Hands-free faucet assembly
By incorporating a dual-outlet design and a water level detection mechanism into the tapless assembly, users no longer need to hold a water container while waiting, thus solving the problem of long water dispensing times associated with traditional taps and improving both convenience and safety.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- YUHUAN DAFENG ENVIRONMENT EGIS EQUIP CO LTD
- Filing Date
- 2025-08-20
- Publication Date
- 2026-07-28
AI Technical Summary
Existing faucets require users to hold the kettle and wait for a considerable amount of time while dispensing water, resulting in a poor user experience.
Design a tapless assembly comprising an installation body, a switching valve, a water storage container, and a water level detection mechanism to achieve dual water outlets and automatic control. The water storage container is detachable, and the water level detection mechanism automatically shuts off the water inlet after the water storage container reaches the set water level.
It reduces user waiting time, improves ease of use and user experience, adapts to different water intake needs, and ensures water conservation and safe use.
Smart Images

Figure CN224566784U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of faucet technology, and more particularly to a tapless faucet assembly. Background Technology
[0002] Faucets are widely used in daily life for obtaining water. They can also be used in conjunction with water treatment equipment such as water purifiers. In practice, users typically use a kettle to fetch water from the faucet, but this requires holding the kettle to the bottom of the faucet to collect the water. This results in a relatively long waiting time and a poor user experience. Therefore, this application aims to design a technology that allows users to directly obtain water while reducing waiting time, thus improving convenience and user experience. Summary of the Invention
[0003] The technical problem to be solved by this application is to provide a tapless water tap component that enables users to directly obtain water, reduces user waiting time, and improves user convenience and experience.
[0004] The technical solution provided in this application is a tap-free assembly, comprising:
[0005] The installation body is further provided with a first water outlet pipe and a second water outlet pipe;
[0006] A switching valve is provided with an inlet, a first outlet, and a second outlet. The switching valve is configured to switch the inlet with the first outlet or the second outlet. The switching valve is mounted on the mounting body. The first outlet is connected to the first outlet pipe, and the second outlet is connected to the second outlet pipe.
[0007] A water storage container is provided with a water inlet, which is connected to the water storage container; the water storage container is detachably mounted on the mounting body; when the water storage container is mounted on the mounting body, the water inlet is connected to the second water outlet pipe.
[0008] A water level detection mechanism is configured to detect the water level in the water storage container and close the inlet or the second outlet pipe after the water level in the water storage container is higher than a set water level height.
[0009] In one embodiment, the water storage container is provided with a connecting pipe, the lower end of the connecting pipe forms the water inlet, the upper end of the connecting pipe forms the installation port, and the connecting pipe is connected to the water storage container.
[0010] The water level detection mechanism includes a mounting frame, a float, a control rod, and a first return spring; the float is slidably mounted on the mounting frame, the control rod is mounted on the float, and the first return spring is clamped between the control rod and the mounting frame;
[0011] The float is located inside the water storage container, and the control rod is inserted into the connecting pipe through the mounting port, with the lower end of the control rod extending to the outside of the connecting pipe;
[0012] A control valve is provided in the second water outlet pipe. The control valve includes a valve body and a valve core. A water flow channel is formed in the valve body. The valve core is slidably disposed on the valve body and is configured to open and close the water flow channel. The valve body is disposed in the second water outlet pipe.
[0013] The control lever is configured to abut against the valve core to open the water flow channel;
[0014] With the water storage container installed on the mounting body, the connecting pipe is sealed and inserted into the second water outlet pipe.
[0015] In one embodiment, the water storage container is mounted on the mounting body;
[0016] When the float is below the set water level in the water storage container, the lower end of the control lever abuts against the valve core so that the valve core moves away from the port of the water flow channel to open the water flow channel.
[0017] When the float is not lower than the set water level in the water storage container, the lower end of the control rod moves away from the valve core, and the valve core closes the water flow channel.
[0018] In one embodiment, the valve body is further provided with a support frame, and the support frame is provided with a support hole; the valve core is provided with a support rod, the support rod is inserted into the support hole, and the outer periphery of the valve core is provided with a first sealing ring;
[0019] In one embodiment, a second return spring is further provided between the support frame and the valve core;
[0020] And / or, the support frame is also provided with a claw, and the second water outlet pipe is also provided with a slot, and the claw is engaged in the slot.
[0021] In one embodiment, the lower end of the control lever is further provided with a first plug;
[0022] When the float is not lower than the set water level in the water storage container, the first plug blocks the water inlet.
[0023] In one embodiment, a connecting branch pipe is further provided on the wall of the connecting pipe, and the connecting branch pipe is connected to the water storage container;
[0024] The upper end of the control rod is also provided with a second plug, which is slidably disposed in the connecting pipe and arranged above the connecting branch pipe.
[0025] In one embodiment, a one-way valve is also provided in the connecting branch pipe, the one-way valve being configured to restrict the water transported in the connecting pipe from being transported from the connecting branch pipe to the water storage container.
[0026] In one embodiment, the mounting body is further provided with a support base;
[0027] With the water storage container mounted on the mounting body, the support base supports the water storage container.
[0028] By installing a first and a second water outlet pipe on the main unit, the first outlet pipe can meet the user's regular water connection requirements, while the second outlet pipe can meet the requirements for supplying water to the storage container. A switching valve allows switching between the first and second outlet pipes to deliver water. The storage container is equipped with a water level detection mechanism that can monitor the water level. During water supply through the second outlet pipe, if the water level detection mechanism detects that the water level in the storage container is higher than the set water level, the inlet or the second outlet pipe will close to stop supplying water. The water level detection mechanism automatically shuts off the inlet once the storage container reaches the set water level. The entire water storage process does not require the user to hold the container and monitor it, allowing the user to handle other tasks during the water storage period, significantly reducing waiting time and fundamentally improving the inconvenience of traditional water collection methods.
[0029] Meanwhile, the dual-outlet design takes into account both immediate water use and water storage needs. When users need to get water briefly (such as washing hands or rinsing small items), they can switch to the first outlet pipe to get water directly. When a large amount of water needs to be stored (such as getting water for boiling or cooking), they can switch to the second outlet pipe to store water in the storage container. This adapts to different scenarios and greatly improves the convenience of use.
[0030] The water storage container is detachably installed on the main unit. After the water is filled, the user can directly remove the water storage container to use the water inside without having to transfer the water from the water storage container to other appliances, reducing the number of operation steps. At the same time, the detachable design also makes it easy to clean and maintain the water storage container, ensuring water quality and hygiene, and further improving the user experience.
[0031] The water level detection mechanism enables precise monitoring of the water level in the storage container. When the water level reaches the set value, it can automatically shut off the inlet or the second outlet pipe, effectively preventing water overflow caused by user forgetfulness or operational negligence. This not only saves water resources but also prevents safety hazards such as slippery ground and equipment damage caused by overflow, thus improving the reliability and safety of the component.
[0032] In summary, the tapless water dispenser assembly of this application solves the problems of long waiting time, cumbersome operation, and poor user experience in traditional water dispensing methods through the automatic water storage and detachable design of the water storage container, the dual-outlet switching of the switching valve, and the automatic control of the water level detection mechanism. It comprehensively improves the convenience, flexibility, and safety of users and has significant practical value. Attached Figure Description
[0033] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0034] Figure 1 This is a schematic diagram of the structure of an embodiment of the tapless assembly of this application;
[0035] Figure 2 This is a cross-sectional view of an embodiment of the tapless assembly of this application;
[0036] Figure 3 for Figure 2 A magnified view of a portion of region A in the middle;
[0037] Figure 4 for Figure 3 Schematic diagram of the control valve structure;
[0038] Figure 5 for Figure 1 Assembly diagram of the main body and switching valve;
[0039] Figure 6 for Figure 1 Assembly diagram of the water storage container and water level detection mechanism;
[0040] Figure 7 for Figure 6 A cross-sectional view of the assembled water storage container and water level detection mechanism;
[0041] Figure 8 for Figure 6 Assembly diagram of the connecting pipe and water level detection mechanism;
[0042] Figure 9 for Figure 8 A cross-sectional view of the assembly of the connecting pipe and the water level detection mechanism.
[0043] Figure label:
[0044] 1. Main installation unit; 11. First outlet pipe; 12. Second outlet pipe; 13. Control valve; 14. Controller; 15. Hall effect switch; 16. Electrically controlled valve; 10. Support base;
[0045] 121. Slot; 131. Valve body; 132. Valve core; 133. Support frame; 134. Support rod; 135. First sealing ring; 136. Claw;
[0046] 2. Switching valve; 21. Inlet; 22. First outlet; 23. Second outlet;
[0047] 3. Water storage container; 31. Water inlet; 32. Connecting pipe; 33. One-way valve;
[0048] 321. Connect the branch pipe;
[0049] 4. Water level detection mechanism; 41. Mounting bracket; 42. Float; 43. Control rod; 44. First return spring;
[0050] 431. First plug; 432. Second sealing ring; 433. Second plug; 434. Third sealing ring. Detailed Implementation
[0051] To make the objectives, technical solutions, and advantages of the embodiments of this application clearer, the technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.
[0052] like Figures 1-9 As shown, one embodiment of this application provides a tapless assembly, including:
[0053] Installation body 1, wherein a first water outlet pipe 11 and a second water outlet pipe 12 are provided on the installation body 1;
[0054] A switching valve 2 is provided with an inlet 21, a first outlet 22, and a second outlet 23. The switching valve 2 is configured to switch the inlet 21 with the first outlet 22 or the second outlet 23. The switching valve 2 is provided on the mounting body 1. The first outlet 22 is connected to the first outlet pipe 11, and the second outlet 23 is connected to the second outlet pipe 12.
[0055] A water storage container 3 is provided with a water inlet 31, which is connected to the water storage container 3; the water storage container 3 is detachably mounted on the mounting body 1; when the water storage container 3 is mounted on the mounting body 1, the water inlet 31 is connected to the second water outlet pipe 12.
[0056] The water level detection mechanism 4 is configured to detect the water level of the water storage container 3 and close the water inlet 31 or the second water outlet pipe 12 after the water level in the water storage container 3 is higher than the set water level height.
[0057] Specifically, the mounting body 1 serves as a supporting component for installation and is installed on a countertop or sink in the user's home. The mounting body 1 is equipped with a first water outlet pipe 11, which can output water to allow the user to hold a container and collect water from below the first water outlet pipe 11; the mounting body 1 is also equipped with a second water outlet pipe 12, which can automatically fill the water storage container 3 placed on the mounting body 1.
[0058] Meanwhile, in actual use, the water supply pipe in the user's home is connected to the inlet 21 of the switching valve 2 via the inlet pipe 24. The user can switch the first outlet pipe 11 to the water outlet state via the switching valve 2. At this time, the user holds a container to collect water at the first outlet pipe 11 to meet the user's requirements for the function of a regular faucet. When the user switches to the second outlet pipe 12 to the water outlet state via the switching valve 2, the second outlet pipe 12 will be connected to the inlet 31 of the water storage container 3. The water output from the second outlet pipe 12 enters the water storage container 3 through the inlet 31. Furthermore, during the process of filling the water storage container 3 with water through the second outlet pipe 12, when the water level detection mechanism 4 detects that the water level in the water storage container 3 is higher than the set water level, it will close the second outlet pipe 12 to fill the water storage container 3, thereby achieving complete independence from manual operation.
[0059] Taking a 2L water volume as an example, in the traditional method, the user needs to hold the kettle under the tap and wait for about 60 seconds (calculated at a normal water flow rate of 2L / min), and cannot leave the water source during the process. However, with the second water outlet pipe 12 automatically filling the water storage container 3, the user only needs to place the water storage container 3 on the installation body 1 and control the second water outlet pipe 12 to supply water to the water storage container 3 through the switching valve 2. The user can then leave, and the subsequent water filling process can be completely automated. The user can simultaneously complete other tasks such as preparing tea and tidying up tableware without having to wait in person. Furthermore, once the water level in the water storage container 3 reaches the set water level, the second water outlet pipe 12 will be shut off, improving the user's convenience and experience.
[0060] In addition, the structure of switching valve 2 is a manual directional valve in conventional technology, or it can be a two-position three-way electric valve, and there are no restrictions here.
[0061] In one embodiment, the mounting body 1 is further provided with a support seat 10; when the water storage container 3 is mounted on the mounting body 1, the support seat 10 supports the water storage container 3.
[0062] Specifically, by providing a support seat 10 on the installation body 1, the support seat 10 can provide effective support for the water storage container 3. In particular, after the water storage container 3 is filled with water, the weight of the water storage container 3 and the water inside is supported by the support seat 10, so as to reduce the excessive pressure of the water storage container 3 on the second water outlet pipe 12.
[0063] In one embodiment, the water storage container 3 is provided with a connecting pipe 32, the lower opening of which forms the water inlet 31, and the connecting pipe 32 communicates with the water storage container 3. When the water storage container 3 is mounted on the mounting body 1, the connecting pipe 32 is sealed and inserted into the second water outlet pipe 12.
[0064] Specifically, to facilitate the connection between the water storage container 3 and the second water outlet pipe 12 via the water inlet 31, a connecting pipe 32 can be provided on the water storage container 3, with the lower end of the connecting pipe 32 forming the water inlet 31. After the water storage container 3 is placed on the mounting body 1, the connecting pipe 32 and the second water outlet pipe 12 are sealed together.
[0065] Furthermore, to facilitate the installation of the water level detection mechanism 4, and to control the flow path between the second outlet pipe 12 and the inlet section 31, the upper opening of the connecting pipe 32 forms an installation port;
[0066] The water level detection mechanism 4 includes a mounting frame 41, a float 42, a control rod 43, and a first return spring 44. The float 42 is slidably mounted on the mounting frame 41, the control rod 43 is mounted on the float 42, and the first return spring 44 is clamped between the control rod 43 and the mounting frame 41. The float 42 is located inside the water storage container 3, and the control rod 43 is inserted into the connecting pipe 32 through the mounting port, with the lower end of the control rod 43 extending to the outside of the connecting pipe 32.
[0067] A control valve 13 is provided in the second water outlet pipe 12. The control valve 13 includes a valve body 131 and a valve core 132. A water flow channel 130 is formed in the valve body 131. The valve core 132 is slidably disposed on the valve body 131. The valve core 132 is configured to open and close the water flow channel 130. The valve body 131 is disposed in the second water outlet pipe 12.
[0068] The control lever 43 is configured to abut against the valve core 132 to open the water flow channel 130.
[0069] Specifically, the connecting pipe 32 installed on the water storage container 3 can meet the water inlet requirements of the water storage container 3. At the same time, the connecting pipe 32 can also be used to install the control rod 43 of the water level detection mechanism 4. The upper opening of the connecting pipe 32 forms an installation port so that the control rod 43 can be inserted into the connecting pipe 32 from the top installation port. The lower end of the control rod 43 extends to the outside of the connecting pipe 32 to operate the control valve 13 in the second water outlet pipe 12.
[0070] The water level detection mechanism 4 uses a mechanical float 42 to detect the water level. As the float 42 moves up and down due to the water level in the water storage container 3, it also drives the control rod 43 to move up and down, so as to control the switch of the control valve 13 in the second water outlet pipe 12 through the control rod 43.
[0071] In actual use, when the water storage container 3 is not assembled into the installation body 1, the control valve 13 in the second outlet pipe 12 is in a closed state, that is, the valve core 132 closes the water flow channel 130 formed by the valve body 131. At this time, even if the user switches the switching valve 2 to connect the inlet 21 with the second outlet 23, the control valve 13 will prevent water from flowing out of the second outlet pipe 12.
[0072] The user places the water storage container 3 on the installation body 1, and the connecting pipe 32 is inserted into the second outlet pipe 12. At this time, the control lever 43 abuts against the valve core 132, so that the valve core 132 is removed from the water flow channel 130, and the control valve 13 is in the open state. Then, when the switching valve 2 is switched to the state where the inlet 21 is connected to the second outlet 23, the second outlet pipe 12 will supply water to the water storage container 3 through the connecting pipe 32.
[0073] As the water level rises, float 42 floats on the surface of the water in storage container 3 and moves upward with the water level. During this upward movement, float 42 drives control rod 43 in connecting pipe 32 to move upward. As the water level in storage container 3 rises, float 42 continuously drives control rod 43 to overcome the force of the first return spring 44 and move upward in connecting pipe 32. During this process, valve core 132 also moves with control rod 43 and gradually approaches water flow channel 130. When the water level in storage container 3 reaches the set water level, control rod 43 rises to the set height. At this point, valve core 132 closes water flow channel 130, preventing the second outlet pipe 12 from supplying water to storage container 3. This allows for unattended operation; once the water level in storage container 3 reaches the set water level, control valve 13 automatically closes the second outlet pipe 12 to stop discharging water.
[0074] After the user removes the water storage container 3 from the mounting body 1, the control valve 13 remains closed. After the water in the water storage container 3 is used up, driven by the first return spring 44 and under the weight of the float 42, the lower end of the control rod 43 extends outside the connecting pipe 32. When the user places the water storage container 3 back onto the mounting body 1, the control rod 43 will again press against the valve core 132 to open the control valve 13.
[0075] When the water storage container 3 is installed on the mounting body 1;
[0076] When the float 42 is below the set water level in the water storage container 3, the lower end of the control rod 43 abuts against the valve core 132 so that the valve core 132 leaves the port of the water flow channel 130 to open the water flow channel 130.
[0077] When the float 42 is not lower than the set water level in the water storage container 3, the lower end of the control rod 43 leaves the valve core 132, and the valve core 132 closes the water flow channel 130.
[0078] Specifically, during the water storage process, in the transition phase from when the float 42 is below the set water level to when it is above the set water level, the rising speed of the float 42 gradually slows down as the water level rises (due to the increased elasticity of the first return spring 44 forming damping). At the same time, the valve core 132 moves with the control rod 43 and gradually approaches the port of the water flow channel 130. The valve core 132 also gradually closes the water flow channel 130, thus avoiding the water hammer effect caused by the sudden change in flow rate.
[0079] The linkage mechanism between the float 42, control rod 43, and valve core 132 at different water levels enables fully automatic closed-loop control of the water storage process. No manual operation by the user is required; the opening and closing of the water flow channel 130 can be controlled solely by changes in water level. This mechanical linkage method is unaffected by electrical or electronic components, thus improving reliability.
[0080] In one embodiment, the valve body 131 is further provided with a support frame 133, and the support frame 133 is provided with a support hole; the valve core 132 is provided with a support rod 134, the support rod 134 is inserted into the support hole, and the outer periphery of the valve core 132 is provided with a first sealing ring 135.
[0081] Specifically, for control valve 13, to ensure that valve core 132 can move smoothly relative to valve body 131, support rod 134 cooperates with support hole to guide the movement of valve core 132. The first sealing ring 135 provided on valve core 132 can more effectively seal water flow channel 130 to improve sealing reliability. Support frame 133 can adopt a cross structure, providing stable support for support rod 134 without affecting water flow.
[0082] Furthermore, in order to further improve the reliability of the control valve 13, a second return spring (not shown) is also provided between the support frame 133 and the valve core 132.
[0083] Specifically, the second reset spring applies a spring force to the valve core 132 in the direction of the water flow channel 130. Under the action of the spring force, it is ensured that the valve core 132 always blocks the water flow channel 130 when it is not acted upon by the control rod 43.
[0084] Furthermore, the support frame 133 is also provided with a claw 136, and the second water outlet pipe 12 is also provided with a slot 121, and the claw 136 is engaged in the slot 121.
[0085] Specifically, to facilitate the installation of the control valve 13, the support frame 133 is also equipped with a claw 136, which engages in the slot 121 of the second outlet pipe 12 to secure the control valve 13 into the second outlet pipe 12. Similarly, to ensure a sealed connection between the valve body 131 and the second outlet pipe 12, a sealing ring 137 can be fitted over the valve body 131. After the valve body 131 is secured into the second outlet pipe 12, the sealing ring 137 is pressed between the valve body 131 and the second outlet pipe 12 to achieve a sealed assembly.
[0086] In one embodiment, the lower end of the control lever 43 is further provided with a first plug 431;
[0087] When the float 42 is not lower than the set water level in the water storage container 3, the first plug 431 blocks the water inlet 31.
[0088] Specifically, after the water level in the water storage container 3 rises to the set water level height, on the one hand, the control valve 13 closes the second water outlet, and on the other hand, the first plug 431 seals the lower pipe opening (i.e., the water inlet 31) of the connecting pipe 32 to prevent water in the water storage container 3 from leaking out through the connecting pipe 32, thereby improving the reliability of use.
[0089] A second sealing ring 432 can be provided on the first plug 431 so that the first plug 431 can block the water inlet 31 through the second sealing ring 432.
[0090] In another embodiment, a connecting branch pipe 321 is also provided on the wall of the connecting pipe 32, and the connecting branch pipe 321 is connected to the water storage container 3.
[0091] Specifically, the connecting pipe 32 is connected to the interior of the water storage container 3 through the connecting branch pipe 321, and the water transported by the connecting pipe 32 is transported to the water storage container 3 for storage through the connecting branch pipe 321.
[0092] Furthermore, the upper end of the control rod 43 is provided with a second plug 433, which is slidably disposed in the connecting pipe 32 and arranged above the connecting branch pipe 321.
[0093] Specifically, since the control rod 43 passes through the connecting pipe 32, in order to prevent water leakage from the top mounting port of the connecting pipe 32, a second plug 433 can be provided on the upper part of the control rod 43. The second plug 433 slides inside the connecting pipe 32 and is arranged higher than the connecting branch pipe 321. This ensures that the water in the connecting pipe 32 is output from the connecting branch pipe 321, and also seals the upper part of the connecting pipe 32 to prevent water leakage from the mounting port.
[0094] Similarly, a third sealing ring 434 can be provided on the second plug 433, and the third sealing ring 434 is sandwiched between the second plug 433 and the inner wall of the connecting pipe 32 to achieve a seal.
[0095] Furthermore, when the water storage container 3 is full of water, in order to prevent water from leaking out of the connecting branch pipe 321 during the user's movement of the water storage container 3, a one-way valve 33 is also provided in the connecting branch pipe 321. The one-way valve 33 is configured to restrict the water transported in the connecting pipe 32 from being transported from the connecting branch pipe 321 to the water storage container 3.
[0096] Specifically, a one-way valve 33 is installed in the connecting branch pipe 321. During the process of supplying water to the water storage container 3 through the second outlet pipe 12, the one-way valve 33 opens under the action of water pressure. When the water storage container 3 is carried and moved by the user, the one-way valve 33 will prevent water in the water storage container 3 from leaking out from the connecting branch pipe 321, thereby improving the reliability of use and the user experience.
[0097] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this application, and are not intended to limit them. Although this application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of this application.
Claims
1. A tapless assembly, characterized in that, include: The installation body is provided with a first water outlet pipe and a second water outlet pipe; A switching valve is provided with an inlet, a first outlet, and a second outlet. The switching valve is configured to switch the inlet with the first outlet or the second outlet. The switching valve is mounted on the mounting body. The first outlet is connected to the first outlet pipe, and the second outlet is connected to the second outlet pipe. A water storage container is provided with a water inlet, which is connected to the water storage container; the water storage container is detachably mounted on the mounting body; when the water storage container is mounted on the mounting body, the water inlet is connected to the second water outlet pipe. A water level detection mechanism is configured to detect the water level in the water storage container and close the inlet or the second outlet pipe after the water level in the water storage container is higher than a set water level height.
2. The tapless faucet assembly according to claim 1, characterized in that, The water storage container is provided with a connecting pipe, the lower end of the connecting pipe forms the water inlet, the upper end of the connecting pipe forms the installation port, and the connecting pipe is connected to the water storage container. The water level detection mechanism includes a mounting frame, a float, a control rod, and a first return spring; the float is slidably mounted on the mounting frame, the control rod is mounted on the float, and the first return spring is clamped between the control rod and the mounting frame; The float is located inside the water storage container, and the control rod is inserted into the connecting pipe through the mounting port, with the lower end of the control rod extending to the outside of the connecting pipe; A control valve is provided in the second water outlet pipe. The control valve includes a valve body and a valve core. A water flow channel is formed in the valve body. The valve core is slidably disposed on the valve body and is configured to open and close the water flow channel. The valve body is disposed in the second water outlet pipe. The control lever is configured to abut against the valve core to open the water flow channel; With the water storage container installed on the mounting body, the connecting pipe is sealed and inserted into the second water outlet pipe.
3. The tapless faucet assembly according to claim 2, characterized in that, When the water storage container is mounted on the mounting body; When the float is below the set water level in the water storage container, the lower end of the control lever abuts against the valve core so that the valve core moves away from the port of the water flow channel to open the water flow channel. When the float is not lower than the set water level in the water storage container, the lower end of the control rod moves away from the valve core, and the valve core closes the water flow channel.
4. The tapless faucet assembly according to claim 2, characterized in that, The valve body is also provided with a support frame, and the support frame is provided with a support hole; the valve core is provided with a support rod, the support rod is inserted into the support hole, and a first sealing ring is provided on the outer periphery of the valve core.
5. The tapless faucet assembly according to claim 4, characterized in that, A second return spring is also provided between the support frame and the valve core.
6. The tapless faucet assembly according to claim 4, characterized in that, The support frame is also equipped with a claw, and the second water outlet pipe is also equipped with a slot, and the claw is engaged in the slot.
7. The tapless faucet assembly according to claim 2, characterized in that, The lower end of the control lever is also provided with a first plug; When the float is not lower than the set water level in the water storage container, the first plug blocks the water inlet.
8. The tapless faucet assembly according to claim 2, characterized in that, A connecting branch pipe is also provided on the wall of the connecting pipe, and the connecting branch pipe is connected to the water storage container; The upper end of the control rod is also provided with a second plug, which is slidably disposed in the connecting pipe and arranged above the connecting branch pipe.
9. The tapless faucet assembly according to claim 8, characterized in that, The connecting branch pipe is also equipped with a one-way valve, which is configured to restrict the water transported in the connecting pipe from being transported from the connecting branch pipe to the water storage container.
10. The tapless faucet assembly according to claim 1, characterized in that, The mounting body is also provided with a support base; With the water storage container mounted on the mounting body, the support base supports the water storage container.