Massageable intelligent bathtub

By incorporating floating and buoy components within the bathtub, and utilizing airflow and traction components, the smart bathtub achieves floating and vibration massage, solving the problems of insufficient massage intensity and fixed posture in existing systems, thus enhancing the comfort and effectiveness of the massage.

CN119453822BActive Publication Date: 2026-04-24ZHEJIANG WENDAOHAISUI SANITARY WARE TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
ZHEJIANG WENDAOHAISUI SANITARY WARE TECH CO LTD
Filing Date
2024-12-16
Publication Date
2026-04-24

AI Technical Summary

Technical Problem

Existing smart massage bathtubs have relatively weak massage intensity, and the user's fixed posture during the massage is not conducive to muscle relaxation.

Method used

Several floating components are installed inside the bathtub body. Each floating component contains a series of float components. The airflow drives the float components to float and vibrate in the water. Combined with the traction component and the drive component, it realizes floating and vibration massage of the body.

Benefits of technology

It increases the comfort of the massage, allowing users to relax their bodies while receiving a full massage effect. It can adjust the floating depth and posture, providing a more comfortable bathing experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application provides a massageable intelligent bathtub, which comprises a base member, a bathtub main body, a traction assembly and a float assembly, the bathtub main body is fixedly assembled in the base member, the bathtub main body is internally provided with a first notch and a second notch, the traction assembly comprises a first traction body and a second traction body, the first traction body is assembled at the side of the first notch, and the second traction body is assembled at the side of the second notch, the massageable intelligent bathtub comprises a plurality of floating units, the two ends of the floating units are connected to the first traction body and the second traction body, a plurality of linearly arranged float assemblies are arranged in each group of floating units, and the float assemblies are connected through hoses, the bathtub main body is internally provided with a plurality of floating assemblies, and the floating assemblies are internally provided with a plurality of serially connected float assemblies, the float assemblies can be driven to float and vibrate in water by air flow, so that the user can obtain sufficient massage while relaxing the body, and the comfort of massage is improved.
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Description

Technical Field

[0001] This invention relates to the field of bathtub technology, and in particular to a smart bathtub with massage function. Background Technology

[0002] A smart massage bathtub is a bathtub that integrates a variety of high-tech functions. It not only has basic bathing functions, but also incorporates features such as hydrotherapy massage, music playback, temperature control, and intelligent control, aiming to provide a more comfortable, convenient, and personalized bathing experience.

[0003] Common massage functions in smart bathtubs include a water pump and jet system that can provide different types of massage, such as bubble massage and water jet massage.

[0004] Chinese patent CN103826594B discloses a smart massage bathtub, which has one or more inner sidewalls and includes grooves extending along the periphery of the bathtub. These peripheral grooves facilitate the storage of multiple jet nozzles for implementing the water massage function. However, in actual massage processes, bubble massage and water flow massage not only have relatively weak massage intensity, but also require the user to maintain a fixed sitting or lying posture, which is not conducive to muscle relaxation. Summary of the Invention

[0005] In view of the shortcomings of the existing technology, the purpose of this invention is to provide a smart bathtub with massage function to solve the problems mentioned in the background.

[0006] To achieve the above technical solution, the present invention provides the following technical solution:

[0007] A massage-enabled smart bathtub includes a base component, the base component comprising a first base and a second base, the first base and the second base being spaced apart, and an air pump being disposed in the first base.

[0008] A tub body assembly, comprising a bathtub body, a first end, a second end, a first groove, and a second groove, wherein the bathtub body is fixedly assembled between a first base and a second base, and the first end and the second end are provided inside the bathtub body, and the first end and the second end are respectively provided with a first groove and a second groove.

[0009] A traction assembly, comprising a first traction box, a first traction body, a second traction box, and a second traction body, wherein the first traction box is fixedly mounted on one side of a first slot, the first traction body is slidably mounted in the first traction box, the second traction box is fixedly mounted on one side of a second slot, and the second traction body is slidably mounted in the second traction box.

[0010] The massage-enabled smart bathtub includes several floating units, each group of floating units is equipped with several float assemblies arranged in a linear fashion, and the float assemblies are connected to each other by flexible hoses.

[0011] The float assembly includes a float body, side walls, and side shells. The float body has side walls at both ends, and the two sets of side shells are slidably assembled on the side walls, and the side shells are fixedly connected to the hose.

[0012] As a further embodiment of the present invention, the second end has opposing first surfaces, the second traction box has opposing second surfaces, and the first and second surfaces are in the same plane.

[0013] As a further embodiment of the present invention, the traction assembly further includes a first pipe groove, a first traction rod, a second pipe groove, and a second traction rod. The first pipe groove is disposed on one side of the first traction box, and the first traction rod is fixedly connected to the first traction body. The second pipe groove is disposed on one side of the second traction box, and the second traction rod is fixedly connected to the second traction body.

[0014] As a further embodiment of the present invention, the float assembly further includes an air guide tube, an air guide hole, and an elastic element. The two sets of air guide tubes are slidably inserted into the two sets of side cylinder walls respectively. One end of the air guide tube is fixedly connected to the side cylinder shell, and the other end is connected to the hose. The air guide hole is arranged on one side of the side cylinder shell and is set on the air guide tube. The elastic element is movably connected to the side cylinder wall and the side cylinder shell.

[0015] As a further embodiment of the present invention, the float assembly further includes a pneumatic rotating cover, a pneumatic nozzle, a driven rotating cover, and an air inlet. The pneumatic rotating cover is rotatably mounted on a set of air guide pipes, and the pneumatic rotating cover is also provided with a pneumatic nozzle, which is arranged along the tangential direction of the outer diameter of the pneumatic rotating cover. The driven rotating cover is rotatably mounted on another set of air guide pipes, and the driven rotating cover is provided with an air inlet.

[0016] As a further embodiment of the present invention, the float assembly further includes a connecting arm, an adjusting arm, and a counterweight. The two sets of connecting arms are respectively rotatably mounted on the pneumatic rotating cover and the driven rotating cover. One end of the adjusting arm is rotatably connected to the connecting arm, and the other end of the adjusting arm is fixedly mounted with a counterweight.

[0017] As a further embodiment of the present invention, the float assembly further includes a crankshaft, push rods, cylinders, pistons, and nozzles. The crankshaft is fixedly mounted between two sets of counterweights. Several push rods are rotatably mounted on the crankshaft. Several cylinders are circumferentially fixedly arranged on the float body. One end of the piston is slidably mounted in the cylinder, and the other end of the piston is movably connected to the push rods. A nozzle is also provided at the end of the cylinder.

[0018] As a further embodiment of the present invention, the float assembly further includes an outer cover and convex balls, with two sets of outer covers fixedly sleeved on the side cylinder shell. Furthermore, a plurality of convex balls are distributed on the surface of the outer cover.

[0019] As a further embodiment of the present invention, the massage-enabled smart bathtub further includes a driving component, which includes a first driving frame, a driving gear, a second driving frame, a transmission gear, and a driver. The first driving frame is slidably disposed along a first direction, and one end of the first driving frame is fixedly connected to a first traction rod, while the other end of the first driving frame is meshed with the driving gear. The second driving frame is slidably disposed along the first direction, and one end of the second driving frame is fixedly connected to a second traction rod, while the other end of the second driving frame is meshed with the driving gear. The driver is fixedly disposed in a first base and is connected to the driving gear via the transmission gear.

[0020] As a further embodiment of the present invention, the massage-enabled smart bathtub also includes an exhaust valve, wherein several exhaust valves are respectively disposed in several floating units and between two adjacent float assemblies, and the surface of the exhaust valve is provided with several air holes.

[0021] By adopting the above technical solution, the present invention has the following beneficial effects:

[0022] This invention incorporates several floating components inside the bathtub body, and within each floating component are several interconnected float components. By utilizing airflow, the float components can float and vibrate in the water, allowing the user to relax their body while receiving a thorough massage, thus increasing the comfort of the massage. Attached Figure Description

[0023] To more clearly illustrate the specific embodiments of the present invention or the technical solutions in the prior art, the drawings used in the description of the specific embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of the present invention. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.

[0024] Figure 1 This is a schematic diagram of a massage-enabled smart bathtub provided in one embodiment of the present invention.

[0025] Figure 2 This is a partial cross-sectional view of a massage-enabled smart bathtub provided in one embodiment of the present invention.

[0026] Figure 3 for Figure 2 Enlarged schematic diagram of reference numeral A in the attached figure.

[0027] Figure 4 for Figure 2Enlarged schematic diagram of reference numeral B in the attached figure.

[0028] Figure 5 This is a schematic diagram of a massage-enabled smart bathtub provided in one embodiment of the present invention.

[0029] Figure 6 for Figure 5 Enlarged schematic diagram of the figure marked C in the attached diagram.

[0030] Figure 7 This is a schematic diagram of a massage-enabled smart bathtub provided in one embodiment of the present invention.

[0031] Figure 8 for Figure 7 Enlarged schematic diagram of reference numeral D in the attached figure.

[0032] Figure 9 This is a schematic diagram of a massage-enabled smart bathtub provided in one embodiment of the present invention.

[0033] Figure 10 for Figure 9 Enlarged schematic diagram of reference numeral E in the attached figure.

[0034] Reference numerals: 1-Base component, 101-First base, 102-Second base, 103-Air pump, 2-Basin body assembly, 201-Basin body, 202-First end, 203-Second end, 204-First slot, 205-Second slot, 3-Traction assembly, 301-First traction box, 302-First traction body, 303-First pipe groove, 304-First traction rod, 305-Second traction box, 306-Second traction body, 307-Second pipe groove, 308-Second traction rod, 4-Float assembly, 401-Float body, 402-Side cylinder wall, 403-Side Cylinder shell, 404-Hose connector, 405-Air guide tube, 406-Air guide hole, 407-Elastic element, 408-Pneumatic rotating cover, 409-Pneumatic nozzle, 410-Driven rotating cover, 411-Air inlet, 412-Connecting arm, 413-Adjusting arm, 414-Counterweight, 415-Crankshaft, 416-Push rod, 417-Cylinder, 418-Piston, 419-Nozzle, 420-Outer cover, 421-Convex ball, 5-Drive component, 501-First drive frame, 502-Drive gear, 503-Second drive frame, 504-Transmission gear, 505-Driver, 6-Exhaust valve. Detailed Implementation

[0035] The technical solution of the present invention will now be clearly and completely described with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of the present invention. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0036] In the description of this invention, it should be noted that the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are used only for the convenience of describing the invention and for 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. Therefore, they should not be construed as limitations on the invention. Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.

[0037] Please see Figures 1-10 According to one embodiment of the present invention, a massage-enabled smart bathtub has a first direction x and a second direction y. The massage-enabled smart bathtub includes a base component 1, which includes a first base 101 and a second base 102, which are spaced apart. An air pump 103 is also provided in the first base 101. A tub assembly 2 includes a bathtub body 201, a first end 202, a second end 203, a first groove 204, and a second groove 205. The bathtub body 201 is fixedly assembled between the first base 101 and the second base 102. The first end 202 and the second end 203 are provided inside the bathtub body 201. The first end 202 and the second end 203 are respectively provided with the first groove 204 and the second groove 205. A traction component 3 is also included. The traction assembly 3 includes a first traction box 301, a first traction body 302, a second traction box 305, and a second traction body 306. The first traction box 301 is fixedly assembled to one side of the first slot 204, the first traction body 302 is slidably assembled in the first traction box 301, the second traction box 305 is fixedly assembled to one side of the second slot 205, and the second traction body 306 is slidably assembled in the second traction box 305. The float assembly 4 includes several floating units, each group of floating units is provided with several float assemblies 4 arranged linearly, and the float assemblies 4 are connected to each other by a flexible hose. The float assembly 4 includes a float body 401, a side wall 402, and a side shell 403. The float body 401 is provided with side walls 402 at both ends, and two sets of side shells 403 are slidably assembled on the side walls 402, and the side shells 403 are fixedly connected to the flexible hose.

[0038] In practical application, when using this smart bathtub for massage, the bathtub body 201 is fixedly assembled between the first base 101 and the second base 102, with the first base 101 and the second base 102 spaced apart and interconnected. The bathtub body 201 has a first end 202 and a second end 203 in the first direction x. The first end 202 matches the user's feet, and the second end 203 matches the user's head. A first slot 204 and a second slot 205 are respectively provided on one side of the first end 202 and the second end 203. The first traction box 301 and the second traction box 305 are respectively fixedly disposed in the first slot 204. In the second slot 205, the first traction box 301 and the second traction box 305 are both sealed to the bathtub body 201. The first traction body 302 and the second traction body 306 are slidably assembled in the first traction box 301 and the second traction box 305, respectively, and the first traction body 302 and the second traction body 306 are slidably sealed to the first traction box 301 and the second traction box 305, respectively. A plurality of floating units are arranged in an array, and the float assembly 4 in the floating unit is connected by a hose. The hoses located on both sides of the floating unit are fixedly connected to the first traction body 302 and the second traction body 306, respectively, and the ends of the hoses are all connected to the air pump 103. When the bathtub is in massage mode, the air pump 103... 3 is used to pump air into the hoses on both sides. As the air flows along the hoses, it can enter the float body 401 through the side shell 403. When the air fills the cavity of the side shell 403, the gas inside the two sets of side shells 403 experiences buoyancy when submerged in water, causing the floating unit composed of several connected float assemblies 4 to move in the second direction y. Thus, when the user is immersed in the bathtub, they are supported by the floating units in the second direction y, allowing their body to float in the water and relax. When the first traction body 302 and the second traction body 306 are pulled by an external force, the first traction body 302 and the second traction body 306 move in the first direction y. When the first traction body 302 moves in the positive direction of the first direction x, the hose between the first traction body 302 and the second traction body 306 is pulled, so that the side shell 403 in any float assembly 4 slides away from the float body 401 under the action of tension, thereby increasing the cavity volume between the side shell 403 and the side wall 402. At this time, the volume of air pumped into the cavity increases, which increases the buoyancy of the floating unit. Therefore, the floating depth of the user in the bathtub can be adjusted. Since the user's head is always placed on the platform on one side of the second end 203, the user can bathe in a more comfortable posture by changing the tilt angle of the user's body.

[0039] Please see Figure 2 and Figure 4 In a preferred embodiment of the present invention, the second end 203 has a first surface a1 opposite to each other, and the second traction box 305 has a second surface a2 opposite to each other, wherein the first surface a1 and the second surface a2 are in the same plane.

[0040] In practical application, the first surface a1 on the second end 203 and the second surface a2 on the second traction box 305 are in the same plane. In actual use, the user's upper body is supine on the inclined wall on one side of the second end 203, and the hoses of several floating units are located below the user's body. When the air pump 103 is in the pumping state, the gas passes through the hose and enters the float body 401 and the side cylinder shell 403.

[0041] Please see Figure 3 In a preferred embodiment of the present invention, the traction assembly 3 further includes a first tube groove 303, a first traction rod 304, a second tube groove 307, and a second traction rod 308. The first tube groove 303 is disposed on one side of the first traction box 301, the first traction rod 304 is fixedly connected to the first traction body 302, the second tube groove 307 is disposed on one side of the second traction box 305, and the second traction rod 308 is fixedly connected to the second traction body 306.

[0042] In practical application, the first tube groove 303 is disposed on one side of the first traction box 301 and slidably connected to the hose. The first traction rod 304 is fixedly connected to the first traction body 302 and is used to control the sliding position of the first traction body 302 in the first direction x. The second tube groove 307 is disposed on one side of the second traction box 305 and slidably connected to the hose. The second traction rod 308 is fixedly connected to the second traction body 306 and is used to control the sliding position of the second traction body 306 in the first direction x.

[0043] Please see Figure 7 In a preferred embodiment of this embodiment, the float assembly 4 further includes an air guide pipe 405, an air guide hole 406, and an elastic element 407. The two sets of air guide pipes 405 are slidably inserted into the two sets of side cylinder walls 402 respectively. One end of the air guide pipe 405 is fixedly connected to the side cylinder shell 403, and the other end is connected to the hose. The air guide hole 406 is arranged on one side of the side cylinder shell 403 and is provided on the air guide pipe 405. The elastic element 407 is movably connected to the side cylinder wall 402 and the side cylinder shell 403.

[0044] In practical application, one end of the air guide pipe 405 is slidably inserted into the side cylinder wall 402, and the other end of the air guide pipe 405 is fixedly assembled onto the side cylinder shell 403. The end of the side cylinder shell 403 is fixedly connected to a flexible hose, allowing pumped air to flow through the side cylinder shell 403 into the air guide pipe 405. Since the surface of the air guide pipe 405 is provided with several air guide holes 406, when the side cylinder shell 403 slides between the two ends of the side cylinder wall 402, and when the side cylinder shell 403 moves away from the side cylinder wall 402, the cavity volume between the side cylinder wall 402 and the side cylinder shell 403 increases, allowing flowing air to pass through the air guide pipe 405 into the cavity. When the side cylinder shell 403... When moving towards the side wall 402, the cavity volume between the side wall 402 and the side shell 403 decreases, allowing air inside the cavity to pass through the air guide hole 406 into the air guide pipe 405 and continue moving along the air guide pipe 405. The side shell 403 and the side wall 402 are elastically connected by an elastic element 407, so that when the air in the float assembly 4 stops pumping, the air remaining in the cavity volume of the side shell 403 can be discharged through the air guide hole 406 into the air guide pipe 405 under elastic pressure. This allows the floating unit in the device to freely adjust the buoyancy value of the floating unit side according to the tension of the hoses on both sides, thereby facilitating the adjustment of the user's supine position.

[0045] Please see Figure 7 and Figure 8 In a preferred embodiment of the present invention, the float assembly 4 further includes a pneumatic rotating cover 408, a pneumatic nozzle 409, a driven rotating cover 410, and an air inlet 411. The pneumatic rotating cover 408 is rotatably mounted on a set of air guide pipes 405. The pneumatic rotating cover 408 is also provided with a pneumatic nozzle 409, which is arranged along the tangential direction of the outer diameter of the pneumatic rotating cover 408. The driven rotating cover 410 is rotatably mounted on another set of air guide pipes 405, and the driven rotating cover 410 is provided with an air inlet 411.

[0046] In practical application, the pneumatic rotating cover 408 is rotatably sleeved on the end of a set of air guide pipes 405, and the pneumatic rotating cover 408 is rotatably and sealingly installed on the air guide pipes 405. When air from one side is pumped into the air guide pipes 405 along the hose, the pneumatic rotating cover 408 is rotatably and sealingly connected to the air guide pipes 405. Therefore, during the process of the gas being pumped out along the pneumatic nozzle 409, since the diameter of the pipe opening on the side of the pneumatic nozzle 409 is smaller than the diameter of the pipe opening on the side of the air guide pipe 405, the fluid velocity pumped out on the side of the pneumatic nozzle 409 increases based on Bernoulli's principle. Furthermore, since the pneumatic nozzle 409 is set along the tangential direction of the outer diameter of the pneumatic rotating cover 408... Therefore, during the ejection process, the gas exerts a tangential force on the pneumatic rotating cover 408, causing the pneumatic rotating cover 408 to rotate about the air guide pipe 405 as a fixed axis. After being pumped out by the pneumatic nozzle 409, the air fills the cavity of the float body 401. Since the internal cavity volume of the float body 401 remains unchanged, the gas flows along the pipe of another set of air guide pipes 405. The driven cap 410 is rotatably installed on another set of air guide pipes 405, and the air inlet 411 on the driven cap 410 has the same diameter as the pipe opening, so that the gas flows along the air guide pipe 405 on this side to the next float assembly 4, thereby causing the air to move unidirectionally inside the float assembly 4.

[0047] Please see Figure 8 In a preferred embodiment of the present invention, the float assembly 4 further includes a connecting arm 412, an adjusting arm 413, and a counterweight 414. The two sets of connecting arms 412 are respectively rotatably mounted on the pneumatic rotating cover 408 and the driven rotating cover 410. One end of the adjusting arm 413 is rotatably connected to the connecting arm 412, and the other end of the adjusting arm 413 is fixedly mounted with the counterweight 414.

[0048] In practical application, the two sets of connecting arms 412 are rotatably mounted on the pneumatic rotating cover 408 and the driven rotating cover 410, respectively. An adjusting arm 413 is rotatably mounted on each connecting arm 412, and a counterweight 414 is fixedly mounted on each adjusting arm 413. The two sets of counterweights 414 are fixedly connected, so that when the pneumatic rotating cover 408 rotates under tangential gas thrust, the connecting arm 412, movably mounted on one side of the pneumatic rotating cover 408, rotates synchronously with it. Because the adjusting arm 413 and the counterweight 414 are eccentrically positioned relative to the pneumatic rotating cover 408, the counterweight 414 vibrates eccentrically during rotation, giving the float assembly 4 overall vibrational energy. This allows for continuous vibrational impact on the user's body when floating and supporting it. The synchronous vibration of the float assemblies 4 in several floating assemblies forms a mesh structure that floats the user's body. The device combines support and tapping massage, allowing the user to relax and receive a massage while floating in the water. During the massage, the movement of the first traction body 302 and the second traction body 306 within the first traction box 301 and the second traction box 305 causes the first traction rod 304 in the floating assembly to move. Furthermore, the first traction rod 304, during its sliding motion, synchronously pulls the air tube 405. When the two sets of air tubes 405 move away from each other, the counterweight 414 moves away from the axis of the air tubes 405. This increases the eccentricity of one side of the counterweight 414, resulting in greater vibration when the pneumatic rotating cover 408 drives the counterweight 414 to rotate, thus adjusting the amplitude of the tapping massage.

[0049] Please see Figure 10 In a preferred embodiment of the present invention, the float assembly 4 further includes a crankshaft 415, push rods 416, cylinders 417, pistons 418, and nozzles 419. The crankshaft 415 is fixedly mounted between two sets of counterweights 414. Several push rods 416 are rotatably mounted on the crankshaft 415. Several cylinders 417 are circumferentially fixedly arranged on the float body 401. One end of the piston 418 is slidably mounted in the cylinder 417, and the other end of the piston 418 is movably connected to the push rods 416. A nozzle 419 is also provided at the end of the cylinder 417.

[0050] In practical application, the crankshaft 415 is fixedly mounted between two sets of counterweights 414, and several push rods 416 are rotatably mounted on the crankshaft 415. When the crankshaft 415 rotates with the counterweights 414, it can pull the push rods 416 on it to move synchronously during the eccentric rotation. Since one end of the piston 418 is slidably mounted in the cylinder 417, and the other end of the piston 418 is rotatably connected to the push rods 416, the crankshaft 415 can synchronously pull several pistons 418 during rotation. The piston 418 slides back and forth in several cylinders 417. When the piston 418 moves away from the nozzle 419, the inner cavity of the cylinder 417 is under negative pressure, so water from outside the nozzle 419 can be drawn into the inner cavity of the cylinder 417. When the piston 418 moves towards the nozzle 419, the inner cavity of the cylinder 417 is under positive pressure, so water in the cylinder 417 can be ejected. This allows the float assembly 4 to vibrate and strike the user's body while also forming a water bath massage by spraying water jets, thereby increasing the comfort of the massage.

[0051] Please see Figure 7 In a preferred embodiment of the present invention, the float assembly 4 further includes an outer cover 420 and convex balls 421, with the two sets of outer cover 420 fixedly sleeved on the side cylinder shell 403. Furthermore, a plurality of convex balls 421 are distributed on the surface of the outer cover 420.

[0052] In practical application, since the outer cover 420 has several protruding balls 421 on its surface, the float assembly 4 can use these protruding balls 421 to tap and massage the user's body during vibration. By reducing the contact area, the pressure at the contact point is increased, thereby improving the massage effect.

[0053] Please see Figure 5 In a preferred embodiment of the present invention, the massage-enabled smart bathtub further includes a drive component 5. The drive component 5 includes a first drive frame 501, a drive gear 502, a second drive frame 503, a transmission gear 504, and a driver 505. The first drive frame 501 is slidably disposed along a first direction x, and one end of the first drive frame 501 is fixedly connected to a first traction rod 304, while the other end of the first drive frame 501 is meshed with the drive gear 502. The second drive frame 503 is slidably disposed along the first direction x, and one end of the second drive frame 503 is fixedly connected to a second traction rod 308, while the other end of the second drive frame 503 is meshed with the drive gear 502. The driver 505 is fixedly disposed in the first base 101 and is connected to the drive gear 502 via the transmission gear 504.

[0054] In practical application, the driver 505 can engage the transmission gear 504 on the driving side to rotate in the driving state. The transmission gear 504 is connected to the drive gear 502 via a synchronous belt. During rotation, the drive gear 502 engages with the first drive frame 501 and the second drive frame 503. Since the first drive frame 501 and the second drive frame 503 are respectively engaged and assembled on both sides of the drive gear 502, the first drive frame 501 and the second drive frame 503 can be driven to move in opposite directions to pull the first traction rod 304 and the second traction rod 308 to move in opposite directions. Since the first traction rod 304 and the second traction rod 308 are respectively fixedly assembled on the first traction body 302 and the second traction body 306, the first traction body 302, the second traction body 306, and the hose assembled on them can be pulled to move in opposite directions.

[0055] Please see Figure 2 In a preferred embodiment of the present invention, the massage-enabled smart bathtub further includes an exhaust valve 6, wherein a plurality of exhaust valves 6 are respectively disposed in a plurality of floating units and disposed between two adjacent float assemblies 4, and a plurality of air holes are provided on the surface of the exhaust valve 6.

[0056] In practical application, the exhaust valve 6 is assembled in the middle of the floating unit and located between the connecting hoses of two adjacent float assemblies 4. The two sets of hoses connected to the air pump 103 pump air to the first traction box 301 and the second traction box 305 respectively, so that the air continuously moves from both ends of the floating unit to the exhaust valve 6, so that the air continuously pumped into the floating unit can be discharged through the air holes on the surface of the exhaust valve 6, so that the gas pressure in the floating unit is kept in a stable range.

[0057] The above embodiments of the present invention provide a smart bathtub with massage function. By setting a number of floating components inside the bathtub body 201, and setting a number of float components 4 connected in series inside the floating components, the float components 4 can be driven by air flow to float and vibrate in the water, allowing the user to relax the body and get a full massage, increasing the comfort of the massage.

[0058] The above description is merely a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

Claims

1. A massage-enabled smart bathtub, the massage-enabled smart bathtub having opposing first and second directions, characterized in that, The massage-enabled smart bathtub includes: The base component includes a first base and a second base, which are spaced apart, and an air pump is also provided in the first base. A tub body assembly, comprising a bathtub body, a first end, a second end, a first groove, and a second groove, wherein the bathtub body is fixedly assembled between a first base and a second base, and the first end and the second end are provided inside the bathtub body, and the first end and the second end are respectively provided with a first groove and a second groove. A traction assembly, comprising a first traction box, a first traction body, a second traction box, and a second traction body, wherein the first traction box is fixedly mounted on one side of a first slot, the first traction body is slidably mounted in the first traction box, the second traction box is fixedly mounted on one side of a second slot, and the second traction body is slidably mounted in the second traction box. The massage-enabled smart bathtub includes several floating units, each group of floating units is equipped with several float assemblies arranged in a linear fashion, and the float assemblies are connected to each other by flexible hoses. The float assembly includes a float body, side walls, and side shells. The float body has side walls at both ends, and the two sets of side shells are slidably assembled on the side walls, and the side shells are fixedly connected to the hose.

2. The massage-enabled smart bathtub according to claim 1, characterized in that, The second end has a first surface opposite to the second traction box, and the first surface and the second surface are in the same plane.

3. The massage-enabled smart bathtub according to claim 1, characterized in that, The traction assembly further includes a first pipe groove, a first traction rod, a second pipe groove, and a second traction rod. The first pipe groove is disposed on one side of the first traction box, and the first traction rod is fixedly connected to the first traction body. The second pipe groove is disposed on one side of the second traction box, and the second traction rod is fixedly connected to the second traction body.

4. A smart bathtub with massage function according to claim 1, characterized in that, The float assembly also includes an air guide tube, an air guide hole, and an elastic element. The two sets of air guide tubes are slidably inserted into the two sets of side cylinder walls. One end of the air guide tube is fixedly connected to the side cylinder shell, and the other end is connected to the hose. The air guide hole is arranged on one side of the side cylinder shell and is set on the air guide tube. The elastic element is movably connected to the side cylinder wall and the side cylinder shell.

5. A smart bathtub with massage function according to claim 1, characterized in that, The float assembly also includes a pneumatic rotating cover, a pneumatic nozzle, a driven rotating cover, and an air inlet. The pneumatic rotating cover is rotatably mounted on a set of air guide pipes. The pneumatic rotating cover is also provided with a pneumatic nozzle, which is arranged along the tangent direction of the outer diameter of the pneumatic rotating cover. The driven rotating cover is rotatably mounted on another set of air guide pipes, and the driven rotating cover is provided with an air inlet.

6. A massage-enabled smart bathtub according to claim 5, characterized in that, The float assembly also includes a connecting arm, an adjusting arm, and a counterweight. The two sets of connecting arms are rotatably mounted on the pneumatic rotating cover and the driven rotating cover, respectively. One end of the adjusting arm is rotatably connected to the connecting arm, and the other end of the adjusting arm is fixedly mounted with a counterweight.

7. A massage-enabled smart bathtub according to claim 1, characterized in that, The float assembly also includes a crankshaft, push rods, cylinders, pistons, and nozzles. The crankshaft is fixedly mounted between two sets of counterweights. Several push rods are rotatably mounted on the crankshaft. Several cylinders are circumferentially fixed on the float body. One end of the piston is slidably mounted in the cylinder, and the other end of the piston is movably connected to the push rods. A nozzle is also provided at the end of the cylinder.

8. A smart bathtub with massage function according to claim 1, characterized in that, The float assembly also includes an outer cover and convex balls. The two sets of outer covers are fixedly sleeved on the side cylinder shell, and the surface of the outer cover is provided with a number of convex balls.

9. A massage-enabled smart bathtub according to claim 1, characterized in that, The massage-enabled smart bathtub also includes a drive component, which comprises a first drive frame, a drive gear, a second drive frame, a transmission gear, and a driver. The first drive frame is slidably disposed along a first direction, with one end of the first drive frame fixedly connected to a first traction rod and the other end of the first drive frame meshing with the drive gear. The second drive frame is slidably disposed along the first direction, with one end of the second drive frame fixedly connected to a second traction rod and the other end of the second drive frame meshing with the drive gear. The driver is fixedly disposed in a first base and is connected to the drive gear via the transmission gear.

10. A massage-enabled smart bathtub according to claim 1, characterized in that, The massage-enabled smart bathtub also includes an exhaust valve, with several exhaust valves respectively disposed in several floating units and between two adjacent float assemblies, and the surface of the exhaust valve is provided with several air holes.

Citation Information

Patent Citations

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