and a rotating bracket 223 is fixedly sleeved on the gear shaft. The motor 221 drives the first gear 2221 to rotate, the first gear 2221 drives the second gear 2222 to rotate, the second gear 2222 drives the third gear 2223 to rotate, the third gear 2223 drives the fourth gear 2224 to rotate, the fourth gear 2224 drives the fifth gear 2225 to rotate, and the fifth gear 2225 then drives the rotating bracket 223 to rotate via the gear shaft.

[0053] Furthermore, combined Figure 3 and Figure 8 As shown, the drive mechanism 20 also includes a housing 23, which has a receiving cavity. The motor 221, gear assembly 222, rotating bracket 223, and extrusion member 224 are all disposed within the receiving cavity. A hose partially extends into the receiving cavity and engages with the extrusion member 224. Specifically, the housing 23 can be fixed to the diverter bracket 161 with screws. The housing 23 includes an upper cover 231, a middle cover 232, a lower cover 233, and a side cover 234. The top of the upper cover 231 is connected to the middle cover 232, the bottom of the lower cover 233 is connected to the bottom of the middle cover 232, and the side cover 234 is connected to the upper cover 231 and the middle cover 232. The upper cover 231, the middle cover 232, the lower cover 233, and the side cover 234 enclose the receiving cavity. The side cover 234 has an assembly hole, and a gear shaft is fixedly disposed on the first gear 2221. The gear shaft is clearance-fitted with the assembly hole.

[0054] Furthermore, such as Figure 3As shown, the liquid guiding device 100 also includes a circuit board 40, which is disposed on the liquid guiding support 15 and electrically connected to the motor 221. The circuit board 40 can control the operation of the motor 221. Specifically, the circuit board 40 is fixed to the top of the cylindrical body 155 of the liquid guiding support 15 by screws. The circuit board 40 is annular and arranged around the opening at the top of the cylindrical body 155, so that the drive mechanism 20 can pass through the circuit board 40 and the opening and be installed into the mounting cavity 2012 of the liquid guiding support 15.

[0055] As mentioned above, in this embodiment, by opening a mounting port 2013 at the bottom of the outer casing 201, the liquid guiding device 100 is inserted into the mounting cavity 2012 of the outer casing 201 through the mounting port 2013 and fixed to the top side of the outer casing 201 facing the mounting cavity 2012. This makes the lateral dimension of the liquid guiding device 100 unaffected by the diameter of the mounting hole, thereby increasing the lateral dimension of the liquid guiding device 100. Increasing the lateral dimension of the liquid guiding device 100 can bring at least the following beneficial effects: First, it can accommodate the lateral arrangement of the motor 221, compared to the longitudinal arrangement. The transverse arrangement of the motor 221 can save the longitudinal space of the mounting cavity 2012, which is conducive to reducing the thickness of the housing 201. Secondly, a larger size motor 221 and gear assembly 222 can be selected. A larger size motor 221 means that it can output stronger power. A larger size gear assembly 222 means that the size difference between the two meshing gears in the gear assembly 222 can be large enough to achieve speed change, thereby increasing the output power. Since the output power is increased, the speed of the motor 221 can be appropriately reduced, thereby reducing the operating noise.

[0056] Furthermore, such as Figure 9 As shown, the top of the outer casing 201 is provided with a plug-in post 2015, and the plug-in post 2015 is provided with a liquid inlet hole 2014, as shown. Figure 7As shown, the top of the diversion bracket 161 is provided with a first connecting post 1614, and the first connecting post 1614 is provided with a first connecting hole 1615. The insertion post 2015 is inserted into the first connecting post 1614 so that the liquid inlet 2014 communicates with the first connecting hole 1615. The outer periphery of the first connecting post 1614 is connected with a second connecting post 1616, and the second connecting hole 1617 is provided in the second connecting hole 1617, which communicates with the first connecting hole 1615. The top of the diversion bracket 161 is also provided with a third connecting post 1618, and the third connecting post 1618 is provided with a first channel 113. The two ends of the liquid guiding hose 21 are respectively sleeved on the second connecting post 1616 and the third connecting post 1618. The end of the first channel 113 near the liquid guiding hose 21 has an inlet 111. The liquid in the storage chamber 2011 flows sequentially through the inlet hole 2014, the first connection hole 1615, the second connection hole 1617, the liquid guiding hose 21, the first channel 113, and the second channel 114, and then flows to each of the branch channels 12. A sealing ring can be provided between the plug post 2015 and the wall of the first connection hole 1615 to prevent liquid from flowing out of the plug post 2015.

[0057] Furthermore, such as Figure 9 As shown, the outer casing 201 has a filling port connected to the liquid storage chamber 2011. The massager main unit also includes a cover 202, which is detachably connected to the outer casing 201 to close the filling port. When it is necessary to add liquid to the liquid storage chamber 2011, the cover 202 is removed, and then liquid can be added to the liquid storage chamber 2011 through the filling port. Of course, in some other embodiments, the cover 202 can be rotatably connected to the outer casing 201, and the cover 202 can be rotated relative to the outer casing 201 to open or close the filling port.

[0058] Furthermore, in this embodiment, the massager is a massage comb, such as... Figure 1As shown, the massager main unit 200 also includes a comb assembly 203, which is disposed in the mounting port 2013 of the housing 201. The comb assembly 203 includes a massage head 2031, which is a comb and can be used to massage the scalp. The massager main unit may include a driver disposed in the housing 201. The driver is connected to the comb teeth to drive the comb teeth to swing. The cooperation between the driver and the comb teeth can adopt existing technical solutions. The following is a brief introduction to only one of them: The comb tooth assembly 203 also includes a transmission component and a mounting bracket. The transmission component is disposed on the mounting bracket. The power output end of the driver is connected to the transmission component and is used to drive the transmission component to rotate around the first axis. The transmission component has a wave-shaped track groove. The track groove is arranged around the first axis. The comb teeth are rotatably connected to the mounting bracket. The comb teeth can rotate relative to the mounting bracket around the second axis. The top of the comb teeth extends into the track groove. The bottom of the comb teeth is used to massage the scalp. When the driver drives the transmission component to rotate around the first axis, the transmission component can drive the comb teeth to swing around the second axis, so that the bottom of the comb teeth moves alternately towards and away from the first axis to simulate the action of finger grasping. Of course, in other embodiments, the massage head 2031 can be other shapes, such as spherical, ellipsoidal, cylindrical, irregular shapes, etc. The movement mode of the massage head 2031 is not specifically limited, and can be one or more combinations of swinging, vibration, 360° rotation, and linear movement.

[0059] Furthermore, the massager main unit 200 also includes a light guide cover 204 and a light-emitting element 205. The light guide cover 204 is at least partially inserted into the mounting cavity 2012 through the mounting port 2013 and is fixedly connected to the top side of the outer shell 201 facing the mounting cavity 2012. The liquid guiding device 100 and the light-emitting element 205 are both disposed inside the light guide cover 204. The light guide cover 204 can guide the light emitted by the light-emitting element 205 to the outside. The comb assembly 203 is partially inserted into the mounting cavity 2012 through the mounting port 2013 and is fixedly connected to the top side of the outer shell 201 facing the mounting cavity 2012. The comb assembly 203 is disposed around the light guide cover 204. Specifically, the light-emitting element 205 is installed at the bottom of the liquid-guiding bracket 15 of the liquid-guiding device 100. During assembly, the light-emitting element 205 is first installed at the bottom of the liquid-guiding bracket 15 of the liquid-guiding device 100. Then, the liquid-guiding device 100 and the light-emitting element 205 are inserted together into the mounting cavity 2012 through the mounting port 2013, and the liquid-guiding device 100 is fixed to the top side of the outer shell 201 facing the mounting cavity 2012. Next, the light guide cover 204 is partially inserted through the mounting port 2013. Inside the mounting cavity 2012, the light guide cover 204 covers the liquid guiding device 100 and is also fixed to the top side of the outer shell 201 facing the mounting cavity 2012. Finally, the comb assembly 203 is partially inserted into the mounting cavity 2012 through the mounting port 2013, so that the comb assembly 203 is fitted onto the light guide cover 204 and is also fixed to the top side of the outer shell 201 facing the mounting cavity 2012. This completes the assembly process, which is simple and quick.

[0060] Furthermore, the top of the outer casing 201 is provided with a second optical hole, the comb assembly 203 is provided with a second threaded hole, and the massager also includes a second threaded fastener. The second threaded fastener passes through the second optical hole and is threadedly connected to the second threaded hole, thereby fixing the comb assembly 203 to the outer casing 201. Specifically, the second threaded hole is provided in the mounting bracket of the comb assembly 203. Of course, in some other embodiments, the positions of the second optical hole and the second threaded hole can be interchanged, that is, the second optical hole is provided in the comb assembly 203, and the second threaded hole is provided in the outer casing 201.

[0061] Furthermore, the light guide cover 204 is provided with a third light hole, and the top of the outer shell 201 is provided with a third threaded hole. The massager also includes a third threaded fastener, which passes through the third light hole and is threadedly connected to the third threaded hole, thereby fixing the light guide cover 204 to the outer shell 201. Of course, in some other embodiments, the positions of the third light hole and the third threaded hole can be interchanged, that is, the third light hole is provided in the outer shell 201, and the third threaded hole is provided in the light guide cover 204.

[0062] It should be noted that the above are merely preferred embodiments of this application and are not intended to limit this application. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of this application should be included within the scope of protection of this application.

Claims

1. A liquid guiding device, characterized in that, The liquid guiding device is provided with an inlet channel, multiple diversion channels, and multiple outlet holes. The inlet channel has an outlet, and a diversion element is provided at the outlet. The cross-sectional area of ​​the diversion element gradually decreases from bottom to top. Multiple diversion channels are distributed around the diversion element. Each diversion channel has a first end and a second end that are arranged opposite to each other. The first ends of the multiple diversion channels converge at the diversion element and are all connected to the outlet. The second ends of the multiple diversion channels are respectively connected to the multiple outlet holes. The diversion channels are inclined, and the height of the diversion channels gradually decreases from the first end to the second end. Liquid in the inlet channel can flow into the diversion channel through the outlet and then flow out from the outlet hole.

2. The liquid guiding device according to claim 1, characterized in that: The liquid guiding device includes a support assembly, which includes a liquid guiding support and a diversion assembly. The liquid guiding support has an upwardly oriented first convex surface. The liquid outlet is located on the liquid guiding support and at the edge of the first convex surface. The diversion component is located at the center of the first convex surface. The height of the first convex surface gradually decreases in the direction away from the diversion component. The diversion assembly has the liquid inlet channel and a downwardly oriented first concave surface. The outlet is located at the center of the first concave surface. The shape of the first concave surface is adapted to the shape of the first convex surface, and the first concave surface fits against the first convex surface. One of the first concave surface and the first convex surface has multiple channels. The multiple channels are distributed at intervals around the diversion component. The other of the first concave surface and the first convex surface surrounds the channels to form the diversion channel.

3. The liquid guiding device according to claim 2, characterized in that: The top of the diverter extends from the outlet into the inlet channel.

4. The liquid guiding device according to claim 2, characterized in that: The diversion assembly includes a diversion bracket and a diversion soft gel. The diversion soft gel is connected to the diversion bracket. The liquid inlet channel includes a first channel provided on the diversion bracket and a second channel provided on the diversion soft gel. The bottom of the diversion soft gel has a first concave surface. One end of the second channel is connected to the first channel, and the other end of the second channel has the outlet.

5. The liquid guiding device according to claim 4, characterized in that: The first channel and the second channel are spaced apart; one of the bottom surface of the diversion bracket and the top surface of the diversion soft rubber is provided with a groove, and the other of the bottom surface of the diversion bracket and the top surface of the diversion soft rubber and the groove form a connecting channel, and the two ends of the connecting channel are respectively connected to the first channel and the second channel.

6. A massager, characterized in that, The device includes a massager main unit and a fluid guiding device as described in any one of claims 1-5, wherein the massager main unit has a massage head for massage and the fluid guiding device is disposed on the massager main unit.

7. The massager according to claim 6, characterized in that: The massager main unit includes a housing with an installation cavity inside. The bottom of the housing has an installation port communicating with the installation cavity, and the top of the housing has a liquid inlet. The liquid guiding device is inserted into the installation cavity through the installation port and fixedly connected to the top side of the housing facing the installation cavity. The liquid inlet channel also has an inlet that communicates with the liquid inlet.

8. The massager according to claim 7, characterized in that: The top of the outer shell is partially recessed inward to form a liquid storage cavity. The liquid inlet is located between the liquid storage cavity and the inlet, and the inlet communicates with the liquid storage cavity through the liquid inlet.

9. The massager according to claim 8, characterized in that: The liquid guiding device further includes a driving mechanism, which includes a liquid guiding hose and a driving assembly. The two ends of the liquid guiding hose are respectively connected to the liquid inlet and the inlet. The driving assembly is used to squeeze the liquid guiding hose so that the liquid in the storage chamber flows through the liquid guiding hose, the liquid inlet channel and the diversion channel in sequence and then flows out from the liquid outlet.

10. The massager according to claim 7, characterized in that: The massager main unit also includes a comb assembly, a light guide cover, and a light-emitting element. The light guide cover is at least partially inserted into the mounting cavity through the mounting port and fixedly connected to the top side of the outer shell facing the mounting cavity. The liquid guiding device and the light-emitting element are both located inside the light guide cover. The comb assembly is partially inserted into the mounting cavity through the mounting port and fixedly connected to the top side of the outer shell facing the mounting cavity. The comb assembly is arranged around the light guide cover and has the massage head, which is a comb tooth.