Foot bath device with detachable massage assembly
By introducing a positioning plate and receiving groove into the foot bath, the massage components are made detachable, solving the problem of difficult cleaning of existing foot bath massage components. This enables all-round cleaning and ensures the safety of electrical components, thereby improving the service life and user experience of the device.
Patent Information
- Application Number
- CN202423157551.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-19
- Publication Date
- 2025-11-14
- Estimated Expiration
- 2034-12-19
AI Technical Summary
The massage components of existing foot baths are difficult to disassemble for cleaning, and there is a risk that electrical components may come into contact with water, causing damage to the massage components.
A foot bath device with a detachable massage component was designed. By setting a positioning plate and a receiving groove on the base, the massage component can be detachably connected. During cleaning, the massage component is removed from the receiving groove and reset after cleaning, thus avoiding contact between electrical components and water.
It achieves a thorough cleaning of the massage components, preventing damage to electrical parts and improving the user experience and device lifespan.
Smart Images

Figure CN223541835U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of health care, specifically to a foot bath device with detachable massage components. Background Technology
[0002] Existing foot baths equipped with massage components typically have these components fixed in place, making them difficult to disassemble for cleaning. Furthermore, foot baths often contain electrical components, which must be kept away from water during cleaning, thus necessitating the removal and cleaning of the massage components. Utility Model Content
[0003] The technical problem to be solved and the technical task proposed by this utility model is to overcome the defect that the massage components of existing foot baths are difficult to disassemble for cleaning, and to provide a foot bath with detachable massage components, so that the massage components can be removed for cleaning after using the foot bath, thus avoiding damage to the massager due to contact between electrical components and water.
[0004] To achieve the above objectives, the present invention provides a foot bath with a detachable massage component, comprising a base, a massage component, and an upper shell. The base includes a lower shell, a partition plate, and a steam pressurization component. The partition plate is mounted on the lower shell and forms a lower space below it. The steam pressurization component is located in the lower space and has a delivery pipe. The upper shell is detachably mounted on the base and forms a foot bath cavity below it. The base also includes a positioning plate disposed above the partition plate. The positioning plate has a receiving groove on its upper side, the outline of which matches the outer outline of the massage component. The massage component is placed in the receiving groove. The massage component has an input interface, which is detachably connected to the delivery pipe.
[0005] Therefore, after using the foot bath, remove the upper housing from the base to expose the massage component, which can then be removed from the receiving slot of the positioning plate for thorough cleaning. After cleaning, guided by the receiving slot, the massage component can be repositioned for normal foot bath use.
[0006] Since the massage components are cleaned separately from the base, contact between electrical components and water can be completely avoided, allowing the massage components to be fully immersed in water for thorough cleaning.
[0007] Preferably, the bottom of the massage component has a raised rib, and the positioning plate has a positioning through hole corresponding to the raised rib. When the massage component is placed in the receiving groove, the raised rib is located in the positioning through hole. The matching of the raised rib and the positioning through hole also has a guiding function, which facilitates the placement of the massage component in place and its removal from the receiving groove.
[0008] Preferably, the massage component includes a vapor dispersion plate with vapor dispersion channels distributed on it. These channels protrude from the lower surface of the vapor dispersion plate as ribs. Accordingly, the vapor dispersion channels serve both to distribute vapor and to guide the massage component into and out of the receiving slot.
[0009] Preferably, the water vapor dispersion channel includes a first dispersion channel, a second dispersion channel, and a connecting channel. The first and second dispersion channels are symmetrical, and the connecting channel is located between and connects the first and second dispersion channels. The input interface is located in the middle of the connecting channel. Therefore, water vapor can be evenly delivered to each massage component through the input interface. Furthermore, the input interface is exposed below the positioning plate through a positioning through-hole, allowing it to avoid obstruction by the positioning plate when connected to the delivery pipe.
[0010] Preferably, the massage component includes:
[0011] The mounting plate that forms the bottom surface of the foot bath cavity is located above the water vapor dispersion plate, and there is an installation space between it and the water vapor dispersion plate. The installation space is isolated from the water vapor dispersion channel.
[0012] Multiple rotating massage nozzles protruding from the foot bath cavity are rotatably distributed on the upper side of the mounting plate and each is connected to a water vapor dispersion channel.
[0013] Multiple driven gears, located in the mounting space and individually configured with the rotating massage head, are used to drive the rotating massage head to rotate.
[0014] A drive gear, located in the mounting space and used to drive the plurality of driven gears to rotate;
[0015] The base portion includes a mechanical power assembly located in the lower space and having an upwardly extending drive shaft, which is detachably driven connected to the drive gear.
[0016] This massage component uses drive gears and driven gears to rotate multiple rotating massage nozzles to massage the feet. Furthermore, the gear transmission ensures that each rotating massage nozzle moves synchronously, providing comprehensive massage stimulation and enhancing the foot bath experience. During the foot massage, water vapor from the vapor dispersion channel is delivered and sprayed onto each nozzle, changing its spray direction as the nozzle rotates, further enhancing the foot bath experience.
[0017] Preferably, the partition plate and the positioning plate are provided with corresponding shaft holes, and the drive shaft extends upward through the shaft holes. When the drive shaft is connected to the drive gear, it can avoid the obstruction of the partition plate and the positioning plate. As the massage component is placed in position, the connection between the drive shaft and the drive gear is naturally achieved.
[0018] Preferably, the base portion includes a heating atomization assembly, which includes a heating atomization water tank, a first heating element, and an ultrasonic atomizer. The first heating element and the ultrasonic atomizer are disposed at the bottom of the heating atomization water tank, and a diffusion chamber is maintained above the heating atomization water tank. Accordingly, the water stored in the heating atomization water tank can be heated and atomized, and the diffusion chamber provides space for heating atomization.
[0019] Preferably, a cover is provided above the heating and atomizing water tank, and the diffusion chamber is located between the cover and the heating and atomizing water tank. The diffusion chamber is defined accordingly.
[0020] Preferably, the cover protrudes from the foot bath cavity, the heated atomizing water tank is assembled on the lower side of the partition plate, and the partition plate and the positioning plate are provided with openings corresponding to the heated atomizing water tank. The openings connect the heated atomizing water tank and the diffusion cavity, so as to promote efficient heating and atomization.
[0021] Preferably, the sidewall of the diffusion chamber has an intake port and a water vapor channel. This allows water vapor in the foot bath chamber to flow back into the diffusion chamber and also allows water vapor in the diffusion chamber to escape into the foot bath chamber.
[0022] This invention features a positioning plate located above the dividing plate on the base. The positioning plate has a receiving groove on its upper side, the outline of which matches the shape of the massage component. The massage component is placed in the receiving groove and has an input interface detachably connected to the delivery pipe. After using the foot bath, the upper shell is removed from the base, exposing the massage component, which can then be taken out of the receiving groove on the positioning plate for thorough cleaning. Furthermore, after cleaning, the massage component can be repositioned in the receiving groove for normal foot bath use. Because the cleaning of the massage component is separate from the base, contact between electrical components and water is completely avoided, allowing the massage component to be fully immersed in water for a thorough cleaning. Attached Figure Description
[0023] Figure 1 This is an exploded view of the foot bath device of this utility model;
[0024] Figure 2 This is a schematic diagram showing the cooperation relationship between the massage component and the positioning plate of this utility model;
[0025] Figure 3 for Figure 2 A schematic diagram of the structure shown from another perspective;
[0026] Figure 4 This is an exploded view of the structure of the massage component of this utility model;
[0027] Figure 5 This is an exploded view of the structure of the water vapor pressurization component of this utility model;
[0028] Figure 6 This is an exploded view of the structure of the heating atomizing component and the separator plate of this utility model;
[0029] Explanation of the labels in the diagram:
[0030] 100 base part:
[0031] 110 lower casing,
[0032] 120-divider plate,
[0033] 130 Water vapor pressurization assembly, 131 Pressurization pump, 132 Delivery pipe, 133 First check valve, 134 Storage tank, 135 Control valve, 136 Second heating element, 137 Second check valve, 138 Fan, 139 Inlet pipe.
[0034] 140 Positioning plate, 141 Receiving groove, 142 Positioning through hole,
[0035] 150 Mechanical power assembly, 151 Drive shaft, 152 Shaft bore.
[0036] 161 Heating atomizing water tank, 162 First heating device, 163 Ultrasonic atomizer, 164 Cover, 165 Water vapor channel, 166 Opening, 167 Suction port;
[0037] 200 massage components:
[0038] 210 Water vapor dispersion plate, 211 First dispersion channel, 212 Second dispersion channel, 213 Connecting channel, 214 Input interface, 215 Rib.
[0039] 220 installation disk,
[0040] 230° rotating massage nozzle,
[0041] 240 driven gear,
[0042] 250 drive gears;
[0043] 300 upper casing.
[0044] 400 water bottles. Detailed Implementation
[0045] To make the objectives, technical solutions, and advantages of this utility model clearer, the technical solutions of the embodiments of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this utility model, not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of this utility model.
[0046] The terms “comprising” and “having”, and any variations thereof, in the specification and claims of this utility model are intended to cover non-exclusive inclusion, such as a method or product that includes a series of technical features, not limited to those technical features explicitly listed, but also including other technical features that may be included in the method or product but not explicitly listed.
[0047] In the description of this utility model, it should be understood that the technical features defined by terms such as "first" and "second" which have a sequential concept are only for the purpose of clearly describing the defined technical features and making the defined technical features clearly distinguishable from other technical features, and do not represent that they are named in this way in actual implementation. Therefore, they should not be construed as limitations on this utility model.
[0048] The present invention will now be described in detail with reference to specific embodiments and accompanying drawings.
[0049] Figure 1 A foot bath device is shown, which includes a base portion 100, a massage component 200, and an upper housing 300.
[0050] The base portion 100 includes a lower housing 110, a partition plate 120, and a steam pressurization assembly 130. The partition plate 120 is mounted on the lower housing 110 and forms a lower space below it. The steam pressurization assembly 130 is located in the lower space and has a delivery pipe 132. The upper housing 300 is detachably mounted on the base portion 100 and forms a foot bath cavity below it. Specifically, the foot bath cavity is defined between the upper housing 300 and the massage assembly 200. The base portion 100 also includes a positioning plate 140 disposed above the partition plate 120. The positioning plate 140 has a receiving groove 141 on its upper side. The outline of the receiving groove 141 matches the outline of the massage assembly 200, and the massage assembly 200 is placed in the receiving groove 141. The massage assembly 200 has an input interface 214, which is detachably connected to the delivery pipe 132. After using the foot bath, remove the upper housing 300 from the base 100 to expose the massage component 200. The massage component 200 can then be removed from the receiving slot 141 of the positioning plate 140 for thorough cleaning. After cleaning, guided by the receiving slot 141, the massage component 200 can be returned to its original position for normal foot bath use. Because the cleaning of the massage component is separate from that of the base, contact between electrical components and water can be completely avoided, allowing the massage component to be fully immersed in water for a thorough cleaning.
[0051] The upper housing 300 has an opening (not shown) for the feet to enter and exit the foot bath chamber. The upper housing 300 is also equipped with a control panel (not shown) for displaying the working status of the foot bath and controlling the foot bath.
[0052] like Figure 3 As shown, the bottom of the massage component 200 has a raised rib 215, and the positioning plate 140 has a positioning through hole 142 corresponding to the raised rib. When the massage component 200 is placed in the receiving groove 141, the raised rib 215 is located in the positioning through hole 142. The matching of the raised rib and the positioning through hole also has a guiding function, which facilitates the placement of the massage component in place and its removal from the receiving groove.
[0053] Specifically, the massage component 200 includes a water vapor dispersion plate 210, on which water vapor dispersion channels are distributed, protruding from the lower surface of the water vapor dispersion plate as ribs 215. Accordingly, the water vapor dispersion channels are used both to distribute water vapor and to guide the massage component into and out of the receiving groove.
[0054] And, as Figure 4 As shown, the water vapor dispersion channel includes a first dispersion channel 211, a second dispersion channel 212, and a connecting channel 213. The first and second dispersion channels are symmetrical. The connecting channel is located between the first and second dispersion channels and connects them. The input interface 214 is located in the middle of the connecting channel 213. Therefore, water vapor can be evenly delivered to each massage component through the input interface. Furthermore, the input interface 214 is exposed below the positioning plate 140 through the positioning through-hole 142, allowing it to avoid obstruction from the positioning plate when connected to the delivery pipe 132.
[0055] Massage components 200 Figure 4 As shown, it includes a water vapor dispersion plate 210, a mounting plate 220, multiple rotating massage nozzles 230, multiple driven gears 240 and a drive gear 250.
[0056] The water vapor dispersion plate 210 is a plate-shaped component with water vapor dispersion channels distributed on it. These channels are used to disperse the delivered water vapor to distribute it evenly to each rotating massage nozzle. In the illustrated structure, the water vapor dispersion channels protrude downwards as ribs 215.
[0057] The mounting plate 220 is also a plate-like component located above the water vapor dispersion plate 210. It maintains an installation space with the water vapor dispersion plate, and the installation space is isolated from the water vapor dispersion channel to prevent water vapor in the water vapor dispersion channel from entering the installation space and causing adverse effects on the structure in the installation space, such as gears.
[0058] Multiple rotating massage nozzles 230 are rotatably distributed on the upper side of the mounting plate 220 and each is connected to a water vapor dispersion channel. Therefore, the mounting plate serves as the assembly base for the rotating massage nozzles and bears the pressure from the feet during a foot bath.
[0059] Multiple driven gears 240 are located in the installation space and are configured one by one with the rotating massage head 230 to drive the rotating massage head to rotate.
[0060] The drive gear 250 is located in the mounting space and is used to drive the rotation of multiple driven gears 240.
[0061] According to the massage assembly structure described above, water vapor is delivered to each rotating massage nozzle 230 through a water vapor dispersion channel. The drive gear 250 and driven gear 240 drive the multiple rotating massage nozzles 230 to rotate, applying both contact-type mechanical massage from the rotating massage nozzles and stimulating massage from the water vapor ejected from them to the feet. Furthermore, the gear transmission allows the rotating massage nozzles to move synchronously, providing comprehensive massage stimulation to the feet and enhancing the foot bath experience. During the foot massage applied by the rotating massage nozzles, water vapor from the water vapor dispersion channel is delivered to each rotating massage nozzle and ejected through the nozzle's spray holes. The spray direction changes as the nozzles rotate, further enhancing the foot bath experience.
[0062] In the illustrated structure, multiple rotating massage nozzles 230 are symmetrically arranged in two rows. This forms two parallel areas, each designed to massage one foot, increasing comfort. Correspondingly, multiple driven gears 240 are also symmetrically arranged in two rows, with driven gears in the same row meshing sequentially. This sequential meshing of the driven gears causes adjacent rotating massage nozzles to rotate in opposite directions; during a foot bath, moving the feet provides different massage stimuli. Furthermore, a drive gear 250 is located between the two rows of driven gears and meshes with one gear in each row. This simplifies the transmission structure and maintains consistent movement of the two rows of rotating massage nozzles. The driven gears in the same row can maintain a difference in diameter, thereby achieving different rotational speeds for the different rotating massage nozzles.
[0063] In the illustrated structure, the water vapor dispersion channel includes a first dispersion channel 211, a second dispersion channel 212, and a connecting channel 213. The first dispersion channel 211 and the second dispersion channel 212 are symmetrical about each other. The connecting channel 213 is located between the first and second dispersion channels and connects them. An input interface 214 is provided in the middle of the connecting channel 213, and the input interface 214 is located on the lower surface of the connecting channel 213. Accordingly, water vapor can be evenly delivered to each rotating massage nozzle through the input interface.
[0064] The mounting plate 220 forms the bottom surface of the foot bath cavity, and multiple rotating massage nozzles 230 protrude from the foot bath cavity.
[0065] As described above, the massage component 200, such as Figure 2-3As shown, the massage assembly 200 can be placed into and removed from the receiving slot 141 as a whole. When the massage assembly 200 is placed into the receiving slot 141, the input interface 214 is connected to the delivery pipe 132, and the drive shaft 151 is connected to the drive gear 250. When the massage assembly 200 is removed from the receiving slot, the input interface is disconnected from the delivery pipe, and the drive shaft is disconnected from the drive gear.
[0066] In the illustrated structure, the partition plate 120 and the positioning plate 140 are provided with corresponding shaft holes 152, and the drive shaft 151 extends upward through the shaft holes 152 to connect with the drive gear 250. When the drive shaft is connected to the drive gear, it can avoid the obstruction of the partition plate and the positioning plate. As the massage component is placed in position, the connection between the drive shaft and the drive gear is naturally achieved.
[0067] In the illustrated structure, the base portion 100 includes a heating atomization assembly, which comprises a heating atomization water tank 161, a first heating element 162, and an ultrasonic atomizer 163. The first heating element and the ultrasonic atomizer are positioned at the bottom of the heating atomization water tank. After water is added to the heating atomization water tank, the first heating element and the ultrasonic atomizer are submerged in water to atomize and heat the water into water vapor. A cover 164 is provided above the heating atomization water tank 161, forming a diffusion cavity above the heating atomization water tank between the cover 164 and the heating atomization water tank 161. Accordingly, the water stored in the heating atomization water tank can be heated and atomized, and the diffusion cavity provides space for heating atomization, ensuring the efficiency of heating atomization. The cover 164 protrudes from the foot bath cavity. The heated atomizing water tank 161 is mounted on the lower side of the partition plate 120. The partition plate 120 and the positioning plate 140 are provided with openings 166 corresponding to the heated atomizing water tank. The openings 166 connect the heated atomizing water tank 161 and the diffusion cavity, promoting efficient heating and atomization. The side wall of the diffusion cavity has an intake port 167 and a water vapor channel 165. The intake port 167 is as follows... Figure 6 The suction port is preferably located on the side wall of the heating atomizing water tank 161, ensuring it is not submerged in water, and is connected to the pressure pump 131 of the water vapor pressurization assembly. At any stage of operation, when the pressure in the diffusion chamber is lower than the pressure in the foot bath chamber, the water vapor in the foot bath chamber flows back to the diffusion chamber through the water vapor channel; when the pressure in the foot bath chamber is lower than the pressure in the diffusion chamber, the water vapor in the diffusion chamber escapes into the foot bath chamber through the water vapor channel.
[0068] The water vapor pressurization assembly 130 is used to pressurize the water vapor generated by the heated atomizing water tank 161 and deliver it to the water vapor dispersion channel. For example... Figure 5As shown, the water vapor pressurization assembly 130 includes a pressurization pump 131, a delivery pipe 132, and a first one-way valve 133, a storage tank 134, a control valve 135, a second heating element 136, a second one-way valve 137, and a fan 138 arranged in the delivery pipe path. The pressurization pump 131 has an inlet pipe 139 connected to the suction port of the heated atomizing water tank 161. One end of the delivery pipe 132 is connected to the outlet of the pressurization pump 131, and the other end is connected to the input interface 214 of the water vapor dispersion channel. During foot bath, the pressurization pump 131 draws water vapor from the heated atomizing water tank through the inlet pipe 139 and the suction port, pressurizes the water vapor, and the water vapor flows through the first one-way valve 133, the control valve 135, and the second heating element 136 before entering the water vapor dispersion channel from the input interface and being distributed to each rotating massage nozzle. The first and second one-way valves are used to prevent water vapor backflow. The control valve is used to control the opening and closing of the delivery pipe and the flow rate. The second heating element can be used to heat the flowing water vapor.
[0069] When the water vapor produced by the heated atomizing water tank 200 is insufficient or / and the power of the pressurizing pump is inadequate, the water vapor pressurizing component 300 cannot continuously spray a high-speed water vapor stream. While typical pressurizing pumps, such as airbag pumps, can continuously inflate, they cannot achieve high-pressure air delivery. Forcing the pressurizing pump to deliver high pressure would result in a severe suction sensation above the foot bath cavity and increased pump noise. Therefore, using a storage tank to accumulate and store water vapor, and then intermittently releasing it, ensures that the water vapor pressurizing component 300 can continuously spray a high-speed water vapor stream with lower operating noise. Given the function of the storage tank, it is preferably made of an elastic material, making it function like an elastic bladder.
[0070] After the foot bath, the fan can be turned on to generate airflow. When the airflow passes through the second heating device, it is heated into hot air. The hot air flows through the water vapor circulation path to achieve heating and drying.
[0071] The positioning plate 140 and the partition plate 120 isolate the foot bath cavity from the lower space, preventing water vapor in the foot bath cavity from flowing into the lower space. Under the action of the pressurizing pump 131, water vapor circulates between the heated atomizing water tank 161, the water vapor pressurizing component 130, the water vapor dispersion channel, the rotating massage nozzle 230, the foot bath cavity, and the diffusion cavity.
[0072] The mechanical power assembly 150 provides power to the drive gear, and is preferably a combination of an electric motor and a worm gear transmission mechanism. A drive shaft 151 is connected to the worm gear, and the drive shaft 151 passes through corresponding shaft holes 162 on the positioning plate and the partition plate and is connected to the drive gear 250.
[0073] The circuit control board is electrically connected to the first heating element 162, ultrasonic atomizer 163, pressurizing pump 131, first check valve 133, control valve 135, second heating element 136, second check valve 137, fan 138, motor of mechanical power component, control panel and other electrical components, and is used to control the operation of foot bath.
[0074] In operation, the aforementioned foot bath device involves inverting the water bottle 400 to add water to the heated atomizing water tank 161. The first heating element 162, ultrasonic atomizer 163, water vapor pressurization component 130, and mechanical power component 150 are activated via the control panel. This causes the rotating massage nozzle 230 to rotate, while simultaneously heating the water vapor and expelling it from the nozzle's spray holes. Placing the feet on the corresponding rotating massage nozzle provides both mechanical contact massage and stimulating water vapor massage. Furthermore, moving the feet allows for different massage experiences on the same area.
[0075] After using the foot bath, remove the upper housing 300 from the base 100 to expose the massage component 200. The massage component 200 can then be removed from the receiving groove 141 of the positioning plate 140 for thorough cleaning. After cleaning, guided by the receiving groove 141 and the positioning through hole 142, the massage component 200 can be repositioned in the receiving groove 141 for foot bath use. Because the cleaning of the massage component is separate from that of the base, contact between electrical components and water can be completely avoided, allowing the massage component to be fully immersed in water for a thorough cleaning.
Claims
1. A foot bath with a detachable massage component, comprising a base portion (100), a massage component (200), and an upper housing (300), wherein the base portion (100) includes a lower housing (110), a partition plate (120), and a steam pressurization component (130), the partition plate (120) being fitted onto the lower housing (110) and forming a lower space below the partition plate, the steam pressurization component (130) being located in the lower space and having a delivery pipe (132), and the upper housing (300) being detachably fitted onto the base portion (100) and forming a foot bath cavity below it, characterized in that: The base portion (100) also includes a positioning plate (140) disposed on the upper side of the partition plate (120). The positioning plate (140) has a receiving groove (141) located on its upper side. The outline of the receiving groove (141) matches the outline of the massage component (200). The massage component (200) is placed in the receiving groove (141). The massage component (200) has an input interface (214) which is detachably connected to the delivery tube (132).
2. The foot bath device according to claim 1, characterized in that: The bottom of the massage component (200) has a raised rib (215), and the positioning plate (140) has a positioning through hole (142) corresponding to the raised rib (215). When the massage component (200) is placed in the receiving groove (141), the raised rib (215) is located in the positioning through hole (142).
3. The foot bath device according to claim 2, characterized in that: The massage component (200) includes a water vapor dispersion plate (210) on which water vapor dispersion channels are distributed, and the water vapor dispersion channels protrude from the lower surface of the water vapor dispersion plate as the ribs (215).
4. The foot bath device according to claim 3, characterized in that: The water vapor dispersion channel includes a first dispersion channel (211), a second dispersion channel (212), and a connecting channel (213). The first dispersion channel and the second dispersion channel are symmetrical. The connecting channel is located between the first dispersion channel and the second dispersion channel and connects the first dispersion channel and the second dispersion channel. The input interface (214) is located in the middle of the connecting channel (213).
5. The foot bath device according to claim 3 or 4, characterized in that: The massage component (200) also includes: The mounting plate (220) forming the bottom surface of the foot bath cavity is located above the water vapor dispersion plate (210), and there is an installation space between it and the water vapor dispersion plate. The installation space is isolated from the water vapor dispersion channel. Multiple rotating massage nozzles (230) protruding from the foot bath cavity are rotatably distributed on the upper side of the mounting plate (220) and each is connected to a water vapor dispersion channel. Multiple driven gears (240), located in the mounting space and configured one by one with the rotary massage head (230), are used to rotate the rotary massage head (230). A drive gear (250) is located in the mounting space and is used to drive the plurality of driven gears (240) to rotate; The base portion (100) includes a mechanical power assembly (150) located in the lower space and having an upwardly extending drive shaft (151) that is detachably driven connected to the drive gear (250).
6. The foot bath device according to claim 5, characterized in that: The separator (120) and the positioning plate (140) are provided with corresponding shaft holes (152), and the drive shaft (151) extends upward through the shaft holes (152).
7. The foot bath device according to any one of claims 1-4, characterized in that: The base portion (100) includes a heating atomizing assembly, which includes a heating atomizing water tank (161), a first heating element (162), and an ultrasonic atomizer (163). The first heating element and the ultrasonic atomizer are disposed at the bottom of the heating atomizing water tank (161), and a diffusion cavity is maintained above the heating atomizing water tank.
8. The foot bath device according to claim 7, characterized in that: A cover (164) is installed above the heating atomizing water tank (161), and the diffusion chamber is located between the cover (164) and the heating atomizing water tank (161).
9. The foot bath device according to claim 8, characterized in that: The cover (164) protrudes from the foot bath cavity, and the heated atomizing water tank (161) is mounted on the lower side of the partition plate (120). The partition plate (120) and the positioning plate (140) are provided with openings (166) corresponding to the heated atomizing water tank (161).
10. The foot bath device according to claim 7, characterized in that: The sidewall of the diffusion chamber has an intake port (167) and a water vapor passage (165).