A foam shield generating device
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-06
- Publication Date
- 2026-08-11
AI Technical Summary
该技术方案通过弹簧、密封圈及活动杆的协同作用,实现了储液腔与混合腔之间的精准切换,确保了泡沫液与水的高效混合,解决了传统装置中存在的成本高、可靠性差及混合效率低的问题
[0016]本实用新型的有益效果在于:通过利用自来水水压驱动皂液加注,舍弃了传统的电子加液泵,大幅降低了制造成本,特别适用于中低端智能马桶机型。纯机械结构设计避免了电子元件的使用,减少了故障点,提高了装置的稳定性和耐用性。装置结构简单紧凑,适用于多种智能马桶机型,满足不同市场的需求。此外,通过活动杆的上下移动及间隙结构的设计,实现了皂液与自来水的高效混合,确保泡沫产生效果优异。
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Figure CN224620744U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to a foam shield generating device. Background Technology
[0002] With the widespread adoption of smart home devices, smart toilets, as a crucial component, are seeing their functions continuously improved and matured. The foam shield function, a key technology for enhancing user experience, was initially primarily applied to high-end smart toilet models. However, with increasing market competition, this function has gradually been introduced into mid-to-low-end, less sophisticated smart toilets, leading to rapid growth in market demand. Traditional foam shield devices typically rely on a dispensing pump to deliver and mix the foam solution. While this design meets basic functional requirements, it suffers from high cost, complex structure, and reduced reliability due to electronic component failures. In existing technologies, foam solution mixing is usually accomplished using a water pump or dispensing pump. This method not only increases manufacturing costs but also raises maintenance difficulty and the risk of malfunction due to the use of electronic components. Furthermore, traditional devices have limited control precision over the foam solution during mixing, easily resulting in foam waste or uneven mixing, negatively impacting the user experience. Summary of the Invention
[0003] This utility model discloses a foam shield generator driven by tap water pressure. Through a clever design that integrates the storage chamber, mixing chamber, and movable rod, it utilizes water pressure to automatically extract and mix the foam liquid, completely eliminating the need for a traditional dispensing pump. This design not only significantly reduces production costs but also improves the reliability and lifespan of the device, while meeting the needs of different models. The technical solution achieves precise switching between the storage chamber and mixing chamber through the synergistic action of the spring, sealing ring, and movable rod, ensuring efficient mixing of the foam liquid and water, and solving the problems of high cost, poor reliability, and low mixing efficiency found in traditional devices.
[0004] The present invention adopts the following solution:
[0005] A foam shield generating device includes a housing with a vertically distributed liquid storage chamber and a mixing chamber inside. A channel is provided between the liquid storage chamber and the mixing chamber, allowing soap solution from the liquid storage chamber to flow into the mixing chamber. A water inlet pipe is also provided below the housing, connecting to the mixing chamber. The device also includes a movable rod that can be positioned within the channel, forming a temporary storage space. The movable rod can move vertically between a first position and a second position within the channel. When the movable rod is in the first position, the liquid storage chamber is disconnected from the temporary storage space, and the temporary storage space is connected to the mixing chamber. When water enters through the water inlet pipe, the water flow pushes the movable rod upward, causing it to be in the second position within the channel, where the temporary storage space is disconnected from the mixing chamber, and the temporary storage space is connected to the liquid storage chamber.
[0006] In this embodiment of the invention, the movable rod is provided with a first sealing ring and a second sealing ring distributed vertically. When the movable rod is in the first position within the channel, the first sealing ring can disconnect the liquid storage chamber from the temporary storage space; when the movable rod is in the second position within the channel, the second sealing ring can disconnect the mixing chamber from the temporary storage space.
[0007] In this embodiment of the utility model, a spring is also included. When the water inlet pipe is not flowing with water, the spring can drive the movable rod to move downward and to a first position, so as to disconnect the liquid storage chamber from the temporary storage space.
[0008] In this embodiment of the utility model, a pressure cap is also included. A first connecting tube located on the periphery of the channel is disposed in the liquid storage cavity. The pressure cap can be fastened to the outer periphery of the first connecting tube. The spring is sleeved on the outer periphery of the movable rod. A flange is disposed on the periphery of the movable rod. One end of the spring can abut against the flange, and the other end of the spring can abut against the bottom of the pressure cap.
[0009] In this embodiment of the utility model, a liquid outlet is provided on the side wall of the pressure cap, and the soap liquid in the storage cavity can flow to the temporary storage space through the liquid outlet; a first abutting part is provided on the outer periphery of the first connecting pipe, and a second abutting part is provided on the inner periphery of the pressure cap, and the lower part of the first abutting part can abut and cooperate with the upper part of the second abutting part to connect the pressure rod to the first connecting pipe.
[0010] In this embodiment of the present invention, a slot is provided on the inner sidewall of the second abutment portion, and a snap-fit block is also provided on the outer periphery of the first connecting tube. The rotation of the pressure cap relative to the first connecting tube enables the snap-fit block to engage with the slot.
[0011] In this embodiment of the utility model, a baffle plate is also provided at the lower end of the movable rod, and the water flow from the inlet pipe can impact the baffle plate to drive the movable rod to move upward; the baffle plate is located below the channel, and the diameter of the baffle plate is larger than the aperture of the channel.
[0012] In this embodiment of the present invention, a second connecting pipe located on the periphery of the channel is arranged inside the mixing chamber, the baffle plate can be located inside the second connecting pipe, the water inlet pipe can extend into the mixing chamber and be sleeved on the inner periphery of the second connecting pipe, and a gap is formed between the inner periphery of the second connecting pipe and the outer periphery of the water inlet pipe, which can squeeze the water flow and soap solution into the mixing chamber.
[0013] In this embodiment of the invention, a pipe is also provided inside the housing. The inlet of the pipe can be connected to the mixing chamber, and the outlet of the pipe can be connected to the mixing liquid outlet on the housing.
[0014] In this embodiment of the utility model, the housing is further provided with a liquid inlet and an air inlet, which can be connected to the liquid storage chamber.
[0015] The working principle of this utility model can be broken down into the following steps: S1, Water inlet stage: Tap water enters through the inlet pipe, the water flow impacts the baffle plate on the movable rod, compressing the spring and causing the movable rod to move upward to the second position; at this time, the storage chamber is connected to the temporary storage space, the temporary storage space is filled with soap solution, and the temporary storage space is disconnected from the mixing chamber. S2, Mixing stage: As the movable rod moves upward, the soap solution in the storage chamber flows out through the channel; the tap water and soap solution are fully mixed on the outside of the channel, and finally flow out from the mixed solution outlet through the pipe. S3, Water shut-off stage: When the water inlet stops, the spring resets, pushing the movable rod downward to the first position; at this time, the storage chamber is disconnected from the temporary storage space, and the temporary storage space is connected to the mixing chamber; under the action of gravity, part of the soap solution in the temporary storage space flows into the mixing chamber, and the other part flows into the inlet pipe; the soap solution flowing into the inlet pipe re-enters the mixing chamber with the water flow during the next water inlet, ensuring a continuous mixing effect.
[0016] The beneficial effects of this invention are as follows: By utilizing tap water pressure to drive the soap dispenser, the traditional electronic dispensing pump is eliminated, significantly reducing manufacturing costs, making it particularly suitable for mid-to-low-end smart toilet models. The purely mechanical structure design avoids the use of electronic components, reducing potential failure points and improving the stability and durability of the device. The device has a simple and compact structure, suitable for various smart toilet models, meeting the needs of different markets. Furthermore, the up-and-down movement of the movable rod and the design of the gap structure achieve efficient mixing of soap and tap water, ensuring excellent foam generation.
[0017] Furthermore, this invention improves the sealing performance and ease of assembly by optimizing the design of the sealing ring, spring, and gland. The sealing ring is made of corrosion-resistant rubber to ensure sealing performance during long-term use. The groove and snap-fit design between the gland and the first connecting pipe simplifies the assembly process and enhances the structural robustness.
[0018] In particular, the design of the baffle plate and gap structure of this utility model has significant technical advantages. The diameter of the baffle plate is larger than the channel aperture, ensuring that the water flow can effectively impact the movable rod and drive it to move. Attached Figure Description
[0019] To more clearly illustrate the technical solution of this utility model, 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 utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0020] Figure 1 This is a structural schematic diagram of an embodiment of the present utility model.
[0021] Figure 2 This is a cross-sectional view of an embodiment of the present utility model.
[0022] Figure 3 This is a schematic diagram of the movable rod in the first position in this utility model.
[0023] Figure 4 This is a schematic diagram of the movable rod in the second position in this utility model.
[0024] Figure 5 This is a schematic diagram of the shell in this utility model.
[0025] Figure 6 This is a partially enlarged schematic diagram of the shell in this utility model.
[0026] Figure 7 This is a schematic diagram of the pressure cap in this utility model. Detailed Implementation
[0027] To make the objectives, technical solutions, and advantages of the embodiments 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.
[0028] Referring to the accompanying drawings, a foam shield generating device includes core components such as a housing 1, a liquid storage chamber 2, a mixing chamber 3, a movable rod 5, a spring 9, and a pipe 17. The housing 1 is internally designed with the liquid storage chamber 2 and the mixing chamber 3 distributed vertically. The liquid storage chamber 2 stores soap solution, which is used to generate bubbles, while the mixing chamber 3 mixes the soap solution with tap water. The liquid storage chamber and the mixing chamber are separated by a partition 26. A water inlet pipe 15 is located at the bottom of the housing 1, connected to the mixing chamber 3, for introducing tap water. A channel 4 is provided between the liquid storage chamber 2 and the mixing chamber 3. The movable rod 5 is disposed within the channel 4, and can move vertically within the channel 4, switching between a first position and a second position. A temporary storage space 6 is formed between the movable rod 5 and the channel 4 for temporarily storing soap solution, achieving quantitative storage mechanically.
[0029] The working mechanism of the movable rod 5 is achieved through several key structures. When water enters through the inlet pipe 15, the water flow impacts the baffle plate 13 at the lower end of the movable rod 5, compressing the spring 9 and pushing the movable rod 5 upward to the second position. At this time, the liquid storage chamber 2 is connected to the temporary storage space 6, which is filled with soap solution. Simultaneously, the temporary storage space 6 is disconnected from the mixing chamber 3, preventing water from flowing upward into the liquid storage chamber. When water intake stops, the spring 9 resets (or resets under its own weight), pushing the movable rod 5 downward to the first position. At this time, the liquid storage chamber 2 is disconnected from the temporary storage space 6, and the temporary storage space 6 is connected to the mixing chamber 3. Under the action of gravity, part of the soap solution in the temporary storage space 6 flows into the mixing chamber 3, and the other part flows into the inlet pipe 15. The soap solution flowing into the water inlet pipe 15 enters the mixing chamber 3 with the water flow during the next water intake, thus achieving the mixing of soap solution and tap water. At the same time, due to the gap, most of the soap solution will flow directly into the water inlet pipe. Thus, the gap setting can increase the water pressure between the second connecting pipe and the water inlet pipe during the next water intake, which can fully mix the water and soap solution. Finally, it is squeezed into the mixing chamber through the gap for further mixing, resulting in a better bubble effect. Figure 3 Figure 4 In the diagram, the dashed line indicates the direction of soap liquid flow.
[0030] To ensure effective fluid isolation, the movable rod 5 is equipped with a first sealing ring 7 and a second sealing ring 8, positioned vertically. The first sealing ring 7 is located on the side of the movable rod 5 closest to the liquid storage chamber 2. When the movable rod 5 is in the first position, the first sealing ring 7 isolates the liquid storage chamber 2 from the temporary storage space 6. The second sealing ring 8 is located on the side of the movable rod 5 closest to the mixing chamber 3. When the movable rod 5 is in the second position, the second sealing ring 8 isolates the temporary storage space 6 from the mixing chamber 3. The sealing rings are made of corrosion-resistant rubber to ensure sealing performance during long-term use. The design of the first sealing ring 7 and the second sealing ring 8 not only improves the sealing performance of the device but also simplifies the assembly process.
[0031] Spring 9 is disposed on the outer periphery of movable rod 5, with one end abutting against flange 12 on movable rod 5 and the other end abutting against the bottom of pressure cap 10. Pressure cap 10 is fastened to the outer periphery of first connecting tube 11 on the periphery of channel 4, and spring 9 is fixed by pressure cap 10. Pressure cap 10 and first connecting tube 11 are fixedly connected by the cooperation of slot 21 and locking block 22. Specifically, locking block 22 is disposed on the outer periphery of first connecting tube 11, and slot 21 is disposed on the inner periphery of pressure cap 10. By rotating pressure cap 10, locking block 22 is inserted into slot 21, thereby achieving fixed connection between pressure cap 10 and first connecting tube 11. This design enhances the structural robustness and facilitates assembly and maintenance.
[0032] Preferably, the side wall of the cap is provided with a liquid outlet 23, through which the soap solution in the storage chamber can flow to the temporary storage space; a first abutment portion 24 is provided on the outer periphery of the first connecting tube, and a second abutment portion 25 is provided on the inner periphery of the cap. The lower part of the first abutment portion can abut against the upper part of the second abutment portion to connect the pressure rod to the first connecting tube, thus preventing the pressure rod from being pushed upward by the spring. A slot 21 is provided on the inner side wall of the second abutment portion, and a locking block 22 is also provided on the outer periphery of the first connecting tube. The rotation of the cap relative to the first connecting tube allows the locking block to engage with the slot, thus enabling the cap to rotate without significant external force and maintaining a stable connection between the cap and the first connecting tube.
[0033] A baffle plate 13 is installed at the lower end of the movable rod 5. The baffle plate 13 is located below the channel 4 and its diameter is larger than the orifice of the channel 4. This ensures that the water flow will not directly impact the channel and prevent water from flowing into the storage chamber. The baffle plate 13 can be impacted by the water flow from the inlet pipe 15, thereby pushing the movable rod 5 upward. The design of the baffle plate 13 ensures that the water flow can effectively impact the movable rod 5 and drive it to move. A second connecting pipe 14 is provided in the mixing chamber 3. The baffle plate 13 is located inside the second connecting pipe 14. The inlet pipe 15 extends into the mixing chamber 3 and is sleeved on the inner circumference of the second connecting pipe 14, forming a gap 16 between the two. The gap 16 can increase the pressure in the second connecting pipe and the inlet pipe, so that the soap solution can be fully mixed with the water flow. Then, high-pressure water is forced into the mixing chamber to mix again with the remaining soap solution.
[0034] The housing 1 is equipped with a pipe 17. The inlet of the pipe 17 is connected to the mixing chamber 3, and the outlet of the pipe 17 is connected to the mixed liquid outlet 18 on the housing 1, for outputting the mixed liquid. The housing 1 is also provided with a liquid inlet 19 and an air inlet 20, which are respectively connected to the liquid storage chamber 2, for replenishing soap solution and regulating the air pressure in the liquid storage chamber 2.
[0035] The specific operating principle of this device can be explained in three stages. S1, Water Inlet Stage: Tap water enters through the inlet pipe 15. The water flow impacts the baffle plate 13 on the movable rod 5, compressing the spring 9 and causing the movable rod 5 to move upwards to the second position. At this time, the storage chamber 2 is connected to the temporary storage space 6, which is filled with soap solution, while the temporary storage space 6 is disconnected from the mixing chamber 3. S2, Mixing Stage: As the movable rod 5 moves upwards, a measured amount of soap solution in the temporary storage space 6 flows out through the gap in the channel 4. After the tap water and soap solution are fully mixed, they flow out through the pipe 17 from the mixed solution outlet 18. S3, Water Stop Stage: When water inlet stops, the spring 9 resets, pushing the movable rod 5 downwards to the first position. At this time, the storage chamber 2 is disconnected from the temporary storage space 6, and the temporary storage space 6 is connected to the mixing chamber 3. Under the influence of gravity, a small portion of the soap solution in the temporary storage space 6 flows into the mixing chamber 3, while most flows into the inlet pipe 15. The soap solution flowing into the inlet pipe 15 is mixed during the next water inlet to ensure continuous mixing.
[0036] This invention significantly reduces manufacturing costs through optimized mechanical structure design. It abandons the traditional electronic dispensing pump and adopts a tap water pressure-driven soap dispensing method, making it particularly suitable for mid-to-low-end smart toilet models. The purely mechanical structure design avoids the use of electronic components, reducing potential failure points and improving the stability and durability of the device. The device has a simple and compact structure, suitable for various smart toilet models, meeting the needs of different markets. The up-and-down movement of the movable rod 5 and the design of the gap 16 structure achieve efficient mixing of soap and tap water, ensuring excellent foam generation.
[0037] Furthermore, this invention improves the sealing performance and ease of assembly by optimizing the design of the sealing ring, spring 9, and pressure cap 10. The sealing ring is made of corrosion-resistant rubber to ensure sealing performance during long-term use. The groove 21 and locking block 22 of the pressure cap 10 and the first connecting pipe 11 are designed to fit together, simplifying the assembly process and enhancing the structural robustness. The design of the baffle plate 13 and the gap 16 has significant technical advantages. The sleeve design of the water inlet pipe 15 and the second connecting pipe 14 creates a gap that further improves the mixing effect of soap solution and water flow.
[0038] In summary, this invention, through ingenious mechanical structure design, solves the problems of high cost and poor stability in existing foam shield devices. Its simple structure, reliable performance, and wide applicability give it high market value. In practical applications, this device can be widely used in various smart toilet models, especially mid-to-low-end products, meeting market demand while reducing production costs.
[0039] The foregoing description illustrates and describes preferred embodiments of the present invention. As previously stated, it should be understood that the present invention is not limited to the forms disclosed herein and should not be construed as excluding other embodiments. It can be used in various other combinations, modifications, and environments, and can be altered within the scope of the inventive concept described herein through the foregoing teachings or related technical or knowledge. Any modifications and variations made by those skilled in the art that do not depart from the spirit and scope of the present invention should be within the protection scope of the appended claims.
Claims
1. A foam shield generating device, characterized in that, The device includes a housing, which contains a liquid storage chamber and a mixing chamber arranged vertically. A channel is provided between the liquid storage chamber and the mixing chamber, which allows soap solution in the liquid storage chamber to flow into the mixing chamber. A water inlet pipe is also provided at the bottom of the housing, which is connected to the mixing chamber. It also includes a movable rod that can be configured within the channel, and a temporary storage space can be formed between the movable rod and the channel. The movable rod can move up and down between a first position and a second position within the channel. When the movable rod is in the first position within the channel, the liquid storage chamber is disconnected from the temporary storage space, and the temporary storage space can be connected to the mixing chamber; When water enters through the inlet pipe, the water flow can push the movable rod upward, so that the movable rod is in the second position within the channel. The temporary storage space is disconnected from the mixing chamber, and the temporary storage space can be connected to the liquid storage chamber.
2. The foam shield generating device according to claim 1, characterized in that, The movable rod is equipped with a first sealing ring and a second sealing ring distributed vertically. When the movable rod is in the first position in the channel, the first sealing ring can disconnect the liquid storage chamber from the temporary storage space; when the movable rod is in the second position in the channel, the second sealing ring can disconnect the mixing chamber from the temporary storage space.
3. The foam shield generating device according to claim 2, characterized in that, It also includes a spring, which is configured to drive the movable rod to move downward and to a first position when the water inlet pipe is not flowing with water, so as to disconnect the liquid storage chamber from the temporary storage space.
4. A foam shield generating device according to claim 3, characterized in that, It also includes a pressure cap, and a first connecting tube located on the periphery of the channel is disposed in the liquid storage cavity. The pressure cap can be fastened to the outer periphery of the first connecting tube. The spring is sleeved on the outer periphery of the movable rod. A flange is disposed on the periphery of the movable rod. One end of the spring can abut against the flange, and the other end of the spring can abut against the bottom of the pressure cap.
5. A foam shield generating device according to claim 4, characterized in that, The side wall of the cap is provided with a liquid outlet, and the soap solution in the storage chamber can flow to the temporary storage space through the liquid outlet; the outer periphery of the first connecting pipe is provided with a first abutment part, and the inner periphery of the cap is provided with a second abutment part, and the lower part of the first abutment part can abut and cooperate with the upper part of the second abutment part to connect the pressure rod to the first connecting pipe.
6. A foam shield generating device according to claim 5, characterized in that, The inner wall of the second abutment is provided with a slot, and the outer periphery of the first connecting tube is also provided with a snap-fit block. The rotation of the pressure cap relative to the first connecting tube enables the snap-fit block to engage with the slot.
7. A foam shield generating device according to any one of claims 1-6, characterized in that, The lower end of the movable rod is also equipped with a baffle plate, and the water flow from the inlet pipe can impact the baffle plate to drive the movable rod to move upward; the baffle plate is located below the channel, and the diameter of the baffle plate is larger than the aperture of the channel.
8. A foam shield generating device according to claim 7, characterized in that, The mixing chamber is equipped with a second connecting pipe located on the periphery of the channel. The baffle plate can be located inside the second connecting pipe. The water inlet pipe can extend into the mixing chamber and be sleeved on the inner periphery of the second connecting pipe. A gap is formed between the inner periphery of the second connecting pipe and the outer periphery of the water inlet pipe. This gap can squeeze the water flow and soap solution into the mixing chamber.
9. A foam shield generating device according to claim 8, characterized in that, The housing is also equipped with a pipe, the inlet of which can be connected to the mixing chamber, and the outlet of which can be connected to the mixing liquid outlet on the housing.
10. A foam shield generating device according to claim 9, characterized in that, The housing is also equipped with a liquid inlet and an air inlet, which can be connected to the liquid storage chamber.